WO2022261915A1 - 一种通信方法及其装置 - Google Patents

一种通信方法及其装置 Download PDF

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Publication number
WO2022261915A1
WO2022261915A1 PCT/CN2021/100744 CN2021100744W WO2022261915A1 WO 2022261915 A1 WO2022261915 A1 WO 2022261915A1 CN 2021100744 W CN2021100744 W CN 2021100744W WO 2022261915 A1 WO2022261915 A1 WO 2022261915A1
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WO
WIPO (PCT)
Prior art keywords
cross
interference measurement
indication information
link interference
measurement signal
Prior art date
Application number
PCT/CN2021/100744
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English (en)
French (fr)
Inventor
池连刚
Original Assignee
北京小米移动软件有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 北京小米移动软件有限公司 filed Critical 北京小米移动软件有限公司
Priority to EP21945500.3A priority Critical patent/EP4358441A1/en
Priority to PCT/CN2021/100744 priority patent/WO2022261915A1/zh
Priority to CN202180001871.3A priority patent/CN115707352A/zh
Publication of WO2022261915A1 publication Critical patent/WO2022261915A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/08Testing, supervising or monitoring using real traffic
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/30Monitoring; Testing of propagation channels
    • H04B17/309Measuring or estimating channel quality parameters
    • H04B17/345Interference values
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/14Two-way operation using the same type of signal, i.e. duplex

Definitions

  • the present disclosure relates to the technical field of communication, and in particular, to a communication method and device thereof.
  • full duplex communication full duplex communication
  • full duplex communication technology means that the mutual transmission of services between devices can occur at the same time and on the same frequency bandwidth.
  • full-duplex communication technology is directly applied to the communication system, it may cause serious interference to each device. Therefore, how to reduce the interference in the process of using full-duplex communication between devices has become an urgent problem to be solved at present.
  • Embodiments of the present disclosure provide a communication method and device thereof, which can be applied in the technical field of communication.
  • the network device indicates to the terminal device the resource configuration information for processing the cross-link interference measurement signal, so that the terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby minimizing the interference during the full-duplex communication process of the terminal device , Improve the quality and efficiency of communication transmission.
  • an embodiment of the present disclosure provides a communication method, the method is executed by a network device, and the method includes: sending first indication information, where the first indication information is used to instruct a terminal device to process cross-link interference measurement The resource configuration information of the signal.
  • the network device instructs the terminal device to process the resource configuration information of the cross-link interference measurement signal, so that the terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby minimizing the use of full-duplex communication by the terminal device. Interference in the communication process improves the quality and efficiency of communication transmission.
  • the first indication information includes at least one of the following:
  • the cross-link interference measurement signal is at least one of the following:
  • the transmission beam set for transmitting the cross-link interference measurement signal is indicated by any of the following: specifying a synchronization block SSB set, or specifying a channel state information reference signal CSI RS set.
  • the sending the first indication information includes:
  • the network device can indicate to the terminal device the resource configuration information for processing the cross-link interference measurement signal through RRC signaling, so that the terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby reducing the number of terminal devices as much as possible.
  • the device uses interference during full-duplex communication to improve the quality and efficiency of communication transmission.
  • Sending second indication information where the second indication information is used to instruct the terminal device to activate one or more resource configuration information for processing cross-link interference measurement signals, or the second indication information is used to indicate The terminal device deactivates one or more pieces of resource configuration information for processing cross-link interference measurement signals.
  • the network device can indicate to the terminal device to activate or deactivate the resource configuration information of the cross-link interference measurement signal, so that the terminal device can perform full-duplex communication based on the resource configuration information, thereby reducing the use of full-duplex communication by the terminal device as much as possible. Interference during duplex communication improves the quality and efficiency of communication transmission.
  • the sending the second indication information includes:
  • the second indication information is sent based on a medium access control MAC control unit CE.
  • the network device can indicate to the terminal device to activate or deactivate the resource configuration information of the cross-link interference measurement signal through the MAC CE, so that the terminal device can perform full-duplex communication based on the resource configuration information, thereby reducing the number of terminal devices as much as possible.
  • the device uses interference during full-duplex communication to improve the quality and efficiency of communication transmission.
  • the network device can indicate to the terminal device the resource configuration information that triggers the processing of the cross-link interference measurement signal, so that the terminal device can perform full-duplex communication based on the resource configuration information, thereby minimizing the use of full-duplex communication by the terminal device. Interference in the communication process improves the quality and efficiency of communication transmission.
  • the sending the third indication information includes:
  • the network device can indicate to the terminal device the resource configuration information that triggers the processing of the cross-link interference measurement signal through the DCI, so that the terminal device can perform full-duplex communication based on the resource configuration information, thereby reducing the use of full-duplex communication by the terminal device as much as possible. Interference during duplex communication improves the quality and efficiency of communication transmission.
  • an embodiment of the present disclosure provides another communication method, the method is executed by a first terminal device, and the method includes: receiving first indication information, wherein the first indication information is used to send the first indication information to the first The terminal device indicates resource configuration information for sending the cross-link interference measurement signal.
  • the first terminal device can learn the resource configuration information for sending the cross-link interference measurement signal based on the received first indication information, so that the first terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby The interference during the full-duplex communication process of the terminal equipment is reduced as much as possible, and the quality and efficiency of communication transmission are improved.
  • the first indication information includes at least one of the following:
  • a transmission beam set for transmitting the cross-link interference measurement signal is
  • the cross-link interference measurement signal is at least one of the following:
  • the transmission beam set for transmitting the cross-link interference measurement signal is indicated by any of the following: specifying a synchronization block SSB set, or specifying a channel state information reference signal CSI RS set.
  • the receiving the first indication information includes:
  • the first terminal device can receive the first indication information through RRC signaling to learn the resource configuration information for sending the cross-link interference measurement signal, so that the first terminal device can perform full-duplex based on the obtained resource configuration information. It minimizes the interference during the full-duplex communication of the terminal equipment, and improves the quality and efficiency of communication transmission.
  • receiving second indication information where the second indication information is used to instruct the first terminal device to activate one or more resource configuration information for sending cross-link interference measurement signals, or the second indication information uses Instructing the first terminal device to deactivate one or more pieces of resource configuration information for sending cross-link interference measurement signals.
