Beam application method and apparatus thereof

JP7686876B2Active Publication Date: 2025-06-02BEIJING XIAOMI MOBILE SOFTWARE CO LTD
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Patent Information

Application Number
JP2024507035
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-08-05
Publication Date
2025-06-02
Estimated Expiration
2041-08-05

AI Technical Summary

Technical Problem

Current methods for beam application in wireless communications, such as in LTE and 5G systems, lack effective means to ensure that the beams of network devices and terminal devices match, leading to variations that affect transmission performance.

Method used

A method and apparatus for determining beam application times based on Downlink Control Information (DCI) to align the beams of network and terminal devices, using techniques such as Hybrid Automatic Repeat Request (HARQ) acknowledgment feedback and subcarrier spacing to synchronize beam application times.

Benefits of technology

Ensures that the beams of network and terminal devices are aligned, thereby improving transmission performance by ensuring consistent and synchronized beam application.

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Abstract

[Solution] The embodiment of the present application discloses a beam application method and an apparatus thereof, which can be applied to systems such as a long term evolution (LTE) system, a fifth generation (5G) mobile communication system, and a 5G new radio (NR) system. The method includes the steps of receiving downlink control information (DCI) from a network device, the DCI including an integrated transmission configuration indication state, and determining a beam application time of an uplink transmission and / or a beam application time of a downlink transmission corresponding to the integrated transmission configuration indication state. By executing the embodiment of the present application, the beam application time of the corresponding uplink transmission and / or the beam application time of the downlink transmission can be determined based on the downlink control information (DCI) to perform beam application. This ensures that the beams of the network device and the terminal device are consistent and transmission performance is improved.
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Description

[Technical field]

[0001] The present application relates to the field of communication technology, and in particular to a beam application method and apparatus thereof. [Background technology]

[0002] In wireless communication, beams are typically indicated for application on a physical downlink control channel (PDCCH), a physical downlink share channel (PDSCH), a physical uplink control channel (PUCCH), a physical uplink share channel (PUSCH) and / or a reference signal (RS). PDCCH and PUCCH may activate or apply one beam using a medium access control (MAC) control element (CE). Meanwhile, PDSCH and PUSCH may indicate or apply their respective beams based on DCI signaling. This method may cause beam dispersion in network devices and terminal devices.

[0003] Currently, there is a lack of effective means for beam application. Summary of the Invention [Problem to be solved by the invention]

[0004] The embodiments of the present application provide a beam application method and device thereof, which can be applied to fields such as long term evolution (LTE) systems, 5th generation (5G) mobile communication systems, and 5G new radio (NR) systems, and perform beam application by determining a beam application time of a corresponding uplink transmission and / or a beam application time of a corresponding downlink transmission based on the downlink control information (DCI), thereby ensuring that the beams of the network device and the terminal device are consistent and transmission performance is improved. [Means for solving the problem]

[0005] In a first aspect, an embodiment of the present application provides a beam application method applied to a terminal device, the method including a step of receiving downlink control information (DCI) from a network device, the DCI including an integrated transmission configuration indication state, and a step of determining a beam application time of uplink transmission and / or a beam application time of downlink transmission corresponding to the integrated transmission configuration indication state.

[0006] Alternatively, the DCI may or may not include downlink allocation indication information.

[0007] Alternatively, the beam application time of the uplink transmission and / or the beam application time of the downlink transmission is a number of symbols after the transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback for the DCI, and the beam application time of the uplink transmission and / or the beam application time of the downlink transmission is an application time of the integrated transmission setting indication state.

[0008] Alternatively, the plurality of symbols is a first number of symbols, the first number of symbols being determined based on a subcarrier spacing of the downlink transmission, and the beam application time being the beam application time of the downlink transmission, and / or the plurality of symbols is a second number of symbols, the second number of symbols being determined based on a subcarrier spacing of the uplink transmission, and the beam application time being the beam application time of the uplink transmission.

[0009] Alternatively, the duration of the plurality of symbols is a first time value, or the plurality of symbols is a third number of symbols, the third number of symbols being determined based on a subcarrier spacing of the uplink transmission or the downlink transmission, and the beam application time is a beam application time of the uplink transmission and the downlink transmission.

[0010] Alternatively, the DCI and the uplink transmission and / or the downlink transmission correspond to component carriers of the same carrier, or the DCI and the uplink transmission and / or the downlink transmission correspond to component carriers of different carriers, and a subcarrier spacing corresponding to the DCI is greater than or equal to the subcarrier spacing of the uplink transmission and / or the subcarrier spacing of the downlink transmission.

[0011] Alternatively, the plurality of symbols includes a fourth number of symbols and a fifth number of symbols, the fourth number of symbols being determined based on a subcarrier spacing of the downlink transmission, the fifth number of symbols being determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the downlink transmission, and the beam application time is the beam application time of the downlink transmission, and / or the plurality of symbols includes a sixth number of symbols and a seventh number of symbols, the sixth number of symbols being determined based on a subcarrier spacing of the uplink transmission, the seventh number of symbols being determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the uplink transmission, and the beam application time is the beam application time of the uplink transmission.

[0012] Alternatively, the time length of the plurality of symbols is a second time value, the plurality of symbols includes an eighth number of symbols and a ninth number of symbols, the eighth number of symbols is determined based on a subcarrier spacing of the uplink transmission, the ninth number of symbols is determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the uplink transmission, or the eighth number of symbols is determined based on a subcarrier spacing of the downlink transmission, the ninth number of symbols is determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the downlink transmission, and the beam application time is a beam application time of the uplink transmission and the downlink transmission.

[0013] Alternatively, the DCI and the uplink transmission and / or the downlink transmission correspond to component carriers of different carriers, and the subcarrier spacing corresponding to the DCI is smaller than the subcarrier spacing of the uplink transmission and / or the subcarrier spacing of the downlink transmission.

[0014] Optionally, the downlink transmission includes a downlink channel and / or a downlink reference signal, the downlink channel including at least one of a physical downlink control channel (PDCCH), a physical downlink shared channel (PDSCH), and a physical broadcast channel (PBCH), and the downlink reference signal including at least one of a synchronization signal block (SSB), a channel state information reference signal (CSI-RS), a demodulation reference signal (DMRS), and a positioning reference signal (PRS).

[0015] Optionally, the uplink transmission includes an uplink channel and / or an uplink reference signal, the uplink channel including at least one of a physical uplink shared channel (PUSCH), a physical uplink control channel (PUCCH), and a physical random access channel (PRACH), and the uplink reference signal including at least one of a sounding reference signal (SRS) and a DMRS.

[0016] Optionally, the DCI and the uplink transmission and / or the downlink transmission corresponding to different component carriers includes the different component carriers corresponding to different serving cells, or the different component carriers corresponding to a serving cell and a non-serving cell.

[0017] According to the downlink control information (DCI), a beam application time of a corresponding uplink transmission and / or a beam application time of a corresponding downlink transmission is determined, and a beam application is performed, thereby ensuring that the beams of the network device and the terminal device are consistent and the transmission performance is improved.

[0018] In a second aspect, an embodiment of the present application provides another beam application method applied to a network device, the method including a step of transmitting downlink control information (DCI) to a terminal device, the DCI including an integrated transmission setting indication state, and a step of applying a beam based on the downlink control information.

[0019] In a third aspect, an embodiment of the present application provides a communication device having some or all of the functions of implementing the terminal device in the method according to the first aspect, for example, the functions of the communication device may include some or all of the functions in the embodiments of the present application, or may include a function of executing any of the embodiments of the present application alone. The functions may be implemented by hardware, or may be implemented by executing corresponding software by hardware. The hardware or software includes one or more units or modules corresponding to the above functions.

[0020] In one implementation, the configuration of the communication device may include a transceiver module and a processing module, the processing module being configured to support the communication device to perform the corresponding functions of the above method. The transceiver module is used to support communication between the communication device and other devices. The communication device may further include a storage module for coupling to the transceiver module and the processing module, the storage module storing computer programs and data required for the communication device.

[0021] As examples, the processing module may be a processor, the transceiver module may be a transceiver or a communication interface, and the storage module may be a memory.

[0022] In one embodiment, the communication device includes a receiving module for receiving downlink control information (DCI) from a network device, the DCI including an integrated transmission setting instruction state, and a determination module for determining a beam application time of uplink transmission and / or a beam application time of downlink transmission corresponding to the integrated transmission setting instruction state.

[0023] In a fourth aspect, an embodiment of the present application provides another communication device having some or all of the functions of implementing the network device in the example of the method according to the second aspect. For example, the functions of the communication device may include some or all of the functions in the embodiments of the present application, or may include a function of executing any of the embodiments of the present application alone. The functions may be implemented by hardware, or may be implemented by executing corresponding software by hardware. The hardware or software includes one or more units or modules corresponding to the above functions.

[0024] In one implementation, the configuration of the communication device may include a transceiver module and a processing module, the processing module being configured to support the communication device to perform corresponding functions in the above method. The transceiver module is used to support communication between the communication device and other devices. The communication device may further include a storage module for coupling to the transceiver module and the processing module, the storage module storing computer programs and data required for the communication device.

[0025] As examples, the processing module may be a processor, the transceiver module may be a transceiver or a communication interface, and the storage module may be a memory.

[0026] In one embodiment, the communication device includes a transmitting module for transmitting downlink control information (DCI) to a terminal device, the DCI including an integrated transmission setting instruction state, and an application module for applying a beam based on the downlink control information.

[0027] In a fifth aspect, an embodiment of the present application provides a communication device including a processor, the communication device performing the method according to the first aspect above when the processor invokes a computer program in a memory.

[0028] In a sixth aspect, an embodiment of the present application provides a communication device including a processor, the communication device performing the method according to the second aspect above when the processor invokes a computer program in a memory.

[0029] In a seventh aspect, an embodiment of the present application provides a communications device including a processor and a memory, the memory storing a computer program, the processor executing the computer program stored in the memory to cause the communications device to perform the method of the first aspect above.

[0030] In an eighth aspect, an embodiment of the present application provides a communications device including a processor and a memory, the memory storing a computer program, the processor executing the computer program stored in the memory to cause the communications device to perform the method of the second aspect.

[0031] In a ninth aspect, an embodiment of the present application provides a communications device including a processor and an interface circuit, the interface circuit being used to receive and transmit code instructions to the processor, the processor being used to execute the code instructions, thereby causing the communications device to perform the method of the first aspect.

[0032] In a tenth aspect, an embodiment of the present application provides a communication device including a processor and an interface circuit, the interface circuit being used to receive and transmit code instructions to the processor, the processor being used to execute the code instructions, thereby causing the communication device to perform the method of the second aspect.

