WO2021164773A1 - 传输方法及设备 - Google Patents
传输方法及设备 Download PDFInfo
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- WO2021164773A1 WO2021164773A1 PCT/CN2021/077114 CN2021077114W WO2021164773A1 WO 2021164773 A1 WO2021164773 A1 WO 2021164773A1 CN 2021077114 W CN2021077114 W CN 2021077114W WO 2021164773 A1 WO2021164773 A1 WO 2021164773A1
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- frequency
- inter
- measurement
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- terminal
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W36/00—Hand-off or reselection arrangements
- H04W36/0005—Control or signalling for completing the hand-off
- H04W36/0083—Determination of parameters used for hand-off, e.g. generation or modification of neighbour cell lists
- H04W36/0085—Hand-off measurements
- H04W36/0088—Scheduling hand-off measurements
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/10—Scheduling measurement reports ; Arrangements for measurement reports
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J11/00—Orthogonal multiplex systems, e.g. using WALSH codes
- H04J11/0023—Interference mitigation or co-ordination
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/02—Arrangements for optimising operational condition
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/50—Allocation or scheduling criteria for wireless resources
- H04W72/54—Allocation or scheduling criteria for wireless resources based on quality criteria
- H04W72/542—Allocation or scheduling criteria for wireless resources based on quality criteria using measured or perceived quality
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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
- H04L5/0057—Physical resource allocation for CQI
Definitions
- the embodiments of the present disclosure relate to the field of communication technology, and in particular to a transmission method and equipment.
- the base station schedules the terminal to perform uplink transmission and downlink reception.
- the base station configures the terminal to use a measurement interval. The use of the measurement interval will cause the terminal to be unable to perform uplink transmission or downlink reception during the measurement interval.
- Base station scheduling and transmission cause certain restrictions.
- the reference signal used for measurement for example, the synchronization signal block (SS/PBCH Block, SSB) or the channel state information reference signal (Channel State Information-Reference Signals, CSI-RS)
- SS/PBCH Block SS/PBCH Block
- CSI-RS Channel State Information-Reference Signals
- the measurement interval is not required for frequency measurement, for example, when the center frequency of the SSB is different but it is included in the active bandwidth part (Bandwidth Part, BWP).
- BWP active bandwidth part
- the measurement interval is not required for inter-frequency measurement, but there are still some restrictions on the actual transmission.
- TDD Time Division Duplexing
- the inter-frequency measurement does not require a measurement interval, there are still some restrictions on the transmission while measuring. If not taken into account, it will cause interference and cause the system to fail to work normally.
- An objective of the embodiments of the present disclosure is to provide a transmission method and device to solve the problem of uplink and downlink interference caused by not configuring a measurement interval in inter-frequency measurement.
- embodiments of the present disclosure provide a transmission method applied to a terminal, including:
- stop transmission that is, no transmission or reception
- the first symbol includes one or more of the following: a symbol to be measured; one or more symbols before the symbol to be measured; one or more symbols after the symbol to be measured.
- the stopping transmission on the first symbol and/or within the measurement window includes:
- the transmission is stopped within the measurement window.
- the method further includes:
- the terminal can obtain the synchronization signal block index of the inter-frequency neighboring cell according to the timing of the serving cell;
- the method further includes:
- the first condition includes one or more of the following:
- the frequency of the inter-frequency measurement at least partially overlaps with the frequency of the serving cell; the symbol to be measured for the inter-frequency measurement is included in a part of the bandwidth activated by the terminal.
- the synchronization of the frequency or the cell of the inter-frequency measurement with the serving cell indicates one or more of the following:
- the subframe boundaries of the serving cell and the inter-frequency neighboring cell are aligned;
- the SFNs of the serving cell and the inter-frequency neighboring cell are aligned;
- the frame boundaries of the serving cell and the inter-frequency neighboring cell are aligned
- the terminal can obtain the synchronization signal block index of the inter-frequency neighboring cell according to the timing of the serving cell;
- the synchronization signal block timing of the serving cell is aligned with the synchronization signal block timing of the inter-frequency neighboring cell.
- the method further includes:
- Send second information where the second information indicates whether the terminal supports the first capability, and the first capability includes one or more of the following:
- the inter-frequency measurement does not require a measurement interval
- the method further includes:
- Receive measurement configuration where the measurement configuration includes one or more of the following:
- Information indicating that the inter-frequency measurement does not require a measurement interval (or information indicating whether the inter-frequency measurement is performed outside the measurement interval, or information indicating whether the inter-frequency measurement is performed within the measurement interval).
- the stopping transmission includes: not sending or receiving;
- non-sending includes one or more of the following:
- the non-acceptance includes one or more of the following:
- the channel state information reference signal is not received.
- the embodiments of the present disclosure also provide a terminal, including:
- a processing module configured to stop transmission on the first symbol and/or within the measurement window when the terminal performs inter-frequency measurement that does not require a measurement interval
- the first symbol includes one or more of the following: a symbol to be measured; one or more symbols before the symbol to be measured; one or more symbols after the symbol to be measured.