  • the first terminal device can learn the resource configuration information for activating or deactivating the transmission of the cross-link interference measurement signal based on the received second indication information, so that the first terminal device can perform full-duplex based on the obtained resource configuration information. It minimizes the interference during the full-duplex communication of the terminal equipment, and improves the quality and efficiency of communication transmission.
  • the receiving the second indication information includes:
  • the first terminal device can receive the second indication information through the MAC CE to know the resource configuration information for activating or deactivating the transmission of the cross-link interference measurement signal, so that the first terminal device can use the obtained resource configuration information Full-duplex communication is carried out, thereby minimizing the interference during the use of full-duplex communication by terminal equipment, and improving the quality and efficiency of communication transmission.
  • the third indication information is used to instruct the first terminal device to trigger one or more resource configuration information for sending the cross-link interference measurement signal.
  • the first terminal device may learn the resource configuration information that triggers the transmission of the cross-link interference measurement signal based on the received third indication information, so that the first terminal device may perform full-duplex communication based on the obtained resource configuration information, In this way, the interference during the full-duplex communication process of the terminal equipment is reduced as much as possible, and the quality and efficiency of communication transmission are improved.
  • the receiving the third indication information includes:
  • the third indication information is received.
  • the first terminal device can receive the third indication information through DCI to know the resource configuration information that triggers the transmission of the cross-link interference measurement signal, so that the first terminal device can perform full-duplex operation based on the obtained resource configuration information. Communication, thereby minimizing the interference in the process of terminal equipment using full-duplex communication, and improving the quality and efficiency of communication transmission
  • an embodiment of the present disclosure provides another communication method, the method is executed by a second terminal device, and the method includes: receiving first indication information, wherein the first indication information is used to communicate to the second terminal device
  • the terminal device indicates resource configuration information for processing the cross-link interference measurement signal.
  • the second terminal device may acquire resource configuration information for processing the cross-link interference measurement signal according to the indication of the first indication information. Therefore, the second terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby minimizing interference during the full-duplex communication of the terminal device, and improving communication transmission quality and efficiency.
  • the first indication information includes at least one of the following:
  • the cross-link interference measurement signal is at least one of the following:
  • the receiving beam configured by the network device is used to receive the cross-link interference measurement signal.
  • the receiving the first indication information includes:
  • the second terminal device may acquire resource configuration information for processing the cross-link interference measurement signal according to the indication of the first indication information. Therefore, the second terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby minimizing interference during the full-duplex communication of the terminal device, and improving communication transmission quality and efficiency.
  • receiving second indication information where the second indication information is used to instruct the second terminal device to activate one or more resource configuration information for processing cross-link interference measurement signals, or the second indication information uses Instructing the second terminal device to deactivate one or more pieces of resource configuration information for processing cross-link interference measurement signals.
  • the receiving the second indication information includes:
  • the second terminal device may receive the second indication information through the MAC CE, so as to learn the resource configuration information for activating or deactivating the processing of the cross-link interference measurement signal. Therefore, the second terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby minimizing interference during the full-duplex communication of the terminal device, and improving communication transmission quality and efficiency.
  • the second terminal device may learn resource configuration information that triggers processing of the cross-link interference measurement signal based on the received third indication information. Therefore, the second terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby minimizing interference during the full-duplex communication of the terminal device, and improving communication transmission quality and efficiency.
  • the receiving the third indication information includes:
  • the third indication information is received.
  • the second terminal device may receive the third indication information through the DCI, so as to learn resource configuration information for processing the cross-link interference measurement signal. Therefore, the second terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby minimizing interference during the full-duplex communication of the terminal device, and improving communication transmission quality and efficiency.
  • the embodiment of the present disclosure provides a communication device, which has part or all of the functions of the network device in the method described in the first aspect above, for example, the functions of the communication device may have part or all of the functions in the present disclosure
  • the functions in the embodiments may also have the functions of independently implementing any one of the embodiments in the present disclosure.
  • the functions described above may be implemented by hardware, or may be implemented by executing corresponding software on the hardware.
  • the hardware or software includes one or more units or modules corresponding to the above functions.
  • the structure of the communication device may include a transceiver module and a processing module, and the processing module is configured to support the communication device to perform corresponding functions in the foregoing method.
  • the transceiver module is used to support communication between the communication device and other equipment.
  • the communication device may further include a storage module, which is used to be coupled with the transceiver module and the processing module, and stores necessary computer programs and data of the communication device.
  • the processing module may be a processor
  • the transceiver module may be a transceiver or a communication interface
  • the storage module may be a memory
  • the communication device provided by this disclosure enables the terminal device to perform full-duplex communication based on the obtained resource configuration information by instructing the terminal device to process the resource configuration information of the cross-link interference measurement signal, thereby reducing the use of full-duplex communication by the terminal device as much as possible. Interference in the communication process improves the quality and efficiency of communication transmission.
  • the embodiment of the present disclosure provides a communication device, which has part or all of the functions of the first terminal device in the method described in the second aspect above, for example, the functions of the communication device may have some functions in the present disclosure Or the functions in all the embodiments may also have the function of implementing any one embodiment in the present disclosure alone.
  • the functions described above may be implemented by hardware, or may be implemented by executing corresponding software on the hardware.
  • the hardware or software includes one or more units or modules corresponding to the above functions.
  • the structure of the communication device may include a transceiver module and a processing module, and the processing module is configured to support the communication device to perform corresponding functions in the foregoing method.
  • the transceiver module is used to support communication between the communication device and other equipment.
  • the communication device may further include a storage module, which is used to be coupled with the transceiver module and the processing module, and stores necessary computer programs and data of the communication device.
  • the processing module may be a processor
  • the transceiver module may be a transceiver or a communication interface
  • the storage module may be a memory
  • the communication device provided by the present disclosure can know the resource configuration information for sending the cross-link interference measurement signal based on the received first indication information, so that full-duplex communication can be performed based on the obtained resource configuration information, thereby reducing the use of terminal equipment as much as possible. Interference during full-duplex communication improves the quality and efficiency of communication transmission.