[0033] In an eleventh aspect, an embodiment of the present application provides a beam application system including a communication device according to the third aspect and a communication device according to the fourth aspect, or including a communication device according to the fifth aspect and a communication device according to the sixth aspect, or including a communication device according to the seventh aspect and a communication device according to the eighth aspect, or including a communication device according to the ninth aspect and a communication device according to the tenth aspect.

[0034] In a twelfth aspect, an embodiment of the present invention provides a computer readable storage medium for storing instructions for use by a terminal device as defined above, the instructions, when executed, causing the terminal device to perform a method as defined in the first aspect above.

[0035] In a thirteenth aspect, an embodiment of the present invention provides a readable storage medium for storing instructions for use by the network device, the instructions, when executed, causing the network device to perform the method according to the second aspect.

[0036] In a fourteenth aspect, the present application further provides a computer program product comprising a computer program which, when executed on a computer, causes the computer to perform the method according to the first aspect above.

[0037] In a fifteenth aspect, the present application further provides a computer program product comprising a computer program which, when executed on a computer, causes the computer to perform the method according to the second aspect above.

[0038] In a sixteenth aspect, the present application provides a chip system including at least one processor and an interface for supporting a terminal device to realize the functionality according to the first aspect, for example determining or processing at least one of the data and information according to the method. In a possible design, the chip system further includes a memory for storing computer programs and data required by the terminal device. The chip system may be comprised of chips or may include other discrete elements.

[0039] In a seventeenth aspect, the present application provides a chip system including at least one processor and an interface for supporting a network device to realize the functionality according to the second aspect, such as determining or processing at least one of the data and information according to the method. In a possible design, the chip system further includes a memory for storing computer programs and data required for the network device. The chip system may be comprised of chips or may include other discrete elements.

[0040] In an eighteenth aspect, the present application provides a computer program which, when executed on a computer, causes the computer to carry out the method according to the first aspect above.

[0041] In a nineteenth aspect, the present application provides a computer program which, when run on a computer, causes the computer to carry out the method according to the second aspect above. [Brief description of the drawings]

[0042] In order to more clearly describe the technical solutions in the embodiments or background art of the present application, the drawings which need to be used in the embodiments or background art of the present application are described below. [Figure 1] 1 is a schematic diagram of the architecture of a communication system provided by an embodiment of the present application; [Diagram 2]1 is a schematic flow chart of a beam application method provided by an embodiment of the present application. [Diagram 3] 1 is a schematic flow chart of a beam application method provided by an embodiment of the present application. [Figure 4] 1 is a schematic configuration diagram of a communication device provided by an embodiment of the present application; [Diagram 5] 1 is a schematic configuration diagram of a communication device provided by an embodiment of the present application; [Figure 6] FIG. 1 is a schematic diagram of a chip provided by an embodiment of the present application. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0043] To facilitate understanding, we will first explain the terminology used in this application.

[0044] 1. Downlink control information (DCI) DCI is carried by a physical downlink control channel (PDCCH), and DCI may include uplink and downlink resource allocation, hybrid automatic repeat request (HARQ) information, power control, etc. PDCCH is a physical channel for carrying the downlink control information.

[0045] 2. Beam instructions In Rel-16, it is possible to indicate beams corresponding to a physical downlink control channel (PDCCH), a physical downlink shared channel (PDSCH), a physical uplink control channel (PUCCH), a physical uplink shared channel (PUSCH), and / or a reference signal (RS), etc.

[0046] The reference signal RS includes a channel state information reference signal (CSI-RS), a sounding reference signal (SRS), a positioning reference signal (PRS), a tracking reference signal (TRS), etc., the CSI-RS includes a CSI-RS for channel state information measurement, a CSI-RS for beam measurement, or a CSI-RS for channel loss estimation, and the SRS includes an SRS for channel state information measurement based on a codebook or a non-codebook, an SRS for beam measurement, or an SRS for positioning measurement.

[0047] The beams described herein are also referred to as transmission configuration indicator (TCI) states. The TCI states include Quasi Co-location (QCL) Type D information. The beam application times described herein are also referred to as application times of the TCI states.

[0048] In order to better understand the beam application method disclosed in the embodiment of the present application, the following first describes a communication system applied in the embodiment of the present application.

[0049] Referring to Fig. 1, Fig. 1 is a schematic diagram of the architecture of a communication system provided by an embodiment of the present application. The communication system can include, but is not limited to, one network device and one terminal device, and the number and form of devices shown in Fig. 1 are used for illustration only and do not constitute limitations of the embodiment of the present application, and in actual application, the communication system may include two or more network devices and two or more terminal devices. Take as an example that the communication system shown in Fig. 1 includes one network device 101 and one terminal device 102.

[0050] It should be noted that the technical solutions of the embodiments of the present application can be applied to various communication systems, such as a long term evolution (LTE) system, a 5th generation (5G) mobile communication system, a 5G new radio (NR) system, or other future new mobile communication systems. It should be noted that the sidelink in the embodiments of the present application can also be referred to as a sidelink or a direct communication link.

[0051] The network device 101 in the embodiment of the present application is a network entity for transmitting or receiving a signal. For example, the network device 101 may be an evolved base station (eNB), a transmission reception point (TRP), a next generation base station (gNB) in an NR system, a base station in other future mobile communication systems, or an access node in a wireless fidelity (WiFi) system. The embodiment of the present application does not limit the specific technology and specific device form adopted by the network device. The network device provided by the embodiment of the present application may be composed of a central unit (CU) and a distributed unit (DU), where the CU is also called a control unit, and a CU-DU structure is adopted to separate the protocol layer of a network device, for example, a base station, to centrally control the functions of some protocol layers in the CU, and to distribute the functions of some or all of the remaining protocol layers to the DU, and the DU can be centrally controlled by the CU.

[0052] The terminal device 102 in the embodiment of the present application is a user-side entity for receiving or transmitting signals, such as a mobile phone. The terminal device may also be called a terminal, user equipment (UE), mobile station (MS), mobile terminal (MT), etc. The terminal device may be an automobile with a communication function, a smart car, a mobile phone, a wearable device, a tablet (Pad), a personal computer with a wireless transmission and reception function, a virtual reality (VR) terminal device, an augmented reality (AR) terminal device, a wireless terminal device for industrial control, a wireless terminal device for self-driving, a wireless terminal device for remote medical surgery, a wireless terminal device for smart grid, a wireless terminal device for transportation safety, a wireless terminal device for smart city, a wireless terminal device for smart home, etc. The embodiment of the present application does not limit the specific technology and the specific device form adopted by the terminal device.

[0053] In Rel-16, beams such as PDCCH, PDSCH, PUSCH, PUCCH and / or reference signals are individually indicated. The reference signals include CSI-RS, SRS, PRS, TRS, etc., where CSI-RS includes CSI-RS for channel state information measurement, CSI-RS for beam measurement or CSI-RS for pathloss estimation, SRS includes SRS for channel state information measurement based on codebook or non-codebook, SRS for beam measurement or SRS for positioning measurement, and PDCCH and PUCCH activate one beam using a medium access control (MAC) control element (CE). Meanwhile, PDSCH and PUSCH indicate their respective beams according to DCI signaling. Currently, in order to reduce signaling overhead, a method of using a common beam is possible, and the common beam may be separately indicated by a separate uplink transmission setting indication state (separate UL TCI state) for uplink transmission and a separate downlink transmission setting indication state (separate DL TCI state) for downlink transmission, or jointly indicated by a joint transmission setting indication state (joint TCI state) for uplink and downlink. That is, when a base station indicates a common beam for downlink, this common beam can be used for the PDSCH and some / all PDCCHs of a terminal device, such as a user equipment (UE) dedicated PDCCH, and when a base station indicates a common beam for uplink, this common beam can be used for the PUSCH and some / all PUCCHs of the terminal.

[0054] For a unified TCI state indicated by a DCI, it is currently proposed that the unified TCI state indicated by this DCI can be used after time T after sending a Hybrid Automatic Repeat Request (HARQ) acknowledgement character (ACK) feedback for this DCI, i.e., the beam application time is after time T after sending a HARQ ACK feedback. However, currently, there is a lack of a method for determining the beam application time during a transcarrier indication, so it is not possible to ensure that the beams of the network device and the terminal device are consistent during a transcarrier indication.

[0055] It should be noted that the communication system described in the embodiments of the present application is intended to more clearly explain the technical solutions of the embodiments of the present application, and does not constitute a limitation on the technical solutions provided by the embodiments of the present application. Those skilled in the art can appreciate that as system architecture evolves and new service scenarios emerge, the technical solutions provided by the embodiments of the present application can be similarly applied to similar technical issues.

[0056] The beam application method and apparatus provided by the present application will be described in detail below in conjunction with the drawings.

[0057] Referring to Fig. 2, Fig. 2 is a schematic flow chart of a beam application method provided by an embodiment of the present application. The method is applied to a terminal device. As shown in Fig. 2, the method can include, but is not limited to, the following steps 201-202:

[0058] In step S201, downlink control information (DCI) is received from a network device, where the DCI includes an integrated transmission configuration indication state.

[0059] In the embodiment of the present disclosure, a beam is instructed according to a unified TCI state or a common TCI state in the downlink control information (DCI), and the beam may be a common beam. After receiving the unified TCI state or the common TCI state in the DCI, the terminal device can apply the beam.

[0060] In step S202, a beam application time of uplink transmission and / or a beam application time of downlink transmission corresponding to the integrated transmission setting indication state is determined.

[0061] In an embodiment of the present disclosure, the beam application time is a time point at which application of the beam is started, and in order to ensure communication quality, it is necessary to match the beam application time between the network device and the terminal device. After receiving the integrated transmission setting instruction state in the DCI, it is possible to determine the beam application time of the uplink transmission and / or the beam application time of the downlink transmission corresponding to the integrated transmission setting instruction state. Alternatively, the beam application time is a time point at which application of the beam is started, and in order to ensure communication quality, it is necessary to match the beam application time between the network device and the terminal device. After receiving the integrated transmission setting instruction state in the DCI, it is possible to determine the beam application time of the downlink transmission corresponding to the integrated transmission setting instruction state.

[0062] According to an embodiment of the present application, a beam application time of a corresponding uplink transmission and / or a beam application time of a corresponding downlink transmission are determined based on the downlink control information (DCI) to realize beam application, thereby ensuring that the beams of the network device and the terminal device are consistent and the transmission performance is improved.

[0063] Alternatively, the DCI may or may not include downlink allocation indication information.

[0064] The DCI may include the downlink assignment indication DL assignment for indicating a time-frequency resource of the PDSCH, or may not include the downlink assignment indication DL assignment.

[0065] Alternatively, the beam application time of the uplink transmission and / or the beam application time of the downlink transmission is several symbols after a transmission time of a Hybrid Automatic Repeat Request (HARQ) Acknowledgement Character (ACK) feedback for the DCI. The beam application time of the uplink transmission and / or the beam application time of the downlink transmission is an application time of the joint transmission configuration indication state.