- the processing module is a baseband processor.
- the embodiments of the present disclosure also provide a terminal, including: a transceiver and a processor;
- a processor configured to stop transmission on the first symbol and/or within the measurement window when the terminal performs inter-frequency measurement that does not require a measurement interval
- the first symbol includes one or more of the following: a symbol to be measured; one or more symbols before the symbol to be measured; one or more symbols after the symbol to be measured.
- the processor is a baseband processor.
- the embodiments of the present disclosure also provide a communication device, including: a processor, a memory, and a program stored on the memory and capable of running on the processor.
- a communication device including: a processor, a memory, and a program stored on the memory and capable of running on the processor.
- the program is executed by the processor,
- the implementation includes the steps of the transmission method described in the first aspect.
- the processor is a baseband processor.
- embodiments of the present disclosure also provide a computer-readable storage medium having a computer program stored on the computer-readable storage medium, and when the computer program is executed by a processor, the method includes the transmission method described in the first aspect. A step of.
- the embodiments of the present disclosure also provide a communication device, the communication device is a terminal or a chip in the terminal or a baseband processor in the terminal, and the communication device is configured to:
- the first symbol includes one or more of the following: a symbol to be measured; one or more symbols before the symbol to be measured; one or more symbols after the symbol to be measured.
- Fig. 1a is a schematic diagram of a wireless communication system to which an embodiment of the disclosure is applied;
- Figure 1b is a schematic diagram of a baseband processor and a terminal according to an embodiment of the disclosure
- FIG. 2 is a flowchart of a transmission method according to an embodiment of the disclosure
- FIG. 3 is one of schematic diagrams of inter-frequency neighbor cell measurement performed by a serving cell according to an embodiment of the disclosure
- FIG. 4 is a schematic diagram of SSB transmission in the time domain according to an embodiment of the disclosure.
- FIG. 5 is a schematic diagram of symbols not receiving or transmitting data according to an embodiment of the disclosure.
- FIG. 6 is the second schematic diagram of inter-frequency neighbor cell measurement performed by a serving cell according to an embodiment of the disclosure
- FIG. 7 is the third schematic diagram of inter-frequency neighbor cell measurement performed by a serving cell according to an embodiment of the disclosure.
- FIG. 8 is a fourth schematic diagram of inter-frequency neighbor cell measurement performed by a serving cell according to an embodiment of the disclosure.
- FIG. 9 is the fifth schematic diagram of inter-frequency neighbor cell measurement performed by a serving cell according to an embodiment of the disclosure.
- FIG. 10 is one of schematic diagrams of a terminal according to an embodiment of the disclosure.
- FIG. 11 is a second schematic diagram of a terminal according to an embodiment of the disclosure.
- FIG. 12 is the third schematic diagram of a terminal according to an embodiment of the disclosure.
- words such as “exemplary” or “for example” are used as examples, illustrations, or illustrations. Any embodiment or design solution described as “exemplary” or “for example” in the embodiments of the present disclosure should not be construed as being more preferable or advantageous than other embodiments or design solutions. To be precise, words such as “exemplary” or “for example” are used to present related concepts in a specific manner.
- LTE Long Time Evolution
- LTE-A Long Time Evolution
- CDMA Code Division Multiple Access
- TDMA Time Division Multiple Access
- FDMA Frequency Division Multiple Access
- OFDMA Orthogonal Frequency Division Multiple Access
- SC-FDMA Single Carrier Frequency Single-carrier Frequency-Division Multiple Access
- the terms “system” and “network” are often used interchangeably.
- the CDMA system can implement radio technologies such as CDMA2000 and Universal Terrestrial Radio Access (UTRA).
- UTRA includes Wideband Code Division Multiple Access (WCDMA) and other CDMA variants.
- the TDMA system can implement radio technologies such as the Global System for Mobile Communication (GSM).
- OFDMA system can realize such as Ultra Mobile Broadband (UMB), Evolved UTRA (Evolution-UTRA, E-UTRA), IEEE 802.11 (Wi-Fi), IEEE 802.16 (WiMAX), IEEE 802.20, Flash-OFDM, etc. Radio technology.
- UMB Ultra Mobile Broadband
- Evolution-UTRA Evolved UTRA
- E-UTRA IEEE 802.11
- WiMAX IEEE 802.16
- IEEE 802.20 Flash-OFDM
- Flash-OFDM Flash-OFDM
- LTE and more advanced LTE are new UMTS versions that use E-UTRA.
- UTRA, E-UTRA, UMTS, LTE, LTE-A, and GSM are described in documents from an organization named "3rd Generation Partnership Project” (3GPP).
- CDMA2000 and UMB are described in documents from an organization named “3rd Generation Partnership Project 2" (3GPP2).
- the techniques described in this article can be used for the systems and radio technologies mentioned above, as well as other systems and radio technologies.