  • the embodiment of the present disclosure provides a communication device, which has part or all of the functions of the second terminal device in the method described in the third aspect above, for example, the functions of the communication device may have some of the functions in the present disclosure Or the functions in all the embodiments may also have the function of implementing any one embodiment in the present disclosure alone.
  • the functions described above may be implemented by hardware, or may be implemented by executing corresponding software on the hardware.
  • the hardware or software includes one or more units or modules corresponding to the above functions.
  • the structure of the communication device may include a transceiver module and a processing module, and the processing module is configured to support the communication device to perform corresponding functions in the foregoing method.
  • the transceiver module is used to support communication between the communication device and other equipment.
  • the communication device may further include a storage module, which is used to be coupled with the transceiver module and the processing module, and stores necessary computer programs and data of the communication device.
  • the processing module may be a processor
  • the transceiver module may be a transceiver or a communication interface
  • the storage module may be a memory
  • the communication device provided in the present disclosure may acquire resource configuration information for processing cross-link interference measurement signals according to the indication of the first indication information. Therefore, full-duplex communication can be performed based on the obtained resource configuration information, thereby minimizing interference in the process of using full-duplex communication by the terminal device, and improving the quality and efficiency of communication transmission.
  • an embodiment of the present disclosure provides a communication device, where the communication device includes a processor, and when the processor invokes a computer program in a memory, it executes the method described in the first aspect above.
  • an embodiment of the present disclosure provides a communication device, where the communication device includes a processor, and when the processor invokes a computer program in a memory, it executes the method described in the second aspect above.
  • an embodiment of the present disclosure provides a communication device, where the communication device includes a processor, and when the processor invokes a computer program in a memory, executes the method described in the third aspect above.
  • an embodiment of the present disclosure provides a communication device, the communication device includes a processor and a memory, and a computer program is stored in the memory; the processor executes the computer program stored in the memory, so that the communication device executes The method described in the first aspect above.
  • an embodiment of the present disclosure provides a communication device, the communication device includes a processor and a memory, and a computer program is stored in the memory; the processor executes the computer program stored in the memory, so that the communication device Execute the method described in the second aspect above.
  • an embodiment of the present disclosure provides a communication device, the communication device includes a processor and a memory, and a computer program is stored in the memory; the processor executes the computer program stored in the memory, so that the communication device Execute the method described in the third aspect above.
  • an embodiment of the present disclosure provides a communication device, the device includes a processor and an interface circuit, the interface circuit is used to receive code instructions and transmit them to the processor, and the processor is used to run the code instructions to enable The device executes the method described in the first aspect above.
  • an embodiment of the present disclosure provides a communication device, the device includes a processor and an interface circuit, the interface circuit is used to receive code instructions and transmit them to the processor, and the processor is used to run the code instructions to enable The device executes the method described in the second aspect above.
  • an embodiment of the present disclosure provides a communication device, the device includes a processor and an interface circuit, the interface circuit is used to receive code instructions and transmit them to the processor, and the processor is used to run the code instructions to enable The device executes the method described in the third aspect above.
  • an embodiment of the present invention provides a computer-readable storage medium for storing instructions used by the above-mentioned network device, and when the instructions are executed, the method described in the above-mentioned first aspect is implemented.
  • the embodiment of the present invention provides a computer-readable storage medium, which is used to store instructions used by the above-mentioned first terminal device, and when the instructions are executed, the method described in the above-mentioned second aspect is implemented .
  • an embodiment of the present invention provides a computer-readable storage medium for storing instructions used by the above-mentioned second terminal device, and when the instructions are executed, the method described in the above-mentioned third aspect is implemented .
  • the present disclosure further provides a computer program product including a computer program, which, when run on a computer, causes the computer to execute the method described in the first aspect above.
  • the present disclosure further provides a computer program product including a computer program, which, when run on a computer, causes the computer to execute the method described in the second aspect above.
  • the present disclosure further provides a computer program product including a computer program, which, when run on a computer, causes the computer to execute the method described in the third aspect above.
  • the present disclosure provides a chip system, which includes at least one processor and an interface, configured to support the network device to implement the functions involved in the first aspect, for example, determine or process the functions involved in the above method At least one of data and information.
  • the chip system further includes a memory, and the memory is used for saving necessary computer programs and data of the network device.
  • the system-on-a-chip may consist of chips, or may include chips and other discrete devices.
  • the present disclosure provides a chip system, the chip system includes at least one processor and an interface, configured to support the first terminal device to implement the functions involved in the second aspect, for example, determine or process the above method At least one of the data and information involved.
  • the chip system further includes a memory, and the memory is configured to store necessary computer programs and data of the first terminal device.
  • the system-on-a-chip may consist of chips, or may include chips and other discrete devices.
  • the present disclosure provides a chip system, the chip system includes at least one processor and an interface, configured to support the second terminal device to implement the functions involved in the third aspect, for example, determine or process the above method At least one of the data and information involved.
  • the chip system further includes a memory, and the memory is configured to store necessary computer programs and data of the second terminal device.
  • the system-on-a-chip may consist of chips, or may include chips and other discrete devices.
  • the present disclosure provides a computer program that, when run on a computer, causes the computer to execute the method described in the first aspect above.
  • the present disclosure provides a computer program that, when run on a computer, causes the computer to execute the method described in the second aspect above.
  • the present disclosure provides a computer program that, when run on a computer, causes the computer to execute the method described in the third aspect above.
  • FIG. 1 is a schematic structural diagram of a communication system provided by an embodiment of the present disclosure
  • Fig. 2 is a schematic flowchart of a communication method provided by an embodiment of the present disclosure
  • FIG. 3 is a schematic flowchart of a communication method provided by another embodiment of the present disclosure.
  • Fig. 4 is a schematic flowchart of a communication method provided by another embodiment of the present disclosure.
  • FIG. 5 is a schematic flowchart of a communication method provided by another embodiment of the present disclosure.
  • FIG. 6 is a schematic flowchart of a communication method provided by another embodiment of the present disclosure.
  • Fig. 7 is a schematic flowchart of a communication method provided by an embodiment of the present disclosure.