[0066] In the embodiment of the present disclosure, Hybrid Automatic Repeat Request (HARQ) is a technology formed by combining forward error correction (FEC) and Automatic Repeat Request (ARQ). The basic principle is as follows: use FEC technology at the receiving side to correct the correctable part of all errors, perform error detection to determine the packets that cannot be corrected, discard the packets that cannot be corrected, and request the transmitting side to retransmit the same packets. In Hybrid Automatic Repeat Request (HARQ), the acknowledgement character (ACK) is feedback information sent by the receiving side to the transmitting side. The terminal device is the receiving side, and the time after a number of symbols after the time when the terminal device sends the HARQ ACK to the network device is the beam application time.

[0067] According to an embodiment of the present application, a beam application time of a corresponding uplink transmission and / or a beam application time of a corresponding downlink transmission is determined based on the transmission time of the HARQ ACK feedback for the downlink control information (DCI), thereby ensuring that the beams of the network device and the terminal device are consistent and the transmission performance is improved.

[0068] Alternatively, the plurality of symbols is a first number of symbols, the first number of symbols being determined based on a subcarrier spacing of the downlink transmission, and the beam application time being the beam application time of the downlink transmission, and / or the plurality of symbols is a second number of symbols, the second number of symbols being determined based on a subcarrier spacing of the uplink transmission, and the beam application time being the beam application time of the uplink transmission.

[0069] In an embodiment of the present disclosure, the beam application time is after a first number of symbols after a transmission time of a Hybrid Automatic Repeat Request (HARQ) Acknowledgement Character (ACK) feedback, the first number of symbols being determined based on a downlink sub-carrier space (SCS), the symbols being time symbols, and the beam application time being a beam application time of the downlink transmission. And / or the beam application time is after a second number of symbols after a transmission time of a Hybrid Automatic Repeat Request (HARQ) Acknowledgement Character (ACK) feedback, the second number of symbols being determined based on a sub-carrier space (SCS) of an uplink transmission, the symbols being time symbols, and the beam application time being a beam application time of the uplink transmission.

[0070] Optionally, the first number of symbols is determined based on the subcarrier interval of downlink transmission, which refers to the time length of each symbol being determined based on the subcarrier interval of downlink transmission. For example, when the subcarrier interval of downlink transmission is 15KHz, the time length of each slot is 1ms, and when one slot includes N symbols, the time length of each symbol is 1 / 14ms, where N is 12 or 14; for example, when the subcarrier interval of downlink transmission is 30KHz, the time length of each slot is 0.5ms, and when one slot includes N symbols, the time length of each symbol is 1 / 28ms, where N is 12 or 14.

[0071] Optionally, the second number of symbols is determined based on the subcarrier interval of uplink transmission, which refers to the time length of each symbol being determined based on the subcarrier interval of uplink transmission. For example, when the subcarrier interval of uplink transmission is 15KHz, the time length of each slot is 1ms, and when one slot includes N symbols, the time length of each symbol is 1 / 14ms, where N is 12 or 14; for example, when the subcarrier interval of uplink transmission is 30KHz, the time length of each slot is 0.5ms, and when one slot includes N symbols, the time length of each symbol is 1 / 28ms, where N is 12 or 14.

[0072] Optionally, the first number value and / or the second number value are set by the network device. The first number value and the second number value may be the same or different.

[0073] According to an embodiment of the present application, it is realized to determine the first number of symbols and / or the second number of symbols according to the subcarrier interval, and determine a beam application time of a corresponding uplink transmission and / or a beam application time of a corresponding downlink transmission according to a transmission time of the HARQ ACK feedback, thereby ensuring that the beams of the network device and the terminal device are consistent and improving the transmission performance.

[0074] Alternatively, the time length of the plurality of symbols is a first time value, or the plurality of symbols is a third number of symbols, the third number of symbols being determined based on a subcarrier spacing of the uplink transmission or the downlink transmission, and the beam application time is a beam application time of the uplink transmission and the downlink transmission.

[0075] In an embodiment of the present disclosure, the time length of the plurality of symbols may be the first time value, and the first time value is not the number of symbols but a time absolute value. That is, the beam application time is the first time value after the transmission time of a Hybrid Automatic Repeat Request (HARQ) Acknowledgement Character (ACK) feedback. The specific value of the first time value may be adjusted by an implementer based on the actual situation of implementation, and the present disclosure does not limit the specific value of the first time value. In one possible embodiment, the first time value is set by a network device. The beam application time is the beam application time of the uplink transmission and the downlink transmission. That is, no matter what the subcarrier interval of the uplink transmission and the downlink transmission is, both the uplink transmission and the downlink transmission adopt the TCI state indicated by the DCI after the first time value. Or,

[0076] The beam application time is after a third number of symbols after a transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback. The third number of symbols is determined based on a subcarrier spacing (SCS) of the uplink transmission or the downlink transmission, the symbols are time symbols, and the beam application time is a beam application time of the uplink transmission and the downlink transmission. That is, the subcarrier spacing of one of the uplink transmission and the downlink transmission is used to determine the time length occupied by the third number of symbols. In this case, if the subcarrier spacing of the uplink transmission and the downlink transmission is different, the uplink transmission and the downlink transmission also adopt the TCI state indicated by the DCI after the same time.

[0077] Optionally, the value of the third number is set by a network device. The third number of symbols is determined based on a subcarrier spacing (SCS) of the uplink transmission or the downlink transmission, referring to a time length occupied by each symbol of the third number of symbols being determined by the subcarrier spacing (SCS) of the uplink transmission or the downlink transmission.

[0078] According to an embodiment of the present application, the third number of symbols is determined according to a subcarrier interval of the uplink transmission or the downlink transmission, a beam application time of the corresponding uplink transmission and / or a beam application time of the corresponding downlink transmission is determined according to a transmission time of the HARQ ACK feedback, or a beam application time of the corresponding uplink transmission and / or a beam application time of the corresponding downlink transmission is determined according to the first time value and the transmission time of the HARQ ACK feedback, thereby ensuring that the beams of the network device and the terminal device are consistent and improving transmission performance.

[0079] Alternatively, the DCI and the uplink transmission and / or the downlink transmission correspond to component carriers of the same carrier, i.e., the DCI indicates the TCI state of the uplink transmission and / or the downlink transmission on the same carrier.

[0080] Alternatively, the DCI and the uplink transmission and / or the downlink transmission correspond to the component carriers of different carriers, and a subcarrier spacing corresponding to the DCI is equal to or greater than a subcarrier spacing of the uplink transmission and / or a subcarrier spacing of the downlink transmission, i.e., the DCI indicates a TCI state of the uplink transmission and / or the downlink transmission on the different carriers.

[0081] Alternatively, the plurality of symbols includes a fourth number of symbols and a fifth number of symbols, the fourth number of symbols being determined based on a subcarrier spacing of the downlink transmission, the fifth number of symbols being determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the downlink transmission, and the beam application time is the beam application time of the downlink transmission, and / or the plurality of symbols includes a sixth number of symbols and a seventh number of symbols, the sixth number of symbols being determined based on a subcarrier spacing of the uplink transmission, the seventh number of symbols being determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the uplink transmission, and the beam application time is the beam application time of the uplink transmission.

[0082] In an embodiment of the present disclosure, since the DCI and the downlink transmission correspond to component carriers of different carriers, and the subcarrier spacing corresponding to the DCI is smaller than the subcarrier spacing of the downlink transmission, the terminal device cannot process data in a timely manner, and an additional delay, i.e., an additional symbol, is required. Therefore, after determining the fourth number of symbols based on the subcarrier spacing of the downlink transmission, an additional number of symbols is determined. The additional number of symbols is directly proportional to the subcarrier spacing of the downlink transmission and inversely proportional to the subcarrier spacing of the DCI. The additional number of symbols is the fifth number of symbols. The plurality of symbols includes a fourth number of symbols and a fifth number of symbols, and the beam application time is after the sum of the fourth number of symbols and the fifth number of symbols after a transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback. The symbols are time symbols, and the beam application time is the beam application time of the downlink transmission. And / or, the DCI and the uplink transmission correspond to component carriers of different carriers, and the subcarrier spacing corresponding to the DCI is smaller than the subcarrier spacing of the downlink transmission, so that the terminal device cannot process data in a timely manner and an additional delay, i.e., an additional symbol, is required. Therefore, after determining the sixth number of symbols based on the subcarrier spacing of the uplink transmission, an additional number of symbols is determined. The additional number of symbols is directly proportional to the subcarrier spacing of the uplink transmission and inversely proportional to the subcarrier spacing of the DCI. The additional number of symbols is the seventh number of symbols. The beam application time is after the sum of the sixth number of symbols and the seventh number of symbols after the transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback. The symbols are time symbols, and the beam application time is the beam application time of the uplink transmission.

[0083] Optionally, the fourth number of symbols is determined based on the subcarrier interval of downlink transmission, which refers to the time length of each symbol being determined based on the subcarrier interval of downlink transmission. For example, when the subcarrier interval of downlink transmission is 15KHz, the time length of each slot is 1ms, when one slot includes N symbols, the time length of each symbol is 1 / 14ms, where N is 12 or 14; for example, when the subcarrier interval of downlink transmission is 30KHz, the time length of each slot is 0.5ms, when one slot includes N symbols, the time length of each symbol is 1 / 28ms, where N is 12 or 14.

[0084] Optionally, the fifth number of symbols is determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the downlink transmission,

[0085]

number

[0086] d1 is the number of symbols, and 2 μDL is the subcarrier spacing of the downlink transmission, and μDCI is the subcarrier spacing of the DCI. After the value of the fifth number is determined, the time length occupied by each symbol of the fifth number of symbols is the same as the time length occupied by each symbol of the fourth number of symbols, and is determined based on the subcarrier spacing of the downlink transmission.

[0087] Optionally, the sixth number of symbols is determined based on the subcarrier interval of uplink transmission, which refers to the time length of each symbol being determined based on the subcarrier interval of uplink transmission. For example, when the subcarrier interval of uplink transmission is 15KHz, the time length of each slot is 1ms, when one slot includes N symbols, the time length of each symbol is 1 / 14ms, where N is 12 or 14; for example, when the subcarrier interval of uplink transmission is 30KHz, the time length of each slot is 0.5ms, when one slot includes N symbols, the time length of each symbol is 1 / 28ms, where N is 12 or 14.

[0088] Optionally, the seventh number of symbols is determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the uplink transmission, and the value of the seventh number is

[0089]

number

[0090] d2 is the number of symbols, and 2 μUL is the subcarrier spacing of the uplink transmission, and μDCI is the subcarrier spacing of the DCI. After the value of the seventh number is determined, the time length occupied by each symbol of the seventh number of symbols is the same as the time length occupied by each symbol of the sixth number of symbols, and is determined based on the subcarrier spacing of the uplink transmission.

