WO2022080840A1 - 무선 통신 시스템에서 물리 상향링크 제어채널의 전송 방법, 장치 및 시스템 - Google Patents
무선 통신 시스템에서 물리 상향링크 제어채널의 전송 방법, 장치 및 시스템 Download PDFInfo
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0053—Allocation of signalling, i.e. of overhead other than pilot signals
- H04L5/0055—Physical resource allocation for ACK/NACK
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- H—ELECTRICITY
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- H04W—WIRELESS COMMUNICATION NETWORKS
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- H04W72/1263—Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows
- H04W72/1268—Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows of uplink data flows
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- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/08—Arrangements for detecting or preventing errors in the information received by repeating transmission, e.g. Verdan system
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- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/1607—Details of the supervisory signal
- H04L1/1614—Details of the supervisory signal using bitmaps
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
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- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/1607—Details of the supervisory signal
- H04L1/1671—Details of the supervisory signal the supervisory signal being transmitted together with control information
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- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1812—Hybrid protocols; Hybrid automatic repeat request [HARQ]
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- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
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- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
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- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
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- H04L27/26—Systems using multi-frequency codes
- H04L27/2601—Multicarrier modulation systems
- H04L27/2602—Signal structure
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- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0001—Arrangements for dividing the transmission path
- H04L5/0003—Two-dimensional division
- H04L5/0005—Time-frequency
- H04L5/0007—Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT
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- H04W72/231—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal the control data signalling from the layers above the physical layer, e.g. RRC or MAC-CE signalling
Definitions
- the present invention relates to a wireless communication system, and more particularly, a method, apparatus and system for transmitting a physical uplink control channel in a wireless communication system, a semi-persistent scheduling PDSCH reception method, and HARQ-ACK transmission it's about how
- 5G communication system is called a 4G network after (beyond 4G network) communication system, LTE system after (post LTE) system or NR (new radio) system.
- the 5G communication system includes a system operated using an ultra-high frequency (mmWave) band of 6 GHz or higher, and a communication system operated using a frequency band of 6 GHz or less in terms of securing coverage Implementation in the base station and the terminal, including
- the 3rd generation partnership project (3GPP) NR system improves the spectral efficiency of the network, enabling carriers to provide more data and voice services in a given bandwidth. Therefore, the 3GPP NR system is designed to meet the demand for high-speed data and media transmission in addition to high-capacity voice support.
- the advantages of NR systems are that they can have low operating costs with high throughput, low latency, frequency division duplex (FDD) and time division duplex (TDD) support, improved end-user experience and simple architecture on the same platform.
- dynamic TDD of the NR system may use a method of varying the number of orthogonal frequency division multiplexing (OFDM) symbols that can be used for uplink and downlink according to the data traffic direction of users of the cell. For example, when the downlink traffic of the cell is greater than the uplink traffic, the base station may allocate a plurality of downlink OFDM symbols to a slot (or subframe). Information on the slot configuration should be transmitted to the terminals.
- OFDM orthogonal frequency division multiplexing
- an evolved small cell in the 5G communication system, an evolved small cell, an advanced small cell, a cloud radio access network (cloud radio access network: cloud RAN), an ultra-dense network (ultra-dense network) , device to device communication (D2D), vehicle to everything communication (V2X), wireless backhaul, non-terrestrial network communication (NTN), mobile network (moving network), cooperative communication (cooperative communication), CoMP (coordinated multi-points), and technology development related to reception interference cancellation (interference cancellation) and the like are being made.
- cloud radio access network cloud radio access network: cloud RAN
- ultra-dense network ultra-dense network
- D2D device to device communication
- V2X vehicle to everything communication
- wireless backhaul wireless backhaul
- NTN non-terrestrial network communication
- mobile network moving network
- cooperative communication cooperative communication
- CoMP coordinated multi-points
- technology development related to reception interference cancellation (interference cancellation) and the like are being made.
- FQAM FSK and QAM modulation
- SWSC sliding window superposition coding
- ACM advanced coding modulation
- FBMC filter bank multi-carrier
- NOMA Non-orthogonal multiple access
- SCMA sparse code multiple access
- IoT Internet of Things
- IoE Internet of Everything
- sensing technology wired and wireless communication and network infrastructure, service interface technology, and security technology
- sensor networks for connection between objects, machine to machine (M2M), Technologies such as MTC (machine type communication) are being studied.
- M2M machine to machine
- MTC machine type communication
- IoT intelligent Internet technology (IT) services that create new values in human life by collecting and analyzing data generated from connected objects can be provided.
- IoT is a field of smart home, smart building, smart city, smart car or connected car, smart grid, health care, smart home appliance, advanced medical service, etc. can be applied to
- 5G communication system to the IoT network.
- technologies such as sensor network, machine to machine (M2M), and machine type communication (MTC) are being implemented by 5G communication technologies such as beamforming, MIMO, and array antenna.
- cloud radio access network cloud RAN
- a mobile communication system has been developed to provide a voice service while ensuring user activity.
- the mobile communication system is gradually expanding its scope not only to voice but also to data services, and has now developed to the extent that it can provide high-speed data services.
- a more advanced mobile communication system is required due to a shortage of resources and users' demand for high-speed service.
- An object of the present invention is to provide a method for transmitting uplink control information in a wireless communication system, particularly, a cellular wireless communication system, and an apparatus therefor.
- Another technical object of the present invention is to provide a method for receiving an SPS PDSCH in a 3GPP NR system, a method for transmitting HARQ-ACK of the SPS PDSCH, and an apparatus therefor.
- a terminal for transmitting a physical uplink control channel (PUCCH) based on carrier aggregation.
- the terminal receives information about a PUCCH serving cell, which is a serving cell in which the PUCCH is transmitted, from a base station, generates the PUCCH, and a communication module for transmitting the generated PUCCH on the PUCCH serving cell, and the PUCCH serving cell. and a processor for configuring the PUCCH serving cell based on the information, wherein the information on the PUCCH serving cell sets a specific serving cell among the plurality of serving cells as the PUCCH serving cell. Whether to set It may include first information indicating and second information on a period to which the configuration related to the PUCCH serving cell is applied.
- the first information may indicate whether or not to configure the specific serving cell as the PUCCH serving cell by sequential indices.
- the number of the series of indices is determined based on a subcarrier spacing (SCS) of a cell, wherein the one cell is one of the plurality of serving cells, and the series Each index included in the indexes may correspond to one slot of the one cell.
- SCS subcarrier spacing
- the one cell may be a primary serving cell among the plurality of serving cells.
- the number of the series of indices is determined based on a subcarrier spacing (SCS), and each index included in the series of indices may correspond to one slot according to the subcarrier spacing. .
- SCS subcarrier spacing
- the subcarrier spacing may be the smallest among subcarrier spacings of the plurality of serving cells.
- the subcarrier spacing may be the largest among subcarrier spacings of the plurality of serving cells.
- the terminal may be configured with a TDD configuration from a higher layer, and the subcarrier interval may be a reference subcarrier interval of the TDD configuration.
- the series of indices may correspond to at least some of the slots in the period.
- the uplink slot of the primary serving cell may not be included in the at least some of the slots, and the uplink slot may be a slot including only uplink symbols.
- the slots may not be included in at least some of the slots, and the downlink slots may include only downlink symbols.
- the first information may indicate in every slot whether to configure the specific serving cell as the PUCCH serving cell.
- the plurality of serving cells include a primary serving cell and at least one secondary serving cell, and the specific serving cell is the lowest among the at least one secondary serving cell. It may be a secondary serving cell having a cell index.
- the information on the PUCCH serving cell may further include third information on an offset from which the period starts.
- the communication module performs transmission of the generated PUCCH based on a time division duplex (TDD) configuration
- the information on the PUCCH serving cell is information about the TDD configuration, and in the PUCCH serving cell.
- the period to which the related setting is applied may be determined based on the period set in the TDD configuration.
- the TDD configuration includes a TDD configuration for a primary serving cell, or a TDD configuration for a serving cell having the lowest subcarrier spacing among the plurality of serving cells, or a subcarrier spacing among the plurality of serving cells. It may be one of the TDD configurations for the highest serving cell.
- the communication module when the generated PUCCH is configured as a PUCCH repetition, performs the PUCCH repetition from a first slot in which the PUCCH repetition is indicated, and the first slot according to the first information determines the PUCCH serving cell transmitting the PUCCH repetition, and the PUCCH repetition after the first slot may be transmitted in the PUCCH serving cell when the PUCCH serving cell is indicated according to the first information.
- the communication module determines the PUCCH serving cell in each slot in which the PUCCH repetition is transmitted according to the first information, and the PUCCH repetition in each slot may be transmitted on the PUCCH serving cell.
- the communication module is configured to receive a physical downlink shared channel (PDSCH) from the base station in a slot preceding by k1 reference slots than a slot in which the generated PUCCH is transmitted, and the generation
- the PUCCH includes a Hybrid Automatic Repeat request (HARQ) ACK for the PDSCH
- the time length of the reference slot includes a subcarrier interval of a primary serving cell, a largest subcarrier interval among a plurality of serving cells, and a plurality of servings. It may be determined based on the subcarrier spacing of any one of the smallest subcarrier spacing among cells.
- HARQ Hybrid Automatic Repeat request
- the communication module is configured to receive a PUCCH resource indicator indicating a PUCCH resource from the base station, and when there are a plurality of specific serving cells configurable as the PUCCH serving cell, the processor is configured to provide the plurality of specific serving cells.
- a serving cell that can use the PUCCH resource among cells may be determined as the PUCCH serving cell.
- a terminal for performing communication based on semi-persistent scheduling.
- the terminal receives a first physical downlink shared channel (PDSCH) according to the first semi-static scheduling from the base station, and generates a Hybrid Automatic Repeat request (HARQ) ACK for the reception of the first PDSCH, , a communication module configured to transmit the HARQ ACK at the transmission timing of the PUCCH determined by the processor, and transmit/receive operation according to a plurality of semi-static scheduling including the first semi-static scheduling, and allocated in association with the first PDSCH If the resource of the first PUCCH in the first slot cannot be used as the PUCCH, a processor configured to determine the transmission timing of the PUCCH based on the resource of the second PUCCH in the second slot available as the PUCCH.
- PDSCH physical downlink shared channel
- HARQ Hybrid Automatic Repeat request
- the resource of the first PUCCH when the resource of the first PUCCH cannot be used as the PUCCH, the resource of the first PUCCH includes at least one downlink symbol, at least one symbol of a synchronization signal block, and a basic control channel resource (CORESET #0). ), and at least one of an invalid uplink symbol.
- CORESET #0 basic control channel resource
- the communication module is configured to receive a second PDSCH according to the first semi-static scheduling later than the first PDSCH, and the resources of the second slot and the second PUCCH are allocated in association with the second PDSCH and the PUCCH transmission timing may include an uplink slot.
- the resources of the second slot and the second PUCCH may be associated with a PDSCH according to a predetermined semi-static scheduling among the plurality of semi-static scheduling.
- the predetermined specific semi-static scheduling includes a semi-static scheduling configuration having a lowest ID among the plurality of semi-static scheduling, a semi-static scheduling configuration having the shortest period, and the first semi-static scheduling and priority It may be either the same or lower semi-static scheduling configuration.
- the PUCCH is configured as a PUCCH repetition, and when the difference between the second slot and the first slot is equal to or smaller than a constant value, the processor determines that the transmission timing of the PUCCH is valid.
- the first slot may be the earliest slot to which the PUCCH repetition is allocated, and the second slot may be the second most slot among the slots in which the PUCCH repetition is transmittable.
- the first slot may be an earlier slot to which a PUCCH repetition is allocated
- the second slot may be an earlier slot among slots capable of transmitting the PUCCH repetition.
- the first slot may be an earlier slot to which a PUCCH repetition is allocated, and the second slot may be each slot in which each PUCCH repetition is transmittable.
- the first slot may be an earlier slot to which a PUCCH repetition is allocated
- the second slot may be a last slot among slots in which each PUCCH repetition is transmittable.
- the first slot is an nth slot among slots to which PUCCH repetitions are allocated
- the second slot is an nth slot among slots in which each PUCCH repetition is transmittable
- n is 1 to PUCCH repetitions. It may be a natural number of one of the number of repetitions.
- the terminal can correctly transmit uplink control information to the base station through the uplink control channel. Furthermore, uplink control information can be effectively transmitted through correct transmission of the physical uplink control channel. Also, according to the present invention, the UE can effectively determine the PUCCH resource for HARQ-ACK transmission according to the reception of the SPS PDSCH and transmit the HARQ-ACK of the SPS PDSCH.
- FIG. 1 shows an example of a radio frame structure used in a wireless communication system.
- FIG. 2 shows an example of a downlink (DL)/uplink (UL) slot structure in a wireless communication system.
- 3 is a diagram for explaining a physical channel used in a 3GPP system and a general signal transmission method using the corresponding physical channel.
- FIG. 4 shows an SS/PBCH block for initial cell access in a 3GPP NR system.
- 5 shows a procedure for transmitting control information and a control channel in a 3GPP NR system.
- CORESET control resource set
- PDCCH physical downlink control channel
- FIG. 7 is a diagram illustrating a method of configuring a PDCCH search space in a 3GPP NR system.
- FIG. 8 is a conceptual diagram illustrating carrier aggregation.
- 9 is a diagram for explaining single-carrier communication and multi-carrier communication.
- FIG. 10 is a diagram illustrating an example to which a cross-carrier scheduling technique is applied.
- FIG. 11 is a block diagram showing the configurations of a terminal and a base station, respectively, according to an embodiment of the present invention.
- FIG. 12A and 12B are diagrams illustrating scheduling of a shared physical uplink channel in a time domain
- FIG. 13 is a diagram illustrating scheduling of a shared physical uplink channel in a frequency domain.
- 14A and 14B are diagrams illustrating repeated transmission of a physical uplink shared channel according to an example.
- 15 is a diagram illustrating scheduling of a physical uplink control channel.
- 16 is a diagram illustrating repeated transmission of a physical uplink control channel.
- 17 is a diagram illustrating a situation in which two cells capable of uplink transmission are configured to a terminal according to an example.
- FIG. 18 is a diagram illustrating a method for determining a PUCCH serving cell based on a low subcarrier spacing according to an example
- FIG. 19 is a diagram illustrating a method for determining a PUCCH serving cell based on a high subcarrier spacing.
- 20 is a diagram illustrating dynamic PUCCH carrier switching according to an embodiment.
- 21 is a diagram illustrating PUCCH transmission according to dynamic PUCCH carrier switching according to an embodiment of the present invention.
- FIG. 22 is a diagram illustrating PUCCH transmission according to dynamic PUCCH carrier switching according to another embodiment of the present invention.
- FIG. 23 is a diagram illustrating PUCCH transmission according to dynamic PUCCH carrier switching according to another embodiment of the present invention.
- FIG. 24 is a diagram illustrating PUCCH transmission according to dynamic PUCCH carrier switching according to another embodiment of the present invention.
- 25 is a diagram illustrating scheduling of a physical downlink shared channel.
- 26 is a diagram illustrating scheduling of a physical uplink control channel.
- 27 shows the scheduling of a physical uplink shared channel and a physical uplink control channel.
- 28 is a diagram illustrating reception of an SPS PDSCH.
- 29 is a diagram illustrating HARQ-ACK transmission of an SPS PDSCH.
- FIG. 30 is a diagram illustrating a PUCCH for transmitting HARQ-ACK of an SPS PDSCH according to an embodiment.
- 31 is a diagram illustrating a PUCCH for transmitting HARQ-ACK of an SPS PDSCH according to another embodiment.
- 32 to 34 are diagrams illustrating PUCCHs for transmitting HARQ-ACKs of SPS PDSCHs in a plurality of SPS configurations according to another embodiment.
- 35 is a diagram illustrating a PUCCH for transmitting HARQ-ACK of an SPS PDSCH through PUCCH resource configuration according to another embodiment.
- 36 is a diagram illustrating a PUCCH for transmitting HARQ-ACK of an SPS PDSCH through PUCCH resource configuration according to another embodiment.
- FIG. 37 is a diagram illustrating a PUCCH for transmitting an HARQ-ACK of an SPS PDSCH when a UE receives an SPS release DCI according to an embodiment.
- 38 is a diagram illustrating a PUCCH for transmitting an HARQ-ACK of an SPS PDSCH when a UE receives an SPS release DCI according to another embodiment.
- 39 is a diagram illustrating a PUCCH for transmitting an HARQ-ACK of an SPS PDSCH when a UE receives an SPS release DCI according to another embodiment.
- FIG. 40 is a diagram illustrating a PUCCH for transmitting an HARQ-ACK of an SPS PDSCH when a UE receives an SPS release DCI according to another embodiment.
- 41 is a diagram illustrating a method for a terminal to determine a valid PUCCH resource according to an example.
- FIG. 42 is a diagram illustrating a method for a terminal to determine a valid PUCCH resource according to another example.
- 43 is a diagram illustrating a method for a terminal to determine a valid PUCCH resource according to another example.
- 44 is a diagram illustrating a method for a terminal to determine a valid PUCCH resource according to another example
- 49 illustrates a method for a terminal to determine validity of HARQ-ACK according to an example.
- 50 describes a method for a terminal to determine validity of HARQ-ACK according to another example.
- 53 illustrates a method in which the terminal determines the validity of HARQ-ACK according to another example.
- 55 describes a method in which the terminal determines the validity of HARQ-ACK according to another example.
- 56 is a diagram for describing a method for a UE to perform PUCCH repetition according to an example.
- 57 is a diagram for describing a method for a UE to perform PUCCH repetition according to another example.
- CDMA code division multiple access
- FDMA frequency division multiple access
- TDMA time division multiple access
- OFDMA orthogonal frequency division multiple access
- SC-FDMA single carrier frequency division multiple access
- CDMA may be implemented with a radio technology such as Universal Terrestrial Radio Access (UTRA) or CDMA2000.
- TDMA may be implemented with a radio technology such as Global System for Mobile communications (GSM)/General Packet Radio Service (GPRS)/Enhanced Data Rates for GSM Evolution (EDGE).
- GSM Global System for Mobile communications
- GPRS General Packet Radio Service
- EDGE Enhanced Data Rates for GSM Evolution
- OFDMA may be implemented with a radio technology such as IEEE 802.11 (Wi-Fi), IEEE 802.16 (WiMAX), IEEE 802-20, Evolved UTRA (E-UTRA), and the like.
- UTRA is part of the Universal Mobile Telecommunications System (UMTS).
- 3GPP (3rd Generation Partnership Project) long term evolution (LTE) is a part of Evolved UMTS (E-UMTS) using E-UTRA
- LTE-A Advanced
- 3GPP NR New Radio
- eMBB enhanced Mobile BroadBand
- URLLC Ultra-Reliable and Low Latency Communication
- mMTC massive machine type communication
- the base station may include a next generation node B (gNB) defined in 3GPP NR.
- a terminal may include user equipment (UE).
- UE user equipment
- the configuration of the terminal may indicate the configuration by the base station. Specifically, the base station may transmit a channel or a signal to the terminal to set a value of a parameter used in an operation of the terminal or a wireless communication system.
- FIG. 1 shows an example of a radio frame structure used in a wireless communication system.
- a radio frame (or radio frame) used in a 3GPP NR system may have a length of 10 ms ( ⁇ fmaxNf / 100) * Tc).
- the radio frame consists of 10 equally sized subframes (subframes, SFs).
- ⁇ fmax 480*103 Hz
- Nf 4096
- Tc 1/( ⁇ fref*Nf,ref)
- ⁇ fref 15*103 Hz
- Nf,ref 2048.
- 10 subframes in one radio frame may be assigned a number from 0 to 9, respectively.
- Each subframe has a length of 1 ms, and may consist of one or a plurality of slots according to subcarrier spacing.
- the usable subcarrier spacing is 15*2 ⁇ kHz.
- a subframe of 1 ms length may consist of 2 ⁇ slots. In this case, the length of each slot is 2- ⁇ ms.
- 2 ⁇ slots in one subframe may be numbered from 0 to 2 ⁇ - 1, respectively.
- slots in one radio frame may be assigned a number from 0 to 10*2 ⁇ - 1, respectively.
- the time resource may be divided by at least one of a radio frame number (or also referred to as a radio frame index), a subframe number (or referred to as a subframe index), and a slot number (or a slot index).
- FIG. 2 shows an example of a downlink (DL)/uplink (UL) slot structure in a wireless communication system.
- FIG. 2 shows the structure of a resource grid of a 3GPP NR system.
- a slot includes a plurality of orthogonal frequency division multiplexing (OFDM) symbols in the time domain and a plurality of resource blocks (RBs) in the frequency domain.
- the OFDM symbol also means one symbol interval. Unless otherwise specified, an OFDM symbol may be simply referred to as a symbol.
- One RB includes 12 consecutive subcarriers in the frequency domain.
- a signal transmitted in each slot may be represented by a resource grid composed of Nsize, ⁇ grid, x * NRBsc subcarriers and Nslotsymb OFDM symbols.
- Nsize, ⁇ grid, and x represent the number of resource blocks (RBs) according to the subcarrier spacing component ⁇ (x is DL or UL), and Nslotsymb represents the number of OFDM symbols in a slot.
- the OFDM symbol may be referred to as a cyclic prefix OFDM (CP-OFDM) symbol or a discrete Fourier transform spread OFDM (DFT-S-OFDM) symbol according to a multiple access scheme.
- the number of OFDM symbols included in one slot may vary according to the length of a cyclic prefix (CP). For example, in the case of a normal CP, one slot may include 14 OFDM symbols, but in the case of an extended CP, one slot may include 12 OFDM symbols. In a specific embodiment, the extended CP may be used only at a 60 kHz subcarrier interval. 2 illustrates a case in which one slot consists of 14 OFDM symbols for convenience of description, embodiments of the present invention may be applied to slots having other numbers of OFDM symbols in the same manner. Referring to FIG. 2 , each OFDM symbol includes Nsize, ⁇ grid, x * NRBsc subcarriers in the frequency domain. The type of subcarrier may be divided into a data subcarrier for data transmission, a reference signal subcarrier for transmission of a reference signal, and a guard band. The carrier frequency is also referred to as the center frequency (fc).
- fc center frequency
- One RB may be defined by NRBsc (eg, 12) consecutive subcarriers in the frequency domain.
- NRBsc eg, 12
- a resource composed of one OFDM symbol and one subcarrier may be referred to as a resource element (RE) or a tone.
- one RB may be composed of Nslotsymb * NRBsc resource elements.
- Each resource element in the resource grid may be uniquely defined by an index pair (k, l) in one slot. k is an index assigned from 0 to Nsize, ⁇ grid, x * NRBsc - 1 in the frequency domain, and l may be an index assigned from 0 to Nslotsymb - 1 in the time domain.
- the time/frequency synchronization of the terminal may need to be aligned with the time/frequency synchronization of the base station. This is because, only when the base station and the terminal are synchronized, the terminal can determine the time and frequency parameters required to perform demodulation of the DL signal and transmission of the UL signal at an accurate time.
- Each symbol of a radio frame operating in time division duplex (TDD) or unpaired spectrum is at least one of a downlink symbol (DL symbol), an uplink symbol (UL symbol), or a flexible symbol (flexible symbol). It may consist of any one.
- a radio frame operating as a downlink carrier may consist of a downlink symbol or a flexible symbol
- a radio frame operating as an uplink carrier may include an uplink symbol or It may be composed of flexible symbols.
- the downlink symbol downlink transmission is possible but uplink transmission is impossible
- uplink symbol uplink transmission is possible but downlink transmission is impossible.
- Whether the flexible symbol is used for downlink or uplink may be determined according to a signal.
- Information on the type of each symbol may be composed of a cell-specific (cell-specific or common) RRC (radio resource control) signal.
- information on the type of each symbol may be additionally configured as a UE-specific (or dedicated, UE-specific) RRC signal.
- the base station uses the cell-specific RRC signal to i) the period of the cell-specific slot configuration, ii) the number of slots with only downlink symbols from the beginning of the period of the cell-specific slot configuration, iii) the slot immediately following the slot with only downlink symbols.
- a symbol that is not composed of either an uplink symbol or a downlink symbol is a flexible symbol.
- the base station may signal whether the flexible symbol is a downlink symbol or an uplink symbol with a cell-specific RRC signal. In this case, the UE-specific RRC signal cannot change the downlink symbol or the uplink symbol composed of the cell-specific RRC signal to another symbol type.
- the UE-specific RRC signal may signal the number of downlink symbols among the Nslotsymb symbols of the corresponding slot and the number of uplink symbols among the Nslotsymb symbols of the corresponding slot for each slot. In this case, the downlink symbol of the slot may be continuously configured from the first symbol of the slot to the i-th symbol.
- the uplink symbol of the slot may be continuously configured from the j-th symbol to the last symbol of the slot (here, i ⁇ j).
- a symbol that is not composed of either an uplink symbol or a downlink symbol in a slot is a flexible symbol.
- a symbol type composed of the above RRC signal may be referred to as a semi-static DL/UL configuration.
- the flexible symbol is a downlink symbol, an uplink symbol through dynamic slot format information (SFI) transmitted through a physical downlink control channel (PDCCH). , or may be indicated by a flexible symbol.
- SFI dynamic slot format information
- PDCH physical downlink control channel
- Table 1 illustrates the dynamic SFI that the base station can indicate to the terminal.
- D denotes a downlink symbol
- U denotes an uplink symbol
- X denotes a flexible symbol.
- DL/UL switching may be allowed up to two times within one slot.
- 3 is a diagram for explaining a physical channel used in a 3GPP system (eg, NR) and a general signal transmission method using the corresponding physical channel.
- a 3GPP system eg, NR
- the terminal When the power of the terminal increases or the terminal enters a new cell, the terminal performs an initial cell search operation (S101). Specifically, the terminal may synchronize with the base station in the initial cell search. To this end, the terminal may receive a primary synchronization signal (PSS) and a secondary synchronization signal (SSS) from the base station, synchronize with the base station, and obtain information such as a cell ID. Thereafter, the terminal may receive the physical broadcast channel from the base station to obtain broadcast information in the cell.
- PSS primary synchronization signal
- SSS secondary synchronization signal
- the UE After completing the initial cell search, the UE receives a physical downlink control channel (PDCCH) and a physical downlink shared channel (PDSCH) according to information carried on the PDCCH, thereby acquiring through initial cell search. It is possible to obtain more specific system information than one system information (S102).
- the system information received by the terminal is cell-common system information for correctly operating the terminal in a physical layer in RRC (Radio Resource Control, RRC), and is Remaining system information or a system information block. (System information blcok, SIB) 1 is referred to.
- the terminal may perform a random access procedure with respect to the base station (steps S103 to S106).
- the UE may transmit a preamble through a physical random access channel (PRACH) (S103), and receive a response message to the preamble from the base station through a PDCCH and a corresponding PDSCH (S104).
- PRACH physical random access channel
- S104 receive a response message to the preamble from the base station through a PDCCH and a corresponding PDSCH
- the terminal transmits data including its identifier through a physical uplink shared channel (PUSCH) indicated by the uplink grant delivered through the PDCCH from the base station. It is transmitted to the base station (S105).