  • FIG. 8 is a schematic flowchart of a communication method provided by another embodiment of the present disclosure.
  • FIG. 9 is a schematic flowchart of a communication method provided by another embodiment of the present disclosure.
  • FIG. 10 is a schematic flowchart of a communication method provided by another embodiment of the present disclosure.
  • Fig. 11 is a schematic flowchart of a communication method provided by another embodiment of the present disclosure.
  • Fig. 12 is a schematic flowchart of a communication method provided by another embodiment of the present disclosure.
  • Fig. 13 is a schematic flowchart of a communication method provided by another embodiment of the present disclosure.
  • FIG. 14 is a schematic structural diagram of a communication device according to an embodiment of the present disclosure.
  • FIG. 15 is a schematic structural diagram of a communication device according to another embodiment of the present disclosure.
  • FIG. 16 is a schematic structural diagram of a chip according to an embodiment of the present disclosure.
  • Full-duplex communication can be divided into frequency division multiplexing (FDM) and time division multiplexing (TDM).
  • FDM frequency division multiplexing
  • TDM time division multiplexing
  • FDM means that the entire transmission frequency band can be divided into several frequency channels, each user can occupy one frequency channel to transmit data, and a guard frequency band is left between the frequency channels.
  • TDM means that time can be divided into small time slices, and each time slice is divided into several channels (time slots), and each user can occupy a channel to transmit data.
  • Radio resource control (RRC)
  • RRC can also be called radio resource management (radio resource management, RRM) or radio resource allocation (radio resource allocation, RRA). Under this condition, make full use of the limited wireless network resources as much as possible, ensure that the planned coverage area is reached, and improve the service capacity and resource utilization as much as possible.
  • RRM radio resource management
  • RRA radio resource allocation
  • DCI Downlink control information
  • DCI may include uplink and downlink resource allocation, hybrid automatic repeat request information, power control, etc.
  • FIG. 1 is a schematic structural diagram of a communication system provided by an embodiment of the present disclosure.
  • the communication system may include but not limited to a network device, a first terminal device, and a second terminal device.
  • the number and form of the devices shown in Figure 1 are for example only and do not constitute a limitation to the embodiments of the present disclosure. In practical applications It may include two or more network devices, two or more first terminal devices, and two or more first terminal devices.
  • the communication system shown in FIG. 1 includes a network device 11 , a first terminal device 12 and a second terminal device 13 as an example.
  • LTE long term evolution
  • 5th generation 5th generation
  • 5G new radio new radio, NR
  • side link in this embodiment of the present application may also be referred to as a side link or a through link.
  • the network device 11 in the embodiment of the present application is an entity on the network side for transmitting or receiving signals.
  • the network device 11 may be an evolved base station (evolved NodeB, eNB), a transmission point (transmission reception point, TRP), a next generation base station (next generation NodeB, gNB) in an NR system, or a base station in other future mobile communication systems Or an access node in a wireless fidelity (wireless fidelity, WiFi) system, etc.
  • eNB evolved NodeB
  • TRP transmission reception point
  • gNB next generation base station
  • gNB next generation NodeB
  • the embodiment of the present application does not limit the specific technology and specific device form adopted by the network device.
  • the network device 11 provided in the embodiment of the present application may be composed of a centralized unit (central unit, CU) and a distributed unit (distributed unit, DU), wherein the CU may also be called a control unit (control unit).
  • the structure of the DU can separate the protocol layers of network devices, such as base stations. The functions of some protocol layers are centrally controlled by the CU, and the remaining part or all of the functions of the protocol layers are distributed in the DU, and the CU centrally controls the DU.
  • the first terminal device 12 and the second terminal device 13 in the embodiment of the present application are entities on the user side for receiving or transmitting signals, such as mobile phones.
  • the terminal equipment may also be called terminal equipment (terminal), user equipment (user equipment, UE), mobile station (mobile station, MS), mobile terminal equipment (mobile terminal, MT) and so on.
  • the terminal device can be a car with communication functions, a smart car, a mobile phone, a wearable device, a tablet computer (Pad), a computer with a wireless transceiver function, a virtual reality (virtual reality, VR) terminal device, an augmented reality (augmented reality (AR) terminal equipment, wireless terminal equipment in industrial control (industrial control), wireless terminal equipment in self-driving (self-driving), wireless terminal equipment in remote medical surgery (remote medical surgery), smart grid ( Wireless terminal devices in smart grid, wireless terminal devices in transportation safety, wireless terminal devices in smart city, wireless terminal devices in smart home, etc.
  • the embodiment of the present application does not limit the specific technology and specific device form adopted by the first terminal device 12 and the second terminal device 13 .
  • FIG. 2 is a schematic flowchart of a communication method provided by an embodiment of the present disclosure, and the method is executed by a network device. As shown in Figure 2, the method may include but not limited to the following steps:
  • Step 21 Send first indication information, where the first indication information is used to indicate resource configuration information for processing the cross-link interference measurement signal to the terminal device.
  • the terminal device may be the first terminal device, or may also be the second terminal device.
  • the first terminal device may determine the resource configuration information for sending a cross link interference measurement signal (cross link interference measurement signal) according to the first indication information sent by the network device, so as to perform full communication with the network device based on the determined resource configuration information. duplex communication.
  • the second terminal device may determine resource configuration information for receiving the cross-link interference measurement signal according to the first indication information sent by the network device, so as to perform full-duplex communication with the network device based on the determined resource configuration information.
  • a network device can perform full-duplex communication according to the full-duplex communication information it supports.
  • a terminal device when a terminal device performs full-duplex communication, there may be self-interference and mutual interference between adjacent terminal devices, which may cause interference to communication transmission and affect the quality and efficiency of communication transmission.
  • the network device can indicate the resource configuration information for processing the cross-link interference measurement signal to the terminal device, so that the terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby reducing the use of full-duplex communication by the terminal device as much as possible. Interference during duplex communication improves the quality and efficiency of communication transmission.
  • the first indication information may indicate time-frequency domain resource configuration information for sending the cross-link interference measurement signal.
  • the time-frequency domain resource configuration information may be the time-domain resource configuration information for sending the cross-link interference measurement signal, or may also be the frequency-domain resource configuration information, or may also be the time-domain and frequency-domain resource configuration information, etc., The present disclosure does not limit this.
  • the first indication information indicates to the first terminal device that the time-domain resources for sending the cross-link interference measurement signal are t1 to t2. Then, after receiving the first indication information, the first terminal device can send the cross-link interference measurement signal within the time domain resource from t1 to t2.
  • the first indication information may indicate the transmission beam set for transmitting the cross-link interference measurement signal.
  • the set of sending beams there may be one sending beam, or there may be multiple sending beams, etc., which is not limited in the present disclosure.
  • the first indication information indicates to the first terminal device that beam 1 and beam 2 may be used to send cross-link interference measurement signals. After receiving the first indication information, the first terminal device can use beam 1 and beam 2 to send cross-link interference measurement signals.
  • the first indication information may indicate time-frequency domain resource configuration information for measuring cross-link interference measurement signals.
  • the first indication information indicates to the second terminal device that the frequency domain resources for measuring cross-link interference measurement signals are F1 and F2. After receiving the first indication information, the second terminal device can measure the cross-link interference measurement signal on the F1 and F2 frequency domain resources.
  • the first indication information may indicate time-frequency domain resource configuration information for receiving the cross-link interference measurement signal.
  • the first indication information indicates to the second terminal device that the frequency domain resource for receiving the cross-link interference measurement signal is F1. After receiving the first indication information, the second terminal device can receive the cross-link interference measurement signal on the F1 frequency domain resource.
  • the first indication information may indicate a receiving beam set for receiving the cross-link interference measurement signal.
  • the receiving beam set there may be one receiving beam, or there may be multiple receiving beams, etc., which is not limited in the present disclosure.
  • the first indication information indicates that the second terminal device can use the beam 1 to receive the cross-link interference measurement signal. After receiving the first indication information, the second terminal device can use the beam to receive the cross-link interference measurement signal.
  • the first indication information may indicate a reporting threshold of the cross-link interference measurement.
  • the first indication information indicates to the second terminal device that the reporting threshold of the cross-link interference measurement is X.
  • the second terminal device can report when the cross-link interference measurement exceeds X.
  • the first indication information may include one or more of the above contents, which is not limited in the present disclosure.
  • the cross-link interference measurement signal may include at least one of the following: a physical uplink shared channel (PUSCH) signal; a physical uplink control channel (PUCCH) signal; a sounding reference signal (sounding reference signal, SRS) and the specified cross-link interference measurement signal.
  • PUSCH physical uplink shared channel
  • PUCCH physical uplink control channel
  • SRS sounding reference signal
  • cross-link interference measurement signals There may be multiple cross-link interference measurement signals, and the specified cross-link interference measurement signal may be one or several of them, which is not limited in the present disclosure.
  • the first indication information indicates that the frequency domain resource for sending the PUSCH signal is F1, and the frequency domain resource for sending the PUCCH signal is F2.
  • the first terminal device can send the PUSCH signal on the F1 frequency domain resource and send the PUCCH signal on the F2 frequency domain resource.
  • the transmission beam set of the cross-link interference measurement signal may be indicated by any of the following: specifying a synchronization block (synchronization signal block, SSB) set, or specifying a channel state information (channel state information, CSI) reference signal ( reference signal, RS) set.
  • a synchronization block synchronization signal block, SSB
  • a channel state information channel state information, CSI
  • reference signal reference signal
  • the SSB may be composed of primary synchronization signals (primary synchronization signals, PSS), secondary synchronization signals (secondary synchronization signals, SSS), and broadcast physical channels (physical broadcast channel, PBCH).
  • primary synchronization signals primary synchronization signals
  • PSS primary synchronization signals
  • secondary synchronization signals secondary synchronization signals
  • broadcast physical channels physical broadcast channel, PBCH
  • SSB set there may be multiple SSBs in the SSB set, and there may be one SSB or several SSBs in the specified SSB set, which is not limited in this disclosure.
  • CSI RSs there may be multiple CSI RSs in the CSI RS, and there may be one CSI RS in the specified CSI RS set, or there may be several CSI RSs, etc., and this disclosure does not limit this.
  • the designated SSB set includes the PSS, and the transmit beam sets indicated by the PSS are beam 1 and beam 3 .
  • the first terminal device can use beam 1 and beam 3 to send cross-link interference measurement signals.
  • the network device instructs the terminal device to process the resource configuration information of the cross-link interference measurement signal, so that the terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby reducing the use of full-duplex communication by the terminal device as much as possible. Interference during duplex communication improves the quality and efficiency of communication transmission.
  • FIG. 3 is a schematic flowchart of a communication method provided by an embodiment of the present disclosure, and the method is executed by a network device. As shown in Figure 3, the method may include but not limited to the following steps:
  • Step 31 Based on the RRC signaling, send first indication information, where the first indication information is used to indicate resource configuration information for processing the cross-link interference measurement signal to the terminal device.
  • protocol agreement or network device configuration a specific bit (bit) may be added in the RRC signaling, and the value of the added bit represents the first indication information. Therefore, after receiving the RRC signaling sent by the network device, the terminal device obtains the first indication information and the like according to the value of a specific bit according to the protocol agreement, which is not limited in the present disclosure.
  • Step 32 Send second instruction information, where the second instruction information is used to instruct the terminal device to activate one or more resource configuration information for processing cross-link interference measurement signals, or the second instruction information is used to instruct the terminal device to deactivate one or a plurality of resource configuration information for processing cross-link interference measurement signals.
  • protocol agreement or network device configuration a specific bit can be added to the second indication information, and the value of the added bit can represent the second indication information.
  • the protocol stipulates that: when the value of the added bit is 1, it indicates that the resource configuration information for processing all the cross-link interference measurement signals indicated by the first indication information is activated; when the value of the added bit is 0, it indicates that the All resource configuration information for processing cross-link interference measurement signals indicated by the first indication information is activated. Therefore, after the terminal device receives the second indication information sent by the network device, according to the protocol agreement, according to the value of a specific bit, it can know whether to activate the resource configuration of all processing cross-link interference measurement signals indicated by the first indication information information, or deactivate all resource configuration information for processing cross-link interference measurement signals indicated by the first indication information, and the like.
  • Another example is protocol agreement or network device configuration: there are 4 added bits in total, and each bit corresponds to resource configuration information for processing cross-link interference measurement signals. If a value of one of the bits is 1, it indicates that the resource configuration information corresponding to the bit is activated for processing the cross-link interference measurement signal; Resource configuration information for processing cross-link interference measurement signals. Or, if one of the bits takes a value of 0, it means deactivating the resource configuration information corresponding to the bit for processing cross-link interference measurement signals; if multiple bits take a value of 0, it means deactivating multiple bits The bits respectively correspond to the resource configuration information for processing the cross-link interference measurement signal.
  • the terminal device After the terminal device receives the second indication information sent by the network device, according to the agreement, according to the value of a specific bit, it can know whether to activate one or more resource configuration information for processing the cross-link interference measurement signal, or It is to deactivate one or more resource configuration information for processing cross-link interference measurement signals and the like.
  • the network device can send the first indication information based on RRC signaling to indicate to the terminal device the resource configuration information for processing the cross-link interference measurement signal, and can also send the second indication information to the terminal device Instructing to activate or deactivate the resource configuration information for processing the cross-link interference measurement signal can enable the terminal device to perform full-duplex communication based on the obtained resource configuration information, thereby minimizing the interference during the full-duplex communication process of the terminal device, Improve the quality and efficiency of communication transmission.
  • FIG. 4 is a schematic flowchart of a communication method provided by an embodiment of the present disclosure, and the method is executed by a network device. As shown in Figure 4, the method may include but not limited to the following steps:
  • Step 41 Send first indication information based on RRC signaling, where the first indication information is used to indicate resource configuration information for processing a cross-link interference measurement signal to a terminal device.
  • Step 42 Send third indication information, where the third indication information is used to instruct the terminal device to trigger one or more resource configuration information for processing cross-link interference measurement signals.
  • the value of the first 2 bits in the third indication information may be specified in the protocol or configured by the network device, which is used to represent the set of transmission beams that trigger the transmission of the cross-link interference measurement signal and the reporting of the cross-link interference measurement signal threshold.
  • the value of the first two bits is "01", it indicates that the transmission beam set that triggers the transmission of the cross-link interference measurement signal; when the value of the first two bits is "10", it indicates that the cross-link interference measurement signal is triggered.
  • the reporting threshold of the channel interference measurement signal When the value of the first two bits is "11", it represents the set of transmission beams that trigger the transmission of the cross-link interference measurement signal, the reporting threshold of the cross-link interference measurement signal, and so on. Therefore, after the terminal device receives the third indication information sent by the network device, according to the agreement, according to the value of a specific bit, it can know the resource configuration information that triggers one or more processing of the cross-link interference measurement signal.
  • values of multiple bits may also be used to represent resource configuration information that triggers one or more processing of cross-link interference measurement signals, etc., which is not limited in the present disclosure.
  • the network device can send the first indication information based on RRC signaling to indicate to the terminal device the resource configuration information for processing the cross-link interference measurement signal, and can also send the third indication information based on DCI to Instructing the terminal device to trigger the processing of the resource configuration information of the cross-link interference measurement signal can enable the terminal device to perform full-duplex communication based on the obtained resource configuration information, thereby minimizing the interference in the process of using the full-duplex communication of the terminal device, Improve the quality and efficiency of communication transmission.
  • FIG. 5 is a schematic flowchart of a communication method provided by an embodiment of the present disclosure, and the method is executed by a network device. As shown in Figure 5, the method may include but not limited to the following steps:
  • Step 51 Send first indication information based on RRC signaling, where the first indication information is used to indicate resource configuration information for processing a cross-link interference measurement signal to a terminal device.
  • Step 52 Based on the medium access control control unit, send second indication information, where the second indication information is used to instruct the terminal device to activate one or more resource configuration information for processing cross-link interference measurement signals, or the second indication information The resource configuration information used to instruct the terminal device to deactivate one or more processing cross-link interference measurement signals.
  • media access control (media access control, MAC) is mainly responsible for controlling and connecting the physical medium of the physical layer.
  • the corresponding relationship between the resource configuration information of the cross-link interference measurement signal and the bits of the MAC control element can be processed according to agreement or network device configuration.
  • the protocol stipulates that the time-frequency domain resource configuration information for sending cross-link interference measurement signals corresponds to the first bit of MAC CE, and the time-frequency domain resource configuration information for receiving cross-link interference measurement signals corresponds to the second bit of MAC CE. bit and so on. The present disclosure does not limit this.
  • the value of the corresponding bit can be set to 1; if a certain processing cross-link interference measurement signal is deactivated If the resource configuration information of the channel interference measurement signal is used, the value of the corresponding bit may be set to 0.
  • the values of multiple bits of the MAC CE represent resource configuration information for processing cross-link interference measurement signals.
  • the MAC CE contains 2 bits, and handles the resource configuration information of the cross-link interference measurement signal, which are the set of transmission beams for sending the cross-link interference measurement signal and the set of receive beams for receiving the cross-link interference measurement signal.
  • the value of the two bits is 00, it represents the deactivation of the transmit beam set for sending the cross-link interference measurement signal and the receive beam set for receiving the cross-link interference measurement signal; when its value is 01, it represents the activation of the transmit cross-link interference
  • the transmit beam set of the measurement signal deactivate the receive beam set for receiving the cross-link interference measurement signal; when its value is 10, it represents the activation of the receive beam set for receiving the cross-link interference measurement signal, and deactivates the transmission of the cross-link interference measurement signal
  • the transmit beam set of when its value is 11, it represents the activation of the transmit beam set for transmitting the cross-link interference measurement signal and the receive beam set for receiving the cross-link interference measurement signal, and so on.
  • Step 53 Send third indication information based on the DCI, where the third indication information is used to instruct the terminal device to trigger one or more resource configuration information for processing the cross-link interference measurement signal.
  • a specific bit can be added to the DCI, and the added bit can represent the third indication information.
  • the value of the added bit in the DCI is 1, it represents the resource configuration information that triggers the cross-link interference measurement signal corresponding to the bit.
  • each bit corresponds to resource configuration information for processing cross-link interference measurement signals.
  • the first bit corresponds to the time-frequency domain resource configuration information for sending the cross-link interference measurement signal
  • the second bit corresponds to the transmission beam set for sending the cross-link interference measurement signal
  • the third bit corresponds to The time-frequency domain resource configuration information for receiving the cross-link interference measurement signal
  • the fourth bit corresponds to the receiving beam set for receiving the cross-link interference measurement signal. If the values of the first bit and the second bit are both 1, after receiving the DCI sent by the network device, the terminal device will trigger the transmission of the cross-link interference measurement according to the value of the specific bit according to the agreement.
  • the time-frequency domain resource configuration information of the signal and the set of transmission beams that trigger the transmission of the cross-link interference measurement signal etc.
  • the network device can send the first indication information based on the RRC signaling to indicate to the terminal equipment the resource configuration information for processing the cross-link interference measurement signal, and then can also send the second indication information based on the MAC CE , to instruct the terminal device to activate or deactivate the resource configuration information for processing the cross-link interference measurement signal, and may also send third indication information, to instruct the terminal device to trigger the processing of the resource configuration information for the cross-link interference measurement signal, so that the terminal device Full-duplex communication can be performed based on the obtained resource configuration information, thereby minimizing interference in the process of using full-duplex communication by terminal equipment, and improving the quality and efficiency of communication transmission.
  • FIG. 6 is a schematic flowchart of a communication method provided by an embodiment of the present disclosure, and the method is executed by a first terminal device. As shown in Figure 6, the method may include but not limited to the following steps:
  • Step 61 Receive first indication information, where the first indication information is used to indicate resource configuration information for sending a cross-link interference measurement signal to the first terminal device.
  • a network device can perform full-duplex communication according to the full-duplex communication information it supports.
  • a terminal device when a terminal device performs full-duplex communication, there may be self-interference and mutual interference between adjacent terminal devices, which may cause interference to communication transmission and affect the quality and efficiency of communication transmission.
  • the first terminal device may obtain the resource configuration information for sending the cross-link interference measurement signal by receiving the first indication information sent by the network device. Therefore, the first terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby minimizing interference during the full-duplex communication of the terminal device, and improving communication transmission quality and efficiency.
  • the first indication information may include at least one of the following: time-frequency domain resource configuration information for sending the cross-link interference measurement signal, and a transmission beam set for sending the cross-link interference measurement signal.
  • the cross-link interference measurement signal may be at least one of the following: a PUSCH signal; a PUCCH signal; an SRS signal; and a designated cross-link interference measurement signal.
  • the transmit beam set for transmitting the cross-link interference measurement signal may be indicated by any of the following: specifying a set of SSBs, or specifying a set of CSI RSs.
  • SSB set There may be multiple SSBs in the SSB set, and there may be one SSB or several SSBs in the specified SSB set, which is not limited in this disclosure.
  • the uplink beam corresponding to the optimal receiving beam of the specified SSB set may be determined as the transmitting beam of the cross-link interference measurement signal.
  • the optimal receiving beam is used to receive the beam, so that the interference can be reduced as much as possible.
  • the uplink beam corresponding to the optimal receiving beam of the specified SSB set may be determined as the transmission beam of the cross-link interference measurement signal, so as to Minimize cross-link interference measurement signal transmission interference.
  • the uplink beam corresponding to the optimal receiving beam of the specified CSI RS set can also be determined as the transmission beam of the cross-link interference measurement signal, so as to reduce the interference as much as possible and improve the accuracy of cross-link interference measurement signal transmission and reliability
  • the first terminal device can obtain the resource configuration information for sending the cross-link interference measurement signal according to the indication of the first indication information, so that the first terminal device can perform full-duplex operation based on the obtained resource configuration information. Communication, thereby minimizing the interference in the process of using full-duplex communication by terminal equipment, and improving the quality and efficiency of communication transmission.
  • FIG. 7 is a schematic flowchart of a communication method provided by an embodiment of the present disclosure, and the method is executed by a first terminal device. As shown in Figure 7, the method may include but not limited to the following steps:
  • Step 71 Based on the RRC signaling, receive first indication information, where the first indication information is used to indicate resource configuration information for sending a cross-link interference measurement signal to the first terminal device.
  • protocol agreement or network device configuration a specific bit can be added in the RRC signaling, and the value of the added bit can represent the first indication information. Therefore, after receiving the RRC signaling sent by the network device, the first terminal device obtains the first indication information and the like according to the value of a specific bit according to the protocol agreement, which is not limited in the present disclosure.
  • Step 72 Receive second indication information, where the second indication information is used to instruct the first terminal device to activate one or more resource configuration information for sending cross-link interference measurement signals, or the second indication information is used to indicate the first terminal device The device deactivates one or more resource configuration information for sending cross-link interference measurement signals.
  • protocol agreement or network device configuration a specific bit can be added to the second indication information, and the value of the added bit can represent the second indication information. Therefore, after receiving the second indication information sent by the network device, the first terminal device can know whether to activate or deactivate the sending cross-link indicated by the first indication information according to the value of the specific bit according to the protocol agreement. Resource configuration information of the interference measurement signal and the like.
  • the first terminal device can receive the first indication information based on the RRC signaling, so as to obtain the resource configuration information for sending the cross-link interference measurement signal, and can also determine according to the indication of the received second indication information activating or deactivating the resource configuration information for sending the cross-link interference measurement signal, so that the first terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby minimizing interference during the use of full-duplex communication by the terminal device, Improve the quality and efficiency of communication transmission.
  • FIG. 8 is a schematic flowchart of a communication method provided by an embodiment of the present disclosure, and the method is executed by a first terminal device. As shown in Figure 8, the method may include but not limited to the following steps:
  • Step 81 Based on the RRC signaling, receive first indication information, where the first indication information is used to indicate resource configuration information for sending a cross-link interference measurement signal to the first terminal device.
  • step 81 For the specific content and implementation manner of step 81, reference may be made to the descriptions of other embodiments of the present disclosure, which will not be repeated here.
  • Step 82 Receive third indication information, where the third indication information is used to instruct the first terminal device to trigger one or more resource configuration information for sending cross-link interference measurement signals.
  • protocol agreement or network device configuration a specific bit can be added to the third indication information, and the value of the added bit can represent the third indication information. Therefore, after the first terminal device receives the third indication information sent by the network device, according to the agreement, and according to the value of a specific bit, it can know the resource that triggers the first indication information to send the cross-link interference measurement signal configuration information and more.
  • the first terminal device can receive the first indication information based on RRC signaling to learn the resource configuration information for sending the cross-link interference measurement signal, and can also learn the Trigger and send the resource configuration information of the cross-link interference measurement signal, so that full-duplex communication can be performed based on the obtained resource configuration information, thereby minimizing the interference during the full-duplex communication of the terminal device and improving the quality and efficiency of communication transmission .
  • FIG. 9 is a schematic flowchart of a communication method provided by an embodiment of the present disclosure, and the method is executed by a first terminal device. As shown in Figure 9, the method may include but not limited to the following steps:
  • Step 91 Based on the RRC signaling, receive first indication information, where the first indication information is used to indicate resource configuration information for sending a cross-link interference measurement signal to the first terminal device.
  • step 91 For the specific content and implementation manner of step 91, reference may be made to the descriptions of other embodiments of the present disclosure, which will not be repeated here.
  • Step 92 Based on the MAC CE, receive second indication information, where the second indication information is used to instruct the first terminal device to activate one or more resource configuration information for sending cross-link interference measurement signals, or the second indication information is used to Instructing the terminal device to deactivate one or more resource configuration information for sending cross-link interference measurement signals.
  • the correspondence between the resource configuration information of the cross-link interference measurement signal sent and the specific bits in the MAC CE may be agreed upon in the protocol or configured by the network device. For another example, it can be set that when the value of the bit is 1, it indicates that the corresponding resource configuration information for transmitting the cross-link interference measurement signal is activated, and when the value of the bit is 0, it indicates that the corresponding transmission of the cross-link interference measurement signal is deactivated. resource configuration information. Therefore, the first terminal device can determine whether to activate one or more resource configuration information for sending cross-link interference measurement signals, or deactivate one or more sending cross-link interference measurement signals according to the value of a specific bit in the received MAC CE. Resource configuration information of the channel interference measurement signal.
  • Step 93 Based on the DCI, receive third indication information, where the third indication information is used to instruct the first terminal device to trigger one or more resource configuration information for sending cross-link interference measurement signals.
  • a specific bit can be added to the DCI, and the added bit can represent the third indication information.
  • the first terminal device can determine the resource configuration information that triggers the corresponding sending of the cross-link interference measurement signal according to the value of a specific bit in the received DCI.
  • the first terminal device can receive the first indication information based on the RRC signaling to determine the resource configuration information for sending the cross-link interference measurement signal, and then determine activation or deactivation based on the indication of the MAC CE
  • the resource configuration information for sending the cross-link interference measurement signal may also be determined based on the DCI indication to trigger the sending of the resource configuration information for the cross-link interference measurement signal, so that the first terminal device can perform full-duplex communication based on the obtained resource configuration information , so as to minimize the interference of the terminal equipment in the process of using full-duplex communication, and improve the quality and efficiency of communication transmission.
  • FIG. 10 is a schematic flowchart of a communication method provided by an embodiment of the present disclosure, and the method is executed by a second terminal device. As shown in Figure 10, the method may include but not limited to the following steps:
  • Step 101 receiving first indication information, where the first indication information is used to indicate resource configuration information for processing a cross-link interference measurement signal to a second terminal device.
  • a network device can perform full-duplex communication according to the full-duplex communication information it supports.
  • a terminal device when a terminal device performs full-duplex communication, there may be self-interference and mutual interference between adjacent terminal devices, which may cause interference to communication transmission and affect the quality and efficiency of communication transmission.
  • the second terminal device may learn the resource configuration information for processing the cross-link interference measurement signal by receiving the first indication information sent by the network device. Therefore, the second terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby minimizing interference during the full-duplex communication of the terminal device and improving communication transmission quality and efficiency.
  • the first indication information may include at least one of the following: time-frequency domain resource configuration information for measuring cross-link interference measurement signals; time-frequency domain resource configuration information for receiving cross-link interference measurement signals; receiving cross-link interference measurement signal time-frequency domain resource configuration information; A set of receiving beams for the interference measurement signal; and a reporting threshold of the cross-link interference measurement.
  • the cross-link interference measurement signal may be at least one of the following: a PUSCH signal; a PUCCH signal; an SRS signal; and a designated cross-link interference measurement signal.
  • a receiving beam of a physical downlink control channel may be used to receive the cross-link interference measurement signal.
  • PDCCH physical downlink control channel
  • the receiving beam of the PDCCH is beam 1, and the second terminal device may receive the cross-link interference measurement signal through beam 1.
  • a receiving beam of a physical downlink shared channel may also be used to receive the cross-link interference measurement signal.
  • a physical downlink shared channel physical downlink shared channel, PDSCH
  • the receiving beam of the PDSCH is beam 3, and the second terminal device may receive the cross-link interference measurement signal through beam 3.
  • the receiving beam configured by the network device may also be used to receive the cross-link interference measurement signal.
  • the second terminal device may receive the cross-link interference measurement signal through beam 4.
  • the second terminal device can acquire resource configuration information for processing the cross-link interference measurement signal according to the indication of the first indication information. Therefore, the second terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby minimizing interference during the full-duplex communication of the terminal device, and improving communication transmission quality and efficiency.
  • FIG. 11 is a schematic flowchart of a communication method provided by an embodiment of the present disclosure, and the method is executed by a second terminal device. As shown in Figure 11, the method may include but not limited to the following steps:
  • Step 111 Based on the RRC signaling, receive first indication information, where the first indication information is used to indicate resource configuration information for processing cross-link interference measurement signals to the second terminal device.
  • step 111 For the specific content and implementation manner of step 111, reference may be made to the descriptions of other embodiments of the present disclosure, which will not be repeated here.
  • Step 112 Receive second indication information, where the second indