WO2020027599A1 - 무선 통신 시스템에서 패킷 중복 전송을 제어하는 방법 및 장치 - Google Patents
무선 통신 시스템에서 패킷 중복 전송을 제어하는 방법 및 장치 Download PDFInfo
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- WO2020027599A1 WO2020027599A1 PCT/KR2019/009609 KR2019009609W WO2020027599A1 WO 2020027599 A1 WO2020027599 A1 WO 2020027599A1 KR 2019009609 W KR2019009609 W KR 2019009609W WO 2020027599 A1 WO2020027599 A1 WO 2020027599A1
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- transmission
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- 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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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W28/00—Network traffic management; Network resource management
- H04W28/02—Traffic management, e.g. flow control or congestion control
- H04W28/0252—Traffic management, e.g. flow control or congestion control per individual bearer or channel
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W28/00—Network traffic management; Network resource management
- H04W28/02—Traffic management, e.g. flow control or congestion control
- H04W28/06—Optimizing the usage of the radio link, e.g. header compression, information sizing, discarding information
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W48/00—Access restriction; Network selection; Access point selection
- H04W48/16—Discovering, processing access restriction or access information
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W80/00—Wireless network protocols or protocol adaptations to wireless operation
- H04W80/02—Data link layer protocols
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L45/00—Routing or path finding of packets in data switching networks
- H04L45/24—Multipath
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W84/00—Network topologies
- H04W84/18—Self-organising networks, e.g. ad-hoc networks or sensor networks
Definitions
- the present disclosure relates to a method and apparatus for controlling packet redundancy transmission in a wireless communication system.
- a 5G communication system or a pre-5G communication system is called a system after a 4G network (Beyond 4G Network) or a system after an LTE system (Post LTE).
- the 5G communication system defined by 3GPP is called New Radio (NR) system.
- mmWave ultra-high frequency
- 60 Gigabit 60 GHz
- 5G communication system beamforming, massive array multiple input / output (Full-Dimensional MIMO), and full dimensional multiple input / output (FD-MIMO) are used in 5G communication system to increase path loss mitigation of radio waves and increase transmission distance of radio waves.
- Array antenna, analog beam-forming, and large scale antenna techniques have been discussed and applied to NR systems.
- 5G communication systems have advanced small cells, advanced small cells, cloud radio access network (cloud RAN), ultra-dense network (ultra-dense network) Device to Device communication (D2D), wireless backhaul, moving network, cooperative communication, Coordinated Multi-Points (CoMP), and interference cancellation And other technology developments are being made.
- FQAM Hybrid FSK and QAM Modulation
- SWSC sliding window superposition coding
- ACM Advanced Coding Modulation
- FBMC Fan Bank Multi Carrier
- NOMA Non-orthogonal multiple access and sparse code multiple access have been developed.
- IoT Internet of Things
- IoE Internet of Everything
- sensing technology wired / wireless communication and network infrastructure, service interface technology, and security technology
- M2M Machine to machine
- MTC Machine Type Communication
- IoT intelligent Internet technology services that can create new value 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 appliances, advanced medical services, etc. through convergence and complex of existing IT (iInformation Technology) technology and various industries. It can be applied to.
- 5G communication such as a sensor network, a machine to machine (M2M), a machine type communication (MTC), and the like are implemented by techniques such as beamforming, MIMO, and array antennas.
- M2M machine to machine
- MTC machine type communication
- cloud RAN cloud radio access network
- a method for controlling packet redundancy transmission of a terminal in a wireless communication system includes: receiving, from a base station, a packet duplication configuration for a radio bearer through a radio resource control (RRC) message; Checking, for a plurality of radio link control (RLC) devices, whether each RLC device is configured for uplink packet redundancy transmission; And when packet redundancy transmission is activated, performing packet redundancy transmission using an RLC device configured to be used for uplink packet redundancy transmission.
- RRC radio resource control
- a terminal for controlling packet redundancy transmission in a wireless communication system includes a transceiver; Memory; And at least one processor, wherein the at least one processor receives, from a base station, a packet duplication configuration for a radio bearer through a radio resource control (RRC) message, and receives a plurality of radio link control For each device, check whether each RLC device is configured for uplink packet redundancy transmission, and if packet redundancy transmission is enabled, perform packet redundancy transmission using an RLC device configured for uplink packet redundancy transmission. Can be done.
- RRC radio resource control
- an apparatus and a method for effectively providing a service in a mobile communication system are provided.
- FIG. 1 is a diagram illustrating a structure of a radio bearer in which packet redundant transmission is set according to an embodiment.
- FIG. 2 is a diagram illustrating an operation of packet overlapping transmission according to an exemplary embodiment.
- FIG. 3 is a diagram illustrating an operation of packet overlapping transmission according to another exemplary embodiment.
- FIG. 4 is a diagram illustrating an operation of performing packet redundancy transmission according to uplink redundancy according to an embodiment.
- FIG. 5 illustrates a method for a base station to control activation and deactivation of packet duplication according to an embodiment.
- FIG. 6 is a diagram illustrating a packet redundancy enable / disable message format according to an embodiment.
- FIG. 7 is a diagram illustrating a packet duplication activation / deactivation message format according to another embodiment.
- FIG. 8 is a diagram illustrating a packet duplication activation / deactivation message format according to another embodiment.
- FIG. 9 is a diagram illustrating a packet duplicate activation / deactivation message format according to another embodiment.
- FIG. 10 is a diagram illustrating a packet duplication enable / disable message format according to another embodiment.
- FIG. 11 is a diagram illustrating a method for notifying a base station whether a packet redundancy activation function is provided by a terminal according to an embodiment.
- FIG. 12 is a diagram illustrating an operation of performing packet redundancy transmission according to an embodiment.
- FIG. 13 is a block diagram illustrating an internal structure of a terminal according to an embodiment.
- FIG. 14 is a block diagram illustrating a configuration of a base station according to an embodiment.
- FIG. 15 is a diagram illustrating a structure of a radio bearer in which packet redundant transmission is set according to another embodiment.
- FIG. 16 is a diagram illustrating a method of controlling, by a base station, packet activation and deactivation according to another embodiment.
- FIG. 17 illustrates a method of controlling, by a base station, activation and deactivation in cell carrier aggregation according to an embodiment.
- 18 is a diagram for describing a method of applying cell configuration when packet redundancy transmission is deactivated according to an embodiment.
- 19 illustrates a method for applying cell restriction for packet duplication according to an embodiment.
- 20 is a diagram illustrating an operation of cell deactivation in a bearer in which packet duplication is set, according to an embodiment.
- 21 is a diagram illustrating an operation of performing packet duplication by a transmitting PDCP apparatus according to an embodiment.
- 22 is a diagram illustrating an operation of deactivating packet duplication transmission of a specific RLC device in a bearer in which packet duplication is set, according to an embodiment.
- FIG. 23 is a diagram illustrating an operation of applying a cell restriction when two or more cell groups are applied according to an embodiment.
- 24 is a block diagram illustrating an internal structure of a terminal according to another embodiment.
- 25 is a block diagram showing a configuration of a base station according to another embodiment.
- FIG. 26 illustrates a packet duplication enable / disable message format according to another embodiment.
- FIG. 27 is a diagram illustrating a packet duplicate activation / deactivation message format according to another embodiment.
- FIG. 28 is a diagram illustrating a packet redundancy enable / disable message format according to another embodiment.
- FIG. 29 illustrates a MAC subheader format of a variable length MAC CE according to an embodiment.
- FIG. 30 illustrates a MAC subheader format of a fixed length MAC CE according to an embodiment.
- a method for controlling packet redundancy transmission of a terminal in a wireless communication system includes: receiving, from a base station, a packet duplication configuration for a radio bearer through a radio resource control (RRC) message; Checking, for a plurality of radio link control (RLC) devices, whether each RLC device is configured to be used for uplink packet redundancy transmission; And when packet redundancy transmission is activated, performing packet redundancy transmission using an RLC device configured to be used for uplink packet redundancy transmission.
- RRC radio resource control
- the step of confirming whether each RLC device is configured to be used for uplink packet redundancy transmission may include, from the base station, a media acces control (MAC) CE ( receiving, through a control element, information indicating packet redundancy activation or deactivation for a plurality of RLC devices, wherein each RLC device is moved upward based on the information indicating packet redundancy activation or deactivation; And checking whether the link packet is set to be used for the duplicate transmission of the packet.
- MAC media acces control
- the information indicating the packet duplication activation or deactivation may include radio bearer identification information including at least one of a radio bearer index or a radio bearer ID and a plurality of fields corresponding to each RLC device. It may include.
- a plurality of fields corresponding to each RLC device may include a plurality of fields corresponding to each of all RLC devices configured in the radio bearer, and uplink packet duplication in packet duplication configuration for the radio bearer. It may be at least one of a plurality of fields corresponding to each RLC device configured to be used for transmission.
