WO2022226708A1 - 一种传输配置授权的下行反馈信息的方法、装置及介质 - Google Patents
一种传输配置授权的下行反馈信息的方法、装置及介质 Download PDFInfo
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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
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1829—Arrangements specially adapted for the receiver end
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
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- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
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- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
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- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1822—Automatic repetition systems, e.g. Van Duuren systems involving configuration of automatic repeat request [ARQ] with parallel processes
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- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
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- H04L1/1867—Arrangements specially adapted for the transmitter end
- H04L1/1896—ARQ related signaling
Definitions
- the present disclosure relates to the technical field of wireless communications, and in particular, to a method, an apparatus, and a readable storage medium for transmitting configured grant-downlink feedback information (CG-DFI).
- CG-DFI configured grant-downlink feedback information
- Sub-carrier spacing of 480 kilohertz (KHz) or 960 KHz will be used in the 52.6 gigahertz (GHz) to 71 GHz frequency band in new radio (NR).
- the duration of the time slot corresponding to the 480KHz subcarrier interval is 1/32 millisecond (ms), and the duration of the time slot corresponding to the 960KHz subcarrier interval is 1/64ms.
- the processing duration of one physical downlink shared channel (PDSCH) will correspond to multiple continuous time slots, and the message round trip time (RTT) duration will correspond to More time slots, eg one RTT duration corresponds to 64 time slots. In this case, more parallel hybrid automatic repeat request (HARQ) processes need to be supported.
- HARQ hybrid automatic repeat request
- CG-DFI configured grant-downlink feedback information
- embodiments of the present disclosure provide a method, apparatus, and readable storage medium for transmitting CG-DFI.
- an embodiment of the present disclosure provides a method for transmitting a CG-DFI, where the method is executed by a network device, or executed by a chip in the network device.
- the network devices may include access network devices, such as base stations, nodeBs, and the like.
- the method includes: determining a composition mode of the CG-DFI, where the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16;
- the CG-DFI conforming to the composition method can reflect all or part of the uplink HARQ processes in all uplink HARQ processes corresponding to the maximum number of uplink HARQ processes.
- the determining the composition mode of the CG-DFI includes:
- Radio link layer signaling to the user equipment, where the radio link layer signaling includes first indication information, where the first indication information is used to indicate the composition mode of the CG-DFI.
- composition method of determining the CG-DFI includes:
- the composition mode corresponds to the first mode, and the number of HARQ-ACK information included in the CG-DFI in the CG-DFI is equal to the maximum number of uplink HARQ processes.
- composition mode corresponds to the second mode, and the number of HARQ-ACK information contained in the CG-DFI contained in the CG-DFI feedback is greater than the maximum number of uplink HARQ processes.
- the composition mode corresponds to the third mode.
- the number of HARQ-ACK information contained in the CG-DFI and fed back by the HARQ-ACK request is less than the maximum number of uplink HARQ processes, and the Each HARQ-ACK information of HARQ-ACK included in the CG-DFI corresponds to a logical value, and the logical value corresponds to the result of logical operation of HARQ-ACK information of more than one uplink HARQ process.
- the composition mode corresponds to the fourth mode.
- the number of HARQ-ACK information included in the CG-DFI and fed back by the HARQ-ACK is less than the maximum number of uplink HARQ processes, and the Each HARQ-ACK information of HARQ-ACK information included in the CG-DFI corresponds to a logical value, and each logical value corresponds to the result of the logical operation of the HARQ-ACK information of N uplink HARQ processes, where N is the The ratio of the maximum number of uplink HARQ processes to 16, and the N is an integer greater than 0.
- the logical operation is logical AND.
- the composition mode corresponds to the fifth mode
- all HARQ-ACK information included in the CG-DFI corresponds to a part of the uplink in all the uplink HARQ processes of the maximum number of uplink HARQ processes.
- the part of the uplink HARQ process is a continuous uplink HARQ process.
- the CG-DFI includes an information field, and the information field is used to indicate the smallest identifier among the identifiers of the uplink HARQ processes corresponding to all the HARQ-ACK information included in the CG-DFI.
- the method includes:
- the radio link layer signaling includes second indication information, and the second indication information is used to indicate that the CG-DFI does not include an information field, and the information field is used The smallest identifier among the identifiers of the uplink HARQ processes corresponding to all HARQ-ACK information included in the CG-DFI;
- All the HARQ-ACK information included in the CG-DFI corresponds to the continuous uplink HARQ process starting from the uplink HARQ process with the smallest identifier among all the uplink HARQ processes of the maximum number of uplink HARQ processes.
- radio link layer signaling to the user equipment, where the radio link layer signaling includes the process number of the uplink HARQ processes corresponding to all HARQ-ACK information included in the CG-DFI.
- an embodiment of the present disclosure provides a method for transmitting a CG-DFI, where the method is performed by a user equipment, or performed by a chip in the user equipment.
- the network device may be a mobile phone.
- the method includes: receiving a CG-DFI conforming to a composition mode from a network device, wherein the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the method includes:
- Radio link layer signaling from the network device, where the radio link layer signaling includes first indication information, where the first indication information is used to indicate the composition mode of the CG-DFI.
- composition mode is the composition mode of the CG-DFI stipulated in the agreement.
- the composition mode corresponds to the first mode, and the number of HARQ-ACK information included in the CG-DFI in the CG-DFI is equal to the maximum number of uplink HARQ processes.
- composition mode corresponds to the second mode, and the number of HARQ-ACK information contained in the CG-DFI contained in the CG-DFI feedback is greater than the maximum number of uplink HARQ processes.
- the composition mode corresponds to the third mode.
- the number of HARQ-ACK information contained in the CG-DFI and fed back by the HARQ-ACK request is less than the maximum number of uplink HARQ processes, and the Each HARQ-ACK information of HARQ-ACK included in the CG-DFI corresponds to a logical value, and the logical value corresponds to the result of logical operation of HARQ-ACK information of more than one uplink HARQ process.
- the composition mode corresponds to the fourth mode.
- the number of HARQ-ACK information included in the CG-DFI and fed back by the HARQ-ACK is less than the maximum number of uplink HARQ processes, and the Each HARQ-ACK information of HARQ-ACK information included in the CG-DFI corresponds to a logical value, and each logical value corresponds to the result of the logical operation of the HARQ-ACK information of N uplink HARQ processes, where N is the The ratio of the maximum number of uplink HARQ processes to 16, and the N is an integer greater than 0.
- the logical operation is logical AND.
- the composition mode corresponds to the fifth mode
- all HARQ-ACK information included in the CG-DFI corresponds to a part of the uplink in all the uplink HARQ processes of the maximum number of uplink HARQ processes.
- the part of the uplink HARQ process is a continuous uplink HARQ process.
- the CG-DFI includes an information field, and the information field is used to indicate the smallest identifier among the identifiers of the uplink HARQ processes corresponding to all the HARQ-ACK information included in the CG-DFI.
- the method includes:
- Radio link layer signaling from a network device, the radio link layer signaling includes second indication information, and the second indication information is used to indicate that the CG-DFI does not include an information field, and the information field is used for The smallest identifier among the identifiers of the uplink HARQ processes corresponding to all HARQ-ACK information included in the CG-DFI;
- All the HARQ-ACK information included in the CG-DFI corresponds to the continuous uplink HARQ process starting from the uplink HARQ process with the smallest identifier among all the uplink HARQ processes of the maximum number of uplink HARQ processes.
- a radio link layer signaling is received from a network device, where the radio link layer signaling includes the process number of uplink HARQ processes corresponding to all HARQ-ACK information included in the CG-DFI.
- an embodiment of the present disclosure provides a communication device.
- the communication apparatus may be used to perform the steps performed by the network device in the first aspect or any possible design of the first aspect.
- the network device may implement each function in the above-mentioned methods in the form of a hardware structure, a software module, or a hardware structure plus a software module.
- the communication device may include a transceiver module and a processing module coupled with each other, wherein the transceiver module can be used to support the communication device to communicate, and the processing module can be used by the communication device to perform processing operations, Such as generating information/messages to be sent, or processing received signals to obtain information/messages.
- the processing module is configured to determine the composition mode of the CG-DFI, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16;
- a transceiver module configured to send the CG-DFI conforming to the composition mode to the user equipment.
- an embodiment of the present disclosure provides a communication device.
- the communication apparatus may be configured to perform the steps performed by the user equipment in the second aspect or any possible design of the second aspect.
- the user equipment may implement each function in the above-mentioned methods in the form of a hardware structure, a software module, or a hardware structure plus a software module.
- the communication device may include a transceiver module and a processing module coupled with each other, wherein the transceiver module can be used to support the communication device to communicate, and the processing module can be used by the communication device to perform processing operations, Such as generating information/messages to be sent, or processing received signals to obtain information/messages.
- the transceiver module is configured to receive CG-DFI conforming to the composition mode from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the present disclosure provides a communication system, which may include the communication apparatus shown in the third aspect and the communication apparatus shown in the fourth aspect.
- the communication device shown in the third aspect may be composed of software modules and/or hardware components.
- the communication device shown in the fourth aspect may be composed of software modules and/or hardware components.
- the present disclosure provides a communication device, including a processor and a memory; the memory is used to store a computer program; the processor is used to execute the computer program to implement the first aspect or any one of the first aspects possible designs.
- the present disclosure provides a communication device, including a processor and a memory; the memory is used to store a computer program; the processor is used to execute the computer program to implement the second aspect or any one of the second aspects possible designs.
- the present disclosure provides a computer-readable storage medium, where instructions (or computer programs, programs) are stored in the computer-readable storage medium, which, when invoked and executed on a computer, cause the computer to execute the above-mentioned first step.
- instructions or computer programs, programs
- the present disclosure provides a computer-readable storage medium, where instructions (or computer programs, programs) are stored in the computer-readable storage medium, which, when invoked and executed on a computer, cause the computer to execute the above-mentioned first step.
- instructions or computer programs, programs
- FIG. 1 is a schematic diagram of an architecture of a wireless communication system provided by an embodiment of the present disclosure
- FIG. 2 is a flowchart of a method for transmitting CG-DFI according to an exemplary embodiment
- FIG. 3 is a structural diagram of an apparatus for transmitting CG-DFI according to an exemplary embodiment
- FIG. 4 is a structural diagram of another apparatus for transmitting CG-DFI according to an exemplary embodiment
- FIG. 5 is a structural diagram of another apparatus for transmitting CG-DFI according to an exemplary embodiment
- FIG. 6 is a structural diagram of another apparatus for transmitting CG-DFI according to an exemplary embodiment.
- the method for transmitting CG-DFI may be applied to a wireless communication system 100 , and the wireless communication system may include user equipment 101 and network equipment 102 .
- the user equipment 101 is configured to support carrier aggregation, and the user equipment 101 can be connected to multiple carrier elements of the network equipment 102, including one primary carrier element and one or more secondary carrier elements.
- wireless communication system 100 is applicable to both low frequency scenarios and high frequency scenarios.
- Application scenarios of the wireless communication system 100 include but are not limited to long term evolution (long term evolution, LTE) systems, LTE frequency division duplex (frequency division duplex, FDD) systems, LTE time division duplex (time division duplex, TDD) systems, global Worldwide interoperability for microwave access (WiMAX) communication system, cloud radio access network (CRAN) system, future 5th-Generation (5G) system, new wireless (new radio, NR) communication system or a future evolved public land mobile network (public land mobile network, PLMN) system, etc.
- LTE long term evolution
- LTE frequency division duplex frequency division duplex
- TDD time division duplex
- WiMAX global Worldwide interoperability for microwave access
- CDRF cloud radio access network
- 5G future 5th-Generation
- new wireless new radio
- NR new wireless
- PLMN public land mobile network
- the user equipment 101 shown above may be a user equipment (UE), a terminal (terminal), an access terminal, a terminal unit, a terminal station, a mobile station (MS), a remote station, a remote terminal, a mobile terminal ( mobile terminal), wireless communication equipment, terminal agent or terminal equipment, etc.
- the user equipment 101 may have a wireless transceiver function, which can communicate with one or more network devices of one or more communication systems (eg, wireless communication), and accept network services provided by the network devices, where the network devices include but not
- the network device 102 is limited to the illustration.
- the user equipment 101 may be a cellular phone, a cordless phone, a session initiation protocol (SIP) phone, a wireless local loop (WLL) station, a personal digital assistant (PDA) device, a Handheld devices with wireless communication functions, computing devices or other processing devices connected to wireless modems, in-vehicle devices, wearable devices, terminal devices in future 5G networks or terminal devices in future evolved PLMN networks, etc.
- SIP session initiation protocol
- WLL wireless local loop
- PDA personal digital assistant
- the network device 102 may be an access network device (or an access network point).
- the access network device refers to a device that provides a network access function, such as a radio access network (radio access network, RAN) base station, and the like.
- the network device 102 may specifically include a base station (base station, BS), or include a base station and a radio resource management device for controlling the base station, and the like.
- the network device 102 may also include a relay station (relay device), an access point, a base station in a future 5G network, a base station in a future evolved PLMN network, or an NR base station, and the like.
- the network device 102 may be a wearable device or a vehicle-mounted device.
- the network device 102 may also be a communication chip with a communication module.
- the network device 102 includes but is not limited to: a next-generation base station (gnodeB, gNB) in 5G, an evolved node B (evolved node B, eNB) in the LTE system, a radio network controller (radio network controller, RNC), Node B (NB) in WCDMA system, wireless controller, base station controller (BSC) in CRAN system, base transceiver station (BTS) in GSM system or CDMA system, family Base station (for example, home evolved nodeB, or home node B, HNB), baseband unit (baseband unit, BBU), transmission point (transmitting and receiving point, TRP), transmitting point (transmitting point, TP) or mobile switching center, etc.
- a next-generation base station gNB
- eNB evolved node B
- eNB evolved node B
- RNC radio network controller
- NB Node B
- BSC base station controller
- BTS base transceiver station
- family Base station for example, home evolved node
- FIG. 2 is a flowchart of a method for transmitting CG-DFI according to an exemplary embodiment. As shown in FIG. 2, the method includes:
- Step S21 the network device 102 determines the composition mode of the CG-DFI, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- Step S21 the network device 102 sends the CG-DFI conforming to the composition mode to the user equipment 101.
- Step S23 the user equipment 101 receives the CG-DFI conforming to the composition mode from the network equipment 102.
- CG-DFI is activated after the CG-PUSCH transmission function is configured.
- CG-DFI The transmission of CG-DFI can achieve the following two functions:
- the network device 102 provides the HARQ-ACK information of the CG-PUSCH to the user equipment 101 in time, so that the user equipment 101 adjusts the size of the contention window in the next transmission.
- the user equipment 101 can determine whether to retransmit the CG-PUSCH or terminate the transmission of the CG-PUSCH in advance according to the HARQ-ACK information.
- the downlink control information (DCI) in the format of 0-1 is used to transmit the CG-DFI, that is, DCI0-1, and the wireless network temporary identifier (configured scheduled-radio network temporary identifier, CS- RNTI) for scrambling.
- DCI downlink control information
- the user equipment 101 When the user equipment 101 communicates on the unlicensed frequency band, if it is configured to detect DCI 0-1 and the CG-PUSCH transmission function is activated, the user equipment 101 detects the CG-DFI.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- the CG-DFI includes multiple HARQ-ACK information.
- one TB corresponds to one HARQ-ACK bit, and thus one HARQ-ACK information corresponds to one HARQ-ACK bit.
- CG-DFI includes 16 bits, each bit represents one HARQ-ACK information.