- PUSCH physical uplink shared channel
- the terminal waits for the reception of the PDCCH as an indication of the base station for collision resolution.
- the terminal successfully receives the PDCCH through its identifier (S106) the random access process ends.
- the UE may acquire UE-specific system information necessary for the UE to properly operate in the physical layer in the RRC layer during the random access process.
- the terminal obtains terminal-specific system information from the RRC layer, the terminal enters the RRC connected mode (RRC_CONNECTED mode).
- the RRC layer is used for message generation and management for control between the terminal and a radio access network (RAN). More specifically, in the RRC layer, the base station and the terminal broadcast cell system information necessary for all terminals in the cell, delivery management of paging messages, mobility management and handover, measurement report of the terminal and control thereof, terminal Storage management including capacity management and instrument management can be performed. In general, since the update of the signal transmitted from the RRC layer (hereinafter, the RRC signal) is longer than the transmission/reception period (ie, transmission time interval, TTI) in the physical layer, the RRC signal can be maintained unchanged for a long period. there is.
- the RRC signal since the update of the signal transmitted from the RRC layer (hereinafter, the RRC signal) is longer than the transmission/reception period (ie, transmission time interval, TTI) in the physical layer, the RRC signal can be maintained unchanged for a long period. there is.
- the UE receives PDCCH/PDSCH (S107) and a physical uplink shared channel (PUSCH)/physical uplink control channel (PUCCH) as a general uplink/downlink signal transmission procedure. can be transmitted (S108).
- the UE may receive downlink control information (DCI) through the PDCCH.
- DCI may include control information such as resource allocation information for the terminal.
- the format of the DCI may vary depending on the purpose of use.
- the uplink control information (UCI) transmitted by the terminal to the base station through the uplink is a downlink/uplink ACK/NACK signal, a channel quality indicator (CQI), a precoding matrix index (PMI), and a rank indicator (RI). ) and the like.
- CQI channel quality indicator
- PMI precoding matrix index
- RI rank indicator
- CQI, PMI, and RI may be included in CSI (channel state information).
- the UE may transmit control information such as HARQ-ACK and CSI described above through PUSCH and/or PUCCH.
- FIGS. 4A and 4B show a synchronization signal (SS)/physical broadcast channel (PBCH) block for initial cell access in a 3GPP NR system.
- SS synchronization signal
- PBCH physical broadcast channel
- the UE may acquire time and frequency synchronization with the cell and perform an initial cell search process.
- the UE may detect the physical cell identity N cell ID of the cell in the cell search process.
- the terminal may receive a synchronization signal, for example, a main synchronization signal (PSS) and a secondary synchronization signal (SSS) from the base station to synchronize with the base station.
- PSS main synchronization signal
- SSS secondary synchronization signal
- the terminal may obtain information such as a cell identifier (identity, ID).
- the synchronization signal may be divided into PSS and SSS.
- PSS may be used to obtain time domain synchronization and/or frequency domain synchronization such as OFDM symbol synchronization, slot synchronization.
- SSS may be used to obtain frame synchronization and cell group ID.
- the PSS is transmitted in the first OFDM symbol, and the SSS is transmitted through the 56th to 182th subcarriers in the third OFDM symbol.
- the lowest subcarrier index of the SS/PBCH block is numbered from 0.
- the base station does not transmit a signal through the remaining subcarriers, that is, the 0 to 55 and 183 to 239 subcarriers.
- the base station does not transmit a signal through the 48th to 55th and 183th to 191th subcarriers in the third OFDM symbol in which the SSS is transmitted.
- the base station transmits a physical broadcast channel (PBCH) through the remaining REs except for the above signal in the SS/PBCH block.
- PBCH physical broadcast channel
- the SS identifies a total of 1008 unique physical layer cell IDs through a combination of three PSSs and SSSs.
- each physical layer cell ID may be grouped into 336 physical-layer cell-identifier groups, each group containing three unique identifiers, so that each physical layer cell-identifier group is part of only one physical-layer cell-identifier group.
- physical layer cell ID N cell ID 3N (1) ID + N (2) ID is an index N (1) ID within the range of 0 to 335 indicating a physical layer cell-identifier group and the physical layer cell-identifier It can be uniquely defined by the index N (2) ID from 0 to 2 indicating the physical layer cell-identifier in the group.
- the UE may identify one of three unique physical layer cell-identifiers by detecting the PSS.
- the UE may identify one of 336 physical layer cell IDs associated with the physical layer cell-identifier by detecting the SSS.
- the sequence d PSS (n) of the PSS is as follows.
- sequence d SSS (n) of the SSS is as follows.
- x 1 (i+7) (x 1 (i+1)+x 1 (i)) mod 2 ,
- a radio frame with a length of 10 ms may be divided into two half frames with a length of 5 ms.
- a slot in which an SS/PBCH block is transmitted in each half frame will be described with reference to FIG. 4B.
- the slot in which the SS/PBCH block is transmitted may be any one of cases A, B, C, D, and E.
- the subcarrier interval is 15 kHz
- the start time of the SS/PBCH block is ⁇ 2, 8 ⁇ + 14*nth symbol.
- the subcarrier interval is 30 kHz, and the start time of the SS/PBCH block is ⁇ 4, 8, 16, 20 ⁇ + 28*nth symbol.
- n 0 at a carrier frequency of 3 GHz or less.
- the subcarrier interval is 30 kHz, and the start time of the SS/PBCH block is ⁇ 2, 8 ⁇ + 14*nth symbol.
- n 0, 1, 2, 3 at a carrier frequency of more than 3 GHz and less than or equal to 6 GHz.
- the subcarrier interval is 120 kHz, and the start time of the SS/PBCH block is ⁇ 4, 8, 16, 20 ⁇ + 28*nth symbol.
- n 0, 1, 2, 3, 5, 6, 7, 8, 10, 11, 12, 13, 15, 16, 17, 18 at a carrier frequency of 6 GHz or higher.
- the subcarrier interval is 240 kHz, and the start time of the SS/PBCH block is ⁇ 8, 12, 16, 20, 32, 36, 40, 44 ⁇ + 56*nth symbol.
- the base station may add a cyclic redundancy check (CRC) masked (eg, XOR operation) with a radio network temporary identifier (RNTI) to control information (eg, downlink control information, DCI) (S202) .
- CRC cyclic redundancy check
- RNTI radio network temporary identifier
- the base station may scramble the CRC with an RNTI value determined according to the purpose/target of each control information.
- the common RNTI used by one or more terminals is at least one of a system information RNTI (SI-RNTI), a paging RNTI (P-RNTI), a random access RNTI (RA-RNTI), and a transmit power control RNTI (TPC-RNTI).
- SI-RNTI system information RNTI
- P-RNTI paging RNTI
- RA-RNTI random access RNTI
- TPC-RNTI transmit power control RNTI
- the UE-specific RNTI may include at least one of a cell temporary RNTI (C-RNTI) and a CS-RNTI.
- channel encoding eg, polar coding
- rate-matching may be performed according to the amount of resource(s) allocated for PDCCH transmission (S206).
- the base station may multiplex DCI(s) based on a control channel element (CCE)-based PDCCH structure (S208).
- CCE control channel element
- the base station may apply an additional process (S210) such as scrambling, modulation (eg, QPSK), interleaving, etc. to the multiplexed DCI(s), and then map the multiplexed DCI(s) to a resource to be transmitted.
- a CCE is a basic resource unit for a PDCCH, and one CCE may consist of a plurality (eg, six) of a resource element group (REG). One REG may consist of a plurality (eg, 12) of REs.
- the number of CCEs used for one PDCCH may be defined as an aggregation level. In the 3GPP NR system, aggregation levels of 1, 2, 4, 8 or 16 may be used.
- FIG. 5B is a diagram related to CCE aggregation level and PDCCH multiplexing, and shows types of CCE aggregation levels used for one PDCCH and CCE(s) transmitted in a control region accordingly.
- CORESET control resource set
- PDCCH physical downlink control channel
- CORESET is a time-frequency resource through which PDCCH, which is a control signal for a terminal, is transmitted.
- a search space to be described later may be mapped to one CORESET. Therefore, the UE can decode the PDCCH mapped to the CORESET by monitoring the time-frequency domain designated as CORESET, rather than monitoring all frequency bands for PDCCH reception.
- the base station may configure one or a plurality of CORESETs for each cell to the terminal.
- CORESET may consist of up to three consecutive symbols on the time axis.
- CORESET may be configured in units of 6 consecutive PRBs on the frequency axis.
- CORESET#1 consists of continuous PRBs
- CORESET#2 and CORESET#3 consist of discontinuous PRBs.
- CORESET may be located in any symbol within a slot. For example, in the embodiment of Figure 5, CORESET#1 starts at the first symbol of the slot, CORESET#2 starts at the fifth symbol of the slot, and CORESET#9 starts at the 9th symbol of the slot.
- FIG. 7 is a diagram illustrating a method of configuring a PDCCH search space in a 3GPP NR system.
- the search space is a set of all time-frequency resources (hereinafter, PDCCH candidates) through which the PDCCH of the UE can be transmitted.
- the search space may include a common search space that a terminal of 3GPP NR searches for and a terminal-specific or UE-specific search space that a specific terminal searches for.
- the common search space it is possible to monitor the PDCCH configured to be commonly found by all terminals in the cell belonging to the same base station.
- the UE-specific search space may be configured for each UE so that the PDCCH allocated to each UE can be monitored in different search space positions depending on the UE.
- search spaces between terminals may be allocated partially overlapping each other.
- Monitoring the PDCCH includes blind decoding of PDCCH candidates in the search space. A case in which blind decoding is successful is expressed as that the PDCCH is detected/received (successfully), and a case in which blind decoding is unsuccessful may be expressed as non-detection/non-receipt of the PDCCH, or it may be expressed as not successfully detected/received.
- a PDCCH scrambled with a group common (GC) RNTI already known by one or more terminals is a group common (GC) PDCCH or common. It is referred to as PDCCH.
- a PDCCH scrambled with a UE-specific RNTI that a specific UE already knows is referred to as a UE-specific PDCCH.
- the common PDCCH may be included in the common search space, and the UE-specific PDCCH may be included in the common search space or the UE-specific PDCCH.
- the base station transmits information related to resource allocation of a paging channel (PCH) and a downlink-shared channel (DL-SCH) through the PDCCH (ie, DL Grant) or resource allocation and HARQ of an uplink-shared channel (UL-SCH).
- Information ie, UL grant) related to (hybrid automatic repeat request) may be informed to each UE or UE group.
- the base station may transmit the PCH transport block and the DL-SCH transport block through the PDSCH.
- the base station may transmit data excluding specific control information or specific service data through the PDSCH.
- the UE may receive data excluding specific control information or specific service data through the PDSCH.
- the base station may transmit information on which terminal (one or a plurality of terminals) the PDSCH data is transmitted to and how the corresponding terminal should receive and decode the PDSCH data by including it in the PDCCH.
- DCI transmitted through a specific PDCCH is CRC-masked with an RNTI of "A”
- the DCI indicates that the PDSCH is allocated to a radio resource (eg, frequency location) of "B”
- "C indicates transmission format information (eg, transport block size, modulation method, coding information, etc.).
- the UE monitors the PDCCH using its own RNTI information.
- the corresponding terminal receives the PDCCH, and receives the PDSCH indicated by "B" and "C" through the received PDCCH information.
- Table 3 shows an embodiment of a physical uplink control channel (PUCCH) used in a wireless communication system.
- PUCCH physical uplink control channel
- the PUCCH may be used to transmit the following uplink control information (UCI).
- UCI uplink control information
- - SR (scheduling request): information used to request uplink UL-SCH resources.
- HARQ-ACK A response to a PDCCH (indicating DL SPS release) and/or a response to a downlink transport block (TB) on the PDSCH.
- HARQ-ACK indicates whether information transmitted through PDCCH or PDSCH is received.
- the HARQ-ACK response includes positive ACK (simply, ACK), negative ACK (hereinafter, NACK), discontinuous transmission (DTX) or NACK/DTX.
- HARQ-ACK is used interchangeably with HARQ-ACK/NACK and ACK/NACK.
- ACK may be expressed as bit value 1
- NACK may be expressed as bit value 0.
- CSI channel state information: feedback information for a downlink channel.
- the terminal is generated based on a CSI-RS (reference signal) transmitted by the base station.
- Multiple input multiple output (MIMO)-related feedback information includes a rank indicator (RI) and a precoding matrix indicator (PMI).
- CSI may be divided into CSI part 1 and CSI part 2 according to information indicated by the CSI.
- five PUCCH formats may be used to support various service scenarios, various channel environments, and frame structures.
- PUCCH format 0 is a format capable of transmitting 1-bit or 2-bit HARQ-ACK information or SR.
- PUCCH format 0 may be transmitted through one or two OFDM symbols on the time axis and one RB on the frequency axis.
- PUCCH format 0 is transmitted in two OFDM symbols, the same sequence in two symbols may be transmitted in different RBs.
- the click-shifted sequence may be mapped to 12 REs of one OFDM symbol and one PRB and transmitted.
- PUCCH format 1 may carry 1-bit or 2-bit HARQ-ACK information or SR.
- PUCCH format 1 may be transmitted through consecutive OFDM symbols on the time axis and one PRB on the frequency axis.
- the number of OFDM symbols occupied by PUCCH format 1 may be one of 4 to 14.
- QPSK quadrature phase shift keying
- a signal is obtained by multiplying a modulated complex valued symbol d(0) by a sequence of length 12.
- the UE spreads the obtained signal in an even-numbered OFDM symbol to which PUCCH format 1 is allocated as a time axis orthogonal cover code (OCC) and transmits it.
- OCC orthogonal cover code
- PUCCH format 1 the maximum number of different terminals multiplexed to the same RB is determined according to the length of the OCC used.
- a demodulation reference signal (DMRS) may be spread and mapped to odd-numbered OFDM symbols of PUCCH format 1 as OCC.
- PUCCH format 2 may carry more than 2 bits of UCI.
- PUCCH format 2 may be transmitted through one or two OFDM symbols on a time axis and one or a plurality of RBs on a frequency axis.
- PUCCH format 2 is transmitted with two OFDM symbols, the same sequence may be transmitted on different RBs through the two OFDM symbols.
- the terminal can obtain a frequency diversity gain.
- M bit bit UCI M bit >2 is bit-level scrambled, QPSK modulated and mapped to RB(s) of one or two OFDM symbol(s).
- the number of RBs may be one of 1 to 16.
- PUCCH format 3 or PUCCH format 4 may carry more than 2 bits of UCI.
- PUCCH format 3 or PUCCH format 4 may be transmitted through consecutive OFDM symbols on the time axis and one PRB on the frequency axis.
- the number of OFDM symbols occupied by PUCCH format 3 or PUCCH format 4 may be one of 4 to 14.
- the UE modulates M bit UCI (M bit >2) with ⁇ /2-BPSK (Binary Phase Shift Keying) or QPSK to generate complex symbols d(0) to d(M symb -1). .
- M symb M bit
- QPSK QPSK
- the UE may not apply block-unit spreading to PUCCH format 3. However, the UE uses a PreDFT-OCC of length-12 length so that PUCCH format 4 can have 2 or 4 multiplexing capacity in 1 RB (ie, 12 subcarriers) block-unit spreading can be applied.
- the UE may transmit precoding (or DFT-precoding) the spread signal and map it to each RE to transmit the spread signal.
- the number of RBs occupied by PUCCH format 2, PUCCH format 3, or PUCCH format 4 may be determined according to the length of UCI transmitted by the UE and the maximum code rate.
- the UE may transmit HARQ-ACK information and CSI information together through PUCCH. If the number of RBs that the UE can transmit is greater than the maximum number of RBs available for PUCCH format 2, PUCCH format 3, or PUCCH format 4, the UE does not transmit some UCI information according to the priority of UCI information and does not transmit the remaining Only UCI information can be transmitted.
- PUCCH format 1, PUCCH format 3, or PUCCH format 4 may be configured through an RRC signal to indicate frequency hopping in a slot.
- an index of an RB to be frequency hopping may be configured as an RRC signal.
- PUCCH format 1, PUCCH format 3, or PUCCH format 4 is transmitted over N OFDM symbols in the time axis, the first hop has floor (N/2) OFDM symbols and the second hop is ceil ( It may have N/2) OFDM symbols.
- PUCCH format 1, PUCCH format 3, or PUCCH format 4 may be configured to be repeatedly transmitted in a plurality of slots.
- the number K of slots in which the PUCCH is repeatedly transmitted may be configured by the RRC signal.
- the repeatedly transmitted PUCCH should start from an OFDM symbol at the same position in each slot and have the same length. If any one OFDM symbol among the OFDM symbols of the slot in which the UE should transmit the PUCCH is indicated as a DL symbol by the RRC signal, the UE may transmit the PUCCH by delaying it to the next slot without transmitting the PUCCH in the corresponding slot.
- the UE may perform transmission/reception using a bandwidth equal to or smaller than the bandwidth of a carrier (or cell).
- the terminal may be configured with a bandwidth part (BWP) composed of a continuous bandwidth of a part of the bandwidth of the carrier.
- BWP bandwidth part
- a UE operating according to TDD or operating in an unpaired spectrum may be configured with up to four DL/UL BWP pairs in one carrier (or cell). Also, the UE may activate one DL/UL BWP pair.
- a terminal operating according to FDD or operating in a paired spectrum may be configured with up to 4 DL BWPs on a downlink carrier (or cell) and up to 4 UL BWPs on an uplink carrier (or cell) can be configured.
- the UE may activate one DL BWP and one UL BWP for each carrier (or cell).
- the UE may not receive or transmit in time-frequency resources other than the activated BWP.
- the activated BWP may be referred to as an active BWP.
- the base station may indicate the activated BWP among the BWPs configured by the terminal with downlink control information (DCI). BWP indicated by DCI is activated, and other configured BWP(s) are deactivated.
- the base station may include a bandwidth part indicator (BPI) indicating the activated BWP in DCI scheduling PDSCH or PUSCH to change the DL/UL BWP pair of the terminal.
- BPI bandwidth part indicator
- the UE may receive a DCI scheduling a PDSCH or a PUSCH and identify an activated DL/UL BWP pair based on the BPI.
- the base station may include the BPI indicating the activated BWP in the DCI scheduling the PDSCH to change the DL BWP of the terminal.
- the base station may include the BPI indicating the activated BWP in the DCI scheduling the PUSCH to change the UL BWP of the terminal.
- FIG. 8 is a conceptual diagram illustrating carrier aggregation.
- a frequency block or (logical meaning) of a terminal consisting of an uplink resource (or component carrier) and/or a downlink resource (or component carrier) or a plurality of cells It means how to use it as one large logical frequency band.
- One component carrier may also be referred to as a primary cell (PCell), a secondary cell (SCell), or a primary SCell (PScell).
- PCell primary cell
- SCell secondary cell
- PScell primary SCell
- the entire system band may include up to 16 component carriers, and each component carrier may have a bandwidth of up to 400 MHz.
- a component carrier may include one or more physically contiguous subcarriers. 8 shows that each component carrier has the same bandwidth, but this is only an example, and each component carrier may have a different bandwidth.
- each component carrier is illustrated as being adjacent to each other on the frequency axis, the figure is illustrated in a logical concept, and each component carrier may be physically adjacent to each other or may be separated from each other.
- a different center frequency may be used in each component carrier.
- one center frequency common to physically adjacent component carriers may be used. Assuming that all component carriers are physically adjacent to each other in the embodiment of FIG. 8 , the center frequency A may be used in all component carriers. In addition, assuming that the respective component carriers are not physically adjacent to each other, the center frequency A and the center frequency B may be used in each of the component carriers.
- a frequency band used for communication with each terminal may be defined in units of component carriers.
- Terminal A can use 100 MHz, which is the entire system band, and performs communication using all five component carriers.
- Terminals B 1 to B 5 can use only a 20 MHz bandwidth and perform communication using one component carrier.
- Terminals C 1 and C 2 may use a 40 MHz bandwidth and perform communication using two component carriers, respectively. Two component carriers may or may not be logically/physically adjacent.
- FIG. 8 illustrates a case in which terminal C 1 uses two non-adjacent component carriers and terminal C 2 uses two adjacent component carriers.
- FIG. 9 is a diagram for explaining single carrier communication and multi-carrier communication.
- FIG. 9(a) shows a subframe structure of a single carrier
- FIG. 9(b) shows a subframe structure of a multi-carrier.
- a general wireless communication system may perform data transmission or reception through one DL band and one UL band corresponding thereto.
- the wireless communication system divides a radio frame into an uplink time unit and a downlink time unit in the time domain, and may transmit or receive data through the uplink/downlink time unit.
- a bandwidth of 60 MHz may be supported by collecting three 20 MHz component carriers (CCs) in UL and DL, respectively. Each of the CCs may be adjacent to or non-adjacent to each other in the frequency domain.
- CCs component carriers
- a DL/UL CC allocated/configured to a specific UE through RRC may be referred to as a serving DL/UL CC of a specific UE.
- the base station may communicate with the terminal by activating some or all of the serving CCs of the terminal or by deactivating some CCs.
- the base station may change activated/deactivated CCs, and may change the number of activated/deactivated CCs. If the base station allocates the available CCs to the terminal in a cell-specific or terminal-specific manner, unless the CC allocation to the terminal is completely reconfigured or the terminal is handover, at least one of the CCs once allocated is not deactivated.
- PCC primary CC
- SCC secondary CC
- SCell secondary cell
- a cell is defined as a combination of downlink and uplink resources, that is, a combination of DL CC and UL CC.
- a cell may be configured with a DL resource alone or a combination of a DL resource and a UL resource.
- linkage between the carrier frequency of the DL resource (or DL CC) and the carrier frequency of the UL resource (or UL CC) may be indicated by system information.
- the carrier frequency means the center frequency of each cell or CC.
- a cell corresponding to the PCC is referred to as a PCell, and a cell corresponding to the SCC is referred to as an SCell.
- a carrier corresponding to the PCell in the downlink is a DL PCC
- a carrier corresponding to the PCell in the uplink is a UL PCC
- a carrier corresponding to the SCell in the downlink is a DL SCC
- a carrier corresponding to the SCell in the uplink is a UL SCC.
- the serving cell(s) may be composed of one PCell and zero or more SCells. For a UE that is in the RRC_CONNECTED state but does not have carrier aggregation configured or does not support carrier aggregation, there is only one serving cell configured only with PCell.
- the term "cell” used in carrier aggregation is distinguished from the term "cell” that refers to a certain geographic area in which a communication service is provided by one base station or one antenna group. That is, one component carrier may also be referred to as a scheduling cell, a scheduled cell, a primary cell (PCell), a secondary cell (SCell), or a primary SCell (PScell).
- a cell of carrier aggregation is referred to as a CC
- a cell in the geographic area is referred to as a cell.
- the control channel transmitted through the first CC may schedule the data channel transmitted through the first CC or the second CC using a carrier indicator field (CIF).
- CIF is contained within DCI.
- a scheduling cell is configured, and the DL grant/UL grant transmitted in the PDCCH region of the scheduling cell schedules the PDSCH/PUSCH of the scheduled cell. That is, a search region for a plurality of component carriers exists in the PDCCH region of the scheduling cell.
- a PCell is basically a scheduling cell, and a specific SCell may be designated as a scheduling cell by a higher layer.
- DL component carrier #0 is a DL PCC (or PCell)
- DL component carrier #1 and DL component carrier #2 are assumed to be DL SCC (or SCell).
- the DL PCC is set as the PDCCH monitoring CC. If cross-carrier scheduling is not configured by UE-specific (or UE-group-specific or cell-specific) higher layer signaling, CIF is disabled, and each DL CC has its own without CIF according to the NR PDCCH rule. Only the PDCCH scheduling the PDSCH can be transmitted (non-cross-carrier scheduling, self-carrier scheduling).
- cross-carrier scheduling is configured by UE-specific (or UE-group-specific or cell-specific) higher layer signaling
- CIF is enabled, and a specific CC (eg, DL PCC) uses the CIF.
- a specific CC eg, DL PCC
- the PDCCH scheduling the PDSCH of DL CC A but also the PDCCH scheduling the PDSCH of another CC may be transmitted (cross-carrier scheduling).
- the PDCCH is not transmitted in other DL CCs. Therefore, the terminal receives a self-carrier scheduled PDSCH by monitoring a PDCCH not including a CIF depending on whether cross-carrier scheduling is configured for the terminal, or receives a cross-carrier scheduled PDSCH by monitoring a PDCCH including a CIF. .
- FIGS. 9 and 10 exemplify the subframe structure of the 3GPP LTE-A system
- the same or similar configuration may be applied to the 3GPP NR system.
- the subframes of FIGS. 9 and 10 may be replaced with slots.
- the terminal may be implemented as various types of wireless communication devices or computing devices that ensure portability and mobility.
- a UE may be referred to as User Equipment (UE), a Station (STA), or a Mobile Subscriber (MS).
- UE User Equipment
- STA Station
- MS Mobile Subscriber
- the base station controls and manages cells (eg, macro cells, femto cells, pico cells, etc.) corresponding to the service area, and performs signal transmission, channel designation, channel monitoring, self-diagnosis, relay, etc. function can be performed.
- the base station may be referred to as a next generation node (gNB) or an access point (AP).
- gNB next generation node
- AP access point
- the terminal 100 may include a processor 110 , a communication module 120 , a memory 130 , a user interface 140 , and a display unit 150 . .
- the processor 110 may execute various commands or programs and process data inside the terminal 100 .
- the processor 110 may control the overall operation including each unit of the terminal 100 , and may control data transmission/reception between the units.
- the processor 110 may be configured to perform an operation according to the embodiment described in the present disclosure.
- the processor 110 may receive the slot configuration information, determine the slot configuration based on the received slot configuration information, and perform communication according to the determined slot configuration.
- the communication module 120 may be an integrated module that performs wireless communication using a wireless communication network and wireless LAN access using a wireless LAN.
- the communication module 120 may include a plurality of network interface cards (NIC), such as the cellular communication interface cards 121 and 122 and the unlicensed band communication interface card 123, in an internal or external form.
- NIC network interface cards
- each network interface card may be independently disposed according to a circuit configuration or use, unlike the drawing.
- the cellular communication interface card 121 transmits and receives a wireless signal to and from at least one of the base station 200 , an external device, and a server using a mobile communication network, and based on a command from the processor 110 , a cellular communication service using a first frequency band can provide
- the cellular communication interface card 121 may include at least one NIC module using a frequency band of less than 6 GHz. At least one NIC module of the cellular communication interface card 121 independently communicates with at least one of the base station 200, an external device, and a server according to a cellular communication standard or protocol of a frequency band of less than 6 GHz supported by the corresponding NIC module. can be performed.
- the cellular communication interface card 122 transmits and receives a wireless signal to and from at least one of the base station 200, an external device, and a server using a mobile communication network, and based on a command of the processor 110, a cellular communication service using a second frequency band can provide
- the cellular communication interface card 122 may include at least one NIC module using a frequency band of 6 GHz or higher. At least one NIC module of the cellular communication interface card 122 independently performs cellular communication with at least one of the base station 200, an external device, and a server according to a cellular communication standard or protocol of a frequency band of 6 GHz or higher supported by the corresponding NIC module. can be done
- the unlicensed band communication interface card 123 transmits and receives a wireless signal with at least one of the base station 200, an external device, and a server using a third frequency band that is an unlicensed band, and based on a command of the processor 110, the Provides communication services.
- the unlicensed band communication interface card 123 may include at least one NIC module using the unlicensed band.
- the unlicensed band may be a band of 2.4 GHz or 5 GHz.
- At least one NIC module of the unlicensed band communication interface card 123 is independently or subordinately dependent on at least one of the base station 200, external device, and server according to the unlicensed band communication standard or protocol of the frequency band supported by the NIC module. Wireless communication can be performed.
- the memory 130 stores a control program used in the terminal 100 and various data corresponding thereto.
- the control program may include a predetermined program necessary for the terminal 100 to perform wireless communication with at least one of the base station 200, an external device, and a server.
- the user interface 140 includes various types of input/output means provided in the terminal 100 . That is, the user interface 140 may receive a user input using various input means, and the processor 110 may control the terminal 100 based on the received user input. In addition, the user interface 140 may perform an output based on a command of the processor 110 using various output means.
- the display unit 150 outputs various images on the display screen.
- the display unit 150 may output various display objects such as content executed by the processor 110 or a user interface based on a control command of the processor 110 .
- the base station 200 may include a processor 210 , a communication module 220 , and a memory 230 .
- the processor 210 may execute various commands or programs and process data inside the base station 200 .
- the processor 210 may control the overall operation including each unit of the base station 200 , and may control data transmission/reception between the units.
- the processor 210 may be configured to perform an operation according to the embodiment described in the present disclosure.
- the processor 210 may signal slot configuration information and perform communication according to the signaled slot configuration.
- the communication module 220 may be an integrated module that performs wireless communication using a wireless communication network and wireless LAN access using a wireless LAN.
- the communication module 120 may include a plurality of network interface cards such as the cellular communication interface cards 221 and 222 and the unlicensed band communication interface card 223 in an internal or external form.
- each network interface card may be independently disposed according to a circuit configuration or use, unlike the drawing.
- the cellular communication interface card 221 transmits/receives a wireless signal to and from at least one of the above-described terminal 100, an external device, and a server using a mobile communication network, and based on a command from the processor 210, the Communication services can be provided.
- the cellular communication interface card 221 may include at least one NIC module using a frequency band of less than 6 GHz. At least one NIC module of the cellular communication interface card 221 independently communicates with at least one of the terminal 100, an external device, and a server according to a cellular communication standard or protocol of a frequency band of less than 6 GHz supported by the corresponding NIC module. can be performed.
- the cellular communication interface card 222 transmits and receives a wireless signal to and from at least one of the terminal 100, an external device, and a server using a mobile communication network, and based on a command of the processor 210, a cellular communication service using a second frequency band can provide
- the cellular communication interface card 222 may include at least one NIC module using a frequency band of 6 GHz or higher. At least one NIC module of the cellular communication interface card 222 independently performs cellular communication with at least one of the terminal 100, an external device, and a server according to a cellular communication standard or protocol of a frequency band of 6 GHz or higher supported by the NIC module. can be done
- the unlicensed band communication interface card 223 transmits and receives a wireless signal with at least one of the terminal 100, an external device, and a server using a third frequency band that is an unlicensed band, and based on a command of the processor 210, the unlicensed band Provides communication services.
- the unlicensed band communication interface card 223 may include at least one NIC module using the unlicensed band.
- the unlicensed band may be a band of 2.4 GHz or 5 GHz.
- At least one NIC module of the unlicensed band communication interface card 223 is independently or dependently connected to at least one of the terminal 100, an external device, and a server according to the unlicensed band communication standard or protocol of the frequency band supported by the NIC module. Wireless communication can be performed.
- the terminal 100 and the base station 200 shown in FIG. 11 are block diagrams according to an embodiment of the present disclosure. Separately indicated blocks are logically divided into device elements. Accordingly, the elements of the above-described device may be mounted as one chip or a plurality of chips according to the design of the device. In addition, some components of the terminal 100 , for example, the user interface 140 and the display unit 150 may be selectively provided in the terminal 100 . In addition, the user interface 140 and the display unit 150 may be additionally provided in the base station 200 as necessary.
- FIG. 12A and 12B are diagrams illustrating scheduling of a shared physical uplink channel in a time domain
- FIG. 13 is a diagram illustrating scheduling of a shared physical uplink channel in a frequency domain.
- a method for the UE to transmit a physical uplink shared channel (PUSCH) will be described with reference to FIGS. 12A and 12B to 13 .
- the UE may transmit uplink data through a physical uplink shared channel.
- a method for scheduling transmission of a physical uplink shared channel (DG, dynamic grant) in downlink control information (DCI) delivered through reception of a physical downlink control channel (PDCCH), or a resource and transmission method configured in advance from the base station Accordingly, the UE may transmit uplink data by a method (CG, configured grant) for transmitting a physical uplink shared channel.
- DG physical uplink shared channel
- DCI downlink control information
- PDCCH physical downlink control channel
- CG configured grant
- Downlink control information (DCI) transmitted by the UE through PDCCH reception may include PUSCH scheduling information.
- This scheduling information may include information on the time domain (hereinafter, TDRA, time-domain resource assignment) and information on the frequency domain (hereinafter, FDRA, frequency-domain resource assignment).
- the UE may interpret the DCI delivered through the reception of the PDCCH based on the information of the control resource set and the search space, and may perform the operation indicated by the DCI.
- the DCI may include one of DCI formats 0_0, 0_1, to 0_2 for scheduling a physical uplink shared channel (PUSCH).
- PUSCH physical uplink shared channel
- the time domain information of the PUSCH indicated by the TDRA field in DCI formats 0_0, 0_1, to 0_2 includes the following.
- K2 is an offset value between the slot in which the PDCCH is received from the base station and the slot in which the terminal transmits the PUSCH.
- a start and length indication value (SLIV) is a value in which a start symbol index (S) of a PUSCH and a symbol length (L) of a PUSCH are jointly coded in a slot indicated by K2.
- ⁇ PUSCH and ⁇ PDCCH are the subcarrier spacing (SCS) of the cell in which the PUSCH is scheduled and the cell in which the PDCCH is received, respectively.
- mapping types For the physical uplink shared channel transmitted by the UE, two mapping types, A and B, may be applied.
- SLIVs jointly encoded with the start symbol index and symbol length of the PUSCH have different ranges of values depending on the PUSCH mapping type.
- PUSCH mapping type A only resource allocation including a DMRS symbol is possible, and the DMRS symbol is located in the third to fourth OFDM symbols of the slot according to a value indicated by a higher layer. That is, in the case of PUSCH mapping type A, the index (S) of the start symbol of the PUSCH is 0, and the length (L) of the PUSCH may have one of values from 4 to 14 (12 in the case of extended CP) depending on the DMRS symbol position. .
- S may have one of values from 0 to 13 (11 for extended CP) and L from 1 to 14 (12 for extended CP). .
- the values of S and L must satisfy S+L£14 (12 in case of extended CP).
- the terminal has a mapping type A PUSCH in which the third symbol is a DMRS symbol, the index (S) of the start symbol is 0, and the length (L) is 7, the fourth symbol is a DMRS symbol, and the index (S) of the start symbol is 0, It is determined that the mapping type A PUSCH of length L is 7, the first symbol is a DMRS symbol, and the mapping type B PUSCH of which the index S of the start symbol is 5 and the length L is 5 is scheduled.
- DCI format 0_0, 0_1 The frequency domain information of the PUSCH indicated by the FDRA field in , to 0_2 may be divided into two types according to the frequency resource allocation type.
- the first type is frequency resource allocation type 0, which groups a fixed number of PRBs according to the number of RBs included in the BWP configured for the terminal to form a resource block group (RBG), and the terminal receives an RBG unit bitmap instruction and receives the corresponding RBG to determine whether to use
- the number of PRBs included in one RBG is configured from a higher layer, and the larger the number of RBs included in the BWP configured for the UE, the more the number of PRBs is configured. For example, with reference to FIG.
- the terminal when the BWP size configured for the terminal is 72 PRB and one RBG is configured with 4 PRBs, the terminal sends four PRBs in ascending order from PRB 0 to one RBG to be judged as That is, if PRB 0 to PRB 3 is mapped to RBG 17 in the order of RBG 0, PRB 4 to PRB 7, RBG 1, 1 bit (0 to 1) for each RBG, a total of 18 bits are received, Decide whether to use At this time, if the bit value is 0, it is determined that the PUSCH is not scheduled in any of the PRBs in the corresponding RBG, and if the bit value is 1, it is determined that the PUSCH is scheduled in all the PRBs in the corresponding RBG. Alternatively, the bit value may be applied in reverse.
- the second type is frequency resource allocation type 1, and may indicate information on consecutive PRBs allocated according to the size of an initial BWP or an active BWP of the terminal.
- This information is a joint-encoded resource indication value (RIV) value in which the start index (S) and length (L) of consecutive PRBs are jointly encoded.
- RIV resource indication value
- S start index
- L length
- the BWP size of the UE is 50 PRBs and PUSCHs are scheduled from PRB 2 to PRB 11
- the start index of the consecutive PRBs is 2 and the length is 10.
- the UE determines the start index and length of consecutive PRBs for which PUSCH is scheduled as 2 and 10, respectively.
- the UE may be configured to use only one of the two frequency resource allocation types of PUSCH or to dynamically use the two types from a higher layer.
- the UE can determine which type is through 1 bit of the most significant bit (MSB) of the FDRA field in DCI formats 0_1 and 0_2 for scheduling PUSCH.
- MSB most significant bit
- a grant (configured grant)-based uplink shared channel transmission scheme configured to support uplink URLLC transmission, etc. is supported, and this scheme is also called grant-free transmission.
- the configured grant-based uplink transmission method when the base station configures a resource usable for uplink transmission to the terminal through a higher layer, that is, RRC signaling, the terminal transmits an uplink shared channel through the resource. This method can be divided into two types according to whether activation or release through DCI is possible.
- the type 1 configured grant-based transmission scheme is a scheme for setting a resource and a transmission scheme for a grant-based transmission configured in advance in an upper layer.
- the type 2 configured grant-based transmission scheme is a scheme in which grant-based transmission configured in an upper layer is configured, and resources and methods for transmission are instructed by DCI delivered through a physical downlink control channel.
- the configured grant-based uplink transmission scheme can support URLLC transmission, it supports repeated transmission in a plurality of slots to ensure high reliability.
- the RV (redundancy version) sequence receives a value of one of ⁇ 0, 0, 0, 0 ⁇ , ⁇ 0, 2, 3, 1 ⁇ , ⁇ 0, 3, 0, 3 ⁇ , and in the n-th repeated transmission The RV corresponding to the mod(n-1, 4)+1th value is used.
- the UE configured for repeated transmission may start repeated transmission only in a slot corresponding to an RV value of 0.
- the RV sequence is ⁇ 0, 0, 0, 0 ⁇ and repeatedly transmitted in 8 slots, repeated transmission cannot be started in the 8th slot.
- the UE ends repeated transmission when the number of repeated transmissions set in the upper layer is reached or the period is exceeded, or when a UL grant having the same HARQ process ID is received.
- the UL grant means DCI for scheduling PUSCH.
- the terminal may receive repeated transmission of the uplink shared channel from the base station. This is explained through FIGS. 14A and 14B .
- 14A and 14B are diagrams illustrating repeated transmission of a physical uplink shared channel according to an example.
- repeated PUSCH transmission that the UE can transmit can be divided into two types.
- the transmission process of the repeated PUSCH transmission type A of the UE is as follows.
- the UE receives DCI formats 0_1 to 0_2 through the PDCCH scheduling PUSCH from the base station, repeated PUSCH transmission is possible in K consecutive slots.
- the UE may receive the K value set from a higher layer or may be added to the TDRA field of DCI to receive it.
- the UE receives the PDCCH for scheduling the PUSCH in slot n, and receives 2 as the K2 value and 4 as the K value from the DCI format received through the PDCCH.
- the UE starts transmitting the PUSCH in slot n+K2, that is, n+2, and the UE repeatedly transmits the PUSCH from slot n+2 to slot n+2+K-1, that is, n+5.
- the time and frequency resources for transmitting the PUSCH in each slot are the same as indicated by DCI. That is, the PUSCH may be transmitted in the same symbol and PRB(s) within the slot.
- the transmission process of repeated PUSCH transmission type B for supporting low-delay repeated PUSCH transmission in order for the terminal to satisfy the requirements of URLLC, etc. is as follows.
- the terminal may be instructed by the start symbol (S) of the PUSCH and the length (L) of the PUSCH through the TDRA field.
- the PUSCH obtained with the indicated start symbol and length is a PUSCH obtained temporarily, not an actual PUSCH, and is referred to as a nominal PUSCH.
- the UE may be instructed by the nominal repetition number (N) of the indicated nominal PUSCH through the TDRA field.
- the UE may determine the nominal number of repetitions (N) of nominal PUSCHs including the indicated nominal PUSCH through the TDRA field.
- the length of the nominal PUSCHs of the number of nominal repetitions (N) is equal to L, and there is no separate symbol between the nominal PUSCHs and is continuous on the time axis.
- the UE may determine an actual PUSCH from the nominal PUSCHs.
- One nominal PUSCH may be determined as one or a plurality of actually transmitted PUSCHs.
- the UE may be instructed or configured with symbols that cannot be used in PUSCH repeated transmission type B from the base station. This is called an invalid symbol.
- the UE may exclude invalid symbols from the nominal PUSCHs.
- nominal PUSCHs are continuously determined for symbols, but may be determined discontinuously when invalid symbols are excluded.
- the actually transmitted PUSCH may be determined as consecutive symbols in one nominal PUSCH except for an invalid symbol.
- an actual PUSCH transmitted based on the boundary may be divided and determined.
- the invalid symbol may include at least a DL symbol configured by the base station for the terminal.
- the nominal PUSCH is:
- the first nominal PUSCH (nominal#1) contains a symbol (n,11), a symbol (n,12), a symbol (n,13), a symbol (n+1,0), and a symbol (n+1,1) .
- the second nominal PUSCH (nominal#2) is a symbol (n+1,2), a symbol (n+1,3), a symbol (n+1,4), a symbol (n+1,5), a symbol (n+1) ,6) is included.
- the third nominal PUSCH (nominal#3) is a symbol (n+1,7), a symbol (n+1,8), a symbol (n+1,9), a symbol (n+1,10), a symbol (n+1) , 11).
- the fourth nominal PUSCH (nominal#4) is a symbol (n+1,12), a symbol (n+1,13), a symbol (n+2,0), a symbol (n+2,1), a symbol (n+2) ,2) is included.
- the symbol (n,k) represents the symbol k of the slot n.
- the symbol k index ranges from 0 to 13 in the case of normal CP, and ranges from 0 to 11 in the case of extended CP.
- the first nominal PUSCH (nominal#1) is divided into two actually transmitted PUSCHs (actual#1 and actual#2) by the slot boundary.
- the second nominal PUSCH (nominal#2) and the third nominal PUSCH (nominal#3) PUSCH are divided into one actually transmitted PUSCH (actual#3 and actual#4) by grouping consecutive symbols excluding invalid symbols.
- the fourth nominal PUSCH (nominal#4) is divided into two actually transmitted PUSCHs (actual#5 and actual#6) by the slot boundary.
- the UE finally transmits PUSCHs that are actually transmitted.
- One actually transmitted PUSCH must include at least one DMRS symbol, and when the PUSCH repeated transmission type B is configured, the actual transmitted PUSCH having a total length of one symbol can be omitted without being transmitted. there is. This is because, in the case of an actual PUSCH that is one symbol, information other than DMRS cannot be transmitted. .
- the UE may be configured with frequency hopping.
- one of intra-slot frequency hopping in which frequency hopping is performed within a slot and inter-slot frequency hopping in which frequency hopping is performed for each slot may be configured for the UE.
- the UE divides the PUSCH in half in the time domain in the slot for transmitting the PUSCH, transmits half in the scheduled PRB, and transmits the other half in the PRB obtained by adding the offset value to the scheduled PRB.
- two or four values of the offset value are set according to the active BWP size through the upper layer, and one of the values may be indicated to the UE through DCI.
- a PUSCH is transmitted in a PRB scheduled in a slot having an even slot index, and a PUSCH is transmitted in a PRB in which an offset value is added to a PRB scheduled in an odd-numbered slot.
- frequency hopping is one of inter-repetition frequency hopping in which frequency hopping is performed at a nominal PUSCH boundary and inter-slot frequency hopping in which frequency hopping is performed in every slot. can be set.
- inter-repetition frequency hopping is configured for the UE, the UE transmits the PUSCH(s) that are actually transmitted corresponding to the odd-numbered nominal PUSCH in the scheduled PRB, and the UE that is actually transmitted corresponding to the even-numbered nominal PUSCH (actual) PUSCH(s) are transmitted in a PRB in which an offset value is added to a scheduled PRB.
- two or four values of the offset value are set according to the active BWP size through the upper layer, and one of the values may be indicated to the UE through DCI.
- the actual PUSCH of the slot having an even slot index transmits the PUSCH in the scheduled PRB, and the actual PUSCH of the odd-numbered slot is transmitted to the scheduled PRB.
- the PUSCH is transmitted in the PRB plus the offset value.
- the UE When the UE performs repeated PUSCH transmission, if a symbol scheduled for PUSCH transmission in a specific slot overlaps with a semi-statically configured DL symbol or a symbol position configured for reception of an SS/PBCH block, the overlapping PUSCH is not transmitted in the corresponding slot. , do not defer transmission to the next slot.
- PUCCH physical uplink control channel
- 15 is a diagram illustrating scheduling of a physical uplink control channel.
- the terminal when the terminal receives DCI formats 1_0, 1_1, to 1_2 for scheduling a physical uplink control channel, the terminal needs to transmit the scheduled uplink control channel.
- the physical uplink control channel may include uplink control information (UCI), and the UCI may include HARQ-ACK, SR, and CSI information.
- the HARQ-ACK information may be HARQ-ACK information on whether or not reception of two types of channels is successful.
- a first type when a physical downlink shared channel (PDSCH) is scheduled through the DCI formats 1_0, 1_1, to 1_2, it may be a HARQ-ACK for whether the reception of the physical downlink shared channel (PDSCH) is successful.
- PDSCH physical downlink shared channel
- the DCI formats 1_0, 1_1, and 1_2 are DCI indicating release of a semi-static physical downlink shared channel (SPS PDSCH)
- the DCI formats 1_0, 1_1, to 1_2 are for success in reception. It may be HARQ-ACK.
- the PDSCH-to-HARQ_feedback timing indicator field included in the DCI formats 1_0, 1_1, and 1_2 includes information on a slot for transmitting a scheduled uplink control channel.
- a value of K1 may be indicated.
- the value of K1 may be a non-negative integer value.
- the K1 value of DCI format 1_0 may indicate one of ⁇ 0, 1, 2, 3, 4, 5, 6, 7 ⁇ .
- the K1 value that can be indicated in DCI formats 1_1 to 1_2 may be configured or set from a higher layer.
- the UE may determine the slot for transmitting the uplink control channel including the first type of HARQ-ACK information as follows.
- the UE may determine an uplink slot overlapping the last symbol of a physical downlink shared channel (PDSCH) corresponding to the HARQ-ACK information.
- PDSCH physical downlink shared channel
- the uplink slot through which the UE transmits the physical uplink control channel including the HARQ-ACK information may be m+K1.
- the index of the uplink slot is a value according to the subcarrier interval of the uplink BWP through which the uplink control channel is transmitted.
- the ending symbol indicates the last symbol of a scheduled PDSCH in the last slot among slots in which a physical downlink shared channel (PDSCH) is received.
- PDSCH physical downlink shared channel
- the subcarrier interval of the DL BWP through which the PDCCH is received the subcarrier interval of the DL BWP at which the PDSCH is scheduled, and the subcarrier interval of the UL BWP through which the PUCCH is transmitted are the same.
- the UE If the reception of the last symbol of the PDSCH ends in slot n+K0, that is, n+2, the UE must transmit the HARQ-ACK of the corresponding PDSCH through PUCCH in slot n+2+K1, that is, n+5. .
- the UE may be configured to repeatedly transmit a long PUCCH (PUCCH format 1, 3, 4) in 2, 4, to 8 slots.
- PUCCH PUCCH format 1, 3, 4
- the same UCI is repeatedly transmitted every slot. This will be described with reference to FIG. 16 .
- 16 is a diagram illustrating repeated transmission of a physical uplink control channel.
- the UE transmits PUCCH in slot n+K1, that is, n+2.
- the symbol configuration of repeatedly transmitted PUCCHs is the same. That is, repeatedly transmitted PUCCHs start from the same symbol in each slot and are composed of the same number of symbols.
- the terminal may be configured with frequency hopping.
- frequency hopping intra-slot frequency hopping in which frequency hopping is performed within a slot and inter-slot frequency hopping in which frequency hopping is performed for each slot may be configured.
- the UE divides the PUCCH in half in the time domain in the slot for transmitting the PUCCH and transmits half in the first PRB, and the other half is transmitted in the scheduled second PRB. do.
- the first PRB and the second PRB may be configured for the UE through a higher layer that configures the PUCCH resource.
- inter-slot frequency hopping is configured for the UE, the PUCCH is transmitted in the first PRB in a slot having an even-numbered slot index, and the PUCCH is transmitted in the second PRB in a slot having an odd-numbered slot index.
- the UE When the UE performs repeated PUCCH transmission, if a symbol for transmitting PUCCH in a specific slot overlaps with a semi-statically configured DL symbol or a symbol position set for reception of an SS/PBCH block, the PUCCH is not transmitted in the corresponding slot, and the next slot If the PUCCH symbol does not overlap with the symbol position set for reception of the semi-statically configured DL symbol or SS/PBCH block in the corresponding slot by delaying transmission, PUCCH is transmitted.
- This embodiment relates to a method of dynamically configuring PUCCH carrier switching for a UE and repetitive transmission of PUCCH.
- the terminal may receive a plurality of uplink cells configured from the base station. If a plurality of uplink cells are configured for the UE, it is called UL carrier aggregation (UL CA).
- UL CA UL carrier aggregation
- a UE may be assigned one cell among a plurality of uplink cells for PUCCH transmission.
- a cell transmitting the PUCCH is called a PUCCH cell or a Pcell.
- the UE may transmit the PUCCH in the Pcell and cannot transmit the PUCCH in the remaining cells.
- the PUCCH may be transmitted in one cell of the PUCCH group, Pcell, PScell, to PUCCH_Scell. Therefore, in the following description, Pcell may be replaced with PScell to PUCCH_Scell, and the plurality of uplink cells refers to uplink cells in a PUCCH group including Pcell/PScell/PUCCH_Scell.
- the Pcell of the UE may not be able to transmit the PUCCH for various reasons. For example, when a downlink symbol is configured in the Pcell, the PUCCH overlapping the downlink symbol cannot be transmitted. When the base station uses the resource of the Pcell for other uplink transmission (eg, PUSCH, PUCCH, etc. of another terminal), the Pcell cannot transmit the PUCCH due to insufficient resources.
- the base station uses the resource of the Pcell for other uplink transmission (eg, PUSCH, PUCCH, etc. of another terminal), the Pcell cannot transmit the PUCCH due to insufficient resources.
- the base station may configure dynamic PUCCH carrier switching for the UE.
- Dynamic PUCCH carrier switching refers to a method of changing a cell to which a PUCCH is transmitted among a plurality of uplink cells in a UL CA situation.
- dynamic PUCCH carrier switching may be configured as follows.
- a serving cell to which PUCCH is transmitted among a plurality of cells is referred to as a PUCCH serving cell.
- the base station may set the index of a cell to be used as a PUCCH serving cell among a plurality of cells to the terminal through an RRC signal.
- the parameter set through the RRC signal may include an index sequence of a PUCCH serving cell that collects indices of cells used as PUCCH serving cells among a plurality of cells, a period to which the index sequence is applied, and an offset.
- the cell index sequence is a set of indices and may be provided in a bitmap format. The index sequence, period, and offset may be interpreted as follows.
- an offset is not set unless otherwise specified throughout this specification. If the offset is not set, the index sequence of the PUCCH serving cell is applied from the first slot of the frame.
- the period and offset of the index sequence of the PUCCH serving cell may be given in ms.
- the UE may apply the period of the index sequence of the PUCCH serving cell to the period of 4 ms and from 1 ms after the frame boundary.
- the length of the index sequence of the PUCCH serving cell (ie, the number of indexes included) may be equal to the number of slots in the period.
- the number of slots in the period is given as P*2 ⁇ mu.
- mu is a subcarrier spacing configuration.
- the number of slots in the period may vary according to the subcarrier interval. Accordingly, in consideration of the case in which a plurality of cells have different subcarrier intervals, the length of the index sequence of the PUCCH serving cell according to the given period P (ie, the number of indexes included) may be determined as follows.
- the length of the index sequence may be equal to the number of slots of a cell having the lowest subcarrier spacing within the period.
- the reason for using the lowest subcarrier spacing is that the PUCCH serving cell can be prevented from being changed in the middle of the slot because the slot length of the cell having the lowest subcarrier spacing is the longest.
- the first cell is 15 kHz and the second cell is 30 kHz.
- each index of the index sequence of the PUCCH serving cell corresponds to the length of one slot of the cell of the selected lowest subcarrier interval. That is, each index of the index sequence of the PUCCH serving cell corresponds to the length (1 ms) of one slot, which is a 15 kHz subcarrier interval.
- the length of the index sequence may be equal to the number of slots of a cell having the highest subcarrier spacing within the period.
- the reason for using the highest subcarrier spacing here is that the PUCCH serving cell can be changed in the shortest unit because the slot length of the cell having the highest subcarrier spacing is the shortest.
- the first cell is 15 kHz and the second cell is 30 kHz.
- each value of the index sequence corresponds to one slot of a cell having the highest selected subcarrier spacing. That is, each index of the index sequence of the PUCCH serving cell corresponds to the length (0.5 ms) of one slot, which is a 30 kHz subcarrier interval.
- the length of the index sequence may be equal to the number of slots of a cell having a 15 kHz subcarrier interval within the period.
- FR2 frequency range 2
- it may be equal to the number of slots of a cell having a 60 kHz subcarrier spacing within the period. That is, the lowest subcarrier interval among subcarrier intervals capable of uplink transmission in each FR (frequency range) may be used.
- Using the 15 kHz subcarrier interval in FR1 is equivalent to changing the PUCCH serving cell every 1 ms because the length of the slot is 1 ms. That is, the PUCCH serving cell may be changed every 1 ms according to the index sequence of the PUCCH serving cell. This is independent of the subcarrier spacing in which the cell is set.
- the length of the index sequence may be equal to the number of slots of a specific cell in the period.
- the specific cell may be a Pcell when dynamic PUCCH carrier switching is not configured.
- the specific cell may be a cell having the lowest cell index among the plurality of cells. In this way, it can be interpreted and operated based on one specific cell.
- the length of the index sequence may be determined using the subcarrier spacing of one specific cell.
- the terminal receives the period and offset set in ms from the base station through the RRC signal. However, even if the terminal does not set a separate period and offset through the RRC signal from the base station, the terminal can infer the period and offset from other parameters set therein. Specific methods for this are disclosed.
- the UE may determine the period and the offset based on the TDD configuration of each TDD cell.
- the UE may receive the TDD configuration of each TDD cell from the base station. More specifically, the UE may receive a tdd-UL-DL-ConfigurationCommon for setting a common TDD configuration for a cell through a system information block 1 (SIB1) to an RRC parameter ServingCellConfigCommon.
- SIB1 system information block 1
- the UE can know the period to which the TDD configuration can be applied in each TDD cell and the reference subcarrier interval (reference subcarrier interval) through the tdd-UL-DL-ConfigurationCommon.
- the reference subcarrier spacing can be obtained from referenceSubcarrierSpacing, which is an RRC parameter.
- the TDD configuration provided by tdd-UL-DL-ConfigurationCommon may include up to two TDD patterns, and each pattern may include each period. Therefore, when a maximum of two TDD patterns are configured in one TDD cell for the UE, the period of the TDD configuration is the sum of the period of the first pattern and the period of the second pattern.
- the period set in the TDD configuration (configured by tdd-UL-DL-ConfigurationCommon) (hereafter P is the period set in the TDDD configuration (configured by tdd-UL-DL-ConfigurationCommon) is the period in ms) is set
- 20/P can be set only with a P value that satisfies an integer.
- the P value may be at least one of 0.5ms, 0.625ms, 1ms, 1.25ms, 2ms, 2.5ms, 5ms, and 10ms.
- mu_ref is the reference subcarrier spacing configuration. (For reference, the reference subcarrier spacing is 15kHz *2 ⁇ mu_ref).
- the UE may receive the TDD configuration independently and individually for each TDD cell. That is, the period according to the TDD configuration may be different for each cell.
- the period of the RRC signal regarding the index of the cell to be used as the PUCCH serving cell among the plurality of cells may be determined as follows.
- the UE may use the period P value of the TDD configuration of a specific cell as the period of the RRC signal for the cell to be used as the PUCCH serving cell. That is, the UE may repeatedly apply the index sequence of the PUCCH serving cell among the plurality of cells for each TDD configuration period of a specific cell.
- the length of the index sequence of the PUCCH serving cell among the plurality of cells may be equal to P*2 ⁇ mu_ref.
- mu_ref is the reference subcarrier interval of the TDD configuration of a specific cell.
- the specific cell may be a Pcell. That is, the UE may use the period P_pcell value of the TDD configuration of the Pcell as a period of an RRC signal for a cell to be used as a PUCCH serving cell among a plurality of cells. That is, the UE may repeatedly apply the index sequence of the PUCCH serving cell among the plurality of cells for each TDD configuration period of the Pcell.
- the length of the index sequence of the PUCCH serving cell among the plurality of cells may be equal to P_pcell*2 ⁇ mu_ref_pcell.
- mu_ref_pcell is the reference subcarrier interval of the TDD configuration of the Pcell.
- a specific cell may be determined according to the subcarrier spacing.
- a specific cell may be a cell having the lowest subcarrier spacing. That is, the UE may use the period P_low value of the TDD configuration of the cell having the lowest subcarrier spacing as the period of the RRC signal for the cell to be used as the PUCCH serving cell among the plurality of cells. That is, the UE may repeatedly apply the index sequence of the PUCCH serving cell among the plurality of cells at each TDD configuration period of the cell having the lowest subcarrier interval.
- the length of the index sequence of the PUCCH serving cell among the plurality of cells may be equal to P_low*2 ⁇ mu_ref_low.
- mu_ref_low is the reference subcarrier spacing of the TDD configuration of the cell having the lowest subcarrier spacing. For reference, if there are a plurality of cells having the lowest subcarrier spacing and a plurality of TDD configuration periods of the cells, one period may be selected.
- the specific cell may be a cell having the highest subcarrier spacing. That is, the UE may use the period P_high value of the TDD configuration of the cell having the highest subcarrier spacing as the period of the RRC signal for the cell to be used as the PUCCH serving cell among the plurality of cells. That is, the UE may repeatedly apply the index sequence of the PUCCH serving cell among the plurality of cells at each TDD configuration period of the cell having the highest subcarrier interval.
- the length of the index sequence of the PUCCH serving cell among the plurality of cells may be equal to P_high*2 ⁇ mu_ref_high.
- mu_ref_high is the reference subcarrier spacing of the TDD configuration of the cell having the highest subcarrier spacing. For reference, if there are a plurality of cells having the highest subcarrier spacing and a plurality of TDD configuration periods of the cells, one period may be selected.
- the specific cell may be determined according to a period of the TDD configuration.
- the specific cell may be a cell with the longest period. That is, the UE may use the period P_long value of the cell having the longest TDD configuration period of the cell as the period of the RRC signal for the cell to be used as the PUCCH serving cell among the plurality of cells. That is, the UE may repeatedly apply the index sequence of the PUCCH serving cell among the plurality of cells for each TDD configuration period of the cell having the longest period.
- the length of the index sequence of the PUCCH serving cell among the plurality of cells may be equal to P_long*2 ⁇ mu_ref_long.
- mu_ref_long is the reference subcarrier interval of the TDD configuration of the cell with the longest period.
- the specific cell may be a cell with the shortest period. That is, the UE may use the period P_short value of the cell having the shortest TDD configuration period of the cell as the period of the RRC signal for the cell to be used as the PUCCH serving cell among the plurality of cells. That is, the UE may repeatedly apply the index sequence of the PUCCH serving cell among the plurality of cells for each TDD configuration period of the cell having the shortest period.
- the length of the index sequence of the PUCCH serving cell among the plurality of cells may be equal to P_short*2 ⁇ mu_ref_short.
- mu_ref_short is the reference subcarrier interval of the TDD configuration of the cell with the shortest period.
- the period of the RRC signal for the cell to be used as the PUCCH serving cell may be determined based on the combination of the period P values of the TDD configuration of the cells. That is, the UE may use the combination of the period P values of the TDD configuration of the cells as the period of the RRC signal for the cell to be used as the PUCCH serving cell.
- the UE may have periods P_1, P_2, Z, and P_N according to the TDD configuration for each TDD cell.
- the UE may determine the period of the RRC signal for the cell to be used as the PUCCH serving cell based on the least common multiple of the period.
- the period of the RRC signal for the cell to be used as the PUCCH serving cell may be a value of the least common multiple of P_1, P_2, Z, and P_N. Let this LCM value be P_lcm.
- the UE may repeatedly apply the index sequence of the PUCCH serving cell among the plurality of cells every P_lcm ms.
- the length of the index sequence of the PUCCH serving cell among the plurality of cells may be equal to P_lcm*2 ⁇ mu_ref_lcm.
- mu_ref_lcm may be determined according to the smallest or largest value among the reference subcarrier spacings of the TDD configuration of each TDD cell or the value of the reference subcarrier spacing of the TDD configuration of the Pcell.
- the UE may determine by fixing the period of the RRC signal for the cell to be used as the PUCCH serving cell to 20 ms.
- the period P according to the TDD configuration of each TDD cell satisfies the condition that 20/P is an integer. Accordingly, 20 ms is an integer multiple of the period according to the TDD configuration of each TDD cell.
- the UE may repeatedly apply the index sequence of the PUCCH serving cell among the plurality of cells every 20 ms.
- the length of the index sequence of the PUCCH serving cell among the plurality of cells may be equal to 20*2 ⁇ mu_ref_lcm.
- mu_ref_lcm may be determined according to the smallest or largest value among the reference subcarrier spacings of the TDD configuration of each TDD cell or the value of the reference subcarrier spacing of the TDD configuration of the Pcell.
- the UE may determine 20 ms as the cycle of the RRC signal for the cell to be used as the PUCCH serving cell.
- 17 is a diagram illustrating a situation in which two cells capable of uplink transmission are configured to a terminal according to an example.
- cell 0 and cell 1 are configured in the UE.
- Cell 0 has a subcarrier interval of 15 kHz and a period of 5 ms according to the TDD configuration. More specifically, there are 5 slots having a subcarrier interval of 5 ms at 15 kHz, the first 3 of the 5 are DL slots, the next slot is the S slot, and the last slot is the UL slot.
- the DL slot is a slot including only DL symbols
- the UL slot is a slot including only UL symbols
- the S slot is a slot including at least one flexible symbol.
- the symbols of the N symbol of the S slot the preceding A DL symbols, the trailing B UL symbols, and N symbol -(A+B) flexible symbols between the DL symbols and the UL symbols may be configured.
- a and B are integers greater than 0, and N symbol may be 14 to 12 depending on the type of cyclic prefix (CP).
- Cell 0 is offset by one slot with a subcarrier spacing of 15 kHz. Accordingly, slot 0 of cell 0 starts from the second slot among 5 slots within one period of the TDD configuration.
- Cell 1 has a subcarrier interval of 30 kHz and a period of 2.5 ms according to the TDD configuration. More specifically, there are 5 slots having a subcarrier interval of 2.5 ms at 30 kHz, the first 3 of the 5 are DL slots, the next slot is the S slot, and the last slot is the UL slot. No separate offset was applied to cell 1. Accordingly, slot 0 of cell 1 starts from the first slot among 5 slots within one period of the TDD configuration.
- FIG. 18 is a diagram illustrating a method for determining a PUCCH serving cell based on a low subcarrier spacing according to an example
- FIG. 19 is a diagram illustrating a method for determining a PUCCH serving cell based on a high subcarrier spacing. 5 ms, which is the least common multiple of the period of cell 0 and the period of cell 1, may be determined as the period of the index sequence of the PUCCH serving cell.
- an index sequence of a PUCCH serving cell is generated based on 15 kHz, which is the lowest subcarrier interval among the subcarrier interval of cell 0 and the subcarrier interval of cell 1 .
- the index sequence of the PUCCH serving cell may consist of 5 indexes since the number of 15 kHz slots is 5 within a 5 ms period.
- Each of the five indices represents the index of the PUCCH serving cell within the length (1 ms) of the 15 kHz slot within 5 ms.
- the index sequence of the PUCCH serving cell may be given as [0 1 1 0 1].
- 0 to 1 ms from the frame boundary is based on '0', which is the first index of the index sequence
- cell 0 is a PUCCH serving cell
- 1 to 2 ms is based on '1', which is the second index of the index sequence.
- Raw cell 1 is a PUCCH serving cell
- 2 ⁇ 3ms is based on '1', which is the third index of the index sequence
- cell 1 is a PUCCH serving cell
- 3 ⁇ 4ms is based on '0', which is the second index of the index sequence.
- Raw cell 0 is a PUCCH serving cell
- cell 1 is a PUCCH serving cell based on '1', which is the second index of the index sequence.
- the indexes are repeated at 5 ms period as above.
- two slots with an interval of 30 kHz subcarriers of cell 1 within 1 ms may be included.
- the index of the PUCCH serving cell is applied by grouping two slots each having an interval of 30 kHz subcarriers of cell 1.
- an index sequence of a PUCCH serving cell is generated based on 30 kHz, which is the highest subcarrier interval among the subcarrier interval of cell 0 and the subcarrier interval of cell 1.
- the index sequence of the PUCCH serving cell may consist of 10 indexes because the number of 30 kHz slots is 10 within a 5 ms period.
- Each index among the ten indexes indicates the index of the PUCCH serving cell within the length of a 30 kHz slot (0.5 ms) within 5 ms.
- the index sequence of the PUCCH serving cell may be given as [0 0 0 1 1 0 0 0 1 1].
- 0 to 0.5 ms from the frame boundary is a PUCCH serving cell based on '0', the first index of the index sequence, and 0.5 to 1 ms is a cell 0 based on '0', the second index of the index sequence.
- This is the PUCCH serving cell
- 1 to 1.5 ms is the cell 0 based on the third index '0' of the index sequence
- 1.5 to 2 ms is the cell based on the fourth index '1' of the index sequence.
- cell 1 is a PUCCH serving cell
- 2 to 2.5 ms is based on '1', which is the fifth index of the index sequence
- cell 1 is a PUCCH serving cell
- 2.5 to 3 ms is '0', which is the sixth index of the index sequence.
- Cell 0 is a PUCCH serving cell based on, 3 to 3.5 ms is a PUCCH serving cell based on '0', which is the seventh index of the index sequence, and 3.5 to 4 ms is the 8th index of the index sequence '
- Cell 0 is a PUCCH serving cell based on 0'
- 4 to 4.5 ms is a PUCCH serving cell based on '1', which is the ninth index of the index sequence
- 4.5 to 5 ms is the tenth of the index sequence
- cell 1 is a PUCCH serving cell. After that, the indexes are repeated at 5 ms period as above.
- the index of the PUCCH serving cell is applied by half of the slot corresponding to the 15 kHz subcarrier interval of cell 0.
- the slot may be interpreted as being replaced with a sub-slot.
- the length of the index sequence may be increased by Q times.
- one index of the index sequence indicates a PUCCH serving cell within D ms, it may be interpreted as indicating a PUCCH serving cell within the D/Q ms.
- the length of the index sequence of the PUCCH serving cell may be determined according to the period and the length of time to which the index sequence is applied. More specifically, the length of the index sequence of the PUCCH serving cell may be determined by (the period)/(the length of time to apply the index sequence).
- (the period)/(the length of time to apply the index sequence) is a natural number. That is, the length of time for applying the index sequence of the PUCCH serving cell is a divisor of the period, and the period is a multiple of the length of time for applying the index sequence.
- the length of time for applying the index sequence may have a unit of ms, and may be set by the base station to the terminal or may be inferred as follows.
- the length of the index sequence may be the same as the length of a slot of a specific cell within the period.
- the specific cell may be a cell that is a Pcell when dynamic PUCCH carrier switching is not configured.
- the specific cell may be a cell having the lowest cell index among the plurality of cells. In this way, it can be interpreted and operated based on one specific cell.
- the index sequence of the PUCCH serving cell may be limited only to cells having the same subcarrier spacing. That is, even if the UE is configured with cells having different subcarrier spacings, the Pcell by dynamic PUCCH carrier switching may be limited to cells having the same subcarrier spacing. Through this limitation, the problem of the preceding index sequence length can be solved.
- 20 is a diagram illustrating dynamic PUCCH carrier switching according to an embodiment.
- the UE may perform dynamic PUCCH carrier switching as follows.
- the length of the index sequence of the PUCCH serving cell is determined according to (Index Sequence Length Example 1).
- the UE may be configured with a cell with a 15 kHz subcarrier spacing and a cell with a 30 kHz subcarrier spacing.
- the index of a cell with a 15 kHz subcarrier spacing is 0, and an index of a cell with a 30 kHz subcarrier spacing is 1.
- the terminal was set with a period of 4 ms and an offset of 1 ms. In this case, the length of the index sequence of the PUCCH serving cell is 4.
- the UE may receive [0 0 1 0] having a length of 4 as the index sequence of the PUCCH serving cell.
- slot 1 slot 2, and slot 4
- cell 0 is a Pcell
- slot 3 is not a Pcell.
- slot 3 of cell 0 is not a Pcell
- PUCCH is not transmitted in slot 3 of cell 0.
- slots 6 and 7 are Pcells
- slots 2, 3, 4, 5, 8, and 9 are not Pcells.
- no PUCCH is transmitted in slots 2, 3, 4, 5, 8, and 9 of cell 1.
- the index of the PUCCH serving cell is included in the index sequence for all slots. However, in the case of some slots, it is not necessary to include them in the index sequence.
- cell 0 is a Pcell.
- slot 3 of the 15 kHz subcarrier interval of cell 0 since it is a UL slot (a slot including only UL symbols), PUCCH transmission is possible in the UL slot. Therefore, it may not be included in the index sequence for the UL slot of the Pcell.
- the UL slot of the Pcell is always determined as the PUCCH serving cell. Through this method, the length of the index sequence can be reduced.
- the UE refers to cell 0 as a Pcell.
- Slot 0 of the 15 kHz subcarrier interval of cell 0 is a DL slot (a slot including only DL symbols), and slots 0 and 1 of the 30 kHz subcarrier interval of cell 1 overlapping this are also DL slots. Therefore, even if a cell is indicated as a PUCCH serving cell, since transmission is impossible in both cells, the instruction is meaningless. Accordingly, if the slots of cells that can be indicated by one index of the index sequence are all DL slots, the index may be excluded from the index sequence. Through this method, the length of the index sequence can be reduced.
- the base station may indicate only index sequences of some PUCCH serving cells. For example, let the index sequence of the PUCCH serving cell having a length of L to be indicated to the UE be [i 0 , i 1 , j, i L-1 ].
- the base station may indicate a part of the index sequence to the terminal as follows.
- the base station may indicate (l, i l )-pairs to the terminal.
- l is a position in the index sequence of the PUCCH serving cell, and may have a value from 0 to L-1.
- i l represents the index value of position l in the index sequence of the PUCCH serving cell. For example, with reference to FIG.
- the base station when the base station wants to indicate to the terminal [0 1 1 0 1] as the index sequence of the PUCCH serving cell, the base station tells the terminal (1,1), (2,1), (4,1) can be indicated. It can be assumed that the index of the position not indicated by the pair is the index of the Pcell.
- i l when there are two cells capable of uplink transmission and one cell is a Pcell, when the UE receives an (l,i l )-pair instruction from the base station, i l may be omitted.
- the base station wants to indicate to the terminal [0 1 1 0 1] as the index sequence of the PUCCH serving cell, the base station sends (1), (2), (4) to the terminal can direct That is, a position indicating a cell other than the Pcell may be indicated in the index sequence. It may be assumed that the index of the Pell is indicated for positions other than the indicated positions. If the number of cells capable of uplink transmission exceeds two, the base station may select and configure two uplink cells for the terminal.
- one uplink cell includes a Pcell.
- index 0 indicates a Pcell.
- cells other than the Pcell may receive a separate index. This may be the value of SCellIndex of SCellConfig of CellGroupConfig IE.
- index 0 always indicates a Pcell.
- cells other than the Pcell may receive a separate index.
- the base station may select some cells among the cells of the PUCCH group as PUCCH serving cell candidates. For example, a cell having the same subcarrier spacing as the Pcell may be included in the PUCCH serving cell candidate. The cell excluded from the selection is a cell in which PUCCH transmission is impossible.
- the base station may assign a new index to the PUCCH serving cell candidates.
- the index can be assigned as a natural number except 0. This allows the base station to set the index to the terminal through a separate RRC signal.
- the new index of the selected PUCCH serving cell candidates may be numbered from 1 to a natural number in an ascending order of a unique SCellIndex value of each candidate cell.
- the UE may include a supplementary UL (SUL) cell among cells of the PUCCH group.
- SUL supplementary UL
- a separate index may be additionally assigned to the SUL cell.
- Another technical problem of the present invention relates to a method of repeatedly transmitting PUCCH when a UE is configured with dynamic PUCCH carrier switching.
- the UE is instructed to transmit PUCCH in slot 1.
- the base station may be configured to repeatedly transmit PUCCH No. 4 to the terminal for high reliability and coverage.
- the UE must determine 4 slots for repeatedly transmitting the PUCCH.
- the UE determines the slot in which the PUCCH is transmitted as follows with reference to the 3GPP official document TS38.213.
- the present invention discloses the following method.
- the UE performs repeated PUCCH transmission in one cell, and does not repeatedly transmit PUCCH in another cell.
- the changed Pcell slot is not included in the PUCCH transmission slot.
- one cell performing repeated PUCCH transmission is a Pcell corresponding to the first slot in which repeated PUCCH transmission is indicated. This is explained in detail with reference to FIG. 21 .
- 21 is a diagram illustrating PUCCH transmission according to dynamic PUCCH carrier switching according to an embodiment of the present invention.
- the UE may be instructed to transmit PUCCH in slot 1 of cell 0.
- slot 1 of cell 0 is a Pcell in which PUCCH transmission is possible.
- the UE must determine 4 slots for repeated PUCCH transmission from slot 1 above.
- the UE may be limited to only the Pcell slots of cell 0.
- cell 0 refers to a slot when cell 0 is a Pcell. That is, the PUCCH may be repeatedly transmitted in slots 1, 2, 4, and 5. In the case of slot 3, since the Pcell is changed to cell 1, the slot may be excluded.
- a flexible symbol that does not overlap with the UL symbol and the SS/PBCH block may be considered as previously defined in TS38.213. For convenience of description, the above process is omitted.
- an additional delay may occur in completing the repeated PUCCH transmission. If the Pell is changed frequently, this additional delay may be further increased. In particular, this delay is not suitable for services requiring low delay.
- the UE performs repeated PUCCH transmission in one cell, and does not repeatedly transmit PUCCH in another cell.
- the repeated transmission of the PUCCH ignores the change of the Pcell according to dynamic PUCCH carrier switching.
- one cell performing repeated PUCCH transmission is a Pcell corresponding to the first slot in which repeated PUCCH transmission is indicated. This is explained in detail with reference to FIG. 22 .
- FIG. 22 is a diagram illustrating PUCCH transmission according to dynamic PUCCH carrier switching according to another embodiment of the present invention.
- the UE may be instructed to transmit PUCCH in slot 1 of cell 0.
- slot 1 of cell 0 is a Pcell in which PUCCH transmission is possible.
- the UE must determine 4 slots for repeated PUCCH transmission from slot 1 above.
- the terminal may be limited to only the slots of cell 0.
- 4 slots are determined regardless of whether or not there is a Pcell. That is, the PUCCH may be repeatedly transmitted in slots 1, 2, 3 and 4. In the case of slot 3, although the Pcell is changed to cell 1, it is not applied in repeated PUCCH transmission.
- the PUCCH may be repeatedly transmitted even in a slot other than the Pcell slot. There may be transmission of another PUCCH in the slot.
- Another PUCCH transmission may be transmitted as follows. As a first method, transmission of another PUCCH may be transmitted in a Pcell determined according to dynamic PUCCH carrier switching. For example, other PUCCHs may be transmitted in slots 6 to 7 of cell 1 in FIG. 22 . That is, from another PUCCH perspective, slots 6 to 7 of cell 1 are Pcell slots in which PUCCH transmission is possible. In the second method, transmission of another PUCCH may also be transmitted in a slot in which the PUCCH is repeatedly transmitted. In FIG.
- slot 3 of cell 0 is a Pcell slot.
- a slot in which PUCCH transmission is determined according to repeated PUCCH transmission may be a Pcell slot.
- PUCCH is repeatedly transmitted in one cell.
- the UE may repeatedly transmit PUCCH on a Pcell determined according to dynamic PUCCH carrier switching.
- FIG. 23 is a diagram illustrating PUCCH transmission according to dynamic PUCCH carrier switching according to another embodiment of the present invention.
- the UE may be configured with three uplink cells. 20, 21 and 22, a new cell 2 is additionally set.
- the new cell 2 has a 15 kHz subcarrier spacing.
- the index sequence of the PUCCH serving cell is [0 2 1 0].
- slots 1, 4, 5, 8, ... of cell 0 are Pcell slots
- slots 6, 7, ... of cell 1 are Pcell slots
- slot 2 of cell 2 is a Pcell slot. .
- the UE may be instructed to transmit PUCCH in slot 1 of cell 0.
- slot 1 of cell 0 is a Pcell in which PUCCH transmission is possible.
- the UE must determine 4 slots for repeated PUCCH transmission from slot 1 above.
- the UE may limit only to Pcell slots of the same cell as the subcarrier interval of cell 0. That is, here, since the subcarrier spacing of cell 0 and cell 2 is the same, the Pcell slots of cell 0 and cell 2 are slots in which repeated PUCCH transmission is possible. That is, PUCCH may be repeatedly transmitted in slots 1, 4, and 5 of cell 0 and slot 2 of cell 2.
- slots 6 and 7 of cell 1 are Pcell slots, but since the subcarrier spacing is different from that of cell 0, they are excluded from the slot for repeated PUCCH transmission.
- FIG. 24 is a diagram illustrating PUCCH transmission according to dynamic PUCCH carrier switching according to another embodiment of the present invention.
- the UE may include a Pcell slot according to dynamic PUCCH carrier switching as a slot for repeated PUCCH transmission.
- the UE may be instructed to transmit PUCCH in slot 1 of cell 0.
- slot 1 of cell 0 is a Pcell in which PUCCH transmission is possible.
- the UE must determine 4 slots for repeated PUCCH transmission from slot 1 above.
- slots in which repeated PUCCH transmission is possible are slots 1 and 2 of cell 0, and slots 6 and 7 of cell 1.
- slots 1 and 2 of cell 0 and slots 6 and 7 of cell 1 are Pcell slots.
- the PUCCH repeatedly transmitted in cell 0 and cell 1 have the same symbol allocation. That is, if the length is L starting from the symbol S in the slot in cell 0, the length is L starting from the symbol S in the slot in cell 1 as well.
- PUCCHs repeatedly transmitted in cell 0 and cell 1 have the same PRB allocation. That is, if the length is L starting from PRB S in cell 0, the length is L starting from PRB S in cell 1 as well. If inter-cell frequency hopping is configured, the start PRB of the PUCCH may be determined according to frequency hopping.
- the UE may set or receive a K1 value for determining a slot in which the HARQ-ACK of the PDSCH is transmitted through the RRC signal or the DCI format.
- the K1 value is a slot unit according to the subcarrier interval of the cell in which the PUCCH is transmitted. (If a sub-slot is set, the K1 value is per sub-slot).
- one cell among cells having different subcarrier spacings may be indicated as a PUCCH serving cell. Therefore, when the UE interprets the K1 value, since the subcarrier interval of the PUCCH serving cell may be different, a method for interpreting the K1 value is required. Hereinafter, detailed solutions for this are disclosed.
- the subcarrier spacing for interpreting the K1 value follows the subcarrier spacing of the Pcell. That is, the UE may determine a slot in which to transmit the PUCCH including the HARQ-ACK based on the subcarrier interval of the Pcell.
- the subcarrier interval for interpreting the K1 value follows the subcarrier interval of one of the candidates of the PUCCH serving cell. For example, the lowest subcarrier spacing to the highest subcarrier spacing may be followed.
- the subcarrier interval for interpreting the K1 value may be set by the base station to the terminal. This may be the same as or different from the subcarrier spacing of the Pcell.
- the UE may transmit the PUCCH in the slot of the PUCCH serving cell overlapping the slot.
- the PUCCH is transmitted in the slot.
- the PUCCH is transmitted in one of the slots.
- the terminal may select the most temporally advanced slot among the slots. By selecting the most advanced slot in time, the UE can reduce the delay by transmitting the PUCCH at the earliest time.
- the PUCCH resource in the slot may be determined according to the RRC configuration or the PUCCH resource indicator indicated by the DCI format. If the PUCCH resource determined by the PUCCH resource indicator in the slot overlaps with a symbol that cannot be transmitted in uplink, the PUCCH may be dropped without being transmitted.
- the terminal may select the most temporally advanced slot among the slots in which the PUCCH can be transmitted among the slots.
- the UE determines a slot and determines whether PUCCH resources can be transmitted. In this process, if transmission is impossible, the PUCCH is not transmitted and is dropped. To prevent this, the UE first determines the PUCCH resource using the PUCCH resource indicator indicated by the RRC configuration or DCI format. If the PUCCH resource can be transmitted in the most temporally advanced slot among the slots, the UE transmits the PUCCH in the most temporally advanced slot. If transmission is impossible in the most temporally advanced slot, the UE may determine whether the PUCCH resource can be transmitted in the next slot. In this way, it is possible to prevent unnecessary PUCCH drop by transmitting the PUCCH in an earlier slot.
- a method for a terminal to receive a physical downlink control channel and a physical downlink shared channel and a method for transmitting a physical uplink control channel and a physical uplink shared channel will be described with reference to FIGS. 25 to 26 .
- 25 is a diagram illustrating scheduling of a physical downlink shared channel according to an example.
- the terminal may receive a physical downlink control channel transmitted from the base station.
- information such as a control resource set (CORESET) or a search space may be set.
- CORESET control resource set
- search space a search space
- the control resource set includes information on a frequency domain in which a physical downlink control channel should be received. More specifically, the information of the control resource set may include the number of consecutive symbols and the index of PRB or PRB sets to which the terminal should receive the physical downlink control channel. Here, the number of consecutive symbols is one of 1, 2, or 3.
- a search space includes time information for receiving a set of PRBs indicated by the control resource set. More specifically, the information of the search space may include at least one of a periodicity and an offset. Here, a period or an offset may be indicated in units of slots or subslots or symbols or symbol sets or slot sets. Additionally, the information on the search space may include a CCE aggregation level received by the UE, the number of PDCCHs monitored for each CCE aggregation level, a search space type, or DCI format and RNTI information to be monitored.
- the CCE aggregation level has at least one of 1, 2, 4, 8, and 16.
- the UE may monitor the PDCCH in the same number of CCEs as the value of the CCE aggregation level.
- the search space types are a common search space (CSS) and a UE-specific search space.
- the common search space is a search space in which all terminals of a cell or terminals of a part of a cell monitor the PDCCH in common.
- the terminal is a PDCCH broadcast to all terminals of the cell or some terminals of the cell in this search space (eg, SI-RNTI, RA-RNTI, MsgB-RNTI, P-RNTI, TC-RNTI, INT-RNTI, SFI- At least one RNTI of RNTI, TPC-PUSCH-RNTI, TPC-PUCCH-RNTI, TPC-SRS-RNTI, CI-RNTI, C-RNTI, MCS-C-RNTI, CS-RNTI(s), or PS-RNTI It is possible to monitor and receive PDCCH candidates (candidates) carrying DCI having a CRC scrambled with .
- PDCCH eg, C-RNTI, MCS-C-RNTI, SP-CSI-RNTI, CS-RNTI(s), SL-RNTI, SL-CS-RNTI, or It is possible to monitor and receive PDCCH candidates (candidates) that deliver DCI having a CRC scrambled with at least one RNRTI of SL-L-CS-RNTI.
- the terminal may receive a PDCCH carrying DCI instructing reception of a physical downlink shared channel, transmission of a physical uplink control channel or transmission of a physical uplink shared channel in a common search space and a terminal specific search space.
- the DCI format monitored by the UE scheduled for physical uplink shared channel transmission and physical downlink shared channel reception from the base station may be DCI formats 0_0, 0_1, 0_2, 1_0, 1_1, to 1_2.
- the RNTI information may include at least one RNTI of CS-RNTI, MCS-C-RNTI, and C-RNTI.
- the CS-RNTI is used by the base station to activate/release or schedule retransmission of a semi-persistent (SPS) PDSCH to a configured grant (CG) PUSCH, and may be used by the terminal to receive it.
- SPS semi-persistent
- CG configured grant
- the MCS-C-RNTI is used by the base station to schedule a PDSCH or PUSCH using a modulation and coding scheme (MCS) having high reliability, and may be used by the terminal to receive it.
- MCS modulation and coding scheme
- the C-RNTI may be used by a base station to schedule a PDSCH or a PUSCH, and may be used by a terminal to receive it.
- the DCI format that may be included in the PDCCH monitored by the UE may further include at least the following.
- DCI format 2_0 includes dynamic SFI (slot format indicator) information indicating the direction of the symbol of the slot as uplink, downlink, or flexible symbol.
- the RNTI used for DCI format 2_0 is SFI-RNTI.
- DCI format 2_1 includes a DL preemption indication (or interrupted transmission indication) indicating that there is no downlink transmission transmitted to the UE in the PRB(s) and symbol(s) from the base station.
- the RNTI used for DCI format 2_1 is INT-RNTI.
- DCI format 2_4 includes a UL cancellation indication indicating that the UE can cancel uplink transmission in PRB(s) and symbol(s).
- the RNTI used for DCI format 2_4 is CI-RNTI.
- the UE may determine PDCCH candidates to receive the PDCCH based on the configured control resource set and information on the search space. After monitoring the PDCCH candidate and checking the CRC based on the RNTI value, the UE may determine whether the correct PDCCH has been received.
- the RNTI value may include at least C-RNTI, MCS-C-RNTI, CS-RNTI, and SFI-RNTI, INT-RNTI, and CI-RNTI values.
- the DCI may include one of DCI formats 0_0, 0_1, to 0_2 for scheduling a physical uplink shared channel (PUSCH).
- the DCI may include one of DCI formats 1_0, 1_1, and 1_2 for scheduling a physical downlink shared channel (PDSCH).
- the DCI may include one of DCI formats 1_0, 1_1, and 1_2 for scheduling a physical uplink control channel (PUCCH).
- the PUCCH may include a PUCCH transmitting HARQ-ACK.
- the DCI may include DCI formats 2_0, 2_1, to 2_4.
- the terminal When the terminal receives DCI formats 1_0, 1_1, to 1_2 for scheduling a physical downlink shared channel (PDSCH), the terminal must receive a downlink shared channel scheduled by the DCI format. To this end, the UE must interpret (determine) the slot in which the physical downlink shared channel is scheduled from the DCI format and the start index and length of the symbol in the slot.
- the TDRA fields of DCI formats 1_0, 1_1, and 1_2 may indicate a K0 value that is timing information of a scheduled slot, and an SLIV value that is an index and length of a start symbol in the slot.
- the value of K0 may be a non-negative integer value.
- SLIV may be a value obtained by jointly encoding the values of the index (S) and length (L) of the start symbol in the slot.
- the SLIV may be a value in which the values of the index (S) and the length (L) of the start symbol in the slot are transmitted separately.
- S may have a value of one of 0, 1, Z, and 13, and L may have a value of one of natural numbers satisfying the condition that S+L is less than or equal to 14.
- S may have one of 0, 1, J, and 11, and L may have a value of one of natural numbers satisfying a condition in which S+L is less than or equal to 12.
- the UE may determine a slot in which the physical downlink shared channel (PDSCH) should be received based on the K0 value. More specifically, based on the K0 value, the index of the slot in which the DCI is received, the subcarrier spacing (SCS) of the downlink BWP receiving the DCI, or the subcarrier spacing of the downlink BWP receiving the scheduled downlink shared channel. It is possible to determine a slot in which the physical downlink shared channel should be received.
- the K0 value More specifically, based on the K0 value, the index of the slot in which the DCI is received, the subcarrier spacing (SCS) of the downlink BWP receiving the DCI, or the subcarrier spacing of the downlink BWP receiving the scheduled downlink shared channel. It is possible to determine a slot in which the physical downlink shared channel should be received.
- SCS subcarrier spacing
- the subcarrier spacing of the downlink BWP receiving the DCI and the downlink BWP receiving the scheduled physical downlink shared channel (PDSCH) are the same. Assume that DCI is received in downlink slot n. In this case, the downlink shared channel (PDSCH) must be received in downlink slot n+K0.
- the subcarrier interval of the downlink BWP receiving the DCI is 15 kHz*2 ⁇ mu_PDCCH
- the subcarrier interval of the downlink BWP receiving the scheduled physical downlink shared channel (PDSCH) is 15kHz*2 ⁇ mu_PDSCH
- the index floor(n*2 ⁇ mu_PDSCH/2 ⁇ mu_PDCCH)+K0 of the downlink slot is an index according to the subcarrier interval of the downlink BWP for receiving the physical downlink shared channel.
- mu_PDCCH, to mu_PDSCH may have values of 0, 1, 2, and 3.
- PDSCH physical downlink shared channel
- the terminal receives the downlink shared channel (PDSCH) using the values of the index (S) and length (L) of the start symbol in the slot in the slot where the physical downlink shared channel (PDSCH) should be received based on the K0 value. You can decide which symbols should be done. Symbols for receiving the physical downlink shared channel (PDSCH) are from symbol S to symbol S+L-1 in the slot obtained based on the value K0. For reference, from symbol S to symbol S+L-1 are L consecutive symbols.
- the terminal may additionally receive downlink slot aggregation configuration from the base station.
- the downlink slot aggregation value may be 2, 4, or 8.
- the terminal Upon receiving the downlink slot aggregation setting, the terminal must receive a physical downlink shared channel (PDSCH) in consecutive slots corresponding to the slot aggregation value from the slot obtained based on the K0 value.
- PDSCH physical downlink shared channel
- the terminal When the terminal receives DCI formats 1_0, 1_1, to 1_2 for scheduling the physical uplink control channel, the terminal must transmit the scheduled uplink control channel.
- the physical uplink control channel may include HARQ-ACK information.
- the PDSCH-to-HARQ_feedback timing indicator field included in the DCI formats 1_0, 1_1, and 1_2 may indicate a K1 value, which is a value for information on a slot in which a scheduled uplink control channel is to be transmitted.
- the value of K1 may be a non-negative integer value.
- the K1 value of DCI format 1_0 may indicate one of ⁇ 0, 1, 2, 3, 4, 5, 6, 7 ⁇ .
- the K1 value that can be indicated in DCI formats 1_1 to 1_2 may be configured or set from a higher layer.
- the HARQ-ACK information may be HARQ-ACK information on whether or not reception of two types of channels is successful.
- a physical downlink shared channel (PDSCH) when a physical downlink shared channel (PDSCH) is scheduled through the DCI formats 1_0, 1_1, to 1_2, it may be a HARQ-ACK for whether the reception of the physical downlink shared channel (PDSCH) is successful.
- the DCI formats 1_0, 1_1, and 1_2 are DCI indicating the release of a semi-static physical downlink shared channel (SPS PDSCH), the DCI formats 1_0, 1_1, to 1_2 for success in reception It may be HARQ-ACK.
- SPS PDSCH semi-static physical downlink shared channel
- the UE may determine the slot for transmitting the uplink control channel including the first type of HARQ-ACK information as follows.
- the UE may determine an uplink slot overlapping the last symbol of a physical downlink shared channel (PDSCH) corresponding to the HARQ-ACK information.
- PDSCH physical downlink shared channel
- the uplink slot through which the UE transmits the physical uplink control channel including the HARQ-ACK information may be m+K1.
- the index of the uplink slot is a value according to the subcarrier interval of the uplink BWP through which the uplink control channel is transmitted.
- the ending symbol indicates the last symbol of a scheduled PDSCH in the last slot among slots in which a physical downlink shared channel (PDSCH) is received.
- PDSCH physical downlink shared channel
- PDSCH downlink shared channel
- the UE determines an uplink slot overlapping the last symbol of the PDSCH scheduled in the downlink slot n+3.
- the last symbol of the PDSCH of the downlink slot n+3 overlaps the uplink slot n+3. Accordingly, the UE transmits the PUCCH in the uplink slot n+3+K1, that is, the slot n+5.
- the UE may determine the slot for transmitting the physical uplink control channel including the second type of HARQ-ACK information as follows.
- the UE may determine an uplink slot overlapping the ending symbol of a physical downlink control channel (PDCCH) corresponding to the HARQ-ACK information.
- the slot through which the terminal transmits the uplink control channel including the HARQ-ACK information may be m+K1.
- the slot index is a value according to the subcarrier interval of the uplink BWP through which the physical uplink control channel (PUCCH) is transmitted.
- the terminal When the terminal receives DCI formats 0_0, 0_1, to 0_2 for scheduling the physical uplink shared channel, the terminal must transmit the scheduled uplink shared channel. To this end, the UE must interpret (determine) the slot in which the physical uplink shared channel is scheduled from DCI and the start index and length of the symbol in the slot.
- the TDRA field may indicate a K2 value, which is a value for information on a scheduled slot, and SLIV, a value for information on an index and length of a start symbol in the slot.
- the value of K2 may be a non-negative integer value.
- SLIV may be a value obtained by jointly encoding the values of the index (S) and length (L) of the start symbol in the slot.
- the SLIV may be a value in which the values of the index (S) and the length (L) of the start symbol in the slot are transmitted separately.
- S may have a value of one of 0, 1, Z, and 13, and L may have a value of one of natural numbers satisfying the condition that S+L is less than or equal to 14.
- S may have one of 0, 1, J, and 11, and L may have a value of one of natural numbers satisfying the condition that S+L is less than or equal to 12.
- the UE may determine a slot in which to transmit a physical uplink shared channel (PUSCH) based on the K2 value. More specifically, based on the K2 value, the index of the slot in which the DCI is received, the subcarrier interval of the downlink BWP receiving the DCI or the subcarrier interval of the uplink BWP transmitting the uplink shared channel, a physical uplink shared channel (PUSCH) It is possible to determine a slot in which to transmit .
- PUSCH physical uplink shared channel
- the subcarrier spacing between the downlink BWP receiving the DCI and the uplink BWP transmitting the scheduled physical uplink shared channel (PUSCH) is the same. Assume that DCI is received in downlink slot n. In this case, the uplink shared channel (PUSCH) must be transmitted in the uplink slot n+K2.
- the subcarrier interval of the downlink BWP receiving the DCI is 15kHz*2 ⁇ mu_PDCCH
- the subcarrier interval of the uplink BWP receiving the scheduled physical uplink shared channel (PUSCH) is 15kHz*2 ⁇ mu_PUSCH
- the index floor(n*2 ⁇ mu_PUSCH/2 ⁇ mu_PDCCH)+K2 of the uplink slot is an index according to the subcarrier interval of the uplink BWP for transmitting the uplink shared channel.
- mu_PDCCH to mu_PUSCH may have values of 0, 1, 2, and 3.
- PUSCH physical uplink shared channel
- the UE transmits the uplink shared channel (PUSCH) using the values of the index (S) and length (L) of the start symbol in the slot in the slot where the physical uplink shared channel (PUSCH) should be transmitted based on the K2 value. You can decide which symbols should be done.
- symbols range from symbol S to symbol S+L-1 in a slot obtained based on the K2 value. For reference, from symbol S to symbol S+L-1 are L consecutive symbols.
- the terminal may additionally receive uplink slot aggregation configuration from the base station.
- the uplink slot aggregation value may be 2, 4, or 8.
- the UE When the uplink slot aggregation is configured, the UE must transmit a physical uplink shared channel (PUSCH) in consecutive slots corresponding to the slot aggregation value from the slot obtained based on the K2 value.
- PUSCH physical uplink shared channel
- the UE determines a slot in which a scheduled physical downlink shared channel (PDSCH) is received, a physical uplink control channel (PUCCH), and a slot in which a physical uplink shared channel (PUSCH) is transmitted.
- K0 value , K1 values, and K2 values were used.
- a slot obtained by assuming that the K0 value, the K1 value, and the K2 value are 0 is called a reference point or a reference slot.
- the reference slot to which the K0 value is applied is the downlink slot n, which is the slot in which the PDCCH is received.
- the reference slot to which the K1 value is applied is an uplink slot n+3, which is an uplink slot overlapping the last symbol of the PDSCH.
- the reference slot to which the K1 value is applied is the uplink slot n, which is an uplink slot overlapping the last symbol of the PDCCH. Also, the reference slot to which the K2 value is applied is the uplink slot n.
- the following description assumes that the subcarrier spacing of the downlink BWP for receiving the PDSCH and PDCCH and the subcarrier spacing of the uplink BWP for transmitting the PUSCH and PUCCH are the same. In this case, a separate uplink slot and a downlink slot are not distinguished and expressed as a slot.
- the base station may use a semi-persistent scheduling (SPS) method as a method for transmitting it.
- SPS semi-persistent scheduling
- the terminal may receive configuration information for the SPS scheme from the base station.
- the configuration information may be transmitted through an RRC signal.
- the setting information may include at least the period of the SPS.
- the period of the SPS may be one of a slot unit and a ms unit.
- the terminal may receive a PDCCH for activating or deactivating (deactivation or release) the SPS scheme from the base station.
- the PDCCH may include DCI formats 1_0, 1_1, and 1_2.
- DCI formats 1_0, 1_1, and 1_2 may be scrambled with CS-RNTI.
- the UE may determine whether the PDCCH indicates activation or deactivation of the SPS scheme. The determination may be based on the values of the FDRA, RV, MCS to HPN (HARQ process number) fields delivered by the DCI format.
- the terminal When the terminal receives the PDCCH for activating the SPS method from the base station, the terminal may obtain the following information through the following field of the PDCCH.
- the UE can acquire information on the start symbol and length in the slot and the slot where the SPS PDSCH of the SPS scheme starts.
- the slot where the SPS PDSCH of the SPS scheme starts is indicated based on the PDCCH for activating the SPS scheme, and the start symbol and the length within the slot are indicated by SLIV.
- the UE can acquire information about a slot in which to transmit the HARQ-ACK of the SPS PDSCH of the SPS method.
- the slot for transmitting the HARQ-ACK of the PDSCH of the SPS method may be indicated based on the slot to which the last symbol of the SPS PDSCH belongs.
- the UE may receive the SPS PDSCH through the information on the PDCCH, and may transmit a HARQ-ACK indicating whether the reception of the SPS PDSCH is successful.
- the UE acquires information on the start symbol and length in the slot and the slot where the SPS PDSCH of the SPS scheme starts through the TDRA field.
- the UE may receive the SPS PDSCH at every SPS period. For example, when the terminal is instructed to receive the SPS PDSCH in slot n from the active PDCCH, the terminal must receive the SPS PDSCH in slot n, slot n+P, slot n+2*P, and .
- the slot in which the HARQ-ACK is transmitted is based on the PDSCH-to-HARQ_feedback timing indicator field. For example, if the PDSCH-to-HARQ_feedback timing indicator indicates the K1 value, the UE transmits the HARQ-ACK of the SPS PDSCH received in slot n in slot n+K1, and the SPS PDSCH received in slot n+P HARQ-ACK of can be transmitted in slot n+P+K1.
- the HARQ-ACK of the SPS PDSCH is 1 bit for convenience unless otherwise specified.
- the SPS PDSCH has a plurality of bits according to the configuration of a higher layer, the present invention can be interpreted accordingly.
- the problem to be solved in the present invention is to determine the PUCCH for transmitting the HARQ-ACK of the SPS PDSCH to the SPS PDSCH.
- 28 is a diagram illustrating reception of an SPS PDSCH.
- the UE receives the SPS PDSCH.
- the period of the SPS is given as P_SPS.
- the UE must receive the SPS PDSCH every P_SPS period of the SPS.
- the first SPS PDSCH was named SPS1
- the second SPS PDSCH was named SPS2
- the third SPS PDSCH was named SPS3
- the fourth SPS PDSCH was named SPS4
- the fifth SPS PDSCH was named SPS5.
- the UE may determine whether the SPS PDSCH can be received according to the direction of the cell.
- TDD time division duplex
- the terminal may receive one of a downlink symbol, an uplink symbol, and a flexible symbol in the direction of each symbol of the cell.
- the downlink symbol is a symbol through which the UE can receive a downlink signal or channel
- the uplink symbol is a symbol through which the UE can transmit an uplink signal or channel
- the flexible symbol is a symbol whose direction is not yet determined. It is a symbol capable of receiving/transmitting a link/uplink signal or channel.
- the UE receives the SPS PDSCH.
- the UE does not receive the SPS PDSCH.
- the UE receives or does not receive the SPS PDSCH.
- whether to receive is determined according to separate signaling or may be selected as one of the two (receive or not) operations. Exemplarily, if the UE is configured to receive dynamic SFI (slot format information), the SPS PDSCH is not received. If the UE is not configured to receive dynamic SFI (slot format information), the SPS PDSCH is received.
- the operation of the terminal is described with a downlink symbol and an uplink symbol. However, it may be interpreted as operating as a downlink symbol or an uplink symbol according to the setting of the flexible symbol. Exemplarily, when determining reception of the SPS PDSCH, the flexible symbol may be interpreted as an uplink symbol.
- SPS1, SPS2, SPS3, and SPS4 overlap downlink symbols. Accordingly, the terminal receives SPS1, SPS2, SPS3, and SPS4. However, since SPS5 overlaps the uplink symbol, the UE cannot receive SPS5. In addition, the SPS5 may not be received, and a corresponding HARQ-ACK may not be transmitted.
- 29 is a diagram illustrating HARQ-ACK transmission of an SPS PDSCH.
- transmission of a PUCCH carrying the HARQ-ACK of the SPS PDSCH of the UE is shown.
- the PDSCH-to-HARQ_feedback timing indicator assumes K1.
- the UE must receive the SPS PDSCH every P_SPS period of the SPS, and transmit the PUCCH carrying the HARQ-ACK of the SPS PDSCH after the K1 slot from the slot in which the SPS PDSCH is received.
- FIG. 29 transmission of a PUCCH carrying the HARQ-ACK of the SPS PDSCH of the UE is shown.
- the PDSCH-to-HARQ_feedback timing indicator assumes K1.
- the UE must receive the SPS PDSCH every P_SPS period of the SPS, and transmit the PUCCH carrying the HARQ-ACK of the SPS PDSCH after the K1 slot from the slot in which the SPS PDSCH is received.
- HARQ-ACK information of SPS1 is referred to as b1
- HARQ-ACK information of SPS2 is referred to as b2
- HARQ-ACK information of SPS3 is referred to as b3
- HARQ-ACK information of SPS4 is referred to as b4.
- PUCCH for SPS1 conveying HARQ-ACK information (b1) of SPS1
- PUCCH for SPS2 conveying HARQ-ACK information (b2) of SPS2
- HARQ-ACK information (b3) of SPS3 are transmitted
- a PUCCH that transmits HARQ-ACK information (b4) of SPS4 is referred to as PUCCH for SPS3
- a PUCCH that transmits HARQ-ACK information (b4) of SPS4 is referred to as PUCCH for SPS4.
- the UE transmits the PUCCH of the SPS PDSCH.
- the UE does not transmit the PUCCH of the SPS PDSCH.
- the UE transmits or does not transmit the PUCCH of the SPS PDSCH.
- whether to transmit is determined according to separate signaling or may be selected as one of the two (transmission or non-transmission) operations.
- the UE is configured to receive dynamic SFI (slot format information)
- the PUCCH of the SPS PDSCH is not transmitted. If the UE is not configured to receive dynamic SFI (slot format information), the PUCCH of the SPS PDSCH is transmitted.
- the operation of the terminal is described with a downlink symbol and an uplink symbol. However, it may be interpreted as operating as a downlink symbol or an uplink symbol according to the setting of the flexible symbol.
- the flexible symbol when determining transmission of PUCCH carrying HARQ-ACK of SPS PDSCH, the flexible symbol may be interpreted as the same operation as the downlink symbol.
- PUCCH for SPS1, PUCCH for SPS2, and PUCCH for SPS3 overlap with downlink symbols. Accordingly, the UE cannot transmit PUCCH for SPS1, PUCCH for SPS2, or PUCCH for SPS3. However, since PUCCH for SPS4 overlaps the uplink symbol, the UE may transmit PUCCH for SPS4. Accordingly, in FIG. 29 , the UE cannot transmit HARQ-ACK information of SPS1, SPS2, and SPS3 to the base station, but may transmit HARQ-ACK information of SPS4 to the base station.
- the reception of the SPS PDSCH of the UE and transmission of the PUCCH carrying the HARQ-ACK of the SPS PDSCH have been described. It may be extended to a case in which a plurality of cells are configured for one UE. Specifically, the operation of the terminal in the plurality of cells is as follows.
- the terminal supports the half-duplex operation and does not support the full-duplex operation, when a cell is a downlink symbol, or receives an instruction or configuration to receive a downlink signal or channel, the symbol in another cell is It may be regarded as a downlink symbol. That is, the terminal does not transmit an uplink signal or a channel in the symbol in another cell. If the terminal supports the half-duplex operation and does not support the full-duplex operation, when a certain cell is an uplink symbol, or when an uplink signal or channel transmission is instructed or configured, the symbol in another cell is It may be regarded as an uplink symbol. That is, the terminal does not receive a downlink signal or a channel in the symbol in another cell.
- This embodiment discloses a method for the terminal to transmit the HARQ-ACK that has not been transmitted to the base station.
- FIG. 30 is a diagram illustrating a PUCCH for transmitting HARQ-ACK of an SPS PDSCH according to an embodiment.
- the UE when the UE fails to transmit the PUCCH including the HARQ-ACK of the SPS PDSCH, the UE may transmit the HARQ-ACK in a transmittable PUCCH.
- transmittable PUCCH is specified as PUCCH for SPS.
- the terminal may perform the following steps.
- the UE may determine the receivable SPS PDSCH and the non-receivable SPS PDSCH. The determination may be performed based on the direction of the symbol.
- the UE may determine the HARQ-ACK information of the receivable SPS PDSCH as HARQ-ACK information to be transmitted to the base station, and the HARQ-ACK information of the unreceivable SPS PDSCH may be excluded from the HARQ-ACK information to be transmitted to the base station.
- the excluding method may include not transmitting the HARQ-ACK information or including NACK as the HARQ-ACK information.
- the terminal may select a PUCCH for transmitting HARQ-ACK information to be transmitted to the base station. If, according to the value of the PDSCH-to-HARQ_feedback timing indicator field, a PUCCH carrying HARQ-ACK information of the SPS PDSCH can be transmitted, the terminal may transmit the PUCCH including HARQ-ACK information of the SPS PDSCH. If, according to the value of the PDSCH-to-HARQ_feedback timing indicator field, PUCCH carrying HARQ-ACK information of the SPS PDSCH cannot be transmitted, the UE includes the HARQ-ACK information of the SPS PDSCH in PUCCH for SPS. .
- the PUCCH for SPS is not a PUCCH that transmits HARQ-ACK information of the SPS PDSCH according to the value of the PDSCH-to-HARQ_feedback timing indicator field.
- the UE In a third step, the UE must determine PUCCH for SPS.
- PUCCH Physical Uplink Control Channel
- the UE may determine the PUCCH for SPS as follows. If the PUCCH carrying the HARQ-ACK of the first SPS PDSCH cannot be transmitted, the UE may check whether the PUCCH carrying the HARQ-ACK of the next second SPS PDSCH is transmittable. If the PUCCH carrying the HARQ-ACK of the second SPS PDSCH is transmittable, the UE may transmit the HARQ-ACK of the first SPS PDSCH and the HARQ-ACK of the second SPS PDSCH on the transmittable PUCCH.
- the UE may check whether the PUCCH carrying the HARQ-ACK of the next third SPS PDSCH is transmittable. In this way, if the PUCCH carrying the HARQ-ACK of the first SPS PDSCH cannot be transmitted, the terminal checks whether the PUCCH of the SPS PDSCH among the SPS PDSCHs subsequent to the first SPS PDSCH is transmittable, and the second in the PUCCH of the transmittable SPS PDSCH 1 Transmits HARQ-ACK of SPS PDSCH.
- 31 is a diagram illustrating a PUCCH for transmitting HARQ-ACK of an SPS PDSCH according to another embodiment.
- a PUCCH (PUCCH for SPS1) carrying the HARQ-ACK (b1) of SPS1 cannot be transmitted.
- the UE In order to transmit this HARQ-ACK (b1), the UE must select another PUCCH. First, it may be determined whether a PUCCH (PUCCH for SPS2) carrying the HARQ-ACK (b2) of SPS2, which is the SPS PDSCH after SPS1, is transmittable.
- the PUCCH (PUCCH for SPS2) carrying the HARQ-ACK (b2) of the SPS2 cannot be transmitted.
- the UE may transmit the HARQ-ACK (b1) of SPS1 in PUCCH for SPS4 that transmits the HARQ-ACK (b4) of SPS4.
- the HARQ-ACK (b2) of SPS2 and the HARQ-ACK (b3) of SPS3 may also be transmitted in PUCCH for SPS4 carrying the HARQ-ACK (b4) of SPS4.
- PUCCH for SPS4 not only HARQ-ACK(b4) of SPS4, but also HARQ-ACK(b1) of SPS1, HARQ-ACK(b2) of SPS2, HARQ-ACK(b3) of SPS3 may include That is, PUCCH for SPS4 may include [b1 b2 b3 b4]. (Here, the order of b1 b2 b3 b4 is arranged according to the order of the slots, but may be arranged differently)
- the first embodiment may be applied as follows.
- One UE may be given a plurality of SPS configurations in one cell. Each SPS setting may have each SPS period. The UE may receive each PDCCH for activating each SPS configuration. Each PDCCH may indicate the value of each PDSCH-to-HARQ_feedback timing indicator field.
- 32 to 34 are diagrams illustrating PUCCHs for transmitting HARQ-ACKs of SPS PDSCHs in a plurality of SPS configurations according to another embodiment.
- SPS1-1, SPS1-2, SPS1-3, and SPS1-4 indicate the SPS PDSCH according to the first SPS configuration
- b1-1, b1-2, b1-3, and b1-4 are SPS1-1 and SPS1-2.
- SPS1-3 represents HARQ-ACK of SPS1-4
- PUCCH for SPS1-4 is SPS1-1, SPS1-2, SPS1-3
- the value of the PDSCH-to-HARQ_feedback timing indicator field according to the first SPS configuration is K1-1.
- SPS2-1 and SPS2-2 indicate SPS PDSCH according to the second SPS configuration
- b2-1 and b2-2 indicate HARQ-ACK of SPS2-1 and SPS2-2
- PUCCH for SPS2-1 indicates PUCCH carrying HARQ-ACK of SPS2-1 and SPS2-2.
- a shorter SPS period is set as compared to the second SPS setting.
- PUCCH for SPS1 that delivers HARQ-ACK (b1-1) of SPS1-1, HARQ-ACK (b1-2) of SPS1-2, and HARQ-ACK (b1-3) of SPS1-3 according to the first SPS configuration -1
- PUCCH for SPS1-2, and PUCCH for SPS1-3 cannot be transmitted.
- PUCCH for SPS2-1 carrying the HARQ-ACK (b2-1) of SPS2-1 according to the second SPS configuration cannot be transmitted.
- the 1-1 embodiment of the present invention is shown in FIG. 32 .
- the UE may apply the first embodiment to an SPS PDSCH having the same SPS configuration. That is, the HARQ-ACK of an SPS PDSCH according to one SPS configuration can be transmitted in a PUCCH carrying the HARQ-ACK of another SPS PDSCH according to the SPS configuration. However, the HARQ-ACK of the SPS PDSCH according to one SPS configuration cannot be transmitted in the PUCCH carrying the HARQ-ACK of the SPS PDSCH according to the other SPS configuration.
- PUCCH for SPS1-4 may include [b1-1, b1-2, b1-3, b1-4].
- the HARQ-ACK (b2-1) of SPS2-1 of the second configuration may be included in PUCCH for SPS2-2 carrying the HARQ-ACK (b2-2) of SPS2-2 of the second configuration. Therefore, PUCCH for SPS2-2 may include [b2-1, b2-2].
- FIG. 33 A 1-2 embodiment of the present invention is shown in FIG. 33 .
- the UE may apply the first embodiment to the SPS PDSCH of all SPS configurations. That is, the HARQ-ACK of the SPS PDSCH according to one SPS configuration may be transmitted in the PUCCH carrying the HARQ-ACK of the SPS PDSCH according to the same or different SPS configuration.
- HARQ-ACK (b1-1) of SPS1-1, HARQ-ACK (b1-2) of SPS1-2, and HARQ-ACK (b1-3) of SPS1-3 of the first configuration cannot be transmitted, transmit PUCCH have to find In this case, a transmittable PUCCH can be found irrespective of the SPS configuration.
- the HARQ-ACK (b1-1) of SPS1-1 may be included in the earliest PUCCH for SPS2-2 among transmittable PUCCHs PUCCH for SPS1-4 and PUCCH for SPS2-2.
- the HARQ-ACK (b1-4) of SPS1-4 of the first configuration is included, and in PUCCH for SPS2-2, HARQ-ACK of SPS1-1 of the first configuration (b1-1) is included.
- HARQ-ACK (b1-2) of SPS1-2 HARQ-ACK (b1-3) of SPS1-3
- HARQ-ACK (b2-1) of SPS2-1 of the second configuration HARQ of SPS2-2 -ACK(b2-2) may be included.
- Examples 1-3 of the present invention are shown in FIG. 34 .
- the UE may apply only the SPS PDSCH of a specific SPS configuration. That is, the HARQ-ACK of the SPS PDSCH according to one SPS configuration may be transmitted in the PUCCH carrying the HARQ-ACK of the SPS PDSCH according to the specific SPS configuration.
- the specific SPS setting may be the SPS setting having the lowest ID among the SPS settings configured for the terminal.
- the specific SPS setting may be an SPS setting having the shortest SPS period among SPS settings configured for the terminal.
- HARQ-ACK (b1-1) of SPS1-1, HARQ-ACK (b1-2) of SPS1-2, and HARQ-ACK (b1-3) of SPS1-3 of the first configuration cannot be transmitted, transmit PUCCH have to find In this case, a transmittable PUCCH of the first SPS configuration, which is a specific SPS configuration, may be found.
- HARQ-ACK (b1-1) of SPS1-1 may be included in PUCCH for SPS1-4 of the first SPS configuration, which is a specific SPS configuration among PUCCH for SPS1-4 and PUCCH for SPS2-2, which are transmittable PUCCHs. there is.
- HARQ-ACK (b2-1) of SPS2-1 of the second configuration cannot be transmitted, it is necessary to find a transmittable PUCCH.
- a transmittable PUCCH of the first SPS configuration which is a specific SPS configuration, may be found.
- HARQ-ACK (b2-1) of SPS2-1 may be included in PUCCH for SPS1-4 of transmittable PUCCH and PUCCH for SPS1-4 of the first SPS configuration, which is a specific SPS configuration among PUCCH for SPS2-2. there is.
- PUCCH for SPS1-4 may include [b1-1, b1-2, b1-3, b1-4, b2-1].
- PUCCH for 2-2 may include [b2-2].
- Priority may be set in the SPS setting.
- transmittable PUCCH may be limited to SPS configurations having the same priority. That is, if a priority is set in the SPS configuration, the HARQ-ACK of the SPS configuration having one priority may be included in the PUCCH delivering the HARQ-ACK of the SPS configuration having the priority.
- SPS settings may have the same priority.
- the HARQ-ACK of the SPS of the first setting is the transmission of the SPS setting having the same priority as the first setting It may be included in a possible PUCCH (PUCCH for SPS1-4).
- the HARQ-ACK of the SPS of the second configuration may be included in a transmittable PUCCH (PUCCH for SPS2-2) of the SPS configuration having the same priority as the second configuration.
- the HARQ-ACK of the SPS configuration having one priority may be included in the PUCCH delivering the priority or the HARQ-ACK of the SPS configuration having a lower priority than the priority. there is.
- the priority of the first setting is lower than the priority of the second setting.
- the HARQ-ACK of the SPS of the first configuration may be included in the transmittable PUCCH (PUCCH for SPS1-4) of the SPS configuration having the same or lower priority as the first configuration.
- the HARQ-ACK of the SPS of the second configuration may be included in the transmittable PUCCH (PUCCH for SPS1-4) of the SPS configuration having the same or lower priority as the second configuration.
- the UE transmits the HARQ-ACK that was not transmitted in the PUCCH transmitting the HARQ-ACK of the SPS PDSCH, including the HARQ-ACK.
- the UE may unintentionally transmit the HARQ-ACK of the SPS PDSCH together with the HARQ-ACK of the other SPS PDSCH.
- a method for solving this problem is disclosed in the second embodiment.
- the base station may configure the PUCCH resource to the terminal.
- the configuration may be configured in an RRC signal or an SPS activation PDCCH, and the configuration may include at least the following information.
- P_PUCCH PUCCH resource period
- O_PUCCH Offset of PUCCH resource
- the PUCCH resource may indicate a slot in which the PUCCH resource starts. For example, given that the offset value is O_PUCCH, the PUCCH resource starts in the slot O_PUCCH. According to the period P_PUCCH, the PUCCH resource may be present in slot O_PUCCH, slot O_PUCCH+P_PUCCH, slot O_PUCCH+2*P_PUCCH, slot O_PUCCH+3*P_PUCCH, .
- O_PUCCH may be indicated by the PDSCH-to-HARQ_feedback timing indicator field of the SPS-activated PDCCH.
- the PUCCH resource may be set as an index.
- the UE may determine the PUCCH resource corresponding to the index.
- the UE may transmit the HARQ-ACK of the SPS PDSCH by including it in the configured PUCCH resource, as shown in FIG. 35 .
- 35 is a diagram illustrating a PUCCH for transmitting HARQ-ACK of an SPS PDSCH through PUCCH resource configuration according to another embodiment.
- SPS1, SPS2, Z, and SPS8 are shown according to the SPS setting (SPS period (P_SPS)).
- PUCCH A for SPS and PUCCH B for SPS are shown according to the configuration of the PUCCH resource (period of the PUCCH resource (P_PUCCH)).
- the UE may transmit the HARQ-ACK of the SPS PDSCH in the configured PUCCH resource. More specifically, the HARQ-ACK of the SPS PDSCH may select the closest (previous) PUCCH resource among the configured PUCCH resources starting after the last symbol of the SPS PDSCH reception.
- the HARQ-ACK of SPS1 may be included in the closest PUCCH resource after SPS1.
- PUCCH A for SPS and PUCCH B for SPS are PUCCH resources after SPS1
- the HARQ-ACK of SPS1 may be included in the nearest PUCCH A for SPS among them.
- HARQ-ACK of SPS5 may be included in the nearest PUCCH resource after SPS5.
- the HARQ-ACK of SPS5 may be included in PUCCH B for SPS.
- the UE includes the HARQ-ACK of the SPS PDSCH in the nearest PUCCH resource after the reception of the SPS PDSCH.
- the UE needs a processing time for receiving the SPS PDSCH. This may be referred to as a PDSCH processing time. That is, the UE needs a PDSCH processing time as a time for receiving the SPS PDSCH and generating the HARQ-ACK indicating whether the reception of the SPS PDSCH is successful. Therefore, as in the second embodiment, including the HARQ-ACK in the nearest PUCCH after reception of the SPS PDSCH may violate the PDSCH processing time.
- the UE may transmit the HARQ-ACK of the SPS PDSCH in the configured PUCCH resource.
- the PUCCH resource may be selected in consideration of the PDSCH processing time of the SPS PDSCH. More specifically, the HARQ-ACK of the SPS PDSCH may select the closest (previous) PUCCH resource among the configured PUCCH resources starting after the PDSCH processing time from the last symbol of the SPS PDSCH reception.
- 36 is a diagram illustrating a PUCCH for transmitting HARQ-ACK of an SPS PDSCH through PUCCH resource configuration according to another embodiment.
- the HARQ-ACK of SPS4 is the closest PUCCH resource after SPS4, and there are PUCCH A for SPS and PUCCH B for SPS.
- the time between PUCCH A for SPS and SPS4 does not satisfy the PDSCH processing time. Therefore, HARQ-ACK of SPS4 cannot be transmitted in PUCCH A for SPS. Since the time between PUCCH B for SPS and SPS4 satisfies the PDSCH processing time, the HARQ-ACK of SPS4 may be transmitted in PUCCH B for SPS.
- PDSCH processing time a value defined in “5.3 UE PDSCH processing procedure time” of TS38.214 may be used.
- the following embodiment relates to a method of transmitting the HARQ-ACK of the SPS PDSCH and the HARQ-ACK of the SPS release DCI when the terminal receives the SPS deactivation DCI (SPS release DCI).
- FIG. 37 is a diagram illustrating a PUCCH for transmitting an HARQ-ACK of an SPS PDSCH when a UE receives an SPS release DCI according to an embodiment.
- the UE may receive an SPS release DCI between SPS2 and SPS3. Accordingly, the UE does not receive the SPS PDSCHs (SPS3, SPS4) after the SPS release DCI. In this case, the UE must determine how to transmit the HARQ-ACK of the SPS PDSCH.
- the operation when the terminal receives the SPS release DCI is as follows.
- the UE may determine the PUCCH to transmit the HARQ-ACK of the SPS PDSCH regardless of whether the SPS release DCI is received. That is, with reference to FIG. 23, regardless of whether the SPS release DCI is received, the HARQ-ACK (b1) of SPS1, the HARQ-ACK (b2) of the SPS2, and the HARQ-ACK (b3) of the SPS3 are transmitted.
- PUCCH for SPS4 which is a possible PUCCH, may be selected.
- HARQ-ACK (b1) of SPS1, HARQ-ACK (b2) of SPS2, HARQ-ACK (b3) of SPS3, HARQ-ACK of SPS4 in the PUCCH for SPS4 ( b4) may be included, and when receiving the SPS release DCI, in the same manner as in the PUCCH for SPS4, HARQ-ACK(b1) of SPS1, HARQ-ACK(b2) of SPS2, HARQ-ACK(b3) of SPS3, SPS4 of HARQ-ACK (b4) may be included. Therefore, [b1 b2 b3 b4] can be transmitted in PUCCH for SPS4 regardless of whether SPS release DCI is received.
- the HARQ-ACK of the SPS is transmitted regardless of whether the SPS release DCI is received or not, the DTX (reception failure) of the SPS release DCI is robust.
- the HARQ-ACKs of SPS3 and SPS4 are NACK, and this information does not need to be transmitted to the base station. Accordingly, in the fourth embodiment, transmitted HARQ-ACK information may be limited to SPS PDSCHs before SPS release DCI reception. That is, referring to FIG.
- HARQ-ACK (b1) of SPS1 and HARQ-ACK (b2) of SPS2, which are SPS before reception of SPS release DCI, can be transmitted, and after reception of SPS release DCI
- the HARQ-ACK (b3) of SPS3 which is the SPS and the HARQ-ACK (b4) of SPS4 may not be transmitted.
- a PUCCH carrying the HARQ-ACK of the already released SPS was used.
- SPS4 corresponding to PUCCH for SPS4 through which HARQ-ACK is transmitted has already been released. Accordingly, the PUCCH for SPS4 is also released and cannot be used.
- an embodiment for solving this problem is disclosed.
- the operation when the terminal receives the SPS release DCI in the fifth embodiment of the present invention is as follows.
- the UE may determine the PUCCH for transmitting the HARQ-ACK of the SPS release DCI as the PUCCH for transmitting the HARQ-ACK of the SPS PDSCH.
- a more specific example is shown in FIG. 38 .
- 38 is a diagram illustrating a PUCCH for transmitting an HARQ-ACK of an SPS PDSCH when a UE receives an SPS release DCI according to another embodiment.
- PUCCH for transmitting the HARQ-ACK of the SPS release DCI PUCCH for SPS release DCI
- the HARQ-ACK of the SPS release DCI, the HARQ-ACK of the SPS1 (b1), and the HARQ-ACK (b2) of the SPS2 may be included.
- 39 is a diagram illustrating a PUCCH for transmitting an HARQ-ACK of an SPS PDSCH when a UE receives an SPS release DCI according to another embodiment.
- SPS4 corresponding to PUCCH for SPS4 that transmits HARQ-ACK(b1) of SPS1 and HARQ-ACK(b2) of SPS2 is released according to the UE receiving SPS release DCI applied because it has been If SPS4 corresponding to PUCCH for SPS4 is not released (eg, SPS release DCI is received after SPS4), the UE in PUCCH for SPS4 HARQ-ACK (b1) of SPS1 and HARQ-ACK (b2) of SPS2 , HARQ-ACK (b3) of SPS3 and HARQ-ACK (b4) of SPS4 may be transmitted.
- FIG. 40 is a diagram illustrating a PUCCH for transmitting an HARQ-ACK of an SPS PDSCH when a UE receives an SPS release DCI according to another embodiment.
- the UE may include HARQ-ACKs that have not been transmitted in the PUCCH for SPS release DCI that always transmits the HARQ-ACK of the SPS release DCI. Even if SPS4 corresponding to PUCCH for SPS4 is not released (for example, SPS release DCI is received after SPS4), the UE performs HARQ-ACK (b1) of SPS1 and HARQ-ACK (b2) of SPS2 in PUCCH for SPS release DCI ), the HARQ-ACK (b3) of SPS3 may be transmitted.
- Another problem to be solved in this embodiment is to align the order of HARQ-ACK bits.
- the HARQ-ACK may be transmitted on another PUCCH. In this case, the order of HARQ-ACK bits in another PUCCH should be determined.
- the UE may arrange HARQ-ACK bits to be originally transmitted in the PUCCH in advance, and then arrange the delayed HARQ-ACK bits thereafter.
- the HARQ-ACK transmitted by moving to the PUCCH are called delayed HARQ-ACK bits.
- the order of the delayed HARQ-ACK bits may be determined based on at least the following.
- the order of the delayed HARQ-ACK bits may be determined according to the ascending order of the index of the slot of the PUCCH only when the delayed HARQ-ACK is transmitted.
- the order of the delayed HARQ-ACK bits may be determined according to the ascending order of the index of the slot of the SPS PDSCH corresponding to the delayed HARQ-ACK.
- the order of the delayed HARQ-ACK bits may be determined according to the ascending order of the HARQ process number (HPN) of the SPS PDSCH corresponding to the delayed HARQ-ACK.
- HPN HARQ process number
- the order of the delayed HARQ-ACK bits may be determined according to the ascending order of the index of the cell of the SPS PDSCH corresponding to the delayed HARQ-ACK.
- the above criteria may be used in combination. In addition, it is determined according to the ascending order of the cell indices of the SPS PDSCH corresponding to the delayed HARQ-ACK, but other criteria may be additionally applied in the same cell.
- Step 1) (sub-) If the PUCCH resource for SPS HARQ-ACK overlaps the invalid UL symbol in slot n, the UE does not use this PUCCH resource (drop).
- the PUCCH resource for SPS HARQ-ACK is a PUCCH resource set in the upper layer signal n1PUCCH-AN in SPS-config to SPS-PUCCH-AN-r16 in sps-PUCCH-AN-List-r16 .
- n1PUCCH-AN in SPS-config indicates a PUCCH resource for transmitting 1-bit HARQ-ACK of the SPS.
- the PUCCH format is format 0 to 1.
- SPS-PUCCH-AN-r16 in sps-PUCCH-AN-List-r16 indicates up to four PUCCH resources.
- one resource among up to four PUCCH resources is selected according to the SPS HARQ-ACK bit-size.
- the invalid UL symbol may include at least one of semi-static DL, SSB, CORESET#0, a high-priority uplink channel, and a PRACH channel.
- Step 2-1) (sub-)
- the UE When the PUCCH resource for DG HARQ-ACK is scheduled in slot n, the UE multiplexes the SPS HARQ-ACK to be transmitted in slot n with the DG HARQ-ACK and transmits the PUCCH resource for DG HARQ-ACK do.
- the PUCCH resource for DG (dynamic grant) HARQ-ACK is a PUCCH resource in which transmission of the HARQ-ACK of the PDSCH scheduled through DCI formats 1-0, 1-1, and 1-2 is indicated. This may be indicated through the PUCCH resource indicator (PRI) field included in DCI format 1-0, 1-1, and 1-2.
- PRI PUCCH resource indicator
- multiplexing can create a bit sequence by cascading DG HARQ-ACK bits and SPS HARQ-ACK bits to be transmitted in slot n.
- This can be applied to the case of a type-1 codebook or a type-2 codebook.
- the DG HARQ-ACK bits and the SPS HARQ-ACK bits are not transmitted by concatenating them.
- HARQ-ACK bits are arranged and generated in the ascending order of the cell index and in the ascending order of the HARQ process number in one cell index.
- Step2-2 (Sub-) If the PUCCH resource for DG HARQ-ACK is not scheduled in slot n and other configured PUCCH resources are valid, the UE transmits SPS HARQ-ACK instead of the valid configured PUCCH resource.
- another configured PUCCH resource may include a PUCCH resource configured for SPS HARQ-ACK transmission or a PUCCH resource configured for DG HARQ-ACK transmission.
- the PUCCH resource configured for SPS HARQ-ACK transmission may include the PUCCH resource configured in the upper layer signal n1PUCCH-AN in SPS-config to SPS-PUCCH-AN-r16 in sps-PUCCH-AN-List-r16 .
- the PUCCH resource configured for DG HARQ-ACK transmission may include a PUCCH resource that can be indicated by the PUCCH resource indicator (PRI) field of DCI formats 1-0, 1-1, and 1-2.
- PRI PUCCH resource indicator
- the UE may determine that the corresponding PUCCH resource is valid.
- the UE if there are a plurality of PUCCH resources configured to be valid, the UE must determine one of the PUCCH resources. A specific method will be described later.
- Step2-3) If the PUCCH resource for DG HARQ-ACK is not scheduled in (sub-) slot n and all other configured PUCCH resources are not valid, the UE determines whether SPS HARQ-ACK transmission is possible in (sub-) slot n + P judge
- the determination of whether SPS HARQ-ACK transmission is possible in the slot n+P may use the above steps 1), step 2-1), step 2-2), and step 2-3).
- step 2-2) if there are a plurality of validly configured PUCCH resources, the UE must determine one of them.
- the specific method is as follows.
- the UE may select the PUCCH resource based on the bit size that the PUCCH resource can transmit. More specifically, when the bits to be transmitted are B bits, a PUCCH resource capable of transmitting bits of B bits or more from among the validly configured PUCCH resources is selected. If there are a plurality of PUCCH resources capable of transmitting bits of B bits or more, a PUCCH resource capable of transmitting the smallest bits among them is selected. More specifically, as follows.
- SPS-PUCCH-AN-r16 in sps-PUCCH-AN-List-r16 can configure up to 4 PUCCH resources.
- the PUCCH resource configured for DG HARQ-ACK transmission may set up to 4 PUCCH resources for one PRI value. More specifically, when HARQ-ACK bits are B bits, HARQ-ACK bits are transmitted on PUCCH ( ⁇ N1 bits) if 0 ⁇ B ⁇ N1, and HARQ-ACK bits are transmitted on PUCCH ( ⁇ N2 bits) if N1 ⁇ B ⁇ N2. bits, transmit HARQ-ACK bits on PUCCH ( ⁇ N3 bits) if N2 ⁇ B ⁇ N3, and transmit HARQ-ACK bits on PUCCH ( ⁇ N4 bits) if N3 ⁇ B ⁇ N4.
- 41 is a diagram illustrating a method for a terminal to determine a valid PUCCH resource according to an example.
- HARQ-ACK bits to be transmitted are B bits and N1 ⁇ B ⁇ N2.
- the UE must transmit the B bits in PUCCH ( ⁇ N2 bits).
- the PUCCH ( ⁇ N2 bits) overlaps the invalid UL symbol, the UE does not transmit the PUCCH ( ⁇ N2 bits) according to step 1). And, the UE may transmit the B bits in another configured PUCCH resource according to step 2-2).
- PUCCH ( ⁇ N1 bits) is invalid because it overlaps the invalid UL symbol.
- PUCCH ( ⁇ N3 bits) is valid because it does not overlap with the invalid UL symbol.
- the UE may check whether B bits can be transmitted in PUCCH ( ⁇ N3 bits). Since N3 is larger than B (B is smaller than N2, N3 is larger than N2), PUCCH ( ⁇ N3 bits) can transmit B bits. Accordingly, the UE may transmit the B bits in PUCCH ( ⁇ N3 bits).
- PUCCH ( ⁇ N3 bits) is invalid because it overlaps with an invalid UL symbol. Since the PUCCH ( ⁇ N1 bits) does not overlap the invalid UL symbol, the UE determines that the PUCCH is valid. The UE may check whether B bits can be transmitted in PUCCH ( ⁇ N1 bits). Since N1 is smaller than B, PUCCH ( ⁇ N1 bits) cannot transmit B bits. Therefore, the UE cannot transmit in (sub-)slot n because there is no valid configured PUCCH resource capable of transmitting the B bits, and can determine whether transmission is possible in (sub-)slot n+1.
- FIG. 42 is a diagram illustrating a method for a terminal to determine a valid PUCCH resource according to another example.
- PUCCH ( ⁇ N3 bits) is valid because it does not overlap with an invalid UL symbol.
- PUCCH ( ⁇ N4 bits) is valid because it does not overlap an invalid UL symbol.
- both PUCCH resources may transmit B bits.
- N3 and N4 are larger than B. Therefore, there are two or more effective PUCCH resources.
- the UE must select one PUCCH resource. The UE does not need to select a larger PUCCH resource in order to transmit B bits. If a larger PUCCH resource is selected, this is because the PUCCH resource may be wasted. Therefore, the terminal may select a smaller PUCCH resource.
- the UE may select PUCCH ( ⁇ N3 bits).
- N3 is a smaller value than N4.
- the UE may determine one PUCCH resource based on at least one of a start symbol, an end symbol, and the number of symbols of the PUCCH resource. If it is based on the start symbol, it is possible to select a PUCCH resource that starts earlier (the start symbol is the earliest). This is because the PUCCH resource that starts earlier (the start symbol is the earliest) can reduce the delay time. If it is based on the end symbol, it is possible to select a PUCCH resource that ends earlier (end symbol is the earliest). This is because the PUCCH resource that ends earlier (the end symbol is the earliest) can reduce the delay time. If it is based on the number of symbols, the UE may select a PUCCH resource of a larger number of symbols. This is because a PUCCH resource with a larger number of symbols can increase reliability.
- 43 is a diagram illustrating a method for a terminal to determine a valid PUCCH resource according to another example.
- PUCCH ( ⁇ N3 bits) is valid because it does not overlap with an invalid UL symbol.
- PUCCH ( ⁇ N4 bits) is valid because it does not overlap an invalid UL symbol.
- 44 is a diagram illustrating a method for a terminal to determine a valid PUCCH resource according to another example
- PUCCH ( ⁇ N3 bits) is valid because it does not overlap with an invalid UL symbol.
- PUCCH ( ⁇ N4 bits) is valid because it does not overlap an invalid UL symbol.
- the PUCCH resource ( ⁇ N3 bits) is a PUCCH resource that starts earlier (the start symbol is the earliest), but does not satisfy the processing time condition (T proc,1 ). Accordingly, since a valid HARQ-ACK of the SPS PDSCH cannot be transmitted in PUCCH ( ⁇ N3 bits), the UE may select PUCCH ( ⁇ N4 bits).
- the UE may select one PUCCH resource based on the index of the PUCCH resource.
- a unique index may be assigned to the PUCCH resource.
- the UE may select a PUCCH resource corresponding to the lowest index (or a specific index configured in a higher layer) among the unique indexes of the validly configured PUCCH resources.
- PUCCH resource can be preferentially selected. That is, one PUCCH resource may be selected by preferentially selecting a PUCCH resource configured for SPS HARQ-ACK transmission among the plurality of PUCCH resources. If one PUCCH resource is not selected from among the PUCCH resources configured for SPS HARQ-ACK transmission, the UE may select one PUCCH resource from among the PUCCH resources configured for DG HARQ-ACK transmission.
- one PUCCH resource may be selected by preferentially selecting a PUCCH resource configured for DG HARQ-ACK transmission among the plurality of PUCCH resources. If one PUCCH resource cannot be selected from among the PUCCH resources configured for DG HARQ-ACK transmission, one PUCCH resource can be selected from among the PUCCH resources configured for SPS HARQ-ACK transmission.
- URLLC service requires low latency. Therefore, the HARQ-ACK of the SPS PDSCH for the URLLC service must be transmitted within a predetermined time for retransmission within a short time. Therefore, when the HARQ-ACK of the SPS PDSCH is delayed, if there is a maximum time that can be delayed, when the maximum time that can be delayed is exceeded, the HARQ-ACK transmission may be unnecessary.
- Another embodiment of the present invention relates to a method of determining a slot that can be maximally delayed when the HARQ-ACK of the SPS PDSCH is delayed.
- the HARQ-ACK of the SPS PDSCH is transmitted as a PUCCH
- the PUCCH is repeatedly transmitted in a plurality of slots.
- the PUCCH is repeatedly transmitted in N slots.
- some of the plurality of slots are slots within a slot that can be deferred at most (that is, a slot that satisfies the delay time), and the remaining slots are the maximum It may be a slot (ie, a slot that does not satisfy the delay time) after the slot that can be delayed to .
- a plurality of SPS PDSCH configurations may be given to one UE.
- each SPS PDSCH configuration may provide the same or different URLLC service
- the same or different maximally deferred slot may be configured in the SPS PDSCH configuration.
- the HARQ-ACK of the SPS PDSCHs according to the configuration of the plurality of SPS PDSCHs may be transmitted on the same PUCCH.
- HARQ-ACK included in one PUCCH may have the same or different maximum deferred slots depending on different URLLC services.
- Conditions to which this embodiment is applied may include the following. i) The PUCCH on which the HARQ-ACK of the SPS PDSCH is transmitted is repeatedly transmitted in a plurality of slots (N slots). ii) Two or more SPS PDSCH configurations are given to one UE. Here, two or more SPS PDSCH configurations may include the same or different maximally deferred slots. iii) In this embodiment, two SPS PDSCH configurations are described for convenience, but this is not limited to two SPS PDSCH configurations and can be applied to a larger number of SPS PDSCH configurations. The two SPS PDSCH configurations are called SPS PDSCH configuration #0 and SPS PDSCH configuration #1.
- slots 0, 1, 3, and 4 are DL slots
- slots 2, 5, and 6 are UL slots.
- the UE can receive the downlink channel and signal, but cannot transmit the uplink channel and signal.
- the UE can receive the uplink channel and signal, but cannot transmit the uplink channel and signal.
- DL slots and UL slots are expressed for convenience, but they may be expressed as DL symbols and UL symbols.
- the UE may be provided with two SPS PDSCH configurations.
- the UE may be configured to receive the SPS PDSCH (represented as SPS0 in FIG. 31 and subsequent drawings) in slot 0.
- the UE may be configured to receive the SPS PDSCH (represented as SPS1 in FIG. 31 and later drawings) in slot 1.
- a slot in which the HARQ-ACK is transmitted is determined according to each SPS PDSCH configuration.
- SPS PDSCH configuration #0 a K1 value indicating a slot in which HARQ-ACK is transmitted (represented as K 1,0 in FIG. 45 and later drawings) is given 2, and HARQ-ACK is transmitted in SPS PDSCH configuration #1
- a value of K1 indicating a slot (represented as K 1,1 in FIG. 45 and subsequent drawings) is given as 1. Therefore, the UE must transmit the HARQ-ACK of the SPS PDSCH (SPS 0) configured for reception in slot 0 in slot 2
- the HARQ-ACK of the SPS PDSCH (SPS 1) configured for reception in slot 1 must be transmitted in slot 2. do. That is, in slot 2, the UE must transmit the HARQ-ACK of the SPS PDSCH (SPS 0) of the slot 0 and the SPS PDSCH (SPS 1) of the slot 1.
- a PUCCH transmitting HARQ-ACK (HARQ-ACK of SPS PDSCH (SPS 0) in slot 0 and HARQ-ACK in SPS PDSCH (SPS 1) in slot 1) in slot 2 may be repeatedly transmitted in a plurality of slots.
- the number of the plurality of repeated slots is two.
- the UE may repeatedly transmit PUCCH in slots 2 and 3.
- the first repeatedly transmitted PUCCH may be referred to as PUCCH Rep#0
- the second repeatedly transmitted PUCCH may be referred to as PUCCH Rep#1.
- slot 2 PUCCH Rep#0 transmission is possible in the UL slot, but in slot 3, PUCCH Rep#0 transmission is impossible in the DL slot.
- the UE may transmit PUCCH Rep#0 to be transmitted in slot 3 by delaying transmission to a slot in which transmission is possible after slot 3. Since slot 5 is a UL slot in FIG. 31, the UE may transmit PUCCH Rep#1 in slot 5. That is, the PUCCH transmitting the HARQ-ACK of the SPS PDSCH (SPS 0) of the slot 0 and the SPS PDSCH (SPS 1) of the slot 1 is repeatedly transmitted in the slots 2 and 5.
- PUCCH Rep#1 to be transmitted in slot 3 is delayed to slot 5. If the base station can determine the correct HARQ-ACK only after receiving both PUCCH Rep#0 and PUCCH Rep#1, it must wait until receiving PUCCH Rep#1 transmitted in slot 5. In this case, the base station cannot indicate fast HARQ-ACK reception and retransmission. As another example, if the delay of the service transmitted by the SPS is short and the base station needs to receive at least the HARQ-ACK up to slot 3 to indicate retransmission, retransmission is indicated even when the base station receives PUCCH Rep#1 transmitted in slot 5. Can not. Therefore, it is necessary to determine whether transmission of the delayed PUCCH Rep#1 is necessary.
- a service transmitted by SPS PDSCH configuration #0 and a service transmitted by SPS PDSCH configuration #1 may have different service requirements. For example, in the case of SPS PDSCH configuration #0, it may be okay even if the delay time is large, and in the case of SPS PDSCH configuration #1, it may be a service with a relatively short delay time. Accordingly, among HARQ-ACKs transmitted by PUCCH Rep#1 in slot 5, the HARQ-ACK of SPS 0 according to SPS PDSCH configuration #0 is valid, and the HARQ-ACK of SPS 1 according to SPS PDSCH configuration #1 is not valid. it may not be Therefore, in slot 5, PUCCH Rep#1 needs to include the HARQ-ACK of SPS 0, but does not need to include the HARQ-ACK of SPS 1.
- the HARQ-ACK if the base station can retransmit within the delay time through the HARQ-ACK, the HARQ-ACK is said to be valid. Otherwise, it is said that the HARQ-ACK is invalid (invalid).
- PUCCH Rep#0 includes HARQ-ACK information of both SPS 0 and SPS 1
- PUCCH Rep#1 includes HARQ-ACK information of SPS 0, but does not include HARQ-ACK information of SPS 1.
- the method of receiving PUCCH Rep#0 and PUCCH Rep#1 in the base station may be complicated.
- the PUCCH transmitted in each slot always includes the same uplink control information (UCI). Accordingly, the base station can determine the UCI by soft-combining the PUCCHs received in each slot.
- UCI uplink control information
- the validity of two HARQ-ACKs can be determined as follows.
- Y represents the maximum delay time.
- the unit of Y is a slot, but the unit of Y may be a symbol or absolute time (eg, ms).
- the Y value may be the same or different for each SPS PDSCH configuration.
- the Y value may be included in each SPS PDSCH configuration.
- SPS PDSCH configuration #0 may set Y- 0 as the maximum delay time
- SPS PDSCH configuration #1 may set Y 1 as the maximum delay time.
- Y 0 and Y 1 values may be the same or different.
- K1 indicates the interval between the slot to which the PDSCH belongs and the slot in which the HARQ-ACK is transmitted.
- the K1 value may be indicated in the SPS PDSCH configuration or may be indicated in downlink control information (DCI) for activating the SPS PDSCH.
- DCI downlink control information
- the K1 value may be different for each SPS PDSCH configuration. For example, K 1,0 may be indicated as a K1 value in SPS PDSCH configuration #0, and K 1,1 may be indicated as a K1 value in SPS PDSCH configuration #1.
- K def represents a delay that occurs as PUCCH transmission is delayed. More specifically, when the PUCCH is repeatedly transmitted in a plurality of slots, K def may be defined as follows.
- the Kdef value of the Nth PUCCH repetition may be determined according to one of the following two options.
- the K def value indicates how long after the Nth PUCCH repetition is transmitted from the slot in which the first PUCCH repetition transmission is indicated. That is, the K def value indicates how much later the N-th PUCCH repetition is transmitted compared to the transmission of the first PUCCH.
- the K def value indicates the delay time between the N-th PUCCH repeated transmission slots in which the N-th repeated PUCCH transmission is actually transmitted in the indicated slot before delayed transmission. That is, it indicates how much delay time is generated for each PUCCH repeated transmission.
- the UE may check the validity of the HARQ-ACK in units of slots.
- the proposal of the present invention can be applied to checking the validity of HARQ-ACK in units of symbols.
- the validity of the HARQ-ACK may be checked as follows.
- the last symbol of repeated PUCCH transmission may be replaced with the first symbol of repeated PUCCH transmission.
- An embodiment of the present invention is as follows.
- the UE checks the validity of the HARQ-ACK in the first PUCCH repetition, and transmits the valid HARQ-ACK in the first PUCCH repetition. Invalid HARQ-ACK is not transmitted in PUCCH repetitions. Thereafter, the PUCCH repetition is transmitted including the same HARQ-ACK as the first PUCCH repetition. When the UE is instructed or configured to transmit the PUCCH repeatedly N times, the UE transmits the PUCCH repeatedly N times.
- the UE checks the validity of the Deferral HARQ-ACK in the first PUCCH repetition, and transmits the valid HARQ-ACK in the first PUCCH repetition. Invalid HARQ-ACK is not transmitted in PUCCH repetitions. Subsequent PUCCH repetitions include the same HARQ-ACK as the first PUCCH repetitions. If all HARQ-ACKs transmitted in subsequent PUCCH repetitions are not valid, the UE does not transmit the PUCCH repetitions and subsequent PUCCH repetitions. That is, even if the UE is instructed or configured to transmit the PUCCH repeatedly N times, if all HARQ-ACKs included in the PUCCH repetition are not valid, the PUCCH is not transmitted.
- the UE checks the validity of the HARQ-ACK in the last PUCCH repetition, and transmits the valid HARQ-ACK in the last PUCCH repetition. Invalid HARQ-ACK is not transmitted in PUCCH repetitions.
- the PUCCH repetition before the last PUCCH repetition contains the same HARQ-ACK as the last PUCCH repetition.
- the UE transmits the PUCCH repeatedly N times.
- the UE may be instructed to retransmit the SPS PDSCH by receiving the DCI.
- the UE may no longer need to transmit the HARQ-ACK of the SPS PDSCH with PUCCH repetition.
- the HARQ-ACK may be regarded as an invalid HARQ-ACK when retransmission of the SPS PDSCH is indicated through DCI in the first to third embodiments.
- the UE was instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slots 2 and 3. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 5.
- the validity of the HARQ-ACK follows the above-described condition 1 (K 1 + K def ⁇ Y) scheme.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#0, which is the first PUCCH repetition.
- PUCCH Rep#0 is K def 0 because the slot for which transmission is indicated and the slot for actual transmission are the same.
- the UE may transmit the two HARQ-ACK information in PUCCH Rep#0.
- the UE may transmit it including two HARQ-ACK information in a subsequent PUCCH repetition (PUCCH Rep#1).
- the validity of the HARQ-ACK follows the above-described condition 1 (K 1 + K def ⁇ Y) scheme.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#0, which is the first PUCCH repetition.
- PUCCH Rep#0 is K def 3 because there is a difference of 3 slots between the indicated slot (slot 2) and the actually transmitted slot (slot 5).
- the UE may transmit the HARQ-ACK information of SPS 1 in PUCCH Rep#0.
- the UE may transmit it including HARQ-ACK information of SPS 1 in the subsequent PUCCH repetition (PUCCH Rep#1).
- HARQ-ACK information of SPS 0 is not transmitted (drop).
- the UE is instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slots 2 and 3. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 5.
- the maximum delay time is Y 1,0 2
- the validity of the HARQ-ACK follows the above-described condition 2 (K def ⁇ Y) scheme.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#0, which is the first PUCCH repetition.
- PUCCH Rep#0 is K def 0 because the slot for which transmission is indicated and the slot for actual transmission are the same.
- the UE may transmit the two HARQ-ACK information in PUCCH Rep#0.
- the UE may transmit it including two HARQ-ACK information in a subsequent PUCCH repetition (PUCCH Rep#1).
- the validity of the HARQ-ACK follows the above-described condition 2 (K def ⁇ Y) scheme.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#0, which is the first PUCCH repetition.
- PUCCH Rep#0 is K def 3 because the indicated slot (slot 2) and the actually transmitted slot (slot 5) are the same.
- the UE may transmit it including HARQ-ACK information of SPS 1 in the subsequent PUCCH repetition (PUCCH Rep#1).
- HARQ-ACK information of SPS 0 is not transmitted (drop).
- the UE was instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slot 2, slot 3, and slot 4. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 5. Since PUCCH Rep#2 cannot be transmitted to the DL slot in slot 4, PUCCH Rep#2 is transmitted in slot 6.
- SPS PDSCH configuration #0 the maximum delay time is Y 1,0 4
- the validity of the HARQ-ACK follows the above-described condition 1 (K 1 +K def ⁇ Y) scheme. And K def is determined according to the method of option 1.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#0, which is the first PUCCH repetition.
- PUCCH Rep#0 is K def 0 because the slot for which transmission is indicated and the slot for actual transmission are the same.
- the UE may transmit the two HARQ-ACK information in PUCCH Rep#0. If PUCCH repetitions (PUCCH Rep#1, PUCCH Rep#2) are transmitted thereafter, the UE may transmit it including two HARQ-ACK information.
- the UE may determine the validity of HARQ-ACK in PUCCH Rep#1.
- PUCCH Rep#1 In PUCCH Rep#1, HARQ-ACK of SPS 0 is not valid, but HARQ-ACK of SPS 1 is valid. That is, since at least one HARQ-ACK is valid, the UE transmits PUCCH Rep#1.
- PUCCH Rep#1 includes the same UCI as the first repetition, PUCCH Rep#0. That is, PUCCH Rep#1 includes an invalid HARQ-ACK of SPS 0 and a valid HARQ-ACK of SPS 1.
- the UE may determine the validity of HARQ-ACK in PUCCH Rep#1.
- the UE was instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slots 2 and 3. Since PUCCH Rep#0 cannot be transmitted to the DL slot in slot 2, PUCCH Rep#0 is transmitted in slot 5. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 6.
- the validity of the HARQ-ACK follows the above-described condition 1 (K 1 +K def ⁇ Y) scheme. And K def is determined according to the method of option 1.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#0, which is the first PUCCH repetition.
- the slot in which transmission of the first PUCCH is indicated (slot 2) and the slot in which PUCCH Rep#0 is actually transmitted (slot 5) are K def 3 .
- PUCCH Rep#0 HARQ-ACK of SPS 0 is not valid, and HARQ-ACK of SPS 1 is valid.
- the UE may transmit valid SPS HARQ-ACK information in PUCCH Rep#0. Thereafter, if PUCCH repetition (PUCCH Rep#1) is transmitted, it may be transmitted including HARQ-ACK information of SPS 1. However, HARQ-ACK information of SPS 0 is not transmitted (drop).
- the UE may determine the validity of HARQ-ACK in PUCCH Rep#1.
- 49 illustrates a method for a terminal to determine validity of HARQ-ACK according to an example.
- the UE is instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slot 2, slot 3, and slot 4. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 5. Since PUCCH Rep#2 cannot be transmitted to the DL slot in slot 4, PUCCH Rep#2 is transmitted in slot 6.
- the maximum delay time is Y 1,0 4
- the validity of the HARQ-ACK follows the above-described condition 1 (K 1 +K def ⁇ Y) scheme. And K def is determined according to the method of option 2.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#0, which is the first PUCCH repetition.
- the value of K def is K def 0 because the slot in which transmission is indicated (slot 2) and the slot in which PUCCH Rep # 0 is actually transmitted (slot 2) are the same according to option 2.
- the UE may transmit the two HARQ-ACK information in PUCCH Rep#0. Thereafter, if PUCCH repetitions (PUCCH Rep#1, PUCCH Rep#2) are transmitted, it may be transmitted including two HARQ-ACK information.
- the UE may determine the validity of HARQ-ACK in PUCCH Rep#1.
- PUCCH Rep#1 HARQ-ACK of SPS 0 is not valid, but HARQ-ACK of SPS 1 is valid. That is, since at least one HARQ-ACK is valid, the UE transmits PUCCH Rep#1.
- PUCCH Rep#1 includes the same UCI as the first repetition, PUCCH Rep#0. That is, PUCCH Rep#1 includes an invalid HARQ-ACK of SPS 0 and a valid HARQ-ACK of SPS 1.
- the UE may determine the validity of HARQ-ACK in PUCCH Rep#2.
- PUCCH Rep#2 HARQ-ACK of SPS 0 is not valid, but HARQ-ACK of SPS 1 is valid. That is, since at least one HARQ-ACK is valid, the UE transmits PUCCH Rep#2.
- PUCCH Rep#2 includes the same UCI as the first repetition, PUCCH Rep#0. That is, PUCCH Rep#2 includes an invalid HARQ-ACK of SPS 0 and a valid HARQ-ACK of SPS 1.
- the validity of the HARQ-ACK follows the above-described condition 1 (K 1 +K def ⁇ Y) scheme. And K def is determined according to the method of option 2.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#0, which is the first PUCCH repetition.
- the slot in which PUCCH Rep#0 is indicated (slot 2) and the slot in which PUCCH Rep#0 is actually transmitted (slot 5) are K def 3 .
- PUCCH Rep#0 HARQ-ACK of SPS 0 is not valid, and HARQ-ACK of SPS 1 is valid.
- the UE may transmit valid SPS 1 HARQ-ACK information in PUCCH Rep#0. Thereafter, if PUCCH repetition (PUCCH Rep#1) is transmitted, it may be transmitted including HARQ-ACK information of SPS 1. However, HARQ-ACK information of SPS 0 is not transmitted (drop).
- PUCCH Rep#1 the UE may determine the validity of HARQ-ACK in PUCCH Rep#1.
- PUCCH Rep#1 includes the same UCI as the first repetition, PUCCH Rep#0. That is, PUCCH Rep#1 includes HARQ-ACK of SPS 1.
- 50 describes a method for a terminal to determine validity of HARQ-ACK according to another example.
- the UE is instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slot 2, slot 3, and slot 4. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 5. Since PUCCH Rep#2 cannot be transmitted to the DL slot in slot 4, PUCCH Rep#2 is transmitted in slot 6.
- SPS PDSCH configuration #0 the maximum delay time is Y 1,0 2
- the validity of the HARQ-ACK follows the above-described condition 2 (K def ⁇ Y) scheme. And K def is determined according to the method of option 1.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#0, which is the first PUCCH repetition.
- the value of K def is K def 0 because, according to option 1, the slot in which transmission of the first PUCCH is indicated (slot 2) and the slot in which PUCCH Rep #0 is actually transmitted (slot 2) are the same.
- the UE may transmit the two HARQ-ACK information in PUCCH Rep#0. Thereafter, if PUCCH repetitions (PUCCH Rep#1, PUCCH Rep#2) are transmitted, it may be transmitted including two HARQ-ACK information.
- the UE may determine the validity of HARQ-ACK in PUCCH Rep#1.
- PUCCH Rep#1 HARQ-ACK of SPS 0 is not valid, but HARQ-ACK of SPS 1 is valid. That is, since at least one HARQ-ACK is valid, the UE transmits PUCCH Rep#1.
- PUCCH Rep#1 includes the same UCI as the first repetition, PUCCH Rep#0. That is, PUCCH Rep#1 includes an invalid HARQ-ACK of SPS 0 and a valid HARQ-ACK of SPS 1.
- the UE may determine the validity of HARQ-ACK in PUCCH Rep#2.
- the UE was instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slots 2 and 3. Since PUCCH Rep#0 cannot be transmitted to the DL slot in slot 2, PUCCH Rep#0 is transmitted in slot 5. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 6.
- the validity of the HARQ-ACK follows the above-described condition 2 (K def ⁇ Y) scheme. And K def is determined according to the method of option 1.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#0, which is the first PUCCH repetition.
- the slot in which transmission of the first PUCCH is indicated (slot 2) and the slot in which PUCCH Rep#0 is actually transmitted (slot 5) are K def 3 .
- PUCCH Rep#0 HARQ-ACK of SPS 0 is not valid, and HARQ-ACK of SPS 1 is valid.
- the UE may transmit valid SPS 1 HARQ-ACK information in PUCCH Rep#0. Thereafter, if PUCCH repetition (PUCCH Rep#1) is transmitted, it may be transmitted including HARQ-ACK information of SPS 1. However, HARQ-ACK information of SPS 0 is not transmitted (drop).
- the UE may determine the validity of HARQ-ACK in PUCCH Rep#1.
- the UE is instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slot 2, slot 3, and slot 4. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 5. Since PUCCH Rep#2 cannot be transmitted to the DL slot in slot 4, PUCCH Rep#2 is transmitted in slot 6.
- the maximum delay time is Y 1,0 1
- the validity of the HARQ-ACK follows the above-described condition 2 (K def ⁇ Y) scheme. And K def is determined according to the method of option 2.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#0, which is the first PUCCH repetition.
- the value of K def is K def 0 because the slot in which transmission is indicated (slot 2) and the slot in which PUCCH Rep # 0 is actually transmitted (slot 2) are the same according to option 2.
- HARQ-ACK of SPS 0 and HARQ-ACK of SPS 1 are valid. That is, since the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 are valid in PUCCH Rep#0, the UE may transmit the two HARQ-ACK information in PUCCH Rep#0.
- PUCCH repetitions PUCCH Rep#1, PUCCH Rep#2
- PUCCH Rep#1 the UE may determine the validity of HARQ-ACK in PUCCH Rep#1.
- PUCCH Rep#1 includes the same UCI as the first repetition, PUCCH Rep#0. That is, PUCCH Rep#1 includes an invalid HARQ-ACK of SPS 0 and a valid HARQ-ACK of SPS 1.
- the UE may determine the validity of HARQ-ACK in PUCCH Rep#2.
- PUCCH Rep#2 HARQ-ACK of SPS 0 is not valid, but HARQ-ACK of SPS 1 is valid. That is, since at least one HARQ-ACK is valid, the UE transmits PUCCH Rep#2.
- PUCCH Rep#2 includes the same UCI as the first repetition, PUCCH Rep#0. That is, PUCCH Rep#2 includes an invalid HARQ-ACK of SPS 0 and a valid HARQ-ACK of SPS 1.
- the UE was instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slots 2 and 3. Since PUCCH Rep#0 cannot be transmitted to the DL slot in slot 2, PUCCH Rep#0 is transmitted in slot 4. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 6.
- the validity of the HARQ-ACK follows the above-described condition 2 (K def ⁇ Y) scheme. And K def is determined according to the method of option 2.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#0, which is the first PUCCH repetition.
- the slot in which PUCCH Rep#0 is indicated (slot 2) and the slot in which PUCCH Rep#0 is actually transmitted (slot 4) are K def 2 .
- the UE may transmit valid SPS 1 HARQ-ACK information in PUCCH Rep#0. Thereafter, if PUCCH repetition (PUCCH Rep#1) is transmitted, it may be transmitted including HARQ-ACK information of SPS 1. However, HARQ-ACK information of SPS 0 is not transmitted (drop).
- the UE may determine the validity of HARQ-ACK in PUCCH Rep#1.
- the UE is instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slots 2 and 3. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 5.
- the maximum delay time is Y 1,0 4
- the validity of the HARQ-ACK follows the above-described condition 1 (K 1 +K def ⁇ Y) scheme. And K def is determined according to the method of option 1.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#1, which is the last PUCCH repetition.
- the value of K def is K def 3 because, according to option 1, the first PUCCH transmission is indicated (slot 2) and the PUCCH Rep #1 is actually transmitted (slot 5).
- the HARQ-ACK of SPS 0 is not valid and the HARQ-ACK of SPS 1 is valid. Therefore, it includes the HARQ-ACK of SPS 1 valid in all PUCCH repetitions (PUCCH Rep#0, PUCCH Rep#1). However, HARQ-ACK information of SPS 0 is not transmitted (drop).
- the UE was instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slots 2 and 3. Since PUCCH Rep#0 cannot be transmitted to the DL slot in slot 2, PUCCH Rep#0 is transmitted in slot 5. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 6.
- the validity of the HARQ-ACK follows the above-described condition 1 (K 1 +K def ⁇ Y) scheme. And K def is determined according to the method of option 1.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#1, which is the last PUCCH repetition.
- the value of K def is K def 4 because, according to option 1, the first PUCCH transmission is indicated (slot 2) and the PUCCH Rep #1 is actually transmitted (slot 6).
- the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 are not valid. That is, since there is no valid HARQ-ACK in the last PUCCH repetition (PUCCH Rep#1), all PUCCH repetitions (PUCCH Rep#0, PUCCH Rep#1) are not transmitted (drop).
- 53 illustrates a method in which the terminal determines the validity of HARQ-ACK according to another example.
- the UE was instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slots 2 and 3. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 5.
- the maximum delay time is Y 1,0 3
- the validity of the HARQ-ACK follows the above-described condition 1 (K 1 +K def ⁇ Y) scheme. And K def is determined according to the method of option 2.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#1, which is the last PUCCH repetition.
- the value of K def is K def 2 because according to option 2, the slot (slot 3) in which transmission of PUCCH Rep #1 is indicated and the slot (slot 5) in which PUCCH Rep #1 is actually transmitted (slot 5).
- the UE includes the HARQ-ACK of SPS 1 valid in all PUCCH repetitions (PUCCH Rep#0, PUCCH Rep#1). However, HARQ-ACK information of SPS 0 is not transmitted (drop).
- the UE was instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slots 2 and 3. Since PUCCH Rep#0 cannot be transmitted to the DL slot in slot 2, PUCCH Rep#0 is transmitted in slot 4. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 6.
- the validity of the HARQ-ACK follows the above-described condition 1 (K 1 +K def ⁇ Y) scheme. And K def is determined according to the method of option 2.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#1, which is the last PUCCH repetition.
- the value of K def is K def 3 because according to option 2, the slot in which transmission of PUCCH Rep #1 is indicated (slot 3) and the slot in which PUCCH Rep #1 is actually transmitted (slot 6).
- the UE does not transmit all PUCCH repetitions (PUCCH Rep#0, PUCCH Rep#1) (drop).
- the UE was instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slots 2 and 3. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 5.
- the maximum delay time is Y 1,0 2
- the validity of the HARQ-ACK follows the above-described condition 2 (K def ⁇ Y) scheme. And K def is determined according to the method of option 1.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#1, which is the last PUCCH repetition.
- the value of K def is K def 3 because, according to option 1, the first PUCCH transmission is indicated (slot 2) and the PUCCH Rep #1 is actually transmitted (slot 5).
- the UE includes the HARQ-ACK of SPS 1 valid in all PUCCH repetitions (PUCCH Rep#0, PUCCH Rep#1). However, HARQ-ACK information of SPS 0 is not transmitted (drop).
- the UE was instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slots 2 and 3. Since PUCCH Rep#0 cannot be transmitted to the DL slot in slot 2, PUCCH Rep#0 is transmitted in slot 5. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 6.
- the validity of the HARQ-ACK follows the above-described condition 2 (K def ⁇ Y) scheme. And K def is determined according to the method of option 1.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#1, which is the last PUCCH repetition.
- the value of K def is K def 4 because, according to option 1, the first PUCCH transmission is indicated (slot 2) and the PUCCH Rep #1 is actually transmitted (slot 6).
- the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 are not valid. That is, since there is no valid HARQ-ACK in the last PUCCH repetition (PUCCH Rep#1), the UE does not transmit all PUCCH repetitions (PUCCH Rep#0, PUCCH Rep#1) (drop).
- 55 describes a method in which the terminal determines the validity of HARQ-ACK according to another example.
- the UE is instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slots 2 and 3. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 5.
- the maximum delay time is Y 1,0 1
- the validity of the HARQ-ACK follows the above-described condition 2 (K def ⁇ Y) scheme. And K def is determined according to the method of option 2.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#1, which is the last PUCCH repetition.
- the value of K def is K def 2 because according to option 2, the slot (slot 3) in which transmission of PUCCH Rep #1 is indicated and the slot (slot 5) in which PUCCH Rep #1 is actually transmitted (slot 5).
- the HARQ-ACK of SPS 0 is not valid and the HARQ-ACK of SPS 1 is valid. That is, the UE includes the HARQ-ACK of SPS 1 valid in all PUCCH repetitions (PUCCH Rep#0, PUCCH Rep#1). However, HARQ-ACK information of SPS 0 is not transmitted (drop).
- the UE is instructed to repeatedly transmit the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 in slots 2 and 3. Since PUCCH Rep#0 cannot be transmitted to the DL slot in slot 2, PUCCH Rep#0 is transmitted in slot 4. Since PUCCH Rep#1 cannot be transmitted to the DL slot in slot 3, PUCCH Rep#1 is transmitted in slot 6.
- the UE may determine the validity of the HARQ-ACK in PUCCH Rep#1, which is the last PUCCH repetition.
- the value of K def is K def 3 because according to option 2, the slot in which transmission of PUCCH Rep #1 is indicated (slot 3) and the slot in which PUCCH Rep #1 is actually transmitted (slot 6).
- the HARQ-ACK of SPS 0 and the HARQ-ACK of SPS 1 are not valid. That is, since there is no valid HARQ-ACK in the last PUCCH repetition (PUCCH Rep#1), the UE does not transmit all PUCCH repetitions (PUCCH Rep#0, PUCCH Rep#1) (drop).
- SPS 0 of SPS PDSCH configuration #0 and SPS 1 of SPS PDSCH configuration #1 were instructed to transmit HARQ-ACK in the same slot.
- the HARQ-ACKs of SPS 0 and SPS 1 may be instructed to be transmitted in different slots.
- the terminal needs a method of transmitting PUCCH in some of the slots.
- 56 is a diagram for describing a method for a UE to perform PUCCH repetition according to an example.
- the UE is configured to receive SPS 0 of SPS PDSCH configuration #0 in slot 0, and is configured to receive SPS 1 of SPS PDSCH configuration #1 in slot 4.
- PUCCH may be repeatedly transmitted in two slots.
- the slots to which transmission is indicated are slots 2 and 3.
- slot 3 is a DL slot
- PUCCH cannot be transmitted, so PUCCH is transmitted in slot 5.
- the PUCCH for transmitting the HARQ-ACK of SPS 0 is transmitted in slot 2 (PUCCH Rep#0 for SPS0) and slot 5 (PUCCH Rep#1 for SPS0).
- PUCCH may be repeatedly transmitted in two slots.
- the slots to which transmission is indicated are slots 5 and 6. Since slots 5 and 6 are UL slots, the PUCCH for transmitting the HARQ-ACK of SPS 1 is transmitted in slot 5 (PUCCH Rep#0 for SPS1) and slot 6 (PUCCH Rep#1 for SPS1).
- the UE may overlap the second repetition of PUCCH transmitting HARQ-ACK of SPS 0 in slot 5 and the first repetition of PUCCH transmitting HARQ-ACK of SPS 1. Since the UE cannot transmit two PUCCHs at the same time in one slot, the overlapping problem must be solved. Specific methods for this are disclosed.
- the UE may transmit a repetition of the previously started PUCCH, and may not transmit the PUCCH started later (drop). This does not distinguish whether the previously started PUCCH is transmitted in the indicated slot or delayed PUCCH.
- the UE may transmit a repetition of the PUCCH started from behind, and may not transmit the PUCCH started earlier (drop). This may be performed before the previously started PUCCH transmission collides with another PUCCH repetition.
- the UE may preferentially transmit the repetition of the PUCCH of the slot in which the transmission is indicated. That is, if the repetition of the PUCCH in the slot indicated for transmission and the repetition of the delayed PUCCH without transmission are overlapped, the terminal transmits the repetition of the PUCCH in the slot in which the transmission is indicated, and the repetition of the delayed PUCCH may not be transmitted. (drop). If both PUCCHs overlapped in one slot are repetitions of the PUCCHs for which transmission is indicated (ie, non-deferred PUCCHs), the PUCCH that starts earlier among the two PUCCHs and the PUCCH that starts behind may not be transmitted.
- both PUCCHs overlapping in one slot are not repetitions of the PUCCHs for which transmission is indicated (ie, delayed PUCCHs), the PUCCH started earlier among the two PUCCHs is transmitted and the PUCCH started after the latter may not be transmitted.
- the UE may transmit a repetition of the PUCCH corresponding to a smaller number of repetitions among the repetition of the PUCCH started earlier and the repetition of the PUCCH started behind. For example, by comparing the number of repetitions when the repetition of the PUCCH started earlier (the PUCCH that does not repeat is included here. In this case, the number of repetitions is assumed to be 1) is transmitted, the number of repetitions when the repetition of the PUCCH started from behind is transmitted. A repetition of the PUCCH corresponding to the number of repetitions of the smaller number of PUCCHs may be transmitted. If the number of repetitions of the previously transmitted PUCCH is 1, since the number of repetitions of the previously transmitted PUCCH is smaller, the PUCCH may be transmitted. In this way, it is possible to limit the performance degradation of the PUCCH by transmitting more repetitions of a small number of PUCCHs.
- the UE does not transmit at least one repeated PUCCH transmission. Therefore, performance degradation cannot be avoided due to repeated PUCCH transmission that is not transmitted.
- a fifth method for solving this problem is disclosed.
- the UE transmits the repetition of the PUCCH started earlier in the overlapping slot, and the repetition of the PUCCH started later is not transmitted in the overlapping slot, but may be postponed to a later available slot. That is, when the UE selects a slot in which repeated PUCCH transmission is possible, the previously started slot in which repeated PUCCH transmission starts may be excluded. That is, it is possible to select a slot for repeatedly transmitting the PUCCH from among the slots in which the previously started repeated transmission of the PUCCH is not transmitted.
- 57 is a diagram for describing a method for a UE to perform PUCCH repetition according to another example.
- PUCCH Rep#1 for SPS0 and PUCCH Rep#0 for SPS1 collide in slot 5 the UE may transmit the previously started PUCCH Rep#1 for SPS0 in slot 5. And PUCCH Rep#0 for SPS1 not transmitted in slot 5 may be transmitted in slots after slot 5.
- PUCCH Rep#0 for SPS1 since transmission is possible in slots 6 and 7, PUCCH Rep#0 for SPS1 may be transmitted in slot 6, and PUCCH Rep#1 for SPS1 may be transmitted in slot 7.
- the terminal does not transmit the repetition of the previously started PUCCH in the overlapping slot.
- the HARQ-ACK to be transmitted in the repetition of the PUCCH started earlier may be included in the repetition of the PUCCH starting behind it and may be transmitted.
- the UE does not transmit the previously started PUCCH Rep#1 for SPS0.
- the HARQ-ACK of SPS 0 transmitted in PUCCH Rep#1 for SPS0 may be included in PUCCH Rep#0 for SPS1 and transmitted. That is, PUCCH Rep#0 for SPS1 may include HARQ-ACK information of SPS 0 as well as HARQ-ACK information of SPS 1.
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Abstract
Description
Claims (20)
- 캐리어 집성(carrier 집성)에 기반하여 물리 상향링크 제어채널(physical uplink control channel : PUCCH)을 전송하는 단말로서,PUCCH가 전송될 서빙셀인 PUCCH 서빙셀에 관한 정보를 기지국으로부터 수신하고, 상기 PUCCH를 생성하며, 상기 생성된 PUCCH를 상기 PUCCH 서빙셀상에서 전송하는 통신 모듈; 및상기 PUCCH 서빙셀에 관한 정보에 기반하여 상기 PUCCH 서빙셀을 구성하는(configure) 프로세서를 포함하되,상기 PUCCH 서빙셀에 관한 정보는 상기 복수의 서빙셀들 중 특정 서빙셀을 상기 PUCCH 서빙셀로서 설정(set)할지 여부를 지시하는 제1 정보와, 상기 PUCCH 서빙셀에 관한 설정이 적용되는 주기에 관한 제2 정보를 포함하는 것을 특징으로 하는, 단말.
- 제 1 항에 있어서,상기 제1 정보는 상기 특정 서빙셀을 상기 PUCCH 서빙셀로서 설정할지 여부를 일련의(sequential) 인덱스들로 지시하는 것을 특징으로 하는, 단말.
- 제 2 항에 있어서,상기 일련의 인덱스들의 수는 어느 한 셀의 서브캐리어 간격(subcarrier spacing : SCS)을 기준으로 결정되고,상기 어느 한 셀은 상기 복수의 서빙셀들 중 하나의 셀이고,상기 일련의 인덱스들에 포함된 각 인덱스는 상기 어느 한 셀의 한 슬롯에 대응하는 것을 특징으로 하는, 단말.
- 제 3항에 있어서,상기 어느 한 셀은 상기 복수의 서빙셀들 중 주서빙셀(Primary serving cell)인 것을 특징으로 하는, 단말.
- 제 2 항에 있어서,상기 일련의 인덱스들의 수는 서브캐리어 간격(subcarrier spacing : SCS)을 기준으로 결정되고,상기 일련의 인덱스들에 포함된 각 인덱스는 상기 서브캐리어 간격에 따른 한 슬롯에 대응하는 것을 특징으로 하는, 단말.
- 제 5 항에 있어서,상기 서브캐리어 간격은 상기 복수의 서빙셀의 서브캐리어 간격 중 가장 작은 것을 특징으로 하는, 단말
- 제 5 항에 있어서,상기 서브캐리어 간격은 상기 복수의 서빙셀의 서브캐리어 간격 중 가장 큰 것을 특징으로 하는, 단말
- 제 5 항에 있어서,상기 단말은 상위 계층으로부터 TDD 구성을 설정 받고,상기 서브캐리어 간격은 상기 TDD 구성의 참조 서브캐리어 간격인 것을 특징으로 하는, 단말
- 제 2 항에 있어서,상기 일련의 인덱스들은 상기 주기 내의 슬롯들 중 적어도 일부의 슬롯에 대응하는 것을 특징으로 하는, 단말.
- 제 9 항에 있어서,주서빙셀의 상향링크 슬롯은 상기 적어도 일부의 슬롯에 포함되지 않고,상기 상향링크 슬롯은 상향링크 심볼만을 포함한 슬롯인 것을 특징으로 하는 단말.
- 제 9 항에 있어서,상기 복수의 서빙셀들이 모두 하향링크 슬롯인 경우, 상기 슬롯은 상기 적어도 일부의 슬롯에 포함되지 않고상기 하향링크 슬롯은 하향링크 심볼만을 포함한 슬롯인 것을 특징으로 하는, 단말.
- 제 1 항에 있어서,상기 제1 정보는 상기 특정 서빙셀을 상기 PUCCH 서빙셀로서 설정할지 여부를 매 슬롯 단위로 지시함을 특징으로 하는, 단말.
- 제 1 항에 있어서,상기 복수의 서빙셀들은 주서빙셀(primary serving cell)과 적어도 하나의 부서빙셀(secondary serving cell)을 포함하고,상기 특정 서빙셀은 상기 적어도 하나의 부서빙셀 중 가장 낮은 셀 인덱스를 가진 부서빙셀인 것을 특징으로 하는, 단말.
- 제 1 항에 있어서,상기 PUCCH 서빙셀에 관한 정보는 상기 주기가 시작되는 오프셋(offset)에 관한 제3 정보를 더 포함함을 특징을 하는, 단말.
- 제 1 항에 있어서,상기 통신 모듈은 TDD(time division duplex) 구성에 기반하여 상기 생성된 PUCCH의 전송을 수행하고,상기 PUCCH 서빙셀에 관한 정보는 상기 TDD 구성에 관한 정보이며,상기 PUCCH 서빙셀에 관한 설정이 적용되는 주기는 상기 TDD 구성에서 설정된 주기에 기반하여 결정되는 것을 특징으로 하는, 단말.
- 제 15 항에 있어서,상기 TDD 구성은 주서빙셀에 관한 TDD 구성, 또는 상기 복수의 서빙셀들 중에서 서브캐리어 간격이 가장 낮은 서빙셀에 관한 TDD 구성, 또는 상기 복수의 서빙셀들 중에서 서브캐리어 간격이 가장 높은 서빙셀에 관한 TDD 구성 중 하나인 것을 특징으로 하는, 단말.
- 제 1 항에 있어서,상기 생성된 PUCCH가 PUCCH 반복(repetition)으로 구성된 경우, 상기 통신 모듈은 상기 PUCCH 반복이 지시된 제1 슬롯부터 상기 PUCCH 반복을 수행하고, 상기 제1 정보에 따라 상기 제1 슬롯에서 상기 PUCCH 반복을 전송하는 상기 PUCCH 서빙셀을 결정하며,상기 제1 슬롯 이후 PUCCH 반복은 상기 제1 정보에 따라 상기 PUCCH 서빙셀이 지시되면 상기 PUCCH 서빙셀에서 전송되는 것을 특징으로 하는, 단말.
- 제 1 항에 있어서,상기 생성된 PUCCH가 PUCCH 반복으로 구성된 경우, 상기 통신 모듈은 상기 제1 정보에 따라 상기 PUCCH 반복이 전송되는 각 슬롯에서 상기 PUCCH 서빙셀을 결정하고,상기 각 슬롯에서 상기 PUCCH 반복은 상기 PUCCH 서빙셀상에서 전송되는 것을 특징으로 하는, 단말.
- 제 1 항에 있어서,상기 통신 모듈은 상기 생성된 PUCCH가 전송되는 슬롯보다 k1개의 기준 슬롯 만큼 앞선 슬롯에서 물리 하향링크 공유 채널(physical downlink shared channel : PDSCH)을 상기 기지국으로부터 수신하도록 구성되고, 상기 생성된 PUCCH는 상기 PDSCH에 관한 HARQ(Hybrid Automatic Repeat request) ACK을 포함하며,상기 기준 슬롯의 시간 길이는 주서빙셀의 서브캐리어 간격, 복수의 서빙셀들 중 가장 큰 서브캐리어 간격, 및 복수의 서빙셀들 중 가장 작은 서브캐리어 간격 중 어느 하나의 서브캐리어 간격에 기반하여 정해지는 것을 특징으로 하는, 단말.
- 제 1 항에 있어서,상기 통신 모듈은 PUCCH 자원을 지시하는 PUCCH 자원 지시자를 상기 기지국으로부터 수신하도록 구성되고,상기 PUCCH 서빙셀로 설정 가능한 상기 특정 서빙셀이 복수개인 경우, 상기 프로세서는 상기 복수 개의 특정 서빙셀 중 상기 PUCCH 자원을 사용 가능한 서빙셀을 상기 PUCCH 서빙셀로 결정하는 것을 특징으로 하는, 단말.
Priority Applications (17)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| ES21880487T ES3052748T3 (en) | 2020-10-12 | 2021-10-12 | Method, device, and system for transmitting physical uplink control channel in wireless communication system |
| KR1020257015236A KR20250079029A (ko) | 2020-10-12 | 2021-10-12 | 무선 통신 시스템에서 물리 상향링크 제어채널의 전송 방법, 장치 및 시스템 |
| JP2023522521A JP7670385B2 (ja) | 2020-10-12 | 2021-10-12 | 無線通信システムにおいて物理上りリンク制御チャネルの送信方法、装置及びシステム |
| KR1020257015250A KR20250079030A (ko) | 2020-10-12 | 2021-10-12 | 무선 통신 시스템에서 물리 상향링크 제어채널의 전송 방법, 장치 및 시스템 |
| PL21880487.0T PL4224771T3 (pl) | 2020-10-12 | 2021-10-12 | Sposób, urządzenie i system do przesyłania fizycznego kanału sterującego łącza wstępującego w systemie komunikacji bezprzewodowej |
| EP21880487.0A EP4224771B1 (en) | 2020-10-12 | 2021-10-12 | Method, device, and system for transmitting physical uplink control channel in wireless communication system |
| CN202180077662.7A CN116368911A (zh) | 2020-10-12 | 2021-10-12 | 在无线通信系统中发送物理上行链路控制信道的方法、装置和系统 |
| EP25186793.3A EP4625870A3 (en) | 2020-10-12 | 2021-10-12 | Method, device, and system for transmitting physical uplink control channel in wireless communication system |
| EP25186786.7A EP4601238A3 (en) | 2020-10-12 | 2021-10-12 | Method, device, and system for transmitting physical uplink control channel in wireless communication system |
| FIEP21880487.0T FI4224771T3 (fi) | 2020-10-12 | 2021-10-12 | Menetelmä, laite ja järjestelmä fyysisen uplink-suunnan ohjauskanavan lähettämiseksi langattomassa tietoliikennejärjestelmässä |
| KR1020237012630A KR102808681B1 (ko) | 2020-10-12 | 2021-10-12 | 무선 통신 시스템에서 물리 상향링크 제어채널의 전송 방법, 장치 및 시스템 |
| US18/134,019 US12075407B2 (en) | 2020-10-12 | 2023-04-12 | Method, device, and system for transmitting physical uplink control channel in wireless communication system |
| US18/607,558 US12382450B2 (en) | 2020-10-12 | 2024-03-18 | Method, device, and system for transmitting physical uplink control channel in wireless communication system |
| US18/607,567 US12369151B2 (en) | 2020-10-12 | 2024-03-18 | Method, device, and system for transmitting physical uplink control channel in wireless communication system |
| JP2025065105A JP2025100693A (ja) | 2020-10-12 | 2025-04-10 | 無線通信システムにおいて物理上りリンク制御チャネルの送信方法、装置及びシステム |
| JP2025065106A JP2025100694A (ja) | 2020-10-12 | 2025-04-10 | 無線通信システムにおいて物理上りリンク制御チャネルの送信方法、装置及びシステム |
| US19/274,485 US20250351138A1 (en) | 2020-10-12 | 2025-07-19 | Method, device, and system for transmitting physical uplink control channel in wireless communication system |
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| KR20210035213 | 2021-03-18 | ||
| KR10-2021-0035213 | 2021-03-18 | ||
| KR10-2021-0063687 | 2021-05-17 | ||
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| US18/134,019 Continuation US12075407B2 (en) | 2020-10-12 | 2023-04-12 | Method, device, and system for transmitting physical uplink control channel in wireless communication system |
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| WO2024032334A1 (en) * | 2022-08-12 | 2024-02-15 | Mediatek Singapore Pte. Ltd. | Efficient uplink channels and procedures in subband-fullduplex network |
| US12075407B2 (en) | 2020-10-12 | 2024-08-27 | Wilus Institute Of Standards And Technology Inc. | Method, device, and system for transmitting physical uplink control channel in wireless communication system |
| EP4514032A4 (en) * | 2022-04-22 | 2025-10-01 | Lg Electronics Inc | METHOD AND APPARATUS FOR TRANSMITTING OR RECEIVING UPLINK CONTROL INFORMATION IN A WIRELESS COMMUNICATION SYSTEM |
| EP4412135A4 (en) * | 2021-10-01 | 2025-10-15 | Lg Electronics Inc | METHOD, USER EQUIPMENT, PROCESSING DEVICE, AND STORAGE MEDIUM FOR TRANSMITTING HARQ-ACK INFORMATION, AND METHOD AND BASE STATION FOR RECEIVING HARQ-ACK INFORMATION |
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| JP2023547149A (ja) * | 2020-11-04 | 2023-11-09 | クゥアルコム・インコーポレイテッド | 遅延されたフィードバック報告を用いたスケジュールされた通信についてのアップリンク制御リソース決定 |
| US12068862B2 (en) * | 2021-01-14 | 2024-08-20 | Apple Inc. | Method for enhanced HARQ-ACK feedback in wireless communications |
| US20220256572A1 (en) * | 2021-02-04 | 2022-08-11 | Electronics And Telecommunications Research Institute | Operation method of terminal, and terminal apparatus for the same |
| EP4316139A4 (en) * | 2021-04-01 | 2024-12-25 | Tcl Communication (Ningbo) Co., Ltd. | USER DEVICE, BASE STATION AND WIRELESS COMMUNICATION METHODS |
| WO2022240180A1 (ko) * | 2021-05-11 | 2022-11-17 | 엘지전자 주식회사 | 무선 통신 시스템에서 상향링크 송수신을 수행하는 방법 및 장치 |
| KR20240038960A (ko) * | 2021-07-22 | 2024-03-26 | 퀄컴 인코포레이티드 | 업링크 제어 채널 충돌 시에 피드백을 연기하기 위한 기술들 |
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| US20230163897A1 (en) * | 2021-11-24 | 2023-05-25 | Qualcomm Incorporated | Type 3 hybrid automatic repeat request codebook feedback triggering |
| CN117837242A (zh) * | 2021-12-09 | 2024-04-05 | 中兴通讯股份有限公司 | 用于管理基于频率资源组的业务传输的系统和方法 |
| US20250008456A1 (en) * | 2023-06-30 | 2025-01-02 | Sharp Kabushiki Kaisha | Communications network and methods with wireless communication |
| CN119892309A (zh) * | 2023-10-25 | 2025-04-25 | 上海朗帛通信技术有限公司 | 一种被用于无线通信的节点中的方法和装置 |
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- 2021-10-12 FI FIEP21880487.0T patent/FI4224771T3/fi active
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- 2021-10-12 EP EP21880487.0A patent/EP4224771B1/en active Active
- 2021-10-12 EP EP25186793.3A patent/EP4625870A3/en active Pending
- 2021-10-12 CN CN202180077662.7A patent/CN116368911A/zh active Pending
- 2021-10-12 ES ES21880487T patent/ES3052748T3/es active Active
- 2021-10-12 WO PCT/KR2021/014060 patent/WO2022080840A1/ko not_active Ceased
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Cited By (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US12075407B2 (en) | 2020-10-12 | 2024-08-27 | Wilus Institute Of Standards And Technology Inc. | Method, device, and system for transmitting physical uplink control channel in wireless communication system |
| US12369151B2 (en) | 2020-10-12 | 2025-07-22 | Wilus Institute Od Standards And Technology Inc. | Method, device, and system for transmitting physical uplink control channel in wireless communication system |
| US12382450B2 (en) | 2020-10-12 | 2025-08-05 | Wilus Institute Of Standards And Technology Inc. | Method, device, and system for transmitting physical uplink control channel in wireless communication system |
| EP4412135A4 (en) * | 2021-10-01 | 2025-10-15 | Lg Electronics Inc | METHOD, USER EQUIPMENT, PROCESSING DEVICE, AND STORAGE MEDIUM FOR TRANSMITTING HARQ-ACK INFORMATION, AND METHOD AND BASE STATION FOR RECEIVING HARQ-ACK INFORMATION |
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Also Published As
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| EP4601238A3 (en) | 2025-10-22 |
| EP4601238A2 (en) | 2025-08-13 |
| EP4625870A3 (en) | 2025-11-19 |
| US20250351138A1 (en) | 2025-11-13 |
| KR20250079030A (ko) | 2025-06-04 |
| JP2025100694A (ja) | 2025-07-03 |
| KR20250079029A (ko) | 2025-06-04 |
| US12382450B2 (en) | 2025-08-05 |
| EP4625870A2 (en) | 2025-10-01 |
| FI4224771T3 (fi) | 2025-10-27 |
| US12369151B2 (en) | 2025-07-22 |
| US20240236980A1 (en) | 2024-07-11 |
| KR102808681B9 (ko) | 2025-12-10 |
| US20230247627A1 (en) | 2023-08-03 |
| KR102808681B1 (ko) | 2025-05-22 |
| EP4224771A4 (en) | 2024-03-27 |
| CN116368911A (zh) | 2023-06-30 |
| EP4224771A1 (en) | 2023-08-09 |
| KR20230074176A (ko) | 2023-05-26 |
| US12075407B2 (en) | 2024-08-27 |
| ES3052748T3 (en) | 2026-01-13 |
| EP4224771B1 (en) | 2025-08-13 |
| JP2025100693A (ja) | 2025-07-03 |
| PL4224771T3 (pl) | 2025-12-15 |
| JP7670385B2 (ja) | 2025-04-30 |
| JP2023545303A (ja) | 2023-10-27 |
| US20240236979A1 (en) | 2024-07-11 |
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