- the RRC message includes information on the RLC device to be used for uplink packet redundancy transmission for the plurality of RLC devices, and for each of the plurality of RLC devices,
- the determining of whether or not to enable uplink packet redundancy transmission may include determining whether each RLC device is configured to be used for uplink packet redundancy based on information on the RLC device to be used for uplink packet redundancy transmission. It may include the step of identifying.
- the packet redundancy transmission when the packet redundancy transmission is activated, performing packet redundancy transmission using an RLC device configured to be used for uplink packet redundancy transmission, from the base station, through MAC CE, Receiving information indicating packet duplication activation or deactivation, for RLC devices configured to be used for the uplink packet duplication transmission; And when the information indicating the packet duplication activation is received, activating the packet duplication transmission.
- the information on the RLC device to be used for the uplink packet redundant transmission, the list of RLC devices to be used for the uplink packet redundant transmission, the ID of the RLC device, logical channel ID or logical channel ID and It may include at least one or more combinations of cell group IDs.
- the packet redundancy transmission when the packet redundancy transmission is activated, performing packet redundancy transmission using an RLC device configured to be used for uplink packet redundancy transmission, from the base station, through MAC CE, Receiving, for the radio bearer, information indicating packet duplication activation or deactivation; And activating the packet redundancy transmission when receiving the information indicating the packet redundancy activation.
- an RLC device configured to be used for uplink packet redundancy transmission, from the base station, through MAC CE, Receiving, for the radio bearer, information indicating packet duplication activation or deactivation; And activating the packet redundancy transmission when receiving the information indicating the packet redundancy activation.
- a terminal for controlling packet redundancy transmission in a wireless communication system includes a transceiver; Memory; And at least one processor, wherein the at least one processor receives, from a base station, a packet duplication configuration for a radio bearer through a radio resource control (RRC) message, and receives a plurality of radio link control For each device, check whether each RLC device is configured for uplink packet redundancy transmission, and if packet redundancy transmission is enabled, perform packet redundancy transmission using an RLC device configured for uplink packet redundancy transmission. Can be done.
- RRC radio resource control
- the at least one processor through the media acces control (MAC) control element (MAC) from the base station, information indicating packet duplication activation or deactivation for a plurality of RLC devices; Is received, and based on information indicating the packet duplication activation or deactivation, it may be determined whether each RLC device is configured to be used for uplink packet duplication transmission.
- MAC media acces control
- MAC media acces control
- the information indicating the packet duplication activation or deactivation may include radio bearer identification information including at least one of a radio bearer index or a radio bearer ID and a plurality of fields corresponding to each RLC device. It may include.
- a plurality of fields corresponding to each RLC device may include a plurality of fields corresponding to each of all RLC devices configured in the radio bearer, and uplink packet duplication in packet duplication configuration for the radio bearer. It may be at least one of a plurality of fields corresponding to each RLC device configured to be used for transmission.
- the RRC message includes information on the RLC device to be used for uplink packet redundancy transmission for the plurality of RLC devices, and the at least one processor is configured to duplicate the uplink packet. On the basis of the information on the RLC device to be used for transmission, it may be determined whether each of the RLC devices is configured to be used for uplink packet redundant transmission.
- the at least one processor from the base station, via MAC CE, information indicating packet activation or deactivation for RLC devices configured to be used for the uplink packet redundancy transmission And receiving information indicating the packet duplication activation, the packet duplication transmission may be activated.
- the information on the RLC device to be used for the uplink packet redundant transmission, the list of RLC devices to be used for the uplink packet redundant transmission, the ID of the RLC device, logical channel ID or logical channel ID and It may include at least one or more combinations of cell group IDs.
- each block of the flowchart illustrations and combinations of flowchart illustrations may be performed by computer program instructions. Since these computer program instructions may be mounted on a processor of a general purpose computer, special purpose computer, or other programmable data processing equipment, those instructions executed through the processor of the computer or other programmable data processing equipment may be described in the flow chart block (s). It will create means to perform the functions. These computer program instructions may be stored in a computer usable or computer readable memory that can be directed to a computer or other programmable data processing equipment to implement functionality in a particular manner, and thus the computer usable or computer readable memory. It is also possible for the instructions stored in to produce an article of manufacture containing instruction means for performing the functions described in the flowchart block (s).
- Computer program instructions may also be mounted on a computer or other programmable data processing equipment, such that a series of operating steps may be performed on the computer or other programmable data processing equipment to create a computer-implemented process to create a computer or other programmable data. Instructions for performing the processing equipment may also provide steps for performing the functions described in the flowchart block (s).
- each block may represent a portion of a module, segment, or code that includes one or more executable instructions for executing a specified logical function (s).
- logical function e.g., a module, segment, or code that includes one or more executable instructions for executing a specified logical function (s).
- the functions noted in the blocks may occur out of order.
- the two blocks shown in succession may in fact be executed substantially concurrently, or the blocks may sometimes be executed in the reverse order, depending on the corresponding function.
- ' ⁇ part' used in the present embodiment refers to software or a hardware component such as a field programmable gate array (FPGA) or an application specific integrated circuit (ASIC), and ' ⁇ part' performs certain roles. do.
- ' ⁇ ' is not meant to be limited to software or hardware. May be configured to reside in an addressable storage medium or may be configured to play one or more processors.
- ' ⁇ ' means components such as software components, object-oriented software components, class components, and task components, and processes, functions, properties, procedures, and the like. Subroutines, segments of program code, drivers, firmware, microcode, circuits, data, databases, data structures, tables, arrays, and variables.
- components and 'parts' may be combined into a smaller number of components and 'parts' or further separated into additional components and 'parts'.
- the components and ' ⁇ ' may be implemented to play one or more CPUs in the device or secure multimedia card.
- ' ⁇ unit' may include one or more processors.
- connection nodes terms referring to network entities, terms referring to messages, terms referring to interfaces between network objects, and terms referring to various identification information used in the following description. Etc. are illustrated for convenience of description. Thus, the present disclosure is not limited to the terms described below, and other terms may be used to refer to objects having equivalent technical meanings.
- the present disclosure uses the terms and names defined in the 3GPP LTE (3rd Generation Partnership Project Long Term Evolution) standard, or modified terms and names based thereon.
- the present disclosure is not limited to the above terms and names, and may be equally applied to systems conforming to other standards.
- the eNB may be used interchangeably with gNB for convenience of description. That is, the base station described as an eNB may represent a gNB.
- the term terminal may refer to various wireless communication devices as well as mobile phones, NB-IoT devices, sensors.
- FIG. 1 is a diagram illustrating a structure of a radio bearer in which packet redundant transmission is set according to an embodiment.
- Packet duplication transmission means that a transmitter replicates a packet and transmits the packet through multiple paths.
- an RLC1 (1a-20), an RLC2 (1a-30), and an RLC3 (1a-) are connected to one PDCP device 1a-10 to support multiple paths.
- 40, RLC4 (1a-50), connecting a total of four RLC devices are shown.
- the layer for performing packet replication may be a PDCP layer 1a-10, and two replicated packets after performing packet replication in the PDCP layer 1a-10.
- a PDCP device may correspond to one radio bearer ID.
- the radio bearer including the PDCP1 (1a-10) may be a Data Radio Bearer (DRB), or may be a Signaling Radio Bearer (SRB).
- DRB Data Radio Bearer
- SRB Signaling Radio Bearer
- the RLC device may be classified into a primary RLC device 1a-20 and a secondary RLC device 1a-30, 1a-40, and 1a-50 according to a purpose.
- the primary RLC device 1a-20 is a device that always performs packet transmission regardless of activation of packet duplication.
- Secondary RLC devices 1a-30, 1a-40, and 1a-50 are devices that perform packet transmission only when packet duplication is activated.
- the secondary RLC devices 1a-30, 1a-40, and 1a-50 may not participate in uplink packet transmission according to a configuration method.
- the packet can be transmitted only to the primary RLC when the transmitter is to send the data below a certain threshold (or below), and when the transmitter is above (or above) the packet to the primary device and the secondary device. You can also send all of them.
- the above-described detailed operation configuration may be included in at least one of radio bearer configuration, RLC bearer configuration, PDCP configuration, and RLC configuration of the RRC configuration message and may be delivered to the terminal.
- FIG. 2 is a diagram illustrating an operation of packet overlapping transmission according to an exemplary embodiment.
- the structure of the radio bearer in which packet duplication is set is the structure of the radio bearer shown in FIG. 1.
- the transmitting PDCP apparatus 1b-10 duplicates the packet 1b-60 to each duplicated packet 1b-70, 1b-. 80, 1b-90, 1b-100 are transmitted to all set RLC devices 1b-20, 1b-30, 1b-40, 1b-50.