- one TB includes multiple CBGs, one HARQ-ACK information corresponds to the HARQ-ACK information of one TB, and each CGB corresponds to one HARQ-ACK bit , so that one HARQ-ACK information corresponds to a plurality of HARQ-ACK bits.
- CBG code block group
- one HARQ-ACK information corresponds to a plurality of HARQ-ACK bits.
- CG-DFI includes 16 bits, and every 2 bits represents one HARQ-ACK information.
- a corresponding composition mode of CG-DFI is set, a CG-DFI conforming to the composition mode is constructed according to the composition mode, and a CG-DFI conforming to the composition mode is constructed to the user equipment 101.
- the CG-DFI of the above composition mode so that in the application scenario where the maximum number of uplink HARQ processes is greater than 16, the CG-DFI that conforms to the composition mode reflects all or part of the uplink HARQ processes in all uplink HARQ processes corresponding to the maximum number of uplink HARQ processes.
- HARQ-ACK information for the process is not limited to the process.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- the HARQ-ACK information in the CG-DFI conforming to the composition mode corresponds to all or all of the uplink HARQ processes of the maximum uplink HARQ process quantity. Part of the uplink HARQ process.
- a corresponding composition mode of CG-DFI is set, a CG-DFI conforming to the composition mode is constructed according to the composition mode, and a CG-DFI conforming to the composition mode is constructed to the user equipment 101.
- the CG-DFI of the above composition mode so that in the application scenario where the maximum number of uplink HARQ processes is greater than 16, the CG-DFI that conforms to the composition mode reflects all or part of the uplink HARQ processes in all uplink HARQ processes corresponding to the maximum number of uplink HARQ processes.
- HARQ-ACK information for the process is not limited to the process.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- the radio link layer signaling includes first indication information
- the first indication information is used to indicate the composition mode of the CG-DFI
- the maximum corresponding to the composition mode The number of uplink HARQ processes is greater than 16.
- the first indication information for indicating the composition mode of the CG-DFI is sent through radio link layer signaling, so that the user equipment 101 can clearly know the composition mode of the CG-DFI, thereby accurately analyzing the CG-DFI.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- composition mode of the CG-DFI agreed in the protocol wherein, the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the composition mode of the CG-DFI is agreed upon by the protocol, and both the network device 102 and the user equipment 101 can unilaterally determine the composition mode of the CG-DFI according to the protocol.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- the composition mode of the CG-DFI Determine the composition mode of the CG-DFI, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16; the composition mode corresponds to the first mode, and the CG-DFI in the first mode contains HARQ-ACK information The number is equal to the maximum number of uplink HARQ processes.
- the CG-DFI by expanding the capacity of the CG-DFI, the CG-DFI carries the HARQ-ACK information of all uplink HARQ processes, so that when the maximum number of uplink HARQ processes is greater than 16, all uplink HARQ processes are sent to the user equipment.
- the HARQ-ACK information of the process enables the user equipment 101 to know the HARQ-ACK information of all uplink HARQ processes.
- the maximum number of uplink HARQ processes is 32.
- the CG-DFI includes 32 bits, and each bit corresponds to the HARQ-ACK information of an uplink HARQ process. Therefore, the CG-DFI can reflect the HARQ-ACK information of all uplink HARQ processes.
- the maximum number of uplink HARQ processes is 64.
- the CG-DFI includes 64 bits, and each bit corresponds to the HARQ-ACK information of an uplink HARQ process. Therefore, the CG-DFI can reflect the HARQ-ACK information of all uplink HARQ processes.
- the maximum number of uplink HARQ processes is 128.
- the CG-DFI includes 128 bits, and each bit corresponds to the HARQ-ACK information of an uplink HARQ process. Therefore, the CG-DFI can reflect the HARQ-ACK information of all uplink HARQ processes.
- the maximum number of uplink HARQ processes is 256.
- the CG-DFI includes 256 bits, and each bit corresponds to the HARQ-ACK information of an uplink HARQ process. Therefore, the CG-DFI can reflect the HARQ-ACK information of all uplink HARQ processes.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16; the composition mode corresponds to the second mode, and the CG-DFI in the second mode contains HARQ-ACK information The number is greater than the maximum number of uplink HARQ processes.
- the CG-DFI by expanding the capacity of the CG-DFI, the CG-DFI carries the HARQ-ACK information of all uplink HARQ processes, so that when the maximum number of uplink HARQ processes is greater than 16, all uplink HARQ processes are sent to the user equipment.
- the HARQ-ACK information of the process enables the user equipment 101 to know the HARQ-ACK information of all uplink HARQ processes.
- the maximum number of uplink HARQ processes is 32.
- the CG-DFI includes 64 bits, and each of the first 32 bits corresponds to the HARQ-ACK information of an uplink HARQ process. Therefore, the CG-DFI can reflect the HARQ-ACK information of all uplink HARQ processes.
- the maximum number of uplink HARQ processes is 64.
- the CG-DFI includes 128 bits, and each of the first 64 bits corresponds to the HARQ-ACK information of an uplink HARQ process. Therefore, the CG-DFI can reflect the HARQ-ACK information of all uplink HARQ processes.
- the maximum number of uplink HARQ processes is 128.
- the CG-DFI includes 256 bits, and each of the first 128 bits corresponds to the HARQ-ACK information of an uplink HARQ process. Therefore, the CG-DFI can reflect the HARQ-ACK information of all uplink HARQ processes.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16; the composition mode corresponds to the third mode, and the hybrid automatic repeat request included in the CG-DFI in the third mode
- the number of feedback HARQ-ACK information is less than the maximum number of uplink HARQ processes, and each HARQ-ACK information fed back by the hybrid automatic repeat request included in the CG-DFI corresponds to a logical value, and the logical value corresponds to more than one
- the HARQ-ACK information of more than one uplink HARQ process is compressed into one logical value after logical operation, so that the one logical value represents the HARQ-ACK information of the one or more uplink HARQ processes, so that in the
- the number of HARQ-ACK information contained in the hybrid automatic repeat request feedback contained in the CG-DFI is less than the maximum number of uplink HARQ processes, the HARQ-ACK information of all uplink HARQ processes corresponding to the maximum number of uplink HARQ processes can still be reflected.
- the CG-DFI includes at least two HARQ-ACK information, and the number of uplink HARQ processes corresponding to different HARQ-ACK information in the two HARQ-ACK information is different.
- the maximum number of uplink HARQ processes is 64.
- CG-DFI includes 16 bits. Each of the first 8 bits corresponds to the logical value of 2 uplink HARQ processes, and each of the last 8 bits corresponds to the logical value of 6 uplink HARQ processes.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16; the composition mode corresponds to the third mode, and the hybrid automatic repeat request included in the CG-DFI in the third mode
- the number of feedback HARQ-ACK information is less than the maximum number of uplink HARQ processes, and each HARQ-ACK information fed back by the hybrid automatic repeat request included in the CG-DFI corresponds to a logical value, and the logical value corresponds to more than one
- the CG-DFI includes at least two HARQ-ACK information, and the number of uplink HARQ processes corresponding to different HARQ-ACK information in the two HARQ-ACK information is different.
- the maximum number of uplink HARQ processes is 64.
- CG-DFI includes 16 bits. Each of the first 8 bits corresponds to the result of the logical AND of 2 uplink HARQ processes, and each of the last 8 bits corresponds to the result of the logical AND of 6 uplink HARQ processes.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16; the composition mode corresponds to the fourth mode, and the hybrid automatic repeat request included in the CG-DFI in the fourth mode
- the number of feedback HARQ-ACK information is less than the maximum number of uplink HARQ processes, and each HARQ-ACK information fed back by the hybrid automatic repeat request included in the CG-DFI corresponds to one logical value, and each logical value corresponds to N uplink HARQ processes
- the result of the logical operation of the HARQ-ACK information of the HARQ process, the N is the ratio of the maximum number of uplink HARQ processes to 16, and the N is an integer greater than 0.
- the HARQ-ACK information of each N uplink HARQ processes is logically operated and compressed into a logical value, so that each logical value represents the HARQ-ACK information of the N uplink HARQ processes, so that in the CG-
- the HARQ-ACK information of all uplink HARQ processes corresponding to the maximum number of uplink HARQ processes can still be reflected.
- the maximum number of uplink HARQ processes is 32.
- CG-DFI includes 16 bits. Each bit corresponds to the logical value of two uplink HARQ processes.
- the maximum number of uplink HARQ processes is 64.
- CG-DFI includes 16 bits. Each bit corresponds to the logical value of 4 uplink HARQ processes.
- the maximum number of uplink HARQ processes is 128.
- CG-DFI includes 16 bits. Each bit corresponds to the logical value of 8 uplink HARQ processes.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16; the composition mode corresponds to the fourth mode, and the hybrid automatic repeat request included in the CG-DFI in the fourth mode
- the number of feedback HARQ-ACK information is less than the maximum number of uplink HARQ processes, and each HARQ-ACK information fed back by the hybrid automatic repeat request included in the CG-DFI corresponds to one logical value, and each logical value corresponds to N uplink HARQ processes
- the result of the logical AND of the HARQ-ACK information of the HARQ process, the N is the ratio of the maximum number of uplink HARQ processes to 16, and the N is an integer greater than 0.
- the maximum number of uplink HARQ processes is 32.
- CG-DFI includes 16 bits. Each bit corresponds to the result of the logical AND of the two uplink HARQ processes.
- the maximum number of uplink HARQ processes is 64.
- CG-DFI includes 16 bits. Each bit corresponds to the result of the logical AND of the 4 uplink HARQ processes.
- the maximum number of uplink HARQ processes is 128.
- CG-DFI includes 16 bits. Each bit corresponds to the result of the logical AND of the 8 uplink HARQ processes.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16; the composition mode corresponds to the fifth mode, and all the HARQ-ACK information included in the CG-DFI in the fifth mode
- a part of uplink HARQ processes in all uplink HARQ processes corresponding to the maximum number of uplink HARQ processes, and the part of uplink HARQ processes is an uplink HARQ process that identifies consecutive ones.
- the CG-DFI when the number of all HARQ-ACK information included in the CG-DFI is less than the maximum number of uplink HARQ processes, the CG-DFI is used to indicate a part of the uplink HARQ processes among all the uplink HARQ processes corresponding to the maximum number of uplink HARQ processes.
- the HARQ-ACK information of this part of the uplink HARQ process can be the more important uplink HARQ process among all the uplink HARQ processes, so as to provide the maximum effective feedback for all uplink HARQ processes corresponding to the maximum number of uplink HARQ processes .
- the maximum number of uplink HARQ processes is 64.
- CG-DFI includes 16 HARQ-ACK bits.
- the 16 HARQ-ACK bits correspond to the first 16 uplink HARQ processes in the 64 uplink HARQ processes, that is, the 16 HARQ-ACK bits correspond to the first 16 uplink HARQ processes in the 64 uplink HARQ processes in turn. :
- the first HARQ-ACK bit corresponds to the first uplink HARQ process among the 64 uplink HARQ processes
- the second HARQ-ACK bit corresponds to the second uplink HARQ process among the 64 uplink HARQ processes
- the third HARQ-ACK bit corresponds to the third uplink HARQ process among the 64 uplink HARQ processes
- the 16th HARQ-ACK bit corresponds to the 16th uplink HARQ process among the 64 uplink HARQ processes.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16; the composition mode corresponds to the fifth mode, and all the HARQ-ACK information included in the CG-DFI in the fifth mode
- a part of uplink HARQ processes in all uplink HARQ processes corresponding to the maximum number of uplink HARQ processes, and the part of uplink HARQ processes is an uplink HARQ process that identifies consecutive ones.
- the CG-DFI includes an information field, and the information field is used to indicate the smallest identifier among the identifiers of the uplink HARQ processes corresponding to all the HARQ-ACK information included in the CG-DFI.
- the information field is used to indicate the identifier of the uplink HARQ process corresponding to the first HARQ-ACK information in the CG-DFI.
- the CG-DFI includes 20 bits, the first 16 bits correspond to the 1st HARQ-ACK information to the 16th HARQ-ACK information in sequence, and the last 4 bits are information fields, so The above information field is used to indicate the identifier of the uplink HARQ process corresponding to the first HARQ-ACK information.
- an information field is set in the CG-DFI, and the information field is used to indicate the identifier of the starting uplink HARQ process in ascending order, and the identifier of the starting uplink HARQ process is indicated in the CG-DFI starting from the identifier of the starting uplink HARQ process.
- HARQ-ACK information of multiple consecutive uplink HARQ processes at the starting point so that the user equipment 101 can clearly know which uplink HARQ process HARQ-ACK information is fed back in the CG-DFI.
- the maximum number of uplink HARQ processes is 64, and the identifiers of the corresponding 64 uplink HARQ processes are 0 to 63 in sequence.
- CG-DFI includes 16 HARQ-ACK bits and one information field. The identifier of the uplink HARQ process indicated in the information field is 0, and the identifier indicated in the default information field is the smallest identifier among the identifiers of the uplink HARQ process corresponding to all the HARQ-ACK information included in the CG-DFI.
- the 16 HARQ-ACK bits included in the CG-DFI sequentially represent the HARQ-ACK information of the uplink HARQ processes identified as 0 to 15.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16; the composition mode corresponds to the fifth mode, and all the HARQ-ACK information included in the CG-DFI in the fifth mode
- a part of uplink HARQ processes in all uplink HARQ processes corresponding to the maximum number of uplink HARQ processes, and the part of uplink HARQ processes is an uplink HARQ process that identifies consecutive ones.
- the CG-DFI includes an information field, and the information field is used to indicate the largest identifier among the identifiers of the uplink HARQ processes corresponding to all the HARQ-ACK information included in the CG-DFI.
- the information field is used to indicate the identifier of the uplink HARQ process corresponding to the first HARQ-ACK information in the CG-DFI.
- an information field is set in the CG-DFI, and the information field is used to indicate the identifier of the starting uplink HARQ process in descending order, and the identifier of the starting uplink HARQ process is indicated in the CG-DFI as the starting point.
- HARQ-ACK information of multiple consecutive uplink HARQ processes at the starting point so that the user equipment 101 can clearly know which uplink HARQ process HARQ-ACK information is fed back in the CG-DFI.
- the maximum number of uplink HARQ processes is 64, and the identifiers of the corresponding 64 uplink HARQ processes are 0 to 63 in sequence.
- CG-DFI includes 16 HARQ-ACK bits and one information field.
- the identifier of the uplink HARQ process indicated in the information field is 63, and the identifier indicated in the default information field is the largest identifier among the identifiers of the uplink HARQ process corresponding to all HARQ-ACK information included in the CG-DFI.
- the 16 HARQ-ACK bits included in the CG-DFI sequentially represent the HARQ-ACK information of the uplink HARQ processes identified as 63 to 48.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- the radio link layer signaling includes second indication information, and the second indication information is used to indicate that the CG-DFI does not include an information field, and the information field is used The smallest identifier among the identifiers of the uplink HARQ processes corresponding to all HARQ-ACK information included in the CG-DFI;
- the composition mode corresponds to the fifth mode
- all HARQ-ACK information included in the CG-DFI in the fifth mode corresponds to the maximum uplink Part of uplink HARQ processes among all uplink HARQ processes in the number of HARQ processes
- the part of uplink HARQ processes is an uplink HARQ process that identifies continuous
- all HARQ-ACK information included in the CG-DFI corresponds to the maximum uplink HARQ process Consecutive uplink HARQ processes starting from the uplink HARQ process with the smallest identifier among all uplink HARQ processes in the number of processes.
- the network device 102 when the network device 102 indicates to the user equipment 101 through radio link layer signaling that the information field is not included in the CG-DFI, it indicates that all HARQ-ACK information included in the CG-DFI corresponds to the maximum uplink HARQ process The number of consecutive uplink HARQ processes starting from the smallest identified uplink HARQ process among all uplink HARQ processes.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- Radio link layer signaling to the user equipment, where the radio link layer signaling includes first indication information and second indication information.
- the first indication information is used to indicate that the composition mode of the CG-DFI corresponds to the fifth mode, and all HARQ-ACK information included in the CG-DFI in the fifth mode corresponds to the maximum number of uplink HARQ processes Part of the uplink HARQ process in all the uplink HARQ processes, the part of the uplink HARQ process is the identification of continuous uplink HARQ process.
- the second indication information is used to indicate that the CG-DFI does not include an information field, and the information field is used to indicate the smallest identifier among the identifiers of the uplink HARQ processes corresponding to all the HARQ-ACK information included in the CG-DFI. ;
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- radio link layer signaling includes the number of processes of uplink HARQ processes corresponding to all HARQ-ACK information included in the CG-DFI.
- the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16; the composition mode corresponds to the fifth mode, and all the HARQ-ACK information included in the CG-DFI in the fifth mode
- a part of uplink HARQ processes in all uplink HARQ processes corresponding to the maximum number of uplink HARQ processes, and the part of uplink HARQ processes is an uplink HARQ process that identifies consecutive ones.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the network device 102, and the method includes:
- radio link layer signaling includes the number of processes of uplink HARQ processes corresponding to all HARQ-ACK information included in the CG-DFI.
- the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16; the composition mode corresponds to the fifth mode, and all the HARQ-ACK information included in the CG-DFI in the fifth mode
- a part of uplink HARQ processes in all uplink HARQ processes corresponding to the maximum number of uplink HARQ processes, and the part of uplink HARQ processes is an uplink HARQ process that identifies consecutive ones.
- the CG-DFI includes an information field, and the information field is used to indicate the largest identifier among the identifiers of the uplink HARQ processes corresponding to all the HARQ-ACK information included in the CG-DFI.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- Radio link layer signaling from the network device, where the radio link layer signaling includes first indication information, where the first indication information is used to indicate the composition mode of the CG-DFI.
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the composition mode is the composition mode of the CG-DFI stipulated in the agreement.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the composition mode corresponds to the first mode, and the number of HARQ-ACK information fed back by the hybrid automatic repeat request included in the CG-DFI in the first mode is equal to the maximum number of uplink HARQ processes.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the composition mode corresponds to the second mode, and in the second mode, the number of HARQ-ACK information fed back by the hybrid automatic repeat request included in the CG-DFI is greater than the maximum number of uplink HARQ processes.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the composition mode corresponds to the third mode.
- the number of HARQ-ACK information contained in the CG-DFI and fed back by the HARQ-ACK request is less than the maximum number of uplink HARQ processes, and the CG-DFI
- Each HARQ-ACK information included in the DFI corresponds to a logical value, and the logical value corresponds to the result of a logical operation of the HARQ-ACK information of one or more uplink HARQ processes.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the composition mode corresponds to the fourth mode.
- the number of HARQ-ACK information contained in the CG-DFI and fed back by the HARQ-ACK is less than the maximum number of uplink HARQ processes, and the CG-DFI
- Each HARQ-ACK information of HARQ-ACK information included in the DFI corresponds to a logical value, and each logical value corresponds to the result of a logical operation of the HARQ-ACK information of N uplink HARQ processes, where N is the maximum The ratio of the number of uplink HARQ processes to 16, where N is an integer greater than 0.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the composition mode corresponds to the third mode.
- the number of HARQ-ACK information contained in the CG-DFI and fed back by the HARQ-ACK request is less than the maximum number of uplink HARQ processes, and the CG-DFI
- Each HARQ-ACK information of the HARQ-ACK information included in the DFI corresponds to a logical value, and the logical value corresponds to the result of the logical AND of the HARQ-ACK information of more than one uplink HARQ process.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the composition mode corresponds to the fourth mode.
- the number of HARQ-ACK information contained in the CG-DFI and fed back by the HARQ-ACK is less than the maximum number of uplink HARQ processes, and the CG-DFI
- Each HARQ-ACK information of HARQ-ACK information contained in the DFI corresponds to a logical value, and each logical value corresponds to the result of the logical AND of the HARQ-ACK information of N uplink HARQ processes, where N is the maximum The ratio of the number of uplink HARQ processes to 16, where N is an integer greater than 0.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the composition mode corresponds to the fifth mode, and all HARQ-ACK information included in the CG-DFI in the fifth mode corresponds to a part of the uplink HARQ processes in all the uplink HARQ processes of the maximum uplink HARQ process quantity , the part of the uplink HARQ process is a continuous uplink HARQ process.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the composition mode corresponds to the fifth mode, and all HARQ-ACK information included in the CG-DFI in the fifth mode corresponds to a part of the uplink HARQ processes in all the uplink HARQ processes of the maximum uplink HARQ process quantity , the part of the uplink HARQ process is a continuous uplink HARQ process.
- the CG-DFI includes an information field, and the information field is used to indicate the smallest identifier among the identifiers of the uplink HARQ processes corresponding to all the HARQ-ACK information included in the CG-DFI.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the composition mode corresponds to the fifth mode, and all HARQ-ACK information included in the CG-DFI in the fifth mode corresponds to a part of the uplink HARQ processes in all the uplink HARQ processes of the maximum uplink HARQ process quantity , the part of the uplink HARQ process is a continuous uplink HARQ process.
- the CG-DFI includes an information field, and the information field is used to indicate the largest identifier among the identifiers of the uplink HARQ processes corresponding to all the HARQ-ACK information included in the CG-DFI.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- Radio link layer signaling from a network device, the radio link layer signaling includes second indication information, and the second indication information is used to indicate that the CG-DFI does not include an information field, and the information field is used for The smallest identifier among the identifiers indicating the uplink HARQ processes corresponding to all HARQ-ACK information included in the CG-DFI.
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the composition mode corresponds to the fifth mode, and all HARQ-ACK information included in the CG-DFI in the fifth mode corresponds to a part of the uplink HARQ processes in all the uplink HARQ processes of the maximum uplink HARQ process quantity , the part of the uplink HARQ processes is a continuous uplink HARQ process, and all the HARQ-ACK information included in the CG-DFI corresponds to the uplink HARQ process with the largest number of uplink HARQ processes from the uplink HARQ process with the smallest identifier The continuous upstream HARQ process from which the process starts.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- Radio link layer signaling from a network device, where the radio link layer signaling includes the number of processes of uplink HARQ processes corresponding to all HARQ-ACK information included in the CG-DFI.
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the composition mode corresponds to the fifth mode, and all HARQ-ACK information included in the CG-DFI in the fifth mode corresponds to a part of the uplink HARQ processes in all the uplink HARQ processes of the maximum uplink HARQ process quantity , the part of the uplink HARQ process is a continuous uplink HARQ process.
- An embodiment of the present disclosure provides a method for sending CG-DFI, the method is performed by the user equipment 101, and the method includes:
- Radio link layer signaling from a network device, where the radio link layer signaling includes the number of processes of uplink HARQ processes corresponding to all HARQ-ACK information included in the CG-DFI.
- a CG-DFI conforming to the composition mode is received from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the composition mode corresponds to the fifth mode, and all HARQ-ACK information included in the CG-DFI in the fifth mode corresponds to a part of the uplink HARQ processes in all the uplink HARQ processes of the maximum uplink HARQ process quantity , the part of the uplink HARQ process is a continuous uplink HARQ process.
- the embodiments of the present disclosure further provide a communication device, which can have the function of the network device 102 in the above method embodiments, and can be used to execute the network device provided by the above method embodiments. Steps performed by device 102 .
- This function can be implemented by hardware, or can be implemented by software or hardware executing corresponding software.
- the hardware or software includes one or more modules corresponding to the above functions.
- the communication apparatus 300 shown in FIG. 3 may be used as the network device involved in the above method embodiments, and perform the steps performed by the network device in the above method embodiments.
- the communication device 300 may include a transceiver module 301 and a processing module 302 , and the transceiver module 301 and the processing module 302 are coupled to each other.
- the transceiver module 301 can be used to support the communication device 300 to communicate, and the transceiver module 301 can have a wireless communication function, for example, can perform wireless communication with other communication devices through a wireless air interface.
- the processing module 302 may be configured to support the communication device 300 to perform the processing actions in the foregoing method embodiments, including but not limited to: generating information and messages sent by the transceiver module 301 , and/or demodulating the signals received by the transceiver module 301 decoding and so on.
- the processing module 302 is configured to determine the composition mode of the CG-DFI, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the transceiver module 301 is configured to send the CG-DFI conforming to the composition mode to the user equipment.
- the transceiver module 301 is further configured to send radio link layer signaling to the user equipment, where the radio link layer signaling includes first indication information, and the first indication information is used to indicate the CG-DFI composition.
- composition method of determining the CG-DFI includes:
- the composition mode corresponds to the first mode, and the number of HARQ-ACK information included in the CG-DFI in the CG-DFI is equal to the maximum number of uplink HARQ processes.
- composition mode corresponds to the second mode, and the number of HARQ-ACK information contained in the CG-DFI contained in the CG-DFI feedback is greater than the maximum number of uplink HARQ processes.
- the composition mode corresponds to the third mode.
- the number of HARQ-ACK information contained in the CG-DFI and fed back by the HARQ-ACK request is less than the maximum number of uplink HARQ processes, and the Each HARQ-ACK information of HARQ-ACK included in the CG-DFI corresponds to a logical value, and the logical value corresponds to the result of logical operation of HARQ-ACK information of more than one uplink HARQ process.
- the composition mode corresponds to the fourth mode.
- the number of HARQ-ACK information included in the CG-DFI and fed back by the HARQ-ACK is less than the maximum number of uplink HARQ processes, and the Each HARQ-ACK information of HARQ-ACK information included in the CG-DFI corresponds to a logical value, and each logical value corresponds to the result of the logical operation of the HARQ-ACK information of N uplink HARQ processes, where N is the The ratio of the maximum number of uplink HARQ processes to 16, and the N is an integer greater than 0.
- the logical operation is logical AND.
- the composition mode corresponds to the fifth mode
- all HARQ-ACK information included in the CG-DFI corresponds to a part of the uplink in all the uplink HARQ processes of the maximum number of uplink HARQ processes.
- the part of the uplink HARQ process is a continuous uplink HARQ process.
- the CG-DFI includes an information field, and the information field is used to indicate the identifier of the uplink HARQ process corresponding to the first HARQ-ACK information in the CG-DFI, and the information
- the identifier indicated by the field is the smallest identifier among the identifiers of the uplink HARQ processes corresponding to all the HARQ-ACK information contained in the CG-DFI, or the identifier of the uplink HARQ process corresponding to all the HARQ-ACK information contained in the CG-DFI. The largest of the identities.
- the transceiver module 301 is further configured to send radio link layer signaling to the user equipment, where the radio link layer signaling includes second indication information, and the second indication information is used to indicate the CG- DFI does not include an information field, the information field is used to indicate the identifier of the uplink HARQ process corresponding to the first HARQ-ACK information in the CG-DFI, and the identifier indicated by the information field is included in the CG-DFI
- All the HARQ-ACK information included in the CG-DFI corresponds to the continuous uplink HARQ process starting from the uplink HARQ process with the smallest identifier among all the uplink HARQ processes of the maximum number of uplink HARQ processes.
- the apparatus 400 includes a memory 401 , a processor 402 , a transceiver component 403 , and a power supply component 406 .
- the memory 401 is coupled with the processor 402, and can be used to store programs and data necessary for the communication device 400 to realize various functions.
- the processor 402 is configured to support the communication device 400 to perform the corresponding functions in the above-mentioned methods, and the functions can be implemented by calling programs stored in the memory 401 .
- the transceiver component 403 may be a wireless transceiver, and may be used to support the communication device 400 to receive signaling and/or data through a wireless air interface, and to transmit signaling and/or data.
- the transceiver component 403 may also be referred to as a transceiver unit or a communication unit, and the transceiver component 403 may include a radio frequency component 404 and one or more antennas 405, wherein the radio frequency component 404 may be a remote radio unit (remote radio unit, RRU), specifically It can be used for the transmission of radio frequency signals and the conversion of radio frequency signals and baseband signals, and the one or more antennas 405 can be specifically used for radiation and reception of radio frequency signals.
- RRU remote radio unit
- the processor 402 can perform baseband processing on the data to be sent, and then output the baseband signal to the radio frequency unit, and the radio frequency unit performs radio frequency processing on the baseband signal and sends the radio frequency signal through the antenna in the form of electromagnetic waves.
- the radio frequency unit receives the radio frequency signal through the antenna, converts the radio frequency signal into a baseband signal, and outputs the baseband signal to the processor 402, and the processor 402 converts the baseband signal into data and sends the data to the baseband signal. to be processed.
- the embodiments of the present disclosure further provide a communication device, which can have the functions of the user equipment 101 in the above method embodiments, and can be used to execute the user equipment provided by the above method embodiments. Steps performed by device 101 .
- This function can be implemented by hardware, or can be implemented by software or hardware executing corresponding software.
- the hardware or software includes one or more modules corresponding to the above functions.
- the communication apparatus 500 shown in FIG. 5 may be used as the user equipment involved in the above method embodiments, and perform the steps performed by the user equipment in the above method embodiments.
- the communication device 500 may include a transceiver module 501 and a processing module 502, and the transceiver module 501 and the processing module 502 are coupled to each other.
- the transceiver module 501 can be used to support the communication device 500 to communicate, and the transceiver module 501 can have a wireless communication function, for example, can perform wireless communication with other communication devices through a wireless air interface.
- the processing module 502 may be configured to support the communication apparatus 500 to perform the processing actions in the foregoing method embodiments, including but not limited to: generating information and messages sent by the transceiver module 501 , and/or demodulating the signals received by the transceiver module 501 decoding and so on.
- the transceiver module 501 When performing the steps implemented by the user equipment 101, the transceiver module 501 is configured to receive the CG-DFI conforming to the composition mode from the network device, and the maximum number of uplink HARQ processes corresponding to the composition mode is greater than 16.
- the transceiver module 501 is further configured to receive radio link layer signaling from the network device, where the radio link layer signaling includes first indication information, and the first indication information is used to indicate the CG-DFI of the composition.
- composition mode is the composition mode of the CG-DFI stipulated in the agreement.
- the composition mode corresponds to the first mode, and the number of HARQ-ACK information included in the CG-DFI in the CG-DFI is equal to the maximum number of uplink HARQ processes.
- composition mode corresponds to the second mode, and the number of HARQ-ACK information contained in the CG-DFI contained in the CG-DFI feedback is greater than the maximum number of uplink HARQ processes.
- the composition mode corresponds to the third mode.
- the number of HARQ-ACK information contained in the CG-DFI and fed back by the HARQ-ACK request is less than the maximum number of uplink HARQ processes, and the Each HARQ-ACK information of HARQ-ACK included in the CG-DFI corresponds to a logical value, and the logical value corresponds to the result of logical operation of HARQ-ACK information of more than one uplink HARQ process.
- the composition mode corresponds to the fourth mode.
- the number of HARQ-ACK information included in the CG-DFI and fed back by the HARQ-ACK is less than the maximum number of uplink HARQ processes, and the Each HARQ-ACK information of HARQ-ACK information included in the CG-DFI corresponds to a logical value, and each logical value corresponds to the result of the logical operation of the HARQ-ACK information of N uplink HARQ processes, where N is the The ratio of the maximum number of uplink HARQ processes to 16, and the N is an integer greater than 0.
- the logical operation is logical AND.
- the composition mode corresponds to the fifth mode
- all HARQ-ACK information included in the CG-DFI corresponds to a part of the uplink in all the uplink HARQ processes of the maximum number of uplink HARQ processes.
- the part of the uplink HARQ process is a continuous uplink HARQ process.
- the CG-DFI includes an information field, and the information field is used to indicate the identifier of the uplink HARQ process corresponding to the first HARQ-ACK information in the CG-DFI, and the information
- the identifier indicated by the field is the smallest identifier among the identifiers of the uplink HARQ processes corresponding to all the HARQ-ACK information contained in the CG-DFI, or the identifier of the uplink HARQ process corresponding to all the HARQ-ACK information contained in the CG-DFI. The largest of the identities.
- the transceiver module 501 is further configured to receive radio link layer signaling from a network device, where the radio link layer signaling includes second indication information, and the second indication information is used to indicate the CG -DFI does not include an information field, the information field is used to indicate the identifier of the uplink HARQ process corresponding to the first HARQ-ACK information in the CG-DFI, and the identifier indicated by the information field is that the CG-DFI contains The smallest identifier among the identifiers of the uplink HARQ processes corresponding to all the HARQ-ACK information of the CG-DFI, or the largest identifier among the identifiers of the uplink HARQ processes corresponding to all the HARQ-ACK information contained in the CG-DFI;
- All the HARQ-ACK information included in the CG-DFI corresponds to the continuous uplink HARQ process starting from the uplink HARQ process with the smallest identifier among all the uplink HARQ processes of the maximum number of uplink HARQ processes.
- Apparatus 600 may be a mobile phone, computer, digital broadcast terminal, messaging device, game console, tablet device, medical device, fitness device, personal digital assistant, and the like.
- the apparatus 600 may include one or more of the following components: a processing component 602, a memory 604, a power supply component 606, a multimedia component 608, an audio component 610, an input/output (I/O) interface 612, a sensor component 614, and communication component 616 .
- the processing component 602 generally controls the overall operation of the device 600, such as operations associated with display, phone calls, data communications, camera operations, and recording operations.
- the processing component 602 may include one or more processors 620 to execute instructions to perform all or some of the steps of the methods described above. Additionally, processing component 602 may include one or more modules that facilitate interaction between processing component 602 and other components. For example, processing component 602 may include a multimedia module to facilitate interaction between multimedia component 608 and processing component 602.
- Memory 604 is configured to store various types of data to support operation at device 600 . Examples of such data include instructions for any application or method operating on device 600, contact data, phonebook data, messages, pictures, videos, and the like. Memory 604 may be implemented by any type of volatile or nonvolatile storage device or combination thereof, such as static random access memory (SRAM), electrically erasable programmable read only memory (EEPROM), erasable Programmable Read Only Memory (EPROM), Programmable Read Only Memory (PROM), Read Only Memory (ROM), Magnetic Memory, Flash Memory, Magnetic or Optical Disk.
- SRAM static random access memory
- EEPROM electrically erasable programmable read only memory
- EPROM erasable Programmable Read Only Memory
- PROM Programmable Read Only Memory
- ROM Read Only Memory
- Magnetic Memory Flash Memory
- Magnetic or Optical Disk Magnetic Disk
- Power supply assembly 606 provides power to the various components of device 600 .
- Power components 606 may include a power management system, one or more power supplies, and other components associated with generating, managing, and distributing power to device 600 .
- Multimedia component 608 includes screens that provide an output interface between the device 600 and the user.
- the screen may include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen may be implemented as a touch screen to receive input signals from a user.
- the touch panel includes one or more touch sensors to sense touch, swipe, and gestures on the touch panel. The touch sensor may not only sense the boundaries of a touch or swipe action, but also detect the duration and pressure associated with the touch or swipe action.
- the multimedia component 608 includes a front-facing camera and/or a rear-facing camera. When the device 600 is in an operation mode, such as a shooting mode or a video mode, the front camera and/or the rear camera may receive external multimedia data. Each of the front and rear cameras can be a fixed optical lens system or have focal length and optical zoom capability.
- Audio component 610 is configured to output and/or input audio signals.
- audio component 610 includes a microphone (MIC) that is configured to receive external audio signals when device 600 is in operating modes, such as call mode, recording mode, and voice recognition mode.
- the received audio signal may be further stored in memory 604 or transmitted via communication component 616 .
- audio component 610 also includes a speaker for outputting audio signals.
- the I/O interface 612 provides an interface between the processing component 602 and a peripheral interface module, which may be a keyboard, a click wheel, a button, or the like. These buttons may include, but are not limited to: home button, volume buttons, start button, and lock button.
- Sensor assembly 614 includes one or more sensors for providing status assessment of various aspects of device 600 .
- the sensor assembly 614 can detect the open/closed state of the device 600, the relative positioning of components, such as the display and keypad of the device 600, and the sensor assembly 614 can also detect a change in the position of the device 600 or a component of the device 600 , the presence or absence of user contact with the device 600 , the orientation or acceleration/deceleration of the device 600 and the temperature change of the device 600 .
- Sensor assembly 614 may include a proximity sensor configured to detect the presence of nearby objects in the absence of any physical contact.
- Sensor assembly 614 may also include a light sensor, such as a CMOS or CCD image sensor, for use in imaging applications.
- the sensor assembly 614 may also include an acceleration sensor, a gyroscope sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.
- Communication component 616 is configured to facilitate wired or wireless communication between apparatus 600 and other devices.
- Device 600 may access wireless networks based on communication standards, such as WiFi, 2G or 3G, or a combination thereof.
- the communication component 616 receives broadcast signals or broadcast related information from an external broadcast management system via a broadcast channel.
- the communication component 616 also includes a near field communication (NFC) module to facilitate short-range communication.
- NFC near field communication
- the NFC module may be implemented based on radio frequency identification (RFID) technology, infrared data association (IrDA) technology, ultra-wideband (UWB) technology, Bluetooth (BT) technology and other technologies.
- RFID radio frequency identification
- IrDA infrared data association
- UWB ultra-wideband
- Bluetooth Bluetooth
- apparatus 600 may be implemented by one or more application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable A gate array (FPGA), controller, microcontroller, microprocessor or other electronic component implementation is used to perform the above method.
- ASICs application specific integrated circuits
- DSPs digital signal processors
- DSPDs digital signal processing devices
- PLDs programmable logic devices
- FPGA field programmable A gate array
- controller microcontroller, microprocessor or other electronic component implementation is used to perform the above method.
- non-transitory computer-readable storage medium including instructions, such as a memory 604 including instructions, executable by the processor 620 of the apparatus 600 to perform the method described above.
- the non-transitory computer-readable storage medium may be ROM, random access memory (RAM), CD-ROM, magnetic tape, floppy disk, optical data storage device, and the like.
- the CG-DFI conforming to the composition method can reflect the HARQ-ACK information of all or part of the uplink HARQ processes in all uplink HARQ processes corresponding to the maximum number of uplink HARQ processes .
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Abstract
Description
Claims (30)
- 一种发送配置授权的下行反馈信息CG-DFI的方法,所述方法由网络设备执行,包括:确定CG-DFI的组成方式,所述组成方式对应的最大上行HARQ进程数量大于16;向所述用户设备发送符合所述组成方式的CG-DFI。
- 如权利要求1所述的方法,其中,所述确定CG-DFI的组成方式,包括:向用户设备发送无线链路层信令,所述无线链路层信令包括第一指示信息,所述第一指示信息用于指示CG-DFI的组成方式。
- 如权利要求1所述的方法,其中,所述确定CG-DFI的组成方式包括:确定协议约定的CG-DFI的组成方式。
- 如权利要求1所述的方法,其中,所述组成方式对应于第一方式,所述第一方式中所述CG-DFI包含的混合自动重传请求反馈HARQ-ACK信息个数等于所述最大上行HARQ进程数量。
- 如权利要求1所述的方法,其中,所述组成方式对应于第二方式,所述第二方式中所述CG-DFI包含的混合自动重传请求反馈HARQ-ACK信息个数大于所述最大上行HARQ进程数量。
- 如权利要求1所述的方法,其中,所述组成方式对应于第三方式,所述第三方式中所述CG-DFI包含的混合自动重传请求反馈HARQ-ACK信息个数小于所述最大上行HARQ进程数量,所述CG-DFI包含的每个混合自动重传请求反馈HARQ-ACK信息对应于一个逻辑值,所述逻辑值对应于一个以上的上行HARQ进程的HARQ-ACK信息的逻辑运算的结果。
- 如权利要求1所述的方法,其中,所述组成方式对应于第四方式,所述第四方式中所述CG-DFI包含的混合自动重传请求反馈HARQ-ACK信息个数小于所述最大上行HARQ进程数量,所述CG-DFI包含的每个混合自动重传请求反馈HARQ-ACK信息对应于一个逻辑值,每个逻辑值对应于N个上行HARQ进程的HARQ-ACK信息的逻辑运算的结果,所述N是所述最大上行HARQ进程数量与16的比值,所述N是大于0的整数。
- 如权利要求6或7所述的方法,其中,所述逻辑运算为逻辑与。
- 如权利要求1所述的方法,其中,所述组成方式对应于第五方式,所述第五方式中所述CG-DFI包含的所有HARQ-ACK信 息对应于所述最大上行HARQ进程数量的所有上行HARQ进程中的部分上行HARQ进程,所述部分上行HARQ进程是标识连续的上行HARQ进程。
- 如权利要求9所述的方法,其中,所述第五方式中所述CG-DFI包含信息字段,所述信息字段用于指示所述CG-DFI包含的所有HARQ-ACK信息对应的上行HARQ进程的标识中最小的标识。
- 如权利要求9所述的方法,其中,所述方法包括:向用户设备发送无线链路层信令,所述无线链路层信令包括第二指示信息,所述第二指示信息用于指示所述CG-DFI中不包括信息字段,所述信息字段用于指示所述CG-DFI包含的所有HARQ-ACK信息对应的上行HARQ进程的标识中最小的标识;所述CG-DFI包含的所有HARQ-ACK信息对应于所述最大上行HARQ进程数量的所有上行HARQ进程中从标识最小的上行HARQ进程开始的连续的上行HARQ进程。
- 如权利要求9或10所述的方法,其中,向用户设备发送无线链路层信令,所述无线链路层信令包括所述CG-DFI包含的所有HARQ-ACK信息对应的上行HARQ进程的进程数。
- 一种接收配置授权的下行反馈信息CG-DFI的方法,所述方法由用户设备执行,包括:从网络设备接收符合组成方式的CG-DFI,所述组成方式对应的最大上行HARQ进程数量大于16。
- 如权利要求13所述的方法,其中,所述方法包括:从所述网络设备接收无线链路层信令,所述无线链路层信令包括第一指示信息,所述第一指示信息用于指示CG-DFI的所述组成方式。
- 如权利要求13所述的方法,其中,所述组成方式是协议约定的CG-DFI的组成方式。
- 如权利要求13所述的方法,其中,所述组成方式对应于第一方式,所述第一方式中所述CG-DFI包含的混合自动重传请求反馈HARQ-ACK信息个数等于所述最大上行HARQ进程数量。
- 如权利要求13所述的方法,其中,所述组成方式对应于第二方式,所述第二方式中所述CG-DFI包含的混合自动重传请求反馈HARQ-ACK信息个数大于所述最大上行HARQ进程数量。
- 如权利要求13所述的方法,其中,所述组成方式对应于第三方式,所述第三方式中所述CG-DFI包含的混合自动重传请求反馈HARQ-ACK信息个数小于所述最大上行HARQ进程数量,所述CG-DFI包含的每个混合自 动重传请求反馈HARQ-ACK信息对应于一个逻辑值,所述逻辑值对应于一个以上的上行HARQ进程的HARQ-ACK信息的逻辑运算的结果。
- 如权利要求13所述的方法,其中,所述组成方式对应于第四方式,所述第四方式中所述CG-DFI包含的混合自动重传请求反馈HARQ-ACK信息个数小于所述最大上行HARQ进程数量,所述CG-DFI包含的每个混合自动重传请求反馈HARQ-ACK信息对应于一个逻辑值,每个逻辑值对应于N个上行HARQ进程的HARQ-ACK信息的逻辑运算的结果,所述N是所述最大上行HARQ进程数量与16的比值,所述N是大于0的整数。
- 如权利要求18或19所述的方法,其中,所述逻辑运算为逻辑与。
- 如权利要求13所述的方法,其中,所述组成方式对应于第五方式,所述第五方式中所述CG-DFI包含的所有HARQ-ACK信息对应于所述最大上行HARQ进程数量的所有上行HARQ进程中的部分上行HARQ进程,所述部分上行HARQ进程是标识连续的上行HARQ进程。
- 如权利要求21所述的方法,其中,所述第五方式中所述CG-DFI包含信息字段,所述信息字段用于指示所述CG-DFI包含的所有HARQ-ACK信息对应的上行HARQ进程的标识中最小的标识。
- 如权利要求21所述的方法,其中,所述方法包括:从网络设备接收无线链路层信令,所述无线链路层信令包括第二指示信息,所述第二指示信息用于指示所述CG-DFI中不包括信息字段,所述信息字段用于指示所述CG-DFI包含的所有HARQ-ACK信息对应的上行HARQ进程的标识中最小的标识;所述CG-DFI包含的所有HARQ-ACK信息对应于所述最大上行HARQ进程数量的所有上行HARQ进程中从标识最小的上行HARQ进程开始的连续的上行HARQ进程。
- 如权利要求21或22所述的方法,其中,从网络设备接收无线链路层信令,所述无线链路层信令包括所述CG-DFI包含的所有HARQ-ACK信息对应的上行HARQ进程的进程数。
- 一种通信装置,包括:处理模块,用于确定CG-DFI的组成方式,所述组成方式对应的最大上行HARQ进程数量大于16;收发模块,用于向所述用户设备发送符合所述组成方式的CG-DFI。
- 一种通信装置,包括:收发模块,用于从网络设备接收符合组成方式的CG-DFI,所述组成方式对应的最大上行HARQ进程数量大于16。
- 一种通信装置,包括处理器以及存储器;所述存储器用于存储计算机程序;所述处理器用于执行所述计算机程序,以实现如权利要求1-12中任一项所述的方法。
- 一种通信装置,包括处理器以及存储器;所述存储器用于存储计算机程序;所述处理器用于执行所述计算机程序,以实现如权利要求13-24中任一项所述的方法。
- 一种计算机可读存储介质,所述计算机可读存储介质中存储有指令,当所述指令在计算机上被调用执行时,使得所述计算机执行如权利要求1-12中任一项所述的方法。
- 一种计算机可读存储介质,所述计算机可读存储介质中存储有指令,当所述指令在计算机上被调用执行时,使得所述计算机执行如权利要求13-24中任一项所述的方法。
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KR1020237039491A KR20230172559A (ko) | 2021-04-25 | 2021-04-25 | 설정 그랜트의 다운링크 피드백 정보를 전송하는 방법, 장치 및 매체 |
BR112023022124A BR112023022124A2 (pt) | 2021-04-25 | 2021-04-25 | Métodos para enviar e receber uma informação de retorno de enlace descendente com concessão configurada, dispositivo de comunicação, e, meio de armazenamento de memória |
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CN110535565A (zh) * | 2019-08-09 | 2019-12-03 | 中兴通讯股份有限公司 | 一种反馈信息的发送和接收方法、装置和存储介质 |
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