- the wireless communication system may include: a network device 11 and a terminal 12.
- the terminal 12 may be denoted as a UE 12, and the terminal 12 may communicate with the network device 11 (transmitting signaling or transmitting data).
- the connection between the above-mentioned various devices may be a wireless connection.
- a solid line is shown in FIG. 1a.
- the network device 11 provided by the embodiment of the present disclosure may be a base station, which may be a commonly used base station, an evolved node base station (eNB), or a network device in a 5G system (for example, the following Equipment such as next generation node base station (gNB) or transmission and reception point (TRP)).
- eNB evolved node base station
- 5G system for example, the following Equipment such as next generation node base station (gNB) or transmission and reception point (TRP)).
- gNB next generation node base station
- TRP transmission and reception point
- the terminal 12 provided in the embodiment of the present disclosure may be a mobile phone, a tablet computer, a notebook computer, an ultra-mobile personal computer (Ultra-Mobile Personal Computer, UMPC), a netbook or a personal digital assistant (Personal Digital Assistant, PDA), a mobile Internet device (Mobile Internet Device (MID), Wearable Device (Wearable Device), or in-vehicle equipment, etc.
- Fig. 1b shows a terminal 12 of an embodiment of the present disclosure.
- the terminal 12 includes a baseband processor 102 located in the terminal 12.
- the baseband processor 102 is configured to stop transmission on the first symbol and/or within the measurement window when the terminal performs inter-frequency measurement that does not require a measurement interval; wherein, the first symbol includes One or more of the following: symbol to be measured; one or more symbols before the symbol to be measured; one or more symbols after the symbol to be measured.
- the terminal 12 also includes a transceiver 104, and the transceiver 104 includes a transmitting circuit and a receiving circuit.
- the transmitting circuit is used by the baseband processor 102 to generate the baseband signal using up-conversion modulation to obtain a high-frequency carrier signal.
- the high-frequency carrier signal is transmitted through the antenna 106, and the receiving circuit uses a down-conversion operation for the high-frequency signal received by the antenna 106 to obtain Low-frequency baseband signal.
- the number of antennas 106 is one or more.
- an embodiment of the present disclosure provides a transmission method, where the execution subject of the method is a terminal, and includes: step 201.
- Step 201 When the terminal performs inter-frequency measurement that does not require a measurement interval, stop transmission on the first symbol and/or within the measurement window; wherein, the first symbol includes one or more of the following: (1) Waiting Measurement symbol; (2) One or more symbols before the symbol to be measured; (3) One or more symbols after the symbol to be measured.
- the transmission method is applicable to one or more of the following scenarios:
- the measured inter-frequency frequency or cell is TDD
- the measured inter-frequency frequency or cell is millimeter wave (FR2);
- the stopping transmission includes: not sending or receiving, for example, not sending or receiving by the terminal in the serving cell;
- non-sending includes one or more of the following:
- PUCCH Physical Uplink Control Channel
- the non-acceptance includes one or more of the following:
- TRS Tracking Reference Signal
- Channel state information reference signals Channel State Information-Reference Signals, CSI-RS
- the stopping transmission on the first symbol and/or within the measurement window includes: stopping on the first symbol when the frequency or cell of the inter-frequency measurement is synchronized with the serving cell. Transmission; and/or, when the frequency of inter-frequency measurement or the cell is not synchronized with the serving cell, stop transmission within the measurement window.
- the method further includes:
- the terminal can obtain the synchronization signal block index of the inter-frequency neighboring cell according to the timing of the serving cell;
- the first information is synchronization information
- the synchronization information is "TRUE” or “1”, indicating that the frame numbers of the serving cell and the inter-frequency neighboring cell system are aligned with the frame boundary.
- the synchronization information is "FALSE” or "0”, indicating that the system frame numbers and frame boundaries of the serving cell and the inter-frequency neighboring cell are not aligned. It is understandable that the content of the first information is not specifically limited.
- the method further includes:
- the first condition includes one or more of the following:
- the frequency of inter-frequency measurement at least partially overlaps with the frequency of the serving cell (including: complete overlap or partial overlap);
- the symbols to be measured for inter-frequency measurement are included in the BWP activated by the terminal, for example, the symbols to be measured for inter-frequency measurement are completely included in the BWP activated by the terminal.
- the synchronization of the frequency or the cell of the inter-frequency measurement with the serving cell means one or more of the following:
- the terminal can obtain the synchronization signal block index of the inter-frequency neighboring cell according to the timing of the serving cell;
- the synchronization signal block timing of the serving cell is aligned with the synchronization signal block timing of the inter-frequency neighboring cell.
- the method further includes:
- Send second information where the second information indicates whether the terminal supports the first capability, and the first capability includes one or more of the following:
- the method further includes: receiving a measurement configuration, the measurement configuration including one or more of the following:
- Information indicating that the inter-frequency measurement does not require a measurement interval for example, the information indicating that the inter-frequency measurement does not require a measurement interval.
- the information is "TRUE” or “1”, indicating that the inter-frequency measurement does not require measurement Interval, the information is "FALSE” or "0”, indicating that inter-frequency measurement requires a measurement interval;
- Information indicating whether the inter-frequency measurement is performed outside the measurement interval for example, the information indicating whether the inter-frequency measurement is turned on is performed outside the measurement interval. Exemplarily, if the information is "TRUE” or 1, it means that the terminal performs measurement outside the measurement interval, and if the information is "FALSE” or 0, it means that the terminal performs measurement within the measurement interval.
- the inter-frequency measurement does not require a measurement interval, it is on the symbol to be measured, one or more symbols before the symbol to be measured, and/or one or more symbols after the symbol to be measured, and/ Or stop transmission within the measurement window time to avoid performance loss caused by uplink and downlink interference to the system while reducing overhead.
- the serving cell performs inter-frequency adjacent cell measurement, that is, the reference signal SSB#2 is measured.
- SSB is a synchronization signal block, consisting of a primary synchronization signal (PSS), a secondary synchronization signal (SSS), and a physical broadcast channel (PBCH). )composition.
- PSS primary synchronization signal
- SSS secondary synchronization signal
- PBCH physical broadcast channel
- FIG. 4 illustrates the transmission of SSB in the time domain.
- the window time is measured (Synchronization Signal Block Measurement Time Configuration (SS/PBCH Block Measurement Time Configuration, SMTC) window time).
- SS/PBCH Block Measurement Time Configuration SS/PBCH Block Measurement Time Configuration, SMTC
- Cell 1 is the serving cell
- cell 2 is the Time Division Duplex (TDD) cell to be measured
- SSB#0, SSB#1 are the reference symbols to be measured for cell 2
- 2ms are the measurement window time (SMTC window time).
- the terminal receives the synchronization information sent by the network, and the synchronization information is "TRUE", indicating that the system frame number (SFN) of cell 2 and cell 1 is aligned with the frame boundary.
- SFN system frame number
- the terminal performs inter-frequency measurement on cell 2 and measures SSB#2.
- the transmission restriction during measurement includes one or more of the following:
- the terminal does not receive or transmit data on SSB#0;
- the terminal does not receive or transmit data on SSB#1;
- the terminal does not receive or send data in the previous symbol and the next symbol of SSB#0;
- the terminal does not receive or transmit data in the previous symbol and the next symbol of SSB#1.
- the terminal does not receive or transmit data on SSB#0 and SSB#1. At the same time, the terminal does not receive or transmit data on the previous symbol and the next symbol of SSB#0, and the terminal does not receive or transmit data on the previous symbol of SSB#1. The symbol and the following symbol do not receive or transmit data.
- the serving cell performs inter-frequency adjacent cell measurement, that is, the reference signal SSB#2 is measured.
- SSB is a synchronization signal block, which is composed of PSS, SSS and PBCH
- the measurement window time (SMTC window time) is 2 ms.
- Cell 1 is the serving cell
- cell 2 is the TDD cell to be measured
- SSB#0, SSB#1 are the reference symbols to be measured of cell 2
- 2ms is the measurement window time.
- the terminal reports to the network side that it supports inter-frequency measurement that does not require a measurement interval.
- the terminal receives synchronization information sent by the network, and the synchronization information is "FALSE", indicating one or more of the following: (a) Cell 2 and Cell 1 are not synchronized; (b) Frame boundary or SFN is not aligned.
- the terminal performs inter-frequency measurement on cell 2 and measures SSB#2.
- the transmission limit during measurement is: the terminal does not receive or send data within 2 ms of the measurement window time (SMTC window time).
- the serving cell performs inter-frequency adjacent cell measurement, that is, the reference signal SSB#2 is measured.
- SSB is a synchronization signal block, which is composed of PSS, SSS and PBCH
- the measurement window time (SMTC window time) is 2 ms.
- Cell 1 is the serving cell
- cell 2 is the TDD cell to be measured
- SSB#0, SSB#1 are the reference symbols to be measured of cell 2
- 2ms is the measurement window time.
- the terminal judges that SSB#2 of cell 2 is in the terminal active part bandwidth (Band Width Part, BWP), and then judges one or more of the following: (a) Cell 2 and cell 1 are synchronized; (b) SFN and frame The borders are all aligned.
- BWP terminal active part bandwidth
- the terminal performs inter-frequency measurement on cell 2 and measures SSB#2.
- the transmission restriction during measurement includes one or more of the following:
- the terminal does not receive or transmit data on SSB#0;
- the terminal does not receive or transmit data on SSB#1;
- the terminal does not receive or send data in the previous symbol and the next symbol of SSB#0;
- the terminal does not receive or transmit data in the previous symbol and the next symbol of SSB#1.
- the terminal does not receive or transmit data on SSB#0 and SSB#1. At the same time, the terminal does not receive or transmit data on the previous symbol and the next symbol of SSB#0, and the terminal does not transmit data before SSB#1. One symbol and the next symbol do not receive or transmit data.
- the serving cell performs inter-frequency adjacent cell measurement, that is, the reference signal SSB#2 is measured.
- SSB is a synchronization signal block, which is composed of PSS, SSS, and PBCH.
- the measurement window time (SMTC window time) is 2 ms.
- Cell 1 is the serving cell
- cell 2 is the TDD cell to be measured
- SSB#0, SSB#1 are the reference symbols to be measured of cell 2
- 2ms is the measurement window time.
- the terminal judges that the SSB#2 of the cell 2 is not completely included in the BWP activated by the terminal, and then judges that the cell 2 and the cell 1 are not synchronized.
- the terminal reports that it supports inter-frequency measurement that does not require a measurement interval.
- the terminal performs inter-frequency measurement on cell 2 and measures SSB#2.
- the transmission limit during measurement is: the terminal does not receive or send data within 2 ms of the measurement window time (SMTC window time).
- the serving cell performs inter-frequency adjacent cell measurement, that is, the reference signal SSB#2 is measured.
- SSB is a synchronization signal block, which is composed of PSS, SSS, and PBCH.
- the measurement window time (SMTC window time) is 2 ms.
- Cell 1 is the serving cell
- cell 2 is the cell to be measured
- SSB#0, SSB#1 are the reference symbols to be measured of cell 2
- 2ms is the measurement window time (SMTC window time)
- the carrier interval of cell 1 is 30KHz
- the subcarrier interval of cell 2 is 15KHz.
- the terminal reports to the network that it does not support simultaneous reception of serving cell data and measurement of neighboring cells when the subcarrier spacing between the serving cell and the inter-frequency neighboring cell is different.
- the terminal receives synchronization information sent by the network, and the synchronization information is "TRUE", indicating that the SFN and frame boundaries of cell 2 and cell 1 are aligned.
- the terminal performs inter-frequency measurement on cell 2 and measures SSB#2.
- the transmission restriction during measurement includes one or more of the following:
- the terminal does not receive or transmit data on SSB#0;
- the terminal does not receive or transmit data on SSB#1;
- the terminal does not receive or send data in the previous symbol and the next symbol of SSB#0;
- the terminal does not receive or transmit data in the previous symbol and the next symbol of SSB#1.
- the terminal does not receive or transmit data on SSB#0 and SSB#1. At the same time, the terminal does not receive or transmit data on the previous symbol and the next symbol of SSB#0, and the terminal does not transmit data before SSB#1. One symbol and the next symbol do not receive or transmit data.
- Embodiment 6 is a diagrammatic representation of Embodiment 6
- the serving cell performs inter-frequency adjacent cell measurement, that is, the reference signal SSB#2 is measured.
- SSB is a synchronization signal block, which is composed of PSS, SSS, and PBCH.
- the measurement window time (SMTC window time) is 2 ms.
- Cell 1 is the serving cell
- cell 2 is the FR2 millimeter wave cell to be measured
- SSB#0, SSB#1 are the reference symbols to be measured of cell 2
- 2ms is the measurement window time (SMTC window time).
- the terminal receives synchronization information sent by the network. If the synchronization information is "TRUE", it means that the SFN and frame boundaries of cell 2 and cell 1 are aligned.
- the terminal performs inter-frequency measurement on cell 2 and measures SSB#2.
- the transmission restriction during measurement includes one or more of the following:
- the terminal does not receive or transmit data on SSB#0;
- the terminal does not receive or transmit data on SSB#1;
- the terminal does not receive or send data in the previous symbol and the next symbol of SSB#0;
- the terminal does not receive or transmit data in the previous symbol and the next symbol of SSB#1.
- the terminal does not receive or transmit data on SSB#0 and SSB#1. At the same time, the terminal does not receive or transmit data on the previous symbol and the next symbol of SSB#0, and the terminal does not transmit data before SSB#1. One symbol and the next symbol do not receive or transmit data.
- an embodiment of the present disclosure provides a terminal, and the terminal 1000 includes:
- the processing module 1001 is configured to stop transmission on the first symbol and/or within the measurement window when the terminal performs inter-frequency measurement that does not require a measurement interval;
- the first symbol includes one or more of the following: a symbol to be measured; one or more symbols before the symbol to be measured; one or more symbols after the symbol to be measured.
- the processing module 1001 may be a baseband processor.
- the stopping transmission on the first symbol and/or within the measurement window includes:
- the transmission is stopped within the measurement window.
- the terminal 1000 further includes:
- the first receiving module is configured to receive first information, where the first information indicates one or more of the following:
- the terminal can obtain the synchronization signal block index of the inter-frequency neighboring cell according to the timing of the serving cell;
- the terminal 1000 further includes:
- a judging module configured to judge that the frequency or cell of the inter-frequency measurement is synchronized with the serving cell when the first condition is met;
- the first condition includes one or more of the following:
- the frequency of inter-frequency measurement at least partially overlaps with the frequency of the serving cell
- the synchronization of the frequency or the cell of the inter-frequency measurement with the serving cell means one or more of the following:
- the terminal can obtain the synchronization signal block index of the inter-frequency neighboring cell according to the timing of the serving cell;
- the synchronization signal block timing of the serving cell is aligned with the synchronization signal block timing of the inter-frequency neighboring cell.
- the terminal 1000 further includes:
- the sending module is configured to send second information, the second information indicating whether the terminal supports a first capability, and the first capability includes one or more of the following:
- the terminal 1000 further includes:
- the second receiving module is configured to receive a measurement configuration, where the measurement configuration includes one or more of the following:
- Information indicating that the inter-frequency measurement does not require a measurement interval for example, the information indicating that the inter-frequency measurement does not require a measurement interval.
- the information is "TRUE” or “1”, indicating that the inter-frequency measurement does not require measurement Interval, the information is "FALSE” or "0”, indicating that inter-frequency measurement requires a measurement interval;
- Information indicating whether the inter-frequency measurement is performed outside the measurement interval for example, the information indicating whether the inter-frequency measurement is turned on is performed outside the measurement interval. Exemplarily, if the information is "TRUE” or 1, it means that the terminal performs measurement outside the measurement interval, and if the information is "FALSE” or 0, it means that the terminal performs measurement within the measurement interval.
- the stopping transmission includes: not sending or receiving by the terminal in the serving cell;
- non-sending includes one or more of the following:
- the non-acceptance includes one or more of the following:
- the terminal provided by the embodiment of the present disclosure can execute the method embodiment shown in FIG. 2 above, and its implementation principles and technical effects are similar, and details are not described herein again in this embodiment.
- the terminal 1100 includes: a transceiver 1101 and a processor 1102;
- the processor 1102 is configured to stop transmission on the first symbol and/or within the measurement window when the terminal performs inter-frequency measurement that does not require a measurement interval;
- the first symbol includes one or more of the following: a symbol to be measured; one or more symbols before the symbol to be measured; one or more symbols after the symbol to be measured.
- the processor 1102 may be a baseband processor.
- the stopping transmission on the first symbol and/or within the measurement window includes:
- the transmission is stopped within the measurement window.
- the processor 1102 is further configured to receive first information, where the first information indicates one or more of the following:
- the terminal can obtain the synchronization signal block index of the inter-frequency neighboring cell according to the timing of the serving cell;
- the processor 1102 is configured to determine that the frequency or cell of the inter-frequency measurement is synchronized with the serving cell if the first condition is met;
- the first condition includes one or more of the following:
- the frequency of inter-frequency measurement at least partially overlaps with the frequency of the serving cell
- the synchronization of the frequency or the cell of the inter-frequency measurement with the serving cell means one or more of the following:
- the terminal can obtain the synchronization signal block index of the inter-frequency neighboring cell according to the timing of the serving cell;
- the synchronization signal block timing of the serving cell is aligned with the synchronization signal block timing of the inter-frequency neighboring cell.
- the processor 1102 is further configured to send second information, the second information indicating whether the terminal supports a first capability, and the first capability includes one or more of the following:
- the processor 1102 is further configured to receive a measurement configuration, where the measurement configuration includes one or more of the following:
- Information indicating that the inter-frequency measurement does not require a measurement interval for example, the information indicating that the inter-frequency measurement does not require a measurement interval.
- the information is "TRUE” or “1”, indicating that the inter-frequency measurement does not require measurement Interval, the information is "FALSE” or "0”, indicating that inter-frequency measurement requires a measurement interval;
- Information indicating whether the inter-frequency measurement is performed outside the measurement interval for example, the information indicating whether the inter-frequency measurement is turned on is performed outside the measurement interval. Exemplarily, if the information is "TRUE” or 1, it means that the terminal performs measurement outside the measurement interval, and if the information is "FALSE” or 0, it means that the terminal performs measurement within the measurement interval.
- the stopping transmission includes: not sending or receiving by the terminal in the serving cell;
- non-sending includes one or more of the following:
- the non-acceptance includes one or more of the following:
- the terminal provided by the embodiment of the present disclosure can execute the method embodiment shown in FIG. 2 above, and its implementation principles and technical effects are similar, and details are not described herein again in this embodiment.
- FIG. 12 is a structural diagram of a communication device applied in an embodiment of the present disclosure.
- the communication device 1200 includes: a processor 1201, a transceiver 1202, a memory 1203, and a bus interface, where:
- the communication device 1200 further includes: a computer program stored in the memory 1203 and capable of running on the processor 1201. The computer program is executed by the processor 1201 to implement the steps in the embodiment shown in FIG. 2 .
- the processor 1201 may be a baseband processor.
- the bus architecture may include any number of interconnected buses and bridges. Specifically, one or more processors represented by the processor 1201 and various circuits of the memory represented by the memory 1203 are linked together.
- the bus architecture can also link various other circuits such as peripheral devices, voltage regulators, power management circuits, etc., which are all known in the art, and therefore, will not be further described herein.
- the bus interface provides the interface.
- the transceiver 1202 may be a plurality of elements, that is, including a transmitter and a receiver, and provide a unit for communicating with various other devices on the transmission medium.
- the processor 1201 is responsible for managing the bus architecture and general processing, and the memory 1203 can store data used by the processor 1201 when performing operations.
- the communication device provided by the embodiment of the present disclosure can execute the method embodiment shown in FIG. 2 above, and its implementation principles and technical effects are similar, and details are not described in this embodiment here.
- the embodiments of the present disclosure also provide a computer-readable storage medium on which a computer program is stored, and when the computer program is executed by a processor, the steps of the transmission method are implemented.
- the embodiment of the present disclosure also provides a communication device, the communication device is a terminal or a chip in the terminal or a baseband processor in the terminal, and the communication device is configured to:
- the first symbol includes one or more of the following: a symbol to be measured; one or more symbols before the symbol to be measured; one or more symbols after the symbol to be measured.
- the steps of the method or algorithm described in conjunction with the disclosure of the present disclosure may be implemented in a hardware manner, or may be implemented in a manner in which a processor executes software instructions.
- the software instructions can be composed of corresponding software modules, and the software modules can be stored in RAM, flash memory, ROM, EPROM, EEPROM, registers, hard disks, mobile hard disks, read-only optical disks, or any other form of storage medium known in the art.
- An exemplary storage medium is coupled to the processor, so that the processor can read information from the storage medium and can write information to the storage medium.
- the storage medium may also be an integral part of the processor.
- the processor and the storage medium may be located in the ASIC.
- the ASIC may be located in the core network interface device.
- the processor and the storage medium may also exist as discrete components in the core network interface device.
- the functions described in the present disclosure can be implemented by hardware, software, firmware, or any combination thereof.
- these functions can be stored in a computer-readable medium or transmitted as one or more instructions or codes on the computer-readable medium.
- the computer-readable medium includes a computer storage medium and a communication medium, where the communication medium includes any medium that facilitates the transfer of a computer program from one place to another.
- the storage medium may be any available medium that can be accessed by a general-purpose or special-purpose computer.
- the embodiments of the present disclosure can be provided as a method, a system, or a computer program product. Therefore, the embodiments of the present disclosure may adopt the form of a complete hardware embodiment, a complete software embodiment, or an embodiment combining software and hardware. Moreover, the embodiments of the present disclosure may adopt the form of a computer program product implemented on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer-usable program codes.
- computer-usable storage media including but not limited to disk storage, CD-ROM, optical storage, etc.
- These computer program instructions can be provided to the processor of a general-purpose computer, a special-purpose computer, an embedded processor, or other programmable data processing equipment to produce a machine, so that the instructions executed by the processor of the computer or other programmable data processing equipment can be used to generate It is a device that realizes the functions specified in one process or multiple processes in the flowchart and/or one block or multiple blocks in the block diagram.
- These computer program instructions can also be stored in a computer-readable memory that can guide a computer or other programmable data processing equipment to work in a specific manner, so that the instructions stored in the computer-readable memory produce an article of manufacture including the instruction device.
- the device implements the functions specified in one process or multiple processes in the flowchart and/or one block or multiple blocks in the block diagram.
- These computer program instructions can also be loaded on a computer or other programmable data processing equipment, so that a series of operation steps are executed on the computer or other programmable equipment to produce computer-implemented processing, so as to execute on the computer or other programmable equipment.
- the instructions provide steps for implementing the functions specified in one process or multiple processes in the flowchart and/or one block or multiple blocks in the block diagram.
- each module is only a division of logical functions, and may be fully or partially integrated into a physical entity in actual implementation, or may be physically separated.
- these modules can all be implemented in the form of software called by processing elements; they can also be implemented in the form of hardware; part of the modules can be implemented in the form of calling software by processing elements, and some of the modules can be implemented in the form of hardware.
- the determining module may be a separately established processing element, or it may be integrated in a certain chip of the above-mentioned device for implementation.
- it may also be stored in the memory of the above-mentioned device in the form of program code, which is determined by a certain processing element of the above-mentioned device. Call and execute the functions of the above-identified module.
- the implementation of other modules is similar.
- all or part of these modules can be integrated together or implemented independently.
- the processing element described here may be an integrated circuit with signal processing capability.
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Abstract
Description
Claims (15)
- 一种传输方法,应用于终端,包括:在所述终端进行不需要测量间隔的异频测量时,在第一符号上和/或测量窗口时间内停止传输;其中,所述第一符号包括以下一项或多项:待测量符号;待测量符号的前一个或多个符号;待测量符号的后一个或多个符号。
- 根据权利要求1所述的方法,其中,所述在第一符号上和/或测量窗口时间内停止传输,包括:当所述异频测量的频率或小区与服务小区同步的情况下,在所述第一符号上停止传输;和/或,当所述异频测量的频率或小区与服务小区不同步的情况下,在测量窗口时间内停止传输。
- 根据权利要求2所述的方法,还包括:接收第一信息,所述第一信息指示以下一项或多项:所述服务小区和异频邻区的子帧边界是否对齐;所述服务小区和异频邻区的系统帧号SFN是否对齐;所述服务小区和异频邻区的帧边界是否对齐;所述终端是否能够根据所述服务小区的定时获取异频邻区的同步信号块索引;所述服务小区的同步信号块定时与异频邻区的同步信号块定时是否对齐。
- 根据权利要求2所述的方法,还包括:在满足第一条件时,判定所述异频测量的频率或小区与服务小区同步;所述第一条件包括以下一项或多项:所述异频测量的频率与所述服务小区频率至少部分重叠;所述异频测量的待测量符号包含在终端激活的部分带宽中。
- 根据权利要求3所述的方法,其中,所述异频测量的频率或小区与服务小区同步表示以下一项或多项:所述服务小区和异频邻区的子帧边界对齐;所述服务小区和异频邻区的SFN对齐;所述服务小区和异频邻区的帧边界对齐;所述终端能够根据服务小区的定时获取异频邻区的同步信号块索引;所述服务小区的同步信号块定时与异频邻区的同步信号块定时对齐。
- 根据权利要求1所述的方法,还包括:发送第二信息,所述第二信息指示所述终端是否支持第一能力,所述第一能力包括以下一项或多项:所述异频测量不需要测量间隔;在服务小区和异频邻区子载波间隔不同的情况下,进行所述服务小区数据接收和/或邻区测量。
- 根据权利要求1所述的方法,还包括:接收测量配置,所述测量配置包括以下一项或多项:所述测量窗口时间;指示所述异频测量不需要测量间隔的信息。
- 一种终端,包括:处理模块,用于在所述终端进行不需要测量间隔的异频测量时,在第一符号上和/或测量窗口时间内停止传输;其中,所述第一符号包括以下一项或多项:待测量符号;待测量符号的前一个或多个符号;待测量符号的后一个或多个符号。
- 根据权利要求8所述的终端,其中,所述处理模块为基带处理器。
- 一种终端,包括:收发机和处理器;所述处理器,用于在所述终端进行不需要测量间隔的异频测量时,在第一符号上和/或测量窗口时间内停止传输;其中,所述第一符号包括以下一项或多项:待测量符号;待测量符号的前一个或多个符号;待测量符号的后一个或多个符号。
- 根据权利要求10所述的终端,其中,所述处理器为基带处理器。
- 一种通信设备,包括:处理器、存储器及存储在所述存储器上并可在所述处理器上运行的程序,所述程序被所述处理器执行时实现包括如权利要求1至7中任一项所述的传输方法的步骤。
- 根据权利要求12所述的通信设备,其中,所述处理器为基带处理器。
- 一种计算机可读存储介质,所述计算机可读存储介质上存储有计算机程序,所述计算机程序被处理器执行时实现包括如权利要求1至7中任一项所述的传输方法的步骤。
- 一种通信装置,所述通信装置为终端或者终端中的芯片或者终端中的基带处理器,所述通信装置被配置为:在所述终端进行不需要测量间隔的异频测量时,在第一符号上和/或测量窗口时间内停止传输;其中,所述第一符号包括以下一项或多项:待测量符号;待测量符号的前一个或多个符号;待测量符号的后一个或多个符号。
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| EP21756484.8A EP4109957B1 (en) | 2020-02-21 | 2021-02-20 | Transmission method and device |
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| US12245172B2 (en) * | 2021-11-01 | 2025-03-04 | Qualcomm Incorporated | Signaling and scheduling to enable network configured small gaps in intra-band inter-frequency measurement |
| US20230224026A1 (en) * | 2022-01-10 | 2023-07-13 | Mediatek Inc. | Method And Apparatus For Satellite Access Network Measurement And Data Scheduling |
| WO2024183058A1 (en) * | 2023-03-09 | 2024-09-12 | Apple Inc. | Systems and methods for enhanced inter-frequency and intra-frequency measurement without measurement gap |
| TWI847620B (zh) * | 2023-03-23 | 2024-07-01 | 國立成功大學 | 應用二維主同步訊號之通訊方法與通訊系統 |
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| CN113300802A (zh) | 2021-08-24 |
| CN113300802B (zh) | 2022-10-04 |
| EP4109957A4 (en) | 2023-08-30 |
| MX2022010308A (es) | 2022-09-19 |
| EP4109957B1 (en) | 2025-04-09 |
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| CA3168676A1 (en) | 2021-08-26 |
| JP7496425B2 (ja) | 2024-06-06 |
| JP2023514700A (ja) | 2023-04-07 |
| EP4109957A1 (en) | 2022-12-28 |
| AU2021223146A1 (en) | 2022-10-20 |
| US20230094513A1 (en) | 2023-03-30 |
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