- each RLC device may operate in an independent mode. If each RLC device operates in an RLC acknowledged mode (AMC), each RLC device may independently perform an ARQ operation.
- AMC RLC acknowledged mode
- the transmitting PDCP device 1b-10 is configured for one packet.
- a total of four identical duplicated packets may be generated and transmitted to four RLC devices 1b-20, 1b-30, 1b-40, and 1b-50.
- FIG. 3 is a diagram illustrating an operation of packet overlapping transmission according to another exemplary embodiment.
- downlink packet duplication completely controlled by the base station and uplink packet duplication controlled by the terminal according to the configuration of the base station may be performed by using a different number of RLC devices.
- the transmitting PDCP device 1c-10 duplicates the packet 1c-100 but without using all four RLC devices 1c-20, 1c-30, 1c-40, and 1c-50 that are configured. Only three RLC devices, RLC1 (1c-20), RLC2 (1c-30) and RLC3 (1c-40), are used for packet duplication. Therefore, RLC4 (1c-50) may not participate in packet duplication transmission. Whether each RLC participates in the packet duplication transmission can be set by the base station. An RLC device in which an ul-duplication field is set to true in an RLC configuration for each RLC device participates in packet duplication transmission, and a device in which an ul-duplication field is set to false does not participate in packet duplication transmission.
- each RLC device participates in packet duplication transmission may be set in another manner. For example, a list of RLC devices to be used for packet duplication may be specified and transmitted in the PDCP configuration or the radio bearer configuration. At this time, the RLC device may be designated by specifying a logical channel ID. In addition, the RLC may be designated by a combination of the logical channel ID and the cell group ID in a dual connectivity or multiple connectivity structure. Furthermore, an ID of an RLC device (RLC bearer) may be specified.
- whether to participate in packet duplication transmission may be changed by a packet duplication activation / deactivation message described later with reference to FIGS. 7, 8, and 10.
- the RLC device may be activated to set whether to use it for packet duplication transmission.
- FIG. 4 is a diagram illustrating an operation of performing packet redundancy transmission according to uplink redundancy configuration according to an embodiment.
- step 1d-10 packet duplication of the radio bearer is established. Thereafter, in step 1d-20, the UE checks whether each RLC device is configured to be used for uplink packet redundant transmission. In one embodiment, since each RLC device corresponds to a logical channel, it may be checked whether each logical channel is configured to be used for uplink packet duplication. In this case, configuring the RLC device or the logical channel to be used for uplink packet duplication may be performed by checking whether the ul-duplication field is set to true as described in FIG. 3 or through a list of RLC devices to be used for packet duplication. You can check.
- step 1d-30 for the RLC device configured to be used for uplink packet redundancy, the corresponding RLC device is used for uplink packet redundancy upon packet redundancy activation. Can be.
- the RLC device not configured to be used for uplink packet redundancy causes the RLC device to duplicate the uplink packet upon packet redundancy activation. Do not use on.
- the transmitting PDCP device may perform packet redundancy transmission by transmitting a duplicated packet to RLC devices used for packet redundancy activation.
- FIG. 5 illustrates a method for a base station to control activation and deactivation of packet duplication according to an embodiment.
- Packet redundancy transmission consumes radio resources because the same packet is transmitted using two or more RLC devices. This is not always a good idea to do packet redundancy because radio resource utilization can bring inefficiency. Therefore, it is possible to perform packet redundancy transmission only when necessary.
- the fact that packet duplication is actually performed in the radio bearer in which packet duplication is set is called activation of packet duplication. Conversely, disabling packet duplication in a radio bearer configured with packet duplication is referred to as deactivation of packet duplication.
- the base station may transmit a packet duplicate activation / deactivation message to the terminal.
- the message used may use the same type of message for activation and deactivation, or may distinguish between activation and deactivation of packet duplication by a value included in the message.
- the packet redundancy enable / disable message may indicate which radio bearer to enable or disable packet redundancy.
- step 1e-20 after the UE receives such a message, it may activate or deactivate packet duplication according to the instructions included in the message.
- the packet duplication activation and deactivation message format will be described in more detail with reference to FIGS. 6 to 10.
- 6 illustrates a packet duplication enable / disable message format according to an embodiment.
- the packet duplication activation / deactivation message may be in a MAC Control Element (MAC CE) format consisting of 1 byte, that is, 8 bitmaps. Bits of each bitmap indicate activation and deactivation states of packet duplication transmission for a specific radio bearer, and 1 may indicate activation and 0 may indicate deactivation. In addition, eight bitmaps may indicate packet duplication activation and deactivation status for up to eight radio bearers. Which bearer each bit from D0 (1f-10) to D7 (1f-80) indicates may be applied in a preset manner.
- MAC CE MAC Control Element
- each bit may be applied in ascending order of DRB ID of the radio bearer in which packet redundancy with the RLC device is set in the MAC device to which the MAC CE has been transmitted.
- each bit may be applied in ascending order of DRB ID of a radio bearer in which packet duplication is configured using a security key corresponding to a cell group to which the MAC device to which the MAC CE is transmitted belongs.
- FIG. 7 is a diagram illustrating a packet duplication enable / disable message format according to another embodiment.
- the packet duplication activation / deactivation message may be in the form of MAC CE (Control Element).
- the DRB index may be a preset value and applied to one of the following values.
- -MAC devices to which MAC CEs are transmitted are applied in ascending order of DRB IDs of radio bearers in which packet duplication with RLC devices is established.
- the Li field represents each RLC device, and according to the bit value of the Li field, it may be set whether or not the corresponding RLC device is used for packet duplication transmission. For example, if the value of the Li field is 1, the corresponding RLC device may be used for packet redundancy transmission. If the Li field is 0, the corresponding RLC device may not be used for packet redundancy transmission. Which Li will indicate which RLC device is a preset value and can be applied to one of the following values.
- the UE may determine which RLC device of which DRB to use for packet redundancy transmission to perform packet redundancy transmission.
- the RLC device having the Li field may be all RLC devices configured in the DRB.
- all four configured RLC devices may have a Li field, and each RLC device may be set whether to use the RLC device for packet redundancy transmission.
- only the RLC device in which the ul_duplication field described in FIG. 3 is set to true may have a Li field corresponding thereto.
- only three RLC devices in which ul_duplication is set to true may have a Li field, and only this RLC device may be configured to be used for packet duplication transmission.
- FIG. 8 is a diagram illustrating a packet duplicate activation / deactivation message format according to another embodiment.
- the packet duplication activation / deactivation message may be in the form of MAC CE (Control Element).
- a reserved (R) bit 1h-20 may be included in some cases.
- the Li field may represent each RLC device.
- the UE may determine which RLC device of which DRB to use for packet redundancy transmission and perform packet redundancy transmission.
- the RLC device having the Li field may be all RLC devices configured in the DRB.
- all four configured RLC devices may have a Li field, and each RLC device may be set whether to use the RLC device for packet redundancy transmission.
- only the RLC device in which the ul_duplication field described in FIG. 3 is set to true may have a Li field corresponding thereto.
- only three RLC devices in which ul_duplication is set to true may have a Li field, and only this RLC device may be configured to be used for packet duplication transmission.
- FIG. 9 is a diagram illustrating a packet duplication enable / disable message format according to another embodiment.
- the packet duplication activation / deactivation message may be in the form of MAC CE (Control Element).
- the packet duplication activation / deactivation message may have a DRB ID 1i-10 and an Ndup field 1i-20 indicating the number of RLC devices to use for uplink packet duplication.
- the DRB ID field indicates an ID of a DRB to which packet duplicate transmission activation or deactivation is to be applied.
- the UE After receiving the MAC CE, the UE performs packet duplication transmission using the RLC device as many as the number set in the Ndup field. Which RLC device among the RLC devices configured for the UE to perform packet redundancy transmission may be applied by a preset method, and may be applied by one of the following methods.
- Ndup RLC devices are selected in ascending order of master cell group and LCID in case of same priority
- the UE may determine which RLC device of which DRB to use for packet redundancy transmission and perform packet redundancy transmission.
- FIG. 10 is a diagram illustrating a packet duplication enable / disable message format according to another embodiment.
- the packet duplication activation / deactivation message may be in the form of MAC CE (Control Element).
- MAC CE Control Element
- the format of the packet duplication activation / deactivation message in FIG. 7 to FIG. 9 indicates whether packet duplication is activated for the radio bearer, packet duplication may be configured for several radio bearers using this message.
- packet duplication may be allowed for the RLC device of the radio bearer indicated by the DRB index.
- the DRB index may be a preset value and applied to one of the following values.
- -MAC devices to which MAC CEs are transmitted are applied in ascending order of DRB IDs of radio bearers in which packet duplication with RLC devices is established.
- the Li field represents each RLC device, and according to the bit value of the Li field, it is possible to set whether to use the corresponding RLC device for packet duplication transmission. For example, if the value of the Li field is 1, the corresponding RLC device may be used for packet redundancy transmission. If the Li field is 0, the corresponding RLC device may not be used for packet redundancy transmission. Which Li is to indicate which RLC device is a preset value and may be applied to one of the following values.
- the UE may determine which RLC device of which DRB to use for packet redundancy transmission and perform packet redundancy transmission.
- the RLC device having the Li field may be all RLC devices configured in the DRB.
- all four configured RLC devices may have a Li field, and each RLC device may be set whether to use the RLC device for packet redundancy transmission.
- only the RLC device in which the ul_duplication field described in FIG. 3 is set to true may have a Li field corresponding thereto.
- only three RLC devices in which ul_duplication is set to true may have a Li field, and only this RLC device may be configured to be used for packet duplication transmission.
- the message format shown in FIG. 10 uses the same MAC CE format as shown in FIG. 7, but may use the message format of FIG. It is also possible to use a packet redundancy enable / disable message for a typical single radio bearer.
- FIG. 11 is a diagram illustrating a method for notifying a base station whether a packet redundancy activation function is provided by a terminal according to an embodiment.
- the terminal can inform the base station whether to support the packet duplication transmission function.
- the terminal may include whether to support the corresponding function in the UE Capability message (1k-10).
- the UE Capability message 1k-10 may include at least one of the following information related to packet duplication transmission of the UE.
- FIG. 12 is a diagram illustrating an operation of performing packet redundancy transmission according to an embodiment.
- a plurality of RLC devices may be configured for one radio bearer, and one of them may be configured as a primary RLC device and the other secondary RLC device.
- the UE may determine which RLC device to use to set packet duplication.
- step 1l-10 if packet duplication is configured for a radio bearer, it may proceed to step 1l-20 to determine whether packet duplication transmission of the bearer is actually activated.
- the process proceeds to step 1l-30, the packet can be transmitted after the packet is copied from the transmitting PDCP device to the primary RLC device and all the set secondary RLC device.
- the process proceeds to steps 1l-40 and the transmitting PDCP device may transmit the generated packet to the primary RLC device without duplicating the packet.
- the packet can be transmitted only to the primary RLC when the transmitter is to send the data below a certain threshold (or below), and when the transmitter is above (or above) the packet to the primary device and the secondary device. You can also send all of them. However, if packet redundancy transmission is not activated, packets may not be duplicated.
- FIG. 13 is a block diagram illustrating an internal configuration of a terminal according to an embodiment.
- the terminal may include a transceiver 1m-10, a memory 1m-20, and a processor 1m-30.
- the transceiver 1m-10, the memory 1m-20, and the processor 1m-30 of the terminal may operate.
- the components of the terminal are not limited to the above examples.
- the terminal may include more components or fewer components than the aforementioned components.
- the transceiver 1m-10, the memory 1m-20, and the processor 1m-30 may be implemented in a chip form.
- the transceiver 1m-10 may transmit and receive a signal with another network entity, for example, a base station.
- the signal may include control information and data.
- the transceiver 1m-10 may be configured as an RF transmitter for up-converting and amplifying the frequency of the transmitted signal, and an RF receiver for low noise amplifying and down-converting the received signal.
- this is only an embodiment of the transceiver 1m-10, and the components of the transceiver 1m-10 are not limited to the RF transmitter and the RF receiver.
- the transceiver 1m-10 may receive a signal through a wireless channel, output the signal to the processor 1m-30, and transmit a signal output from the processor 1m-30 through a wireless channel.
- the transceiver 1m-10 may receive system information from the base station, and may receive a synchronization signal or a reference signal.
- the memory 1m-20 may store programs and data necessary for the operation of the terminal. In addition, the memory 1m-20 may store control information or data included in a signal obtained from the terminal. For example, the memory 1m-20 may store information transmitted and received through the transceiver 1m-10 and information generated through the processor 1m-30.
- the memory 1m-20 may be configured as a storage medium or a combination of storage media such as a ROM, a RAM, a hard disk, a CD-ROM, a DVD, and the like.
- the processor 1m-30 may control a series of processes such that the terminal may operate according to the above-described embodiment.
- the processor 1m-30 may control a signal flow between blocks to perform an operation according to the flowchart described above.
- process 1m-30 may include circuitry or application specific integrated circuits.
- FIG. 14 is a block diagram illustrating a structure of a base station according to an embodiment.
- the base station may include a transceiver 1n-10, a memory 1n-20, and a processor 1n-30.
- the transceiver 1n-10, the memory 1n-20, and the processor 1n-30 of the base station may operate.
- the components of the base station are not limited to the above examples.
- the base station may include more components or fewer components than the aforementioned components.
- the transceiver 1n-10, the memory 1n-20, and the processor 1n-30 may be implemented in a single chip form.
- the transceiver 1n-10 may transmit and receive a signal with another network entity, for example, a terminal.
- the signal may include control information and data.
- the transceiver 1n-10 may be configured as an RF transmitter for up-converting and amplifying a frequency of a transmitted signal, and an RF receiver for low noise amplifying and down-converting a received signal.
- this is only an embodiment of the transceiver 1n-10, and the components of the transceiver 1n-10 are not limited to the RF transmitter and the RF receiver.
- the transceiver 1n-10 may receive a signal through a wireless channel, output the signal to the processor 1n-30, and transmit a signal output from the processor 1n-30 through a wireless channel.
- the transceiver 1n-10 may transmit system information to the terminal, and may transmit a synchronization signal or a reference signal.
- the memory 1n-20 may store programs and data necessary for the operation of the base station.
- the memory 1n-20 may store control information or data included in a signal obtained from a base station.
- the memory 1n-20 may store information transmitted and received through the transceiver 1n-10, information generated through the processor 1n-30, and the like.
- the memory 1n-20 may be configured as a storage medium or a combination of storage media such as a ROM, a RAM, a hard disk, a CD-ROM, a DVD, and the like.
- the processor 1n-30 may control a series of processes such that the base station can operate according to the above-described embodiment of the present invention.
- process 1n-30 may include circuitry or application specific integrated circuits.
- FIG. 15 is a diagram illustrating a structure of a radio bearer in which packet redundant transmission is set according to another embodiment.
- Packet duplication transmission means that a transmitter replicates a packet and transmits the packet through multiple paths.
- RLC1 (2a-20), RLC2 (2a-30), and RLC3 (2a-) are connected to one PDCP device 2a-10 to support multiple paths.
- 40, RLC4 (2a-50), connecting a total of four RLC devices are shown.
- the layer for performing packet replication may be a PDCP layer 2a-10, and two replicated packets after performing packet replication at the PDCP layer 2a-10.
- a PDCP device may correspond to one radio bearer ID.
- the radio bearer including PDCP1 (2a-10) may be a data radio bearer (DRB), or may be a signaling radio bearer (SRB).
- the RLC device may be classified into a primary RLC device 2a-20 and a secondary RLC device 2a-30, 2a-40, and 2a-50 according to a purpose.
- the primary RLC device 2a-20 is a device that always performs packet transmission regardless of activation of packet duplication.
- Secondary RLC devices 2a-30, 2a-40, and 2a-50 are devices that perform packet transmission only when packet redundancy is activated.
- the secondary RLC devices 2a-30, 2a-40, and 2a-50 may not participate in uplink packet transmission according to a configuration method.
- the packet can be transmitted only to the primary RLC when the transmitter is to send the data below a certain threshold (or below), and when the transmitter is above (or above) the packet to the primary device and the secondary device. You can also send all of them.
- Packet redundancy transmission may be used for the purpose of improving the transmission probability by sending data of the same information packet through different paths. Therefore, the packets transmitted to different RLC devices are not transmitted to the same MAC PDU (Protocol Data Unit). Therefore, it is possible to limit the cells that each RLC device can use to prevent packets transmitted to different RLC devices from being transmitted to the same MAC PDU.
- MAC PDU Protocol Data Unit
- RLC1 (2a-20) may use only Cell 1 (2a-60), and RLC2 (2a-30) may use only Cell 2 (2a-70) and Cell 3 (2a-80).
- RLC3 may use only Cell 4
- RLC4 may use only Cell 5.
- Each RLC device may be mapped to a logical channel and set up a list of cells that each logical channel can use when setting up the logical channel.
- LCP logical channel prioritization
- the above-described detailed operation configuration may be included in at least one of radio bearer configuration, RLC bearer configuration, PDCP configuration, and RLC configuration of the RRC configuration message and may be delivered to the terminal.
- FIG. 16 is a diagram illustrating a method of controlling, by a base station, packet activation and deactivation according to another embodiment.
- Packet redundancy transmission consumes radio resources because the same packet is transmitted using two or more RLC devices. This is not always a good idea to do packet redundancy because radio resource utilization can bring inefficiency. Therefore, it is possible to perform packet redundancy transmission only when necessary.
- the fact that packet duplication is actually performed in the radio bearer in which packet duplication is set is called activation of packet duplication. Conversely, disabling packet duplication in a radio bearer configured with packet duplication is referred to as deactivation of packet duplication.
- the base station may transmit a packet duplicate activation / deactivation message to the terminal.
- the message used may use the same type of message for activation and deactivation, or may distinguish between activation and deactivation of packet duplication by a value included in the message.
- the packet redundancy enable / disable message may indicate which radio bearer to enable or disable packet redundancy.
- steps 2b-20 after the UE receives such a message, it may activate or deactivate packet duplication according to the instructions included in the message.
- the packet redundancy enable / disable message may be updated in the RRC configuration or may be transmitted in the form of packet redundancy enable / disable MAC CE.
- FIG. 17 illustrates a method of controlling, by a base station, activation and deactivation in cell carrier aggregation according to an embodiment.
- the base station may deactivate the cells of the terminal. Alternatively, if a particular cell is not used for data transmission / reception for a certain time, it may be determined that the cell does not need to be used to deactivate the cell.
- the base station may activate / deactivate some cells by transmitting a cell activation / deactivation message to the terminal. Both the activation / deactivation by message transmission of the base station and the deactivation by determination of the terminal are involved in the activation and deactivation of the SCell, not the PCell or PSCell which are essential for the UE to connect with the base station.
- step 2c-20 if a cell activation / deactivation message is received or a specific cell is not used for transmission and reception for a predetermined time, the terminal may apply activation or deactivation of the cell.
- 18 is a diagram for describing a method of applying cell configuration when packet redundancy transmission is deactivated according to an embodiment.
- the transmitting PDCP device 2d-10 when packet redundancy transmission is deactivated by the packet redundancy activation / deactivation message, the transmitting PDCP device 2d-10 no longer needs to duplicate a packet and send it to multiple RLC devices.
- the transmitting PDCP device 2d-10 sends a packet to be transmitted to the primary RLC 2d-20, or the RLC devices 2d-20, 2d-30, 2d-40, 2d by a defined split bearer operation. -50). If the UE does not perform packet duplication, it may not be necessary to apply the list of cells that can be used by each RLC device described with reference to FIG. 15. Therefore, when packet redundancy transmission of the radio bearer in which packet duplication is set is disabled, as described in FIG. 18, all RLC devices of the radio bearer do not apply the limitation of the cell list to all configured cells (2d-60, 2d-). 70, 2d-80, 2d-90, 2d-100) can be used. In other words, cell restrictions may not be applied.
- the cell restriction may or may not be applied to each RLC device, that is, to a logical channel unit or to a radio bearer unit to which packet overlap is applied.
- it may be determined whether to apply the cell restriction based on whether packet redundancy is activated for the corresponding RLC device. That is, cell restriction may be applied only when the corresponding RLC device is used for packet duplication transmission. Otherwise, no cell restriction is applied.
- the cell restriction when the cell restriction is applied on a radio bearer basis, the cell restriction may not be applied if packet redundancy transmission is deactivated for all the secondary RLC devices belonging to the radio bearer.
- cell duplication may not be applied even in this case because packet duplication is not possible.
- the base station deactivates the packet duplication transmission of the radio bearer by transmitting a packet duplication activation / deactivation message
- the cell restriction may not be applied.
- cell restriction may not be applied even when there are less than one logical channel in which packet duplication is activated in the same cell group among logical channels of the radio bearer in which packet duplication is set.
- 19 illustrates a method for applying cell restriction for packet duplication according to an embodiment.
- step 2e-10 when packet redundancy is configured in the radio bearer and cell restriction for each logical channel is configured, the UE needs to determine whether to apply the cell restriction of the RLC device.
- step 2e-20 it is determined whether packet duplication of all secondary RLC devices is disabled.
- the UE may determine whether to apply the cell restriction of the RLC device through this determination.
- the UE may transmit the packet to all cells configured in the cell group without applying cell restriction.
- step 2e-30 If packet redundancy of a secondary RLC device is activated, cell restriction is required, so the process proceeds to step 2e-30 to apply cell restriction.
- FIG. 19 illustrates a DRB as an example, the same operation may be applied to an SRB.
- 20 is a diagram illustrating an operation of cell deactivation in a bearer in which packet duplication is set, according to an embodiment.
- each RLC device transmits a packet by participating in an LCP operation only for a cell that can be used by the RLC device. Can be. However, if all cells configured for use by the logical channel are deactivated by the deactivation message, the packet cannot be sent.
- RLC3 when cell 4 (2f-90) configured to be used by RLC3 (2f-40) is deactivated, RLC3 will not have a cell capable of sending packets. Thus, in this case, eventually, the transmitting PDCP apparatus 2f-10 may not send any more packets to RLC3. In addition, the RLC3 may instruct to discard a packet waiting for transmission. However, in some cases RLC3 may have a packet for retransmission. This packet may continue to retransmit without applying cell restriction. In one embodiment, RLC3 may be re-establishment. This operation may be consistent with an operation not used for packet redundancy of RLC3, that is, a packet redundancy deactivation operation of RLC3.
- 21 is a diagram illustrating an operation of a packet PD overlapping by a transmitting PDCP device according to one embodiment.
- each RLC device that is, a cell available for a logical channel may be inactivated and may not be used. In this case, the packet duplication operation of the transmitting PDCP may be changed.
- step 2g-10 if packet redundancy of the radio bearer is set up and activated, proceed to step 2g-20, the transmitting PDCP device checks whether the RLC devices to be used for packet redundancy have at least one activated cell, and at least Duplicate packets can be sent to the RLC device with one active cell. Through this operation, an unnecessary data processing operation of an RLC device having no cell to be used can be prevented.
- 22 is a diagram illustrating an operation of deactivating packet duplication transmission of a specific RLC device in a bearer in which packet duplication is set, according to an embodiment.
- radio bearer and cell restriction for packet duplication as described with reference to FIG. 22, it is assumed that the radio bearer and cell restriction for packet duplication as described with reference to FIG. If a specific RLC device is deactivated among RLC devices configured to participate in packet duplication, a cell that can be used by a corresponding logical channel no longer sends data. Not using some of these cells in an active state may cause radio resource waste. Thus, it may be efficient to make these cells available to other cells of the same radio bearer.
- packet duplication of RLC2 (2h-30) is disabled (2h-110).
- the RLC2 does not participate in the packet duplication transmission and the transmitting PDCP device does not transmit the duplicated packet to the RLC2.
- cells 2 (2h-70) and cells 3 (2h-80) which are to be used by RLC2 may be used by other RLC devices.
- which RLC device may use the cell used by the deactivated RLC device may vary. For example, a cell used by an RLC device in which the primary RLC device is inactivated may be used.
- a cell used by an RLC device deactivated in an RLC device having the lowest or highest logical channel ID among other secondary RLC devices in the same cell group may be used. Furthermore, after the deactivation of the RLC device by the RRC configuration of the base station, it may be set which RLC device to use the cell of the deactivated RLC device.
- FIG. 23 is a diagram illustrating an operation of applying a cell restriction when two or more cell groups are applied according to an embodiment.
- a dual connectivity structure a plurality of base stations are connected in units of cell groups. That is, one cell group has one or more cells, and one cell group corresponds to one MAC device and also corresponds to one base station.
- logical channels of different cell groups that is, RLC devices do not transmit together because MAC devices are different. If there is only one RLC device that performs packet redundancy in one cell group, it is not necessary to maintain a cell restriction as shown in FIG. 23 for packet redundancy. Therefore, even if packet duplication transmission of the radio bearer is activated, the cell restriction may not be applied if there are less than one RLC device used for packet duplication in the same cell group.
- RLC1 (2i-20) and RLC2 (2i-30) operate in cell group 1 (2i-110), where RLC1 uses cell 1 (2i-60) and RLC2 (2i-30) is a cell.
- 2 (2i-70) and cell 3 (2i-80) can be used.
- RLC3 (2i-40) and RLC4 (2i-50) operate in cell group 2 (2i-120), RLC3 (2i-40) uses cell 4 (2i-90) and RLC4 (2i-50) 5 (2i-100) can be used.
- RLC3 (2i-40) is not used for packet redundancy and RLC4 (2i-50) is used for packet redundancy due to the RRC setting or enable / disable setting
- RLC4 (2i-50) is used by itself.
- both cell 4 (2i-90) and cell 5 (2i-100) set in cell group 2 may be used.
- 24 is a block diagram illustrating an internal configuration of a terminal according to an embodiment.
- the terminal may include a transceiver 2j-10, a memory 2j-20, and a processor 2j-30.
- the transceiver 2j-10, the memory 2j-20, and the processor 2j-30 of the terminal may operate.
- the components of the terminal are not limited to the above examples.
- the terminal may include more components or fewer components than the aforementioned components.
- the transceiver 2j-10, the memory 2j-20, and the processor 2j-30 may be implemented in the form of one chip.
- the transceiver 2j-10 may transmit and receive a signal with another network entity, for example, a base station.
- the signal may include control information and data.
- the transceiver 2j-10 may be configured as an RF transmitter for up-converting and amplifying a frequency of a transmitted signal, and an RF receiver for low noise amplifying and down-converting a received signal.
- this is only an embodiment of the transceiver 2j-10, and the components of the transceiver 2j-10 are not limited to the RF transmitter and the RF receiver.
- the transceiver 2j-10 may receive a signal through a wireless channel, output the signal to the processor 2j-30, and transmit a signal output from the processor 2j-30 through the wireless channel.
- the transceiver 2j-10 may receive system information from the base station, and may receive a synchronization signal or a reference signal.
- the memory 2j-20 may store programs and data necessary for the operation of the terminal. In addition, the memory 2j-20 may store control information or data included in a signal obtained from the terminal. For example, the memory 2j-20 may store information transmitted and received through the transceiver 2j-10, information generated through the processor 2j-30, and the like.
- the memory 2j-20 may be configured as a storage medium or a combination of storage media such as a ROM, a RAM, a hard disk, a CD-ROM, a DVD, and the like.
- the processor 2j-30 may control a series of processes such that the terminal may operate according to the above-described embodiment.
- the processor 2j-30 may control the signal flow between blocks to perform an operation according to the flowchart described above.
- process 2j-30 may include circuitry or application specific integrated circuits.
- 25 is a block diagram illustrating a structure of a base station according to an embodiment.
- the base station may include a transceiver 2k-10, a memory 2k-20, and a processor 2k-30.
- the transceiver 2k-10, the memory 2k-20, and the processor 2k-30 of the base station can operate.
- the components of the base station are not limited to the above examples.
- the base station may include more components or fewer components than the aforementioned components.
- the transceiver 2k-10, the memory 2k-20, and the processor 2k-30 may be implemented in the form of one chip.
- the transceiver 2k-10 may transmit and receive a signal with another network entity, for example, a terminal.
- the signal may include control information and data.
- the transceiver 2k-10 may be configured as an RF transmitter for up-converting and amplifying the frequency of the transmitted signal, and an RF receiver for low noise amplifying and down-converting the received signal.
- this is only an embodiment of the transceiver 2k-10, and the components of the transceiver 2k-10 are not limited to the RF transmitter and the RF receiver.
- the transceiver 2k-10 may receive a signal through a wireless channel, output the signal to the processor 2k-30, and transmit a signal output from the processor 2k-30 through a wireless channel.
- the transceiver 2k-10 may transmit system information to the terminal, and may transmit a synchronization signal or a reference signal.
- the memory 2k-20 may store programs and data necessary for the operation of the base station.
- the memory 2k-20 may store control information or data included in a signal obtained from a base station.
- the memory 2k-20 may store information transmitted and received through the transceiver 2k-10, information generated through the processor 2k-30, and the like.
- the memory 2k-20 may be configured as a storage medium or a combination of storage media such as a ROM, a RAM, a hard disk, a CD-ROM, a DVD, and the like.
- the processor 2k-30 may control a series of processes such that the base station can operate according to the above-described embodiment of the present invention.
- process 2k-30 may include circuitry or application specific integrated circuits.
- FIG. 26 illustrates a packet duplication enable / disable message format according to another embodiment.
- the packet duplication activation / deactivation message may be in a MAC Control Element (CE CE) format.
- the DRB index may be a preset value and applied to one of the following values.
- -MAC devices to which MAC CEs are transmitted are applied in ascending order of DRB IDs of radio bearers in which packet duplication with RLC devices is established.
- the Li field represents each RLC device, and whether or not the corresponding RLC device is used for packet duplication transmission may be set according to the bit value of the Li field. For example, if the value of the Li field is 1, the corresponding RLC device may be used for packet duplication transmission. If the Li field is 0, the corresponding RLC device may not be used for packet duplication transmission. Which Li will indicate which RLC device is a preset value and can be applied to one of the following values.
- the UE may determine which RLC device of which DRB to use for packet redundancy transmission to perform packet redundancy transmission.
- the RLC device having the Li field may be all RLC devices configured in the DRB.
- all four configured RLC devices may have a Li field, and whether to use the RLC device for packet redundancy transmission may be configured for each RLC device.
- only the RLC device in which the ul_duplication field described in FIG. 3 is set to true may have a corresponding Li field.
- only three RLC devices in which ul_duplication is set to true may have a Li field, and for an RLC device having this Li field, whether to use for packet duplication transmission may be set.
- the number of RLC devices configured in the DRB for which packet redundant transmission is configured may match the number of Li fields.
- four Li fields are set (1o-20, 1o-30, 1o-40, and 1o-50).
- setting four Li fields in total may indicate that the number of RLC devices configured in the corresponding DRB is four.
- the Li field may have only L1, L2, and L3 fields.
- a reserved field (Reserved, R) 1o-60 may be included to adjust the byte length so that the length of the packet redundancy enable / disable message shown in FIG. 26 is byte length, that is, multiple of 8 bits. It may mean filling the R bit.
- the value of the R bit may be set to a preset value, or the terminal may ignore the value.
- the MAC CE transmitted to the MCG may indicate whether the RLC device configured in the MCG should be used for packet duplication transmission.
- the number of Li fields may correspond to the number of RLC devices indicating whether the corresponding RLC device is used for packet duplication transmission in the corresponding MAC CE. For example, for a radio bearer in which a packet redundant transmission is configured, when the number of RLC devices configured in the MCG is two, the number of Li fields may be two, and the remaining fields may be R fields.
- the Li field may be set by the maximum value of the RLC device configurable for each radio bearer, and only for the RLC device which is actually configured, whether or not to use for packet duplication may be determined by the actual Li field. .
- the Li field may have L1, L2, L3, and L4 fields (1o-10, 1o-20, 1o-30, 1o-40). If the number of RLC devices actually configured is three, the L1, L2, and L3 fields may be used to indicate whether the corresponding RLC device is used for packet duplication transmission. However, since there is no corresponding RLC device, the L4 field may be set to a preset value of 0 or 1 and may be ignored by the terminal.
- the packet redundancy enable / disable message of FIG. 26 may be a fixed-size MAC CE.
- the fixed length MAC CE may have a MAC subheader for the fixed length MAC CE, which will be described later with reference to FIG. 30.
- FIG. 27 is a diagram illustrating a packet duplicate activation / deactivation message format according to another embodiment.
- the packet duplication activation / deactivation message may be in the form of MAC CE (Control Element).
- MAC CE Control Element
- variable length MAC CE When the number of radio bearers to control packet duplication transmission included in the packet duplication activation / deactivation message of FIG. 27 is variable, it may be a variable-length MAC CE. In this case, the variable length MAC CE may have a MAC subheader for the variable length MAC CE described in FIG. 29. However, the embodiment of the method for applying the Li field and the R field is the same as the example described with reference to FIG. 26.
- packet duplication may be allowed for the RLC device of the radio bearer indicated by the DRB index.
- the DRB index may be a preset value and applied to one of the following values.
- -MAC devices to which MAC CEs are transmitted are applied in ascending order of DRB IDs of radio bearers in which packet duplication with RLC devices is established.
- the Li field represents each RLC device, and whether or not the corresponding RLC device is used for packet duplication transmission may be set according to the bit value of the Li field. For example, if the value of the Li field is 1, the corresponding RLC device is used for packet duplication transmission, and if 0, the corresponding RLC device may not be used for packet duplication transmission. Which Li is to indicate which RLC device is a preset value and may be applied to one of the following values.
- the UE may determine which RLC device of which DRB to use for packet redundancy transmission to perform packet redundancy transmission.
- the RLC device having the Li field may be all RLC devices configured in the DRB.
- all four configured RLC devices may have a Li field, and whether to use the RLC device for packet redundancy transmission may be configured for each RLC device.
- only the RLC device in which the ul_duplication field described in FIG. 3 is set to true may have a corresponding Li field.
- only three RLC devices in which ul_duplication is set to true may have a Li field, and for an RLC device having this Li field, whether to use for packet duplication transmission may be set.
- the number of RLC devices configured in the DRB for which packet redundant transmission is configured may match the number of Li fields.
- four Li fields are set for all radio bearers. This may indicate that the number of RLC devices configured in the corresponding DRB is four. For example, if the number of RLC devices configured in the corresponding DRB is three, the Li field may have only L1, L2, and L3 fields. Thereafter, a reserved field (Reserved, R) may be included to adjust the byte length, which means that the length of the packet redundancy enable / disable message shown in FIG. Can mean.
- the value of the R bit may be set to a preset value, or the terminal may ignore the value.
- the MAC CE transmitted to the MCG may indicate whether or not to use for packet duplication transmission only for the RLC device configured in the MCG.
- the number of Li fields may correspond to the number of RLC devices indicating whether the corresponding RLC device is used for packet duplication transmission in the corresponding MAC CE.
- the number of Li fields may be two, and the remaining fields may be R fields.
- the Li field may be set as much as the maximum value of the RLC device that can be set for each radio bearer, and among these, only the actually configured RLC device may determine whether to use for packet duplication by the actual Li field.
- the Li field may have L1, L2, L3, and L4 fields. If the number of actually configured RLC devices is three, the L1, L2, and L3 fields may be used to indicate whether the corresponding RLC device is used for packet duplication transmission. However, since there is no corresponding RLC device, the L4 field may be set to a preset value of 0 or 1 and may be ignored by the terminal.
- FIG. 28 is a diagram illustrating a packet redundancy enable / disable message format according to another embodiment.
- the packet duplication activation / deactivation message may be in the form of MAC CE (Control Element).
- three messages of a format having a DRB index described in FIG. 26 and a Li field corresponding to the RLC device may be overlapped to configure one MAC CE (1q-10, 1q-20, 1q-30). .
- this is only an example, and several MAC CEs may overlap. How many MAC CEs are to be overlapped may be variably determined by the base station only for the radio bearer for which packet duplication is to be set.
- the number of radio bearers to control packet duplication transmission included in the packet duplication activation / deactivation message of FIG. 28 is variable, it may be a variable-size MAC CE.
- the variable length MAC CE may have a MAC subheader for the variable length MAC CE described in FIG. 29.
- the embodiment of an application method for the Li field is the same as the example described with reference to FIG. 26.
- a reserved (R) field is used to adjust the byte length of the entire message at the end of the MAC CE (1q-40, 1q-41, 1q-42). That is, the DRB index and the Li field in the previous list the values for all radio bearers indicated in the corresponding packet duplicate activation / deactivation message.
- the method of applying the DRB index and the Li field shown in the embodiment of FIG. 28 is the same as that of FIG. 27.
- FIG. 29 illustrates a MAC subheader format of a variable length MAC CE according to an embodiment.
- the MAC subheader may be located in front of the MAC CE to inform what information the subsequent MAC CE contains.
- the variable length MAC CE may mean a MAC CE whose length of the MAC CE is not determined.
- the MAC subheader may include an L field (Length, length) 1r-40 to indicate the length of the MAC CE to be included later.
- the MAC subheader may have a reserved field (Reserved, R) 1r-10, an F field 1r-20, and an LCID field 1r-30.
- the F field indicates the length of the L field and may indicate that the L field is 1 byte when the F field is 0 and the L field is 2 bytes when the F field is 1. In the embodiment of Fig. 29, the F field has a value of 0 and the L field has a length of 1 byte.
- the Logical Channel Identifier (LCID) field is a value indicating the type of MAC CE to be included later. For example, if a packet duplicate activation / deactivation message is included later, the LCID field may have an LCID value indicating a packet duplicate activation / deactivation message.
- the MAC subheader may be located in front of the MAC CE to inform what information the subsequent MAC CE contains.
- the fixed length MAC CE may mean that the length of the MAC CE is determined. Therefore, the MAC subheader of the fixed length MAC CE may not need the L field (Length, length) 1r-40 shown in FIG. 29. Therefore, the subheader of the fixed length MAC CE may have a reserved field (Reserved, R) (1s-10), an F field (1s-20), and an LCID field (1s-30).
- the F field is a field indicating the length of the L field.
- R reserved field
- F field is a field indicating the length of the L field.
- the F field may be set to a value of 0, and the UE may ignore the F field.
- the Logical Channel Identifier (LCID) field is a value indicating the type of MAC CE to be included later. For example, if a packet duplication activation / deactivation message is included later, the LCID field may have an LCID value indicating a packet duplication activation / deactivation message.
- a computer-readable storage medium for storing one or more programs (software modules) may be provided.
- One or more programs stored in a computer readable storage medium are configured for execution by one or more processors in an electronic device.
- One or more programs include instructions that cause an electronic device to execute methods in accordance with embodiments described in the claims or specifications of this disclosure.
- Such programs may include random access memory, non-volatile memory including flash memory, Read Only Memory (ROM), and electrically erasable programmable ROM.
- ROM Read Only Memory
- EEPROM Electrically Erasable Programmable Read Only Memory
- magnetic disc storage device compact disc ROM (CD-ROM), digital versatile discs (DVDs) or other forms
- CD-ROM compact disc ROM
- DVDs digital versatile discs
- It can be stored in an optical storage device, a magnetic cassette. Or, it may be stored in a memory composed of some or all of these combinations.
- each configuration memory may be included in plural.
- the program is accessed through a communication network composed of a communication network such as the Internet, an intranet, a local area network (LAN), a wide area network (WLAN), or a storage area network (SAN), or a combination thereof. It may be stored in an attachable storage device that is accessible. Such a storage device may be connected to a device that performs an embodiment of the present disclosure through an external port. In addition, a separate storage device on a communication network may be connected to a device that performs an embodiment of the present disclosure.
- a communication network such as the Internet, an intranet, a local area network (LAN), a wide area network (WLAN), or a storage area network (SAN), or a combination thereof. It may be stored in an attachable storage device that is accessible.
- Such a storage device may be connected to a device that performs an embodiment of the present disclosure through an external port.
- a separate storage device on a communication network may be connected to a device that performs an embodiment of the present disclosure.
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Abstract
Description
Claims (15)
- 무선 통신 시스템에서 단말의 패킷 중복 전송 제어 방법에 있어서,기지국으로부터, RRC(radio resource control) 메시지를 통해 무선 베어러에 대한 패킷 중복(packet duplication) 설정을 수신하는 단계;복수 개의 RLC(radio link control) 장치에 대해서, 각 RLC 장치가 상향링크 패킷 중복 전송에 사용되도록 설정되었는지 여부를 확인하는 단계; 및패킷 중복 전송이 활성화 되는 경우, 상향링크 패킷 중복 전송에 사용되도록 설정된 RLC 장치를 사용하여 패킷 중복 전송을 수행하는 단계를 포함하는, 단말의 패킷 중복 전송 제어 방법.
- 제1항에 있어서,상기 복수 개의 RLC 장치에 대해서, 각 RLC 장치가 상향링크 패킷 중복 전송에 사용되도록 설정되었는지 여부를 확인하는 단계는,상기 기지국으로부터, MAC(media acces control) CE(control element)를 통해, 복수 개의 RLC 장치에 대해서, 패킷 중복 활성화 또는 비활성화를 지시하는 정보를 수신하는 단계를 더 포함하고,상기 패킷 중복 활성화 또는 비활성화를 지시하는 정보를 기초로 상기 각 RLC 장치가 상향링크 패킷 중복 전송에 사용되도록 설정되었는지 여부를 확인하는 단계를 포함하는, 단말의 패킷 중복 전송 제어 방법.
- 제2항에 있어서,상기 패킷 중복 활성화 또는 비활성화를 지시하는 정보는,무선 베어러 인덱스 또는 무선 베어러 ID 중 적어도 하나를 포함하는 무선 베어러 식별 정보와 상기 각 RLC 장치에 대응하는 복수 개의 필드를 포함하는, 단말의 패킷 중복 전송 제어 방법.
- 제3항에 있어서,상기 각 RLC 장치에 대응하는 복수 개의 필드는,상기 무선 베어러에 설정된 모든 RLC 장치 각각에 대응하는 복수 개의 필드, 상기 무선 베어러에 대한 패킷 중복 설정에서 상향링크 패킷 중복 전송에 사용되도록 설정된 RLC 장치 각각에 대응하는 복수 개의 필드 중 적어도 하나인, 단말의 패킷 중복 전송 제어 방법.
- 제1항에 있어서,상기 RRC 메시지는,상기 복수 개의 RLC 장치에 대해서, 상향링크 패킷 중복 전송에 사용할 RLC 장치에 대한 정보를 포함하고,상기 복수 개의 RLC 장치에 대해서, 각 RLC 장치가 상향링크 패킷 중복 전송에 사용되도록 설정되었는지 여부를 확인하는 단계는,상기 상향링크 패킷 중복 전송에 사용할 RLC 장치에 대한 정보를 기초로 상기 각 RLC 장치가 상향링크 패킷 중복 전송에 사용되도록 설정되었는지 여부를 확인하는 단계를 포함하는, 단말의 패킷 중복 전송 제어 방법.
- 제5항에 있어서,상기 패킷 중복 전송이 활성화 되는 경우, 상향링크 패킷 중복 전송에 사용되도록 설정된 RLC 장치를 사용하여 패킷 중복 전송을 수행하는 단계는,상기 기지국으로부터, MAC CE를 통해, 상기 상향링크 패킷 중복 전송에 사용되도록 설정된 RLC 장치들에 대해서, 패킷 중복 활성화 또는 비활성화를 지시하는 정보를 수신하는 단계; 및상기 패킷 중복 활성화를 지시하는 정보를 수신하는 경우, 상기 패킷 중복 전송을 활성화하는 단계를 포함하는, 단말의 패킷 중복 전송 제어 방법.
- 제5항에 있어서,상기 상향링크 패킷 중복 전송에 사용할 RLC 장치에 대한 정보는,상기 상향링크 패킷 중복 전송에 사용할 RLC 장치의 목록, RLC 장치의 ID, 논리 채널 ID 또는 논리 채널 ID와 셀그룹 ID의 조합 중 적어도 하나 이상을 포함하는, 단말의 패킷 중복 전송 제어 방법.
- 제5항에 있어서,상기 패킷 중복 전송이 활성화 되는 경우, 상향링크 패킷 중복 전송에 사용되도록 설정된 RLC 장치를 사용하여 패킷 중복 전송을 수행하는 단계는,상기 기지국으로부터, MAC CE를 통해, 상기 무선 베어러에 대해서, 패킷 중복 활성화 또는 비활성화를 지시하는 정보를 수신하는 단계; 및상기 패킷 중복 활성화를 지시하는 정보를 수신하는 경우, 상기 패킷 중복 전송을 활성화하는 단계를 포함하는, 단말의 패킷 중복 전송 제어 방법.
- 무선 통신 시스템에서 패킷 중복 전송 제어하기 위한 단말에 있어서,송수신부;메모리; 및적어도 하나의 프로세서를 포함하고, 상기 적어도 하나의 프로세서는,기지국으로부터, RRC(radio resource control) 메시지를 통해 무선 베어러에 대한 패킷 중복(packet duplication) 설정을 수신하고, 복수 개의 RLC(radio link control) 장치에 대해서, 각 RLC 장치가 상향링크 패킷 중복 전송에 사용되도록 설정되었는지 여부를 확인하며, 패킷 중복 전송이 활성화 되는 경우, 상향링크 패킷 중복 전송에 사용되도록 설정된 RLC 장치를 사용하여 패킷 중복 전송을 수행하는, 단말.
- 제9항에 있어서,상기 적어도 하나의 프로세서는,상기 기지국으로부터, MAC(media acces control) CE(control element)를 통해, 복수 개의 RLC 장치에 대해서, 패킷 중복 활성화 또는 비활성화를 지시하는 정보를 수신하고, 상기 패킷 중복 활성화 또는 비활성화를 지시하는 정보를 기초로 상기 각 RLC 장치가 상향링크 패킷 중복 전송에 사용되도록 설정되었는지 여부를 확인하는, 단말.
- 제10항에 있어서,상기 패킷 중복 활성화 또는 비활성화를 지시하는 정보는,무선 베어러 인덱스 또는 무선 베어러 ID 중 적어도 하나를 포함하는 무선 베어러 식별 정보와 상기 각 RLC 장치에 대응하는 복수 개의 필드를 포함하는, 단말.
- 제11항에 있어서,상기 각 RLC 장치에 대응하는 복수 개의 필드는,상기 무선 베어러에 설정된 모든 RLC 장치 각각에 대응하는 복수 개의 필드, 상기 무선 베어러에 대한 패킷 중복 설정에서 상향링크 패킷 중복 전송에 사용되도록 설정된 RLC 장치 각각에 대응하는 복수 개의 필드 중 적어도 하나인, 단말.
- 제9항에 있어서,상기 RRC 메시지는,상기 복수 개의 RLC 장치에 대해서, 상향링크 패킷 중복 전송에 사용할 RLC 장치에 대한 정보를 포함하고,상기 적어도 하나의 프로세서는,상기 상향링크 패킷 중복 전송에 사용할 RLC 장치에 대한 정보를 기초로 상기 각 RLC 장치가 상향링크 패킷 중복 전송에 사용되도록 설정되었는지 여부를 확인하는, 단말.
- 제13항에 있어서,상기 적어도 하나의 프로세서는,상기 기지국으로부터, MAC CE를 통해, 상기 상향링크 패킷 중복 전송에 사용되도록 설정된 RLC 장치들에 대해서, 패킷 중복 활성화 또는 비활성화를 지시하는 정보를 수신하고, 상기 패킷 중복 활성화를 지시하는 정보를 수신하는 경우, 상기 패킷 중복 전송을 활성화하는, 단말.
- 제13항에 있어서,상기 상향링크 패킷 중복 전송에 사용할 RLC 장치에 대한 정보는,상기 상향링크 패킷 중복 전송에 사용할 RLC 장치의 목록, RLC 장치의 ID, 논리 채널 ID 또는 논리 채널 ID와 셀그룹 ID의 조합 중 적어도 하나 이상을 포함하는, 단말.
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| US18/395,100 US12245077B2 (en) | 2018-08-01 | 2023-12-22 | Method and device for controlling duplicate packet transmission in wireless communication system |
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- 2019-08-01 JP JP2021504452A patent/JP7436452B2/ja active Active
- 2019-08-01 EP EP19845551.1A patent/EP3813417A4/en active Pending
- 2019-08-01 KR KR1020217000666A patent/KR102943296B1/ko active Active
- 2019-08-01 US US17/264,269 patent/US11503502B2/en active Active
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2022
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| US12213193B2 (en) | 2018-10-31 | 2025-01-28 | Vivo Mobile Communication Co., Ltd. | Split bearer control method and related device |
| JP2022506317A (ja) * | 2018-10-31 | 2022-01-17 | 維沃移動通信有限公司 | スプリットベアラの制御方法及び関連機器 |
| JP7250125B2 (ja) | 2018-10-31 | 2023-03-31 | 維沃移動通信有限公司 | スプリットベアラの制御方法及び関連機器 |
| JP7285853B2 (ja) | 2018-10-31 | 2023-06-02 | 株式会社Nttドコモ | 端末、基地局、通信システム及び通信方法 |
| JPWO2020090072A1 (ja) * | 2018-10-31 | 2021-09-24 | 株式会社Nttドコモ | ユーザ装置及び基地局装置 |
| US12477617B2 (en) | 2019-03-25 | 2025-11-18 | Samsung Electronics Co., Ltd. | Method and apparatus for controlling activation of RLC layers in wireless communication system |
| EP4604668A3 (en) * | 2019-03-25 | 2025-09-17 | Samsung Electronics Co., Ltd. | Methods and apparatuses for controlling activation of plurality of rlc layer devices in wireless communication system |
| EP3908075B1 (en) * | 2019-03-25 | 2025-07-02 | Samsung Electronics Co., Ltd. | Methods and apparatuses for controlling activation of plurality of rlc layer devices in wireless communication system |
| US11917710B2 (en) | 2019-03-25 | 2024-02-27 | Samsung Electronics Co., Ltd. | Method and apparatus for controlling activation of RLC layers in wireless communication system |
| CN115053593A (zh) * | 2020-02-12 | 2022-09-13 | 株式会社Ntt都科摩 | 无线通信节点 |
| CN113596914B (zh) * | 2020-04-30 | 2024-10-15 | 华为技术有限公司 | 一种通信方法及装置 |
| EP4132083A4 (en) * | 2020-04-30 | 2023-09-27 | Huawei Technologies Co., Ltd. | Communication method and apparatus |
| CN113596914A (zh) * | 2020-04-30 | 2021-11-02 | 华为技术有限公司 | 一种通信方法及装置 |
| EP4462757A3 (en) * | 2020-08-07 | 2025-01-22 | Guangdong Oppo Mobile Telecommunications Corp., Ltd. | Communication method and communication device |
| WO2022027558A1 (en) * | 2020-08-07 | 2022-02-10 | JRD Communication (Shenzhen) Ltd. | Method for controlling rlc entities of user equipment, network node and user equipment |
Also Published As
| Publication number | Publication date |
|---|---|
| KR20210029197A (ko) | 2021-03-15 |
| EP3813417A4 (en) | 2021-08-25 |
| US20230074851A1 (en) | 2023-03-09 |
| JP7436452B2 (ja) | 2024-02-21 |
| US11882480B2 (en) | 2024-01-23 |
| JP2024050876A (ja) | 2024-04-10 |
| KR102943296B1 (ko) | 2026-03-24 |
| US20210297899A1 (en) | 2021-09-23 |
| EP3813417A1 (en) | 2021-04-28 |
| US11503502B2 (en) | 2022-11-15 |
| CN112514447B (zh) | 2025-06-20 |
| JP7649891B2 (ja) | 2025-03-21 |
| US20240129796A1 (en) | 2024-04-18 |
| CN112514447A (zh) | 2021-03-16 |
| US12245077B2 (en) | 2025-03-04 |
| JP2021533614A (ja) | 2021-12-02 |
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