[0091] Optionally, the value of the fourth number and / or the value of the sixth number are set by the network device. The value of the fourth number and the value of the sixth number may be the same or different.

[0092] Alternatively, the values ​​of d1 and / or d2 are set by a network device or determined by a terminal based on the subcarrier spacing of uplink transmission and / or downlink transmission and a mapping table of subcarrier spacing and d1 and / or d2.

[0093] According to an embodiment of the present application, the fourth number and / or the fifth number and / or the sixth number and / or the seventh number of symbols are determined based on the subcarrier spacing of the uplink and / or downlink transmission and the subcarrier spacing of the DCI, and the beam application time of the corresponding uplink transmission and / or the beam application time of the downlink transmission are determined based on the transmission time of the HARQ ACK feedback, thereby ensuring that the beams of the network device and the terminal device are consistent and the transmission performance is improved.

[0094] Alternatively, the time length of the plurality of symbols is a second time value, or the plurality of symbols includes an eighth number of symbols and a ninth number of symbols, the eighth number of symbols being determined based on the subcarrier spacing of the uplink transmission, and the ninth number of symbols being determined based on the subcarrier spacing of the DCI and the subcarrier spacing of the uplink transmission, or the eighth number of symbols being determined based on the subcarrier spacing of the downlink transmission and the ninth number of symbols being determined based on the subcarrier spacing of the DCI and the subcarrier spacing of the downlink transmission, and the beam application time is the beam application time of the uplink transmission and the downlink transmission.

[0095] In an embodiment of the present disclosure, the DCI and the uplink transmission and / or downlink transmission correspond to component carriers of different carriers, a subcarrier interval corresponding to the DCI is smaller than a subcarrier interval of the uplink transmission and / or downlink transmission, and the time length of the plurality of symbols may be the second time value, and the second time value is a time absolute value, not the number of symbols. That is, the beam application time is after the second time value after the transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback. The specific value of the second time value may be adjusted by an implementer based on the actual situation of the implementation, and the present disclosure does not limit the specific value of the second time value. In one possible embodiment, the second time value is configured by a network device. The unified transmission configuration indication state (unified TCI state) is used for uplink transmission and downlink transmission. That is, no matter what the subcarrier interval of the uplink transmission and the downlink transmission is, both the uplink transmission and the downlink transmission adopt the TCI state indicated by the DCI after the second time value. Or,

[0096] Since the DCI and the downlink transmission correspond to component carriers of different carriers, and the subcarrier spacing corresponding to the DCI is smaller than the subcarrier spacing of the downlink transmission, the terminal device cannot process data in a timely manner, and an additional delay, i.e., an additional symbol, is required. Therefore, the 8th number of symbols is determined based on the subcarrier spacing of the downlink transmission, and then the additional number of symbols is determined. The additional number of symbols is directly proportional to the subcarrier spacing of the downlink transmission and inversely proportional to the subcarrier spacing of the DCI. The additional number of symbols is the 9th number of symbols. The beam application time is after the sum of the 8th number of symbols and the 9th number of symbols after the transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback. The symbols are time symbols, and the unified transmission configuration indication state (unified TCI state) is used for uplink transmission and downlink transmission. That is, the subcarrier spacing of the downlink transmission is used to determine the time length occupied by the 8th number of symbols and the value of the 9th number. In this case, if the subcarrier spacing between the uplink transmission and the downlink transmission is different, the uplink transmission and the downlink transmission also adopt the TCI state indicated by the DCI after the same time, or

[0097] Since the DCI and the uplink transmission correspond to component carriers of different carriers, and the subcarrier spacing corresponding to the DCI is smaller than the subcarrier spacing of the downlink transmission, the terminal device cannot process data in a timely manner, and an additional delay, i.e., an additional symbol, is required. Therefore, the eighth number of symbols is determined based on the subcarrier spacing of the uplink transmission, and then an additional number of symbols is determined. The additional number of symbols is directly proportional to the subcarrier spacing of the uplink transmission and inversely proportional to the subcarrier spacing of the DCI. The additional number of symbols is the ninth number of symbols. The beam application time is after the sum of the eighth number of symbols and the ninth number of symbols after the transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback. The symbols are time symbols, and the unified transmission configuration indication state (unified TCI state) is used for uplink transmission and downlink transmission. That is, the subcarrier spacing of the uplink transmission is used to determine the time length occupied by the eighth number of symbols and the value of the ninth number. In this case, if the subcarrier spacing between uplink transmission and downlink transmission is different, the uplink transmission and downlink transmission also adopt the TCI state indicated by the DCI after the same time.

[0098] Optionally, the eighth number of symbols is determined based on the subcarrier interval of uplink transmission, which refers to the time length of each symbol being determined based on the subcarrier interval of uplink transmission. For example, when the subcarrier interval of uplink transmission is 15KHz, the time length of each slot is 1ms, and when one slot includes N symbols, the time length of each symbol is 1 / 14ms, where N is 12 or 14; for example, when the subcarrier interval of uplink transmission is 30KHz, the time length of each slot is 0.5ms, and when one slot includes N symbols, the time length of each symbol is 1 / 28ms, where N is 12 or 14.

[0099] Optionally, the ninth number of symbols is determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the uplink transmission,

[0100]

number

[0101] d3 is the number of symbols, and 2 μUL is the subcarrier spacing of the uplink transmission, and μDCI is the subcarrier spacing of the DCI. After the value of the ninth number is determined, the time length occupied by each symbol of the ninth number of symbols is the same as the time length occupied by each symbol of the eighth number of symbols, and is determined based on the subcarrier spacing of the uplink transmission.

[0102] Optionally, the eighth number of symbols is determined based on the subcarrier interval of downlink transmission, which refers to the time length of each symbol being determined based on the subcarrier interval of downlink transmission. For example, when the subcarrier interval of downlink transmission is 15KHz, the time length of each slot is 1ms, when one slot contains N symbols, the time length of each symbol is 1 / 14ms, where N is 12 or 14; for example, when the subcarrier interval of downlink transmission is 30KHz, the time length of each slot is 0.5ms, when one slot contains N symbols, the time length of each symbol is 1 / 28ms, where N is 12 or 14.

[0103] Optionally, the ninth number of symbols is determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the downlink transmission,

[0104]

number

[0105] d4 is the number of symbols, and 2 μDL is the subcarrier spacing of the downlink transmission, and μDCI is the subcarrier spacing of the DCI. After the value of the ninth number is determined, the time length occupied by each symbol of the ninth number of symbols is the same as the time length occupied by each symbol of the eighth number of symbols, and is determined based on the subcarrier spacing of the downlink transmission.

[0106] Optionally, the value of the eighth number is set by the network device.

[0107] Alternatively, the values ​​of d3 and / or d4 are set by a network device or determined by a terminal based on the subcarrier spacing of uplink transmission and / or downlink transmission and a mapping table between subcarrier spacing and d3 and / or d4.

[0108] According to an embodiment of the present application, a beam application time of the corresponding uplink transmission and / or a beam application time of the corresponding downlink transmission is determined based on the subcarrier spacing of the uplink transmission and / or the downlink transmission and / or the subcarrier spacing of the DCI and the transmission time of the HARQ ACK feedback, or a beam application time of the corresponding uplink transmission and / or a beam application time of the corresponding downlink transmission is determined based on the second time value and the transmission time of the HARQ ACK feedback, thereby ensuring that the beams of the network device and the terminal device are consistent and improving transmission performance.

[0109] Alternatively, the DCI and the uplink transmission and / or the downlink transmission correspond to component carriers of different carriers, and the subcarrier spacing corresponding to the DCI is smaller than the subcarrier spacing of the uplink transmission and / or the subcarrier spacing of the downlink transmission.

[0110] In an embodiment of the present disclosure, the DCI and the uplink transmission and / or downlink transmission correspond to component carriers of different carriers, and the subcarrier spacing corresponding to the DCI is smaller than the subcarrier spacing of the uplink transmission and / or downlink transmission, and the terminal device cannot process data in a timely manner and additional delay, i.e., additional symbols, are required.

[0111] Optionally, the downlink transmission includes a downlink channel and / or a downlink reference signal, the downlink channel including at least one of a physical downlink control channel (PDCCH), a physical downlink shared channel (PDSCH), and a physical broadcast channel (PBCH), and the downlink reference signal including at least one of a synchronization signal block (SSB), a channel state information reference signal (CSI-RS), a demodulation reference signal (DMRS), and a positioning reference signal (PRS).

[0112] Optionally, the uplink transmission includes an uplink channel and / or an uplink reference signal, the uplink channel including at least one of a physical uplink shared channel (PUSCH), a physical uplink control channel (PUCCH), and a physical random access channel (PRACH), and the uplink reference signal including at least one of a sounding reference signal (SRS) and a DMRS.

[0113] Optionally, the DCI and the uplink transmission and / or the downlink transmission correspond to different component carriers including the different component carriers corresponding to different serving cells, or the different component carriers corresponding to a serving cell and a non-serving cell.

[0114] Referring to Fig. 3, Fig. 3 is a schematic flow chart of a beam application method provided by an embodiment of the present application. The method is applied to a network device. As shown in Fig. 3, the method can include, but is not limited to, the following steps 301-302:

[0115] In step S301, send downlink control information (DCI) to a terminal device, where the DCI includes an integrated transmission configuration indication state.

[0116] In an embodiment of the present disclosure, the network device sends the downlink control information (DCI) to the terminal device, where the DCI includes a unified transmission configuration indication state. The network device instructs a beam according to the unified transmission configuration indication state (unified TCI state) or the common transmission configuration indication state (common TCI state) in the downlink control information (DCI), where the beam may be a common beam. After the terminal device receives the unified TCI state or the common TCI state in the DCI, the terminal device can apply the beam.

[0117] In step S302, a beam is adapted based on the downlink control information.

[0118] In an embodiment of the present disclosure, a beam application time corresponding to a beam is obtained based on the DCI, the beam application time is a time point at which application of the beam is started, and in order to ensure communication quality, the beam application time of the network device and the terminal device needs to be consistent. After receiving an integrated transmission setting indication state in the DCI, a beam application time of uplink transmission and / or a beam application time of downlink transmission corresponding to the integrated transmission setting indication state can be determined.

[0119] According to an embodiment of the present application, a beam application time of a corresponding uplink transmission and / or a beam application time of a corresponding downlink transmission are determined based on the downlink control information (DCI) to realize beam application, thereby ensuring that the beams of the network device and the terminal device are consistent and the transmission performance is improved.

[0120] In the above embodiments provided by the present application, the method provided by the embodiments of the present application is described from the perspective of a network device and a terminal device, respectively. In order to realize each function in the method provided by the above embodiments of the present application, the network device and the terminal device may include a hardware configuration and a software module, and each of the above functions may be realized in the form of a hardware configuration, a software module, or a hardware configuration plus a software module. Some of the above functions may be performed in the form of a hardware configuration, a software module, or a hardware configuration plus a software module.

[0121] Referring to Fig. 4, Fig. 4 is a schematic configuration diagram of a communication device 40 provided by an embodiment of the present application. The communication device 40 shown in Fig. 4 may include a transceiver module 401 and a processing module 402. The transceiver module 401 may include a transmitting module and / or a receiving module, where the transmitting module is used to realize a transmitting function, the receiving module is used to realize a receiving function, and the transceiver module 401 may realize a transmitting function and / or a receiving function.

[0122] The communication device 40 may be a terminal device (terminal device in the embodiment of the method), a device in a terminal device, or a device that can be matched with a terminal device and used. Alternatively, the communication device 40 may be a network device, a device in a network device, or a device that can be matched with a network device and used.

[0123] If the communication device 40 is a terminal device (the terminal device in the embodiment of the method), the communication device includes a receiving module and a determining module.

[0124] The receiving module receives downlink control information (DCI) from a network device, the DCI including an integrated transmission configuration indication state.

[0125] In the embodiment of the present disclosure, a beam is instructed according to a unified TCI state or a common TCI state in the downlink control information (DCI), and the beam may be a common beam. After receiving the unified TCI state or the common TCI state in the DCI, the terminal device can apply the beam.

[0126] The determination module determines a beam application time of an uplink transmission and / or a beam application time of a downlink transmission corresponding to the joint transmission setting indication state.

[0127] In an embodiment of the present disclosure, the beam application time is a time point at which application of the beam is started, and in order to ensure communication quality, it is necessary to match the beam application time between the network device and the terminal device. After receiving an integrated transmission setting indication state in the DCI, a beam application time of uplink transmission and / or a beam application time of downlink transmission corresponding to the integrated transmission setting indication state can be determined.

[0128] According to an embodiment of the present application, a beam application time of a corresponding uplink transmission and / or a beam application time of a corresponding downlink transmission are determined based on the downlink control information (DCI) to realize beam application, thereby ensuring that the beams of the network device and the terminal device are consistent and the transmission performance is improved.

[0129] In one implementation, the DCI may or may not include downlink allocation indication information.

[0130] The DCI may include the downlink assignment indication DL assignment for indicating a time-frequency resource of the PDSCH, or may not include the downlink assignment indication DL assignment.

[0131] In one implementation, the beam application time of the uplink transmission and / or the beam application time of the downlink transmission is a number of symbols after the transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback for the DCI, and the beam application time of the uplink transmission and / or the beam application time of the downlink transmission is an application time of the integrated transmission setting indication state.

[0132] In the embodiment of the present disclosure, Hybrid Automatic Repeat Request (HARQ) is a technology formed by combining forward error correction (FEC) and Automatic Repeat Request (ARQ). The basic principle is as follows: use FEC technology at the receiving side to correct the correctable part of all errors, perform error detection to determine the packets that cannot be corrected, discard the packets that cannot be corrected, and request the transmitting side to retransmit the same packets. In Hybrid Automatic Repeat Request (HARQ), the acknowledgement character (ACK) is feedback information sent by the receiving side to the transmitting side. The terminal device is the receiving side, and the time after a number of symbols after the time when the terminal device sends the HARQ ACK to the network device is the beam application time.

[0133] According to an embodiment of the present application, a beam application time of a corresponding uplink transmission and / or a beam application time of a corresponding downlink transmission is determined based on the transmission time of the HARQ ACK feedback for the downlink control information (DCI), thereby ensuring that the beams of the network device and the terminal device are consistent and the transmission performance is improved.

[0134] In one implementation, the plurality of symbols is a first number of symbols, the first number of symbols being determined based on a subcarrier spacing of the downlink transmission, and the beam application time is a beam application time of the downlink transmission; and / or The plurality of symbols is a second number of symbols, the second number of symbols is determined based on a subcarrier spacing of the uplink transmission, and the beam application time is a beam application time of the uplink transmission.

[0135] In an embodiment of the present disclosure, the beam application time is after a first number of symbols after a transmission time of a Hybrid Automatic Repeat Request (HARQ) Acknowledgement Character (ACK) feedback, the first number of symbols being determined based on a downlink sub-carrier space (SCS), the symbols being time symbols, and the beam application time being a beam application time of the downlink transmission. And / or the beam application time is after a second number of symbols after a transmission time of a Hybrid Automatic Repeat Request (HARQ) Acknowledgement Character (ACK) feedback, the second number of symbols being determined based on an uplink sub-carrier space (SCS), the symbols being time symbols, and the beam application time being a beam application time of the uplink transmission.

[0136] Optionally, the first number of symbols is determined based on the subcarrier interval of downlink transmission, which refers to the time length of each symbol being determined based on the subcarrier interval of downlink transmission. For example, when the subcarrier interval of downlink transmission is 15KHz, the time length of each slot is 1ms, when one slot contains N symbols, the time length of each symbol is 1 / 14ms, where N is 12 or 14; for example, when the subcarrier interval of downlink transmission is 30KHz, the time length of each slot is 0.5ms, when one slot contains N symbols, the time length of each symbol is 1 / 28ms, where N is 12 or 14.

[0137] Optionally, the second number of symbols is determined based on the subcarrier interval of uplink transmission, which refers to the time length of each symbol being determined based on the subcarrier interval of uplink transmission. For example, when the subcarrier interval of uplink transmission is 15KHz, the time length of each slot is 1ms, and when one slot contains N symbols, the time length of each symbol is 1 / 14ms, where N is 12 or 14; for example, when the subcarrier interval of uplink transmission is 30KHz, the time length of each slot is 0.5ms, and when one slot contains N symbols, the time length of each symbol is 1 / 28ms, where N is 12 or 14.

[0138] Optionally, the first number value and / or the second number value are set by the network device. The first number value and the second number value may be the same or different.

[0139] According to an embodiment of the present application, it is realized to determine the first number of symbols and / or the second number of symbols according to the subcarrier interval, and determine a beam application time of a corresponding uplink transmission and / or a beam application time of a corresponding downlink transmission according to a transmission time of the HARQ ACK feedback, thereby ensuring that the beams of the network device and the terminal device are consistent and improving the transmission performance.

[0140] In one implementation, the time length of the plurality of symbols is a first time value, or the plurality of symbols is a third number of symbols, the third number of symbols being determined based on a subcarrier spacing of the uplink transmission or the downlink transmission, and the beam application time is a beam application time of the uplink transmission and the downlink transmission.

[0141] In an embodiment of the present disclosure, the time length of the plurality of symbols may be the first time value, and the first time value is not the number of symbols but a time absolute value. That is, the beam application time is after the first time value after the transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback. The specific value of the first time value can be adjusted by the implementer based on the actual situation of the implementation, and the present disclosure does not limit the specific value of the first time value. In a possible embodiment, the first time value is set by the network side. The beam application time is the beam application time of the uplink transmission and the downlink transmission. That is, no matter how many subcarrier intervals of the uplink transmission and the downlink transmission are, both the uplink transmission and the downlink transmission adopt the TCI state indicated by the DCI after the first time value. Or, the beam application time is after a third number of symbols after the transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback. The third number of symbols is determined based on a subcarrier spacing (SCS) of the uplink transmission or the downlink transmission, the symbols being time symbols, and the beam application time being the beam application time of the uplink transmission and the downlink transmission. That is, the subcarrier spacing of one of the uplink transmission and the downlink transmission is used to determine the time length occupied by each symbol of the third number of symbols. In this case, if the subcarrier spacing of the uplink transmission and the downlink transmission is different, the uplink transmission and the downlink transmission also adopt the TCI state indicated by the DCI after the same time.

[0142] Optionally, the value of the third number is set by a network device. The third number of symbols being determined based on a subcarrier spacing (SCS) of the uplink transmission or the downlink transmission refers to a time length occupied by each symbol of the third number of symbols being determined by the subcarrier spacing (SCS) of the uplink transmission or the downlink transmission.

[0143] According to an embodiment of the present application, the third number of symbols is determined according to a subcarrier interval of the uplink transmission or the downlink transmission, a beam application time of the corresponding uplink transmission and / or a beam application time of the corresponding downlink transmission is determined according to a transmission time of the HARQ ACK feedback, or a beam application time of the corresponding uplink transmission and / or a beam application time of the corresponding downlink transmission is determined according to the first time value and the transmission time of the HARQ ACK feedback, thereby ensuring that the beams of the network device and the terminal device are consistent and improving transmission performance.

[0144] In one implementation, the DCI and the uplink transmission and / or the downlink transmission correspond to component carriers of the same carrier, or the DCI and the uplink transmission and / or the downlink transmission correspond to component carriers of different carriers, and the subcarrier spacing corresponding to the DCI is greater than or equal to the subcarrier spacing of the uplink transmission and / or the subcarrier spacing of the downlink transmission.

[0145] In one implementation, the plurality of symbols includes a fourth number of symbols and a fifth number of symbols, the fourth number of symbols being determined based on a subcarrier spacing of the downlink transmission, the fifth number of symbols being determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the downlink transmission, and the beam application time being the beam application time of the downlink transmission, and / or the plurality of symbols includes a sixth number of symbols and a seventh number of symbols, the sixth number of symbols being determined based on a subcarrier spacing of the uplink transmission, the seventh number of symbols being determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the uplink transmission, and the beam application time being the beam application time of the uplink transmission.

[0146] In an embodiment of the present disclosure, since the DCI and the downlink transmission correspond to component carriers of different carriers, and the subcarrier spacing corresponding to the DCI is smaller than the subcarrier spacing of the downlink transmission, the terminal device cannot process data in a timely manner, and an additional delay, i.e., an additional symbol, is required. Therefore, after determining the fourth number of symbols based on the subcarrier spacing of the downlink transmission, an additional number of symbols is determined. The additional number of symbols is directly proportional to the subcarrier spacing of the downlink transmission and inversely proportional to the subcarrier spacing of the DCI. The additional number of symbols is the fifth number of symbols. The plurality of symbols includes a fourth number of symbols and a fifth number of symbols, and the beam application time is after the sum of the fourth number of symbols and the fifth number of symbols after a transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback. The symbols are time symbols, and the beam application time is the beam application time of the downlink transmission. And / or, the DCI and the uplink transmission correspond to component carriers of different carriers, and the subcarrier spacing corresponding to the DCI is smaller than the subcarrier spacing of the downlink transmission, so that the terminal device cannot process data in a timely manner and an additional delay, i.e., additional symbols, is required. Therefore, after determining the sixth number of symbols based on the subcarrier spacing of the uplink transmission, an additional number of symbols is determined. The additional number of symbols is directly proportional to the subcarrier spacing of the uplink transmission and inversely proportional to the subcarrier spacing of the DCI. The additional number of symbols is the seventh number of symbols. The beam application time is after the sum of the sixth number of symbols and the seventh number of symbols of a transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback. The symbols are time symbols, and the beam application time is the beam application time of the uplink transmission.

[0147] Optionally, the fourth number of symbols is determined based on the subcarrier interval of downlink transmission, which refers to the time length of each symbol being determined based on the subcarrier interval of downlink transmission. For example, when the subcarrier interval of downlink transmission is 15KHz, the time length of each slot is 1ms, when one slot includes N symbols, the time length of each symbol is 1 / 14ms, where N is 12 or 14; for example, when the subcarrier interval of downlink transmission is 30KHz, the time length of each slot is 0.5ms, when one slot includes N symbols, the time length of each symbol is 1 / 28ms, where N is 12 or 14.

[0148] Optionally, the fifth number of symbols is determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the downlink transmission,

[0149]

number

[0150] d1 is the number of symbols, and 2 μDL is the subcarrier spacing of the downlink transmission, and μDCI is the subcarrier spacing of the DCI. After the value of the fifth number is determined, the time length occupied by each symbol of the fifth number of symbols is the same as the time length occupied by each symbol of the fourth number of symbols, and is determined based on the subcarrier spacing of the downlink transmission.

[0151] Optionally, the sixth number of symbols is determined based on the subcarrier interval of uplink transmission, which refers to the time length of each symbol being determined based on the subcarrier interval of uplink transmission. For example, when the subcarrier interval of uplink transmission is 15KHz, the time length of each slot is 1ms, and when one slot includes N symbols, the time length of each symbol is 1 / 14ms, where N is 12 or 14; for example, when the subcarrier interval of uplink transmission is 30KHz, the time length of each slot is 0.5ms, and when one slot includes N symbols, the time length of each symbol is 1 / 28ms, where N is 12 or 14.

[0152] Optionally, the seventh number of symbols is determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the uplink transmission, and the value of the seventh number is

[0153]

number

[0154] d2 is the number of symbols, and 2 μUL is the subcarrier spacing of the uplink transmission, and μDCI is the subcarrier spacing of the DCI. After the value of the seventh number is determined, the time length occupied by each symbol of the seventh number of symbols is the same as the time length occupied by each symbol of the sixth number of symbols, and is determined based on the subcarrier spacing of the uplink transmission.

[0155] Optionally, the value of the fourth number and / or the value of the sixth number are set by the network device. The value of the fourth number and the value of the sixth number may be the same or different.

[0156] Alternatively, the values ​​of d1 and / or d2 are set by a network device or determined by a terminal based on the subcarrier spacing of uplink transmission and / or downlink transmission and a mapping table of subcarrier spacing and d1 and / or d2.

[0157] According to an embodiment of the present application, the fourth number and / or the fifth number and / or the sixth number and / or the seventh number of symbols are determined based on the subcarrier spacing of the uplink and / or downlink transmission and the subcarrier spacing of the DCI, and the beam application time of the corresponding uplink transmission and / or the beam application time of the downlink transmission are determined based on the transmission time of the HARQ ACK feedback, thereby ensuring that the beams of the network device and the terminal device are consistent and the transmission performance is improved.

[0158] In one implementation, the time length of the plurality of symbols is a second time value, the plurality of symbols includes an eighth number of symbols and a ninth number of symbols, the eighth number of symbols is determined based on a subcarrier spacing of the uplink transmission, the ninth number of symbols is determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the uplink transmission, or the eighth number of symbols is determined based on a subcarrier spacing of the downlink transmission and the ninth number of symbols is determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the downlink transmission, and the beam application time is a beam application time of the uplink transmission and the downlink transmission.

[0159] In an embodiment of the present disclosure, the DCI and the downlink transmission correspond to component carriers of different carriers, a subcarrier interval corresponding to the DCI is smaller than a subcarrier interval of the downlink transmission, and the time length of the plurality of symbols may be the second time value, and the second time value is not the number of symbols but a time absolute value. That is, the beam application time is after the second time value after the transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback. The specific value of the second time value may be adjusted by the implementer based on the actual situation of the implementation, and the present disclosure does not limit the specific value of the second time value. In one possible embodiment, the second time value is set by the network side. That is, no matter what the subcarrier interval of the uplink transmission and the downlink transmission is, both the uplink transmission and the downlink transmission adopt the TCI state indicated by the DCI after the second time value. The unified transmission setting indication state is used for the uplink transmission and the downlink transmission. Or,

[0160] Since the DCI and the downlink transmission correspond to component carriers of different carriers, and the subcarrier spacing corresponding to the DCI is smaller than the subcarrier spacing of the downlink transmission, the terminal device cannot process data in a timely manner, and an additional delay, i.e., an additional symbol, is required. Therefore, the 8th number of symbols is determined based on the subcarrier spacing of the downlink transmission, and then the additional number of symbols is determined. The additional number of symbols is directly proportional to the subcarrier spacing of the downlink transmission and inversely proportional to the subcarrier spacing of the DCI. The additional number of symbols is the 9th number of symbols. The beam application time is after the sum of the 8th number of symbols and the 9th number of symbols after the transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback. The symbols are time symbols, and the unified transmission configuration indication state (unified TCI state) is used for uplink transmission and downlink transmission. That is, the subcarrier spacing of the downlink transmission is used to determine the time length occupied by the 8th number of symbols and the value of the 9th number. In this case, if the subcarrier spacing between the uplink transmission and the downlink transmission is different, the uplink transmission and the downlink transmission also adopt the TCI state indicated by the DCI after the same time, or

[0161] Since the DCI and the uplink transmission correspond to component carriers of different carriers, and the subcarrier spacing corresponding to the DCI is smaller than the subcarrier spacing of the downlink transmission, the terminal device cannot process data in a timely manner, and an additional delay, i.e., an additional symbol, is required. Therefore, the 8th number of symbols is determined based on the subcarrier spacing of the uplink transmission, and then the additional number of symbols is determined. The additional number of symbols is directly proportional to the subcarrier spacing of the uplink transmission and inversely proportional to the subcarrier spacing of the DCI. The additional number of symbols is the 9th number of symbols. The beam application time is after the sum of the 8th number of symbols and the 9th number of symbols after the transmission time of a hybrid automatic repeat request (HARQ) acknowledgement character (ACK) feedback. The symbols are time symbols, and the unified transmission configuration indication state (unified TCI state) is used for uplink transmission and downlink transmission. That is, the subcarrier spacing of the uplink transmission is used to determine the time length occupied by the 8th number of symbols and the value of the 9th number. In this case, if the subcarrier spacing between uplink transmission and downlink transmission is different, the uplink transmission and downlink transmission also adopt the TCI state indicated by the DCI after the same time.

[0162] Optionally, the eighth number of symbols is determined based on the subcarrier interval of uplink transmission, which refers to the time length of each symbol being determined based on the subcarrier interval of uplink transmission. For example, when the subcarrier interval of uplink transmission is 15KHz, the time length of each slot is 1ms, and when one slot includes N symbols, the time length of each symbol is 1 / 14ms, where N is 12 or 14; for example, when the subcarrier interval of uplink transmission is 30KHz, the time length of each slot is 0.5ms, and when one slot includes N symbols, the time length of each symbol is 1 / 28ms, where N is 12 or 14.

[0163] Optionally, the ninth number of symbols is determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the uplink transmission,

[0164]

number

[0165] d3 is the number of symbols, and 2 μUL is the subcarrier spacing of the uplink transmission, and μDCI is the subcarrier spacing of the DCI. After the value of the ninth number is determined, the time length occupied by each symbol of the ninth number of symbols is the same as the time length occupied by each symbol of the eighth number of symbols, and is determined based on the subcarrier spacing of the uplink transmission.

[0166] Optionally, the eighth number of symbols is determined based on the subcarrier interval of downlink transmission, which refers to the time length of each symbol being determined based on the subcarrier interval of downlink transmission. For example, when the subcarrier interval of downlink transmission is 15KHz, the time length of each slot is 1ms, when one slot contains N symbols, the time length of each symbol is 1 / 14ms, where N is 12 or 14; for example, when the subcarrier interval of downlink transmission is 30KHz, the time length of each slot is 0.5ms, when one slot contains N symbols, the time length of each symbol is 1 / 28ms, where N is 12 or 14.

[0167] Optionally, the ninth number of symbols is determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the downlink transmission,

[0168]

number

[0169] d4 is the number of symbols, and 2 μDL is the subcarrier spacing of the downlink transmission, and μDCI is the subcarrier spacing of the DCI. After the value of the ninth number is determined, the time length occupied by each symbol of the ninth number of symbols is the same as the time length occupied by each symbol of the eighth number of symbols, and is determined based on the subcarrier spacing of the downlink transmission.

[0170] Optionally, the value of the eighth number is set by the network device.

[0171] Alternatively, the values ​​of d3 and / or d4 are set by a network device or determined by a terminal based on the subcarrier spacing of uplink transmission and / or downlink transmission and a mapping table between subcarrier spacing and d3 and / or d4.

[0172] According to an embodiment of the present application, a beam application time of the corresponding uplink transmission and / or a beam application time of the corresponding downlink transmission is determined based on the subcarrier spacing of the uplink transmission and / or the downlink transmission and / or the subcarrier spacing of the DCI and the transmission time of the HARQ ACK feedback, or a beam application time of the corresponding uplink transmission and / or a beam application time of the corresponding downlink transmission is determined based on the second time value and the transmission time of the HARQ ACK feedback, thereby ensuring that the beams of the network device and the terminal device are consistent and improving transmission performance.

[0173] In one implementation, the DCI and the uplink transmission and / or downlink transmission correspond to component carriers of different carriers, and the subcarrier spacing corresponding to the DCI is smaller than the subcarrier spacing of the uplink transmission and / or the subcarrier spacing of the downlink transmission.

[0174] In an embodiment of the present disclosure, since the DCI and the uplink transmission correspond to component carriers of different carriers, and the subcarrier spacing corresponding to the DCI is smaller than the subcarrier spacing of the uplink transmission, the terminal device cannot process the data in a timely manner and additional delay, i.e., additional symbols, are required.

[0175] In one implementation, the downlink transmission includes a downlink channel and / or a downlink reference signal, the downlink channel including at least one of a physical downlink control channel (PDCCH), a physical downlink shared channel (PDSCH), and a physical broadcast channel (PBCH), and the downlink reference signal including at least one of a synchronization signal block (SSB), a channel state information reference signal (CSI-RS), a demodulation reference signal (DMRS), and a positioning reference signal (PRS).

[0176] In one implementation, the uplink transmission includes an uplink channel and / or an uplink reference signal, the uplink channel including at least one of a physical uplink shared channel (PUSCH), a physical uplink control channel (PUCCH), and a physical random access channel (PRACH), and the uplink reference signal including at least one of a sounding reference signal (SRS) and a DMRS.

[0177] In one implementation, the DCI and the uplink transmission and / or the downlink transmission corresponding to different component carriers includes the different component carriers corresponding to different serving cells, or the different component carriers corresponding to a serving cell and a non-serving cell.

[0178] When the communication device 40 is a network device, it includes a sending module and an applying module.

[0179] The transmitting module transmits downlink control information (DCI) to a terminal device, the DCI including an integrated transmission configuration indication state.

[0180] In an embodiment of the present disclosure, the network device sends the downlink control information (DCI) to the terminal device, where the DCI includes a unified transmission configuration indication state. The network device instructs a beam according to the unified transmission configuration indication state (unified TCI state) or the common transmission configuration indication state (common TCI state) in the downlink control information (DCI), where the beam may be a common beam. After the terminal device receives the unified TCI state or the common TCI state in the DCI, the terminal device can apply the beam.

[0181] An adaptation module adapts the beam based on the downlink control information.

[0182] In an embodiment of the present disclosure, a beam application time corresponding to a beam is obtained based on the DCI, the beam application time is a time point at which application of the beam is started, and in order to ensure communication quality, the beam application time of the network device and the terminal device needs to be consistent. After receiving an integrated transmission setting indication state in the DCI, a beam application time of uplink transmission and / or a beam application time of downlink transmission corresponding to the integrated transmission setting indication state can be determined.

[0183] According to an embodiment of the present application, a beam application time of a corresponding uplink transmission and / or a beam application time of a corresponding downlink transmission are determined based on the downlink control information (DCI) to realize beam application, thereby ensuring that the beams of the network device and the terminal device are consistent and the transmission performance is improved.

[0184] Referring to FIG. 5, FIG. 5 is a schematic configuration diagram of another communication device 50 provided by another embodiment of the present application. The communication device 50 may be a network device, a terminal device (terminal device in the embodiment of the method), a chip, chip system, processor, etc. that helps the network device to realize the above method, or a chip, chip system, processor, etc. that helps the terminal device to realize the above method. This device can be used to realize the method described in the embodiment of the method. For details, please refer to the description of the embodiment of the method.

[0185] The communication device 50 may include one or more processors 501. The processor 501 may be a general-purpose processor or a dedicated processor, etc. For example, it may be a baseband processor or a central processor. The baseband processor may be used to process communication protocols and communication data, and the central processing unit may be used to control the communication device (e.g., a base station, a baseband chip, a terminal device, a terminal device chip, a DU or CU, etc.), execute a computer program, and process data of the computer program.

[0186] Optionally, the communication device 50 may further include one or more memories 502 in which a computer program 503 may be stored, and the processor 501 executes the computer program 503 so that the communication device 50 performs the method described in the above method embodiment. Optionally, data may further be stored in the memory 502. The communication device 50 and the memory 502 may be provided separately or integrated.

[0187] Optionally, the communication device 50 may further include a transceiver 504 and an antenna 505. The transceiver 504 may be referred to as a transceiver unit, a transceiver, or a transceiver circuit, etc., for implementing a transmitting and receiving function. The transceiver 504 may include a receiver and a transmitter, and the receiver may be referred to as a receiver or a receiving circuit, etc., for implementing a receiving function, and the transmitter may be referred to as a transmitter or a transmitting circuit, etc., for implementing a transmitting function.

[0188] Optionally, the communication device 50 may further include one or more interface circuits 506. The interface circuit 506 is used to receive and transmit code instructions to the processor 501. The processor 501 executes the code instructions to cause the communication device 50 to perform the methods described in the above method embodiments.

[0189] If the communication device 50 is a terminal device (such as the terminal device in the above method embodiment), the processor 501 is used to perform step S202 of Fig. 2, step S302 of Fig. 3a, step S402 of Fig. 4, step S502 of Fig. 5, or step S604 of Fig. 6. The transceiver 504 is used to perform step S601 of Fig. 6.

[0190] If the communication device 50 is a network device, the transceiver 504 is used to execute step S201 of Fig. 2, step S301 of Fig. 3a, step S401 of Fig. 4, step S501 of Fig. 5, or step S603 of Fig. 6. The processor 501 is used to execute step S602 of Fig. 6.

[0191] In one embodiment, the processor 501 may include a transceiver for implementing the receiving and transmitting functions. For example, the transceiver may be a transmitting and receiving circuit, or may be an interface or an interface circuit. The transmitting and receiving circuit, the interface or the interface circuit for implementing the receiving and transmitting functions may be separate or integrated. The transmitting and receiving circuit, the interface or the interface circuit may be used for reading and writing code / data, or the transmitting and receiving circuit, the interface or the interface circuit may be used for transmitting or conveying signals.

[0192] In one implementation, the processor 501 may store a computer program 503 which, when executed by the processor 501, causes the communication device 50 to perform the methods described in the method embodiments above. The computer program 503 may be hardened in the processor 501, in which case the processor 501 may be implemented by hardware.

[0193] In one implementation, the communication device 50 may include circuitry capable of implementing the functions of transmitting or receiving or communicating in the above method embodiments. The processor and transceiver described in this application may be implemented in an integrated circuit (IC), an analog IC, a radio frequency integrated circuit (RFIC), a hybrid signal IC, an application specific integrated circuit (ASIC), a printed circuit board (PCB), an electronic device, etc. The processor and transceiver may also be fabricated in various IC process technologies, such as complementary metal oxide semiconductor (CMOS), n-type metal oxide semiconductor (nMOS), p-type metal oxide semiconductor (PMOS), bipolar junction transistor (BJT), bipolar CMOS (BiCMOS), silicon germanium (SiGe), gallium arsenide (GaAs), etc.

[0194] The communication device described in the above embodiment may be a network device or a terminal device (such as the terminal device in the above method embodiment), but the scope of the communication device described in this application is not limited thereto, and the structure of the communication device may not be limited to that in FIG. 5. The communication device may be an independent device or a part of a larger device. For example, the communication device may be as follows: (1) An independent integrated circuit IC, or chip, or a chip system or subsystem; (2) having a set of one or more ICs, optionally including a memory component for storing data, computer programs; (3) ASICs such as modems (4) A module that can be incorporated into other devices; (5) Receivers, terminal devices, smart terminal devices, mobile phones, wireless devices, handhelds, mobile units, in-vehicle devices, network devices, cloud devices, artificial intelligence devices, etc. (6)Others.

[0195] When the communication device may be a chip or a chip system, reference may be made to the schematic configuration diagram of the chip shown in Fig. 6. The chip shown in Fig. 6 includes a processor 601 and an interface 602. Here, the number of the processors 601 may be one or more, and the number of the interfaces 602 may be more than one.

[0196] When the chip is used to realize the functions of a terminal device in an embodiment of the present application (a terminal device in an embodiment of the method), it can be realized to receive downlink control information (DCI) from a network device, where the DCI includes an integrated transmission setting indication state, and to determine a beam application time of uplink transmission and / or a beam application time of downlink transmission corresponding to the integrated transmission setting indication state.

[0197] When the chip is used to realize the functions of a network device in an embodiment of the present application, the interface 602 is used to send downlink control information (DCI) to a terminal device, the DCI including an integrated transmission setting indication state, and applies a beam based on the downlink control information.

[0198] Optionally, the chip further includes a memory 603 for storing necessary computer programs and data.

[0199] Those skilled in the art can also understand that various illustrative logical blocks and steps described in the embodiments of the present application can be realized by electronic hardware, computer software, or a combination of both. Whether such functions are realized by hardware or software is determined by specific applications and overall system design requirements. Those skilled in the art can realize the described functions using various methods for each specific application, but this implementation should not be understood as going beyond the scope of protection of the embodiments of the present application.

[0200] An embodiment of the present application further provides a beam application system including a communication device as a terminal device in the embodiment of Figure 4 (e.g., a terminal device in the embodiment of the method) and a communication device as a network device, or including a communication device as a terminal device in the embodiment of Figure 5 (e.g., a terminal device in the embodiment of the method) and a communication device as a network device.

[0201] The present application further provides a readable storage medium having stored thereon instructions which, when executed by a computer, implement the functionality of any of the method embodiments described above.

[0202] The present application further provides a computer program product which, when executed by a computer, implements the functionality of any of the above method embodiments.

[0203] The above embodiments can be implemented in whole or in part by software, hardware, firmware, or any combination thereof. When implemented using software, it can be implemented in whole or in part in the form of a computer program product. The computer program product includes one or more computer programs. The process or function according to the above embodiments of the present application is generated in whole or in part when the computer program is loaded and executed by a computer. The computer may be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer program may be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another, for example, the computer program may be transmitted from one website, computer, server, or data center to another website, computer, server, or data center via wire (e.g., coaxial cable, fiber optic, digital subscriber line (DSL)) or wireless (e.g., infrared, radio, microwave, etc.). The computer-readable storage medium may be any available medium accessible by a computer, or may include a data storage device such as a server, data center, etc. integrated with one or more available media. The available medium may be a magnetic medium (e.g., floppy disk, hard disk, magnetic tape), an optical medium (e.g., digital video disc (DVD)), or a semiconductor medium (e.g., solid state disk (SSD)), etc.

[0204] Those skilled in the art will understand that the various numerals such as 1st, 2nd, etc. in the present application are merely a division for the convenience of explanation, and do not limit the scope of the embodiments of the present application, nor indicate priority.

[0205] At least one of the present application may be described as one or more, and more may be two, three, four or more, and is not limited to the present application. In the embodiment of the present application, for one technical feature, the technical features in the technical feature type are distinguished by "first", "second", "third", "A", "B", "C", and "D", etc., and there is no order of precedence or precedence or order of magnitude between the technical features described in the "first", "second", "third", "A", "B", "C", and "D".

[0206] The correspondence shown in each table in this application may be set or may be predefined. The values ​​of the information in each table are merely examples, and may be set as other values, and are not limited to this application. When setting the correspondence between the information and each parameter, it is not necessary to set all of the correspondences shown in each table. For example, in the table of this application, the correspondence shown by a certain row may not be set. As another example, appropriate transformation adjustments such as splitting and merging can be performed based on the above tables. The names of the parameters shown in the titles of each of the above tables may also adopt other names that the communication device can understand, and the values ​​and display methods of the parameters may also adopt other values ​​and display methods that the communication device can understand. The above tables may also adopt other data structures when implemented, such as arrays, queues, containers, stacks, linear tables, pointers, link tables, trees, diagrams, structures, classes, heaps, hash lists, or hash tables.

[0207] Predefined in this application can be understood as defined, predefined, stored, prestored, prenegotiated, pre-set, cured, or pre-baked.

[0208] Those skilled in the art can recognize that the units and algorithm steps of each example described in the embodiments disclosed herein can be realized in electronic hardware, or a combination of computer software and electronic hardware. Whether a function is implemented in hardware or software is determined by the specific application and design constraints of the technical solution. Those skilled in the art can realize the described functions using different methods for each specific application, but such realization should not be considered beyond the scope of this application.

[0209] As those skilled in the art can clearly understand, for convenience and conciseness of description, the specific operating processes of the systems, devices and units described above can refer to the corresponding processes in the above method embodiments, and the description will be omitted here.

[0210] As described above, the present application only provides specific embodiments, but the scope of protection of the present application is not limited thereto, and those skilled in the art can easily imagine that modifications or replacements within the technical scope disclosed in the present application should be included in the scope of protection of the present application. Therefore, the scope of protection of the present application should be based on the scope of protection of the claims.

Claims

1. A beam application method applied to a terminal device, comprising: receiving downlink control information (DCI) from a network device, the DCI including an aggregate transmission configuration indication status; determining a beam application time of an uplink transmission and / or a beam application time of a downlink transmission corresponding to the integrated transmission setting indication state; A method of applying a beam.

2. The beam application time of the uplink transmission and / or the beam application time of the downlink transmission is several symbols after a transmission time of a hybrid automatic repeat request acknowledgement (HARQ ACK) feedback for the DCI.

2. The method of claim 1, wherein the beam is applied to a substrate.

3. the plurality of symbols is a first number of symbols, the first number of symbols being determined based on a subcarrier spacing of the downlink transmission, and the beam application time is a beam application time of the downlink transmission; and / or the plurality of symbols is a second number of symbols, the second number of symbols is determined based on a subcarrier spacing of the uplink transmission, and the beam application time is a beam application time of the uplink transmission.

3. The method of claim 2, wherein the beam is applied to a substrate.

4. the duration of the plurality of symbols is a first time value; or the plurality of symbols is a third number of symbols, the third number of symbols is determined based on a subcarrier spacing of the uplink transmission or the downlink transmission, and the beam application time is a beam application time of the uplink transmission and the downlink transmission.

3. The method of claim 2, wherein the beam is applied to a substrate.

5. the DCI and the uplink transmission and / or the downlink transmission correspond to component carriers of the same carrier; Or, the DCI and the uplink transmission and / or the downlink transmission correspond to the component carriers of different carriers, and a subcarrier spacing corresponding to the DCI is equal to or greater than a subcarrier spacing of the uplink transmission and / or a subcarrier spacing of the downlink transmission.

5. A method for applying a beam according to claim 3 or 4.

6. the plurality of symbols includes a fourth number of symbols and a fifth number of symbols, the fourth number of symbols being determined based on a subcarrier spacing of the downlink transmission, the fifth number of symbols being determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the downlink transmission, and the beam application time is a beam application time of the downlink transmission; and / or the plurality of symbols includes a sixth number of symbols and a seventh number of symbols, the sixth number of symbols is determined based on a subcarrier spacing of the uplink transmission, the seventh number of symbols is determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the uplink transmission, and the beam application time is a beam application time of the uplink transmission.

3. The method of claim 2, wherein the beam is applied to a substrate.

7. the duration of the plurality of symbols is a second time value; or the plurality of symbols includes an eighth number of symbols and a ninth number of symbols, the eighth number of symbols being determined based on a subcarrier spacing of the uplink transmission, the ninth number of symbols being determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the uplink transmission, or the eighth number of symbols being determined based on a subcarrier spacing of the downlink transmission, the ninth number of symbols being determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the downlink transmission, and the beam application time is a beam application time of the uplink transmission and the downlink transmission.

3. The method of claim 2, wherein the beam is applied to a substrate.

8. The DCI and the uplink transmission and / or the downlink transmission correspond to component carriers of different carriers, and a subcarrier spacing corresponding to the DCI is smaller than a subcarrier spacing of the uplink transmission and / or a subcarrier spacing of the downlink transmission.

8. A method for applying a beam according to claim 6 or 7.

9. the downlink transmission includes a downlink channel and / or a downlink reference signal; The downlink channel includes at least one of a physical downlink control channel (PDCCH), a physical downlink shared channel (PDSCH), and a physical broadcast channel (PBCH); The downlink reference signal includes at least one of a synchronization signal block (SSB), a channel state information reference signal (CSI-RS), a demodulation reference signal (DMRS), and a positioning reference signal (PRS).

2. The method of claim 1, wherein the beam is applied to a substrate.

10. the uplink transmission includes an uplink channel and / or an uplink reference signal; The uplink channel includes at least one of a physical uplink shared channel (PUSCH), a physical uplink control channel (PUCCH), and a physical random access channel (PRACH); The uplink reference signal includes at least one of a sounding reference signal (SRS) and a dynamic mobile reference signal (DMRS).

2. The method of claim 1, wherein the beam is applied to a substrate.

11. The DCI and the uplink transmission and / or the downlink transmission correspond to different component carriers, the different component carriers correspond to different serving cells; or the different component carriers corresponding to a serving cell and a non-serving cell.

6. The method of claim 5, wherein the beam is applied to a substrate.

12. 1. A beam application method applied to a network device, the method comprising: sending downlink control information (DCI) to a terminal device, the DCI including an integrated transmission configuration indication status; and adapting a beam based on the downlink control information. A method of applying a beam.

13. 1. A beam application device comprising: A receiving module for receiving downlink control information (DCI) from a network device, the DCI including an integrated transmission configuration indication state; A determination module for determining a beam application time of an uplink transmission and / or a beam application time of a downlink transmission corresponding to the integrated transmission setting indication state.

13. A beam application device comprising:

14. The beam application time of the uplink transmission and / or the beam application time of the downlink transmission is several symbols after a transmission time of a hybrid automatic repeat request acknowledgement (HARQ ACK) feedback for the DCI.

14. The beam application device according to claim 13. Beam application time of uplink transmission and / or beam application time of downlink transmission

15. the plurality of symbols is a first number of symbols, the first number of symbols being determined based on a subcarrier spacing of the downlink transmission, and the beam application time is a beam application time of the downlink transmission; and / or the plurality of symbols is a second number of symbols, the second number of symbols is determined based on a subcarrier spacing of the uplink transmission, and the beam application time is a beam application time of the uplink transmission.

15. The beam application device of claim 14.

16. the duration of the plurality of symbols is a first time value; or the plurality of symbols is a third number of symbols, the third number of symbols is determined based on a subcarrier spacing of the uplink transmission or the downlink transmission, and the beam application time is a beam application time of the uplink transmission and the downlink transmission.

15. The beam application device of claim 14.

17. the DCI and the uplink transmission and / or the downlink transmission correspond to component carriers of the same carrier; Or, the DCI and the uplink transmission and / or the downlink transmission correspond to the component carriers of different carriers, and a subcarrier spacing corresponding to the DCI is equal to or greater than a subcarrier spacing of the uplink transmission and / or a subcarrier spacing of the downlink transmission.

17. Beam application device according to claim 15 or 16.

18. the plurality of symbols includes a fourth number of symbols and a fifth number of symbols, the fourth number of symbols being determined based on a subcarrier spacing of the downlink transmission, the fifth number of symbols being determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the downlink transmission, and the beam application time is a beam application time of the downlink transmission; and / or the plurality of symbols includes a sixth number of symbols and a seventh number of symbols, the sixth number of symbols is determined based on a subcarrier spacing of the uplink transmission, the seventh number of symbols is determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the uplink transmission, and the beam application time is a beam application time of the uplink transmission.

15. The beam application device of claim 14.

19. the duration of the plurality of symbols is a second time value; or the plurality of symbols includes an eighth number of symbols and a ninth number of symbols, the eighth number of symbols being determined based on a subcarrier spacing of the uplink transmission, the ninth number of symbols being determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the uplink transmission, or the eighth number of symbols being determined based on a subcarrier spacing of the downlink transmission, the ninth number of symbols being determined based on a subcarrier spacing of the DCI and a subcarrier spacing of the downlink transmission, and the beam application time is a beam application time of the uplink transmission and the downlink transmission.

15. The beam application device of claim 14.

20. The DCI and the uplink transmission and / or the downlink transmission correspond to component carriers of different carriers, and a subcarrier spacing corresponding to the DCI is smaller than a subcarrier spacing of the uplink transmission and / or a subcarrier spacing of the downlink transmission.

20. Beam application device according to claim 18 or 19.

21. the downlink transmission includes a downlink channel and / or a downlink reference signal; The downlink channel includes at least one of a physical downlink control channel (PDCCH), a physical downlink shared channel (PDSCH), and a physical broadcast channel (PBCH); The downlink reference signal includes at least one of a synchronization signal block (SSB), a channel state information reference signal (CSI-RS), a demodulation reference signal (DMRS), and a positioning reference signal (PRS).

14. The beam application device according to claim 13.

22. the uplink transmission includes an uplink channel and / or an uplink reference signal; The uplink channel includes at least one of a physical uplink shared channel (PUSCH), a physical uplink control channel (PUCCH), and a physical random access channel (PRACH); The uplink reference signal includes at least one of a sounding reference signal (SRS) and a dynamic mobile reference signal (DMRS).

14. The beam application device according to claim 13.

23. The DCI and the uplink transmission and / or the downlink transmission correspond to different component carriers, the different component carriers correspond to different serving cells; or the different component carriers corresponding to a serving cell and a non-serving cell.

18. Beam application device according to claim 17.

24. 1. A beam application device comprising: A transmission module for transmitting downlink control information (DCI) to a terminal device, the DCI including an integrated transmission configuration indication state; and an adaption module for adapting a beam based on the downlink control information.

13. A beam application device comprising:

25. A communication device, comprising: The apparatus includes a processor and a memory, the memory storing a computer program, and the processor executes the computer program stored in the memory such that the apparatus performs the method according to any one of claims 1 to 11. A communication device comprising:

26. A communication device, comprising: The apparatus includes a processor and a memory, the memory having a computer program stored therein, the processor executing the computer program stored in the memory such that the apparatus performs the method of claim 12. A communication device comprising:

27. A communication device, comprising: a processor and an interface circuit; the interface circuit receives and transmits code instructions to the processor; The processor executes the code instructions to perform the method according to any one of claims 1 to 11. A communication device comprising:

28. A communication device, comprising: a processor and an interface circuit; the interface circuit receives and transmits code instructions to the processor; The processor executes the code instructions to perform the method of claim 12. A communication device comprising:

29. A computer-readable storage medium having instructions stored thereon, comprising: When said instructions are executed, a method according to any one of claims 1 to 11 is achieved. A computer-readable storage medium comprising:

30. A computer-readable storage medium having instructions stored thereon, comprising: When the instructions are executed, the method of claim 12 is implemented. A computer-readable storage medium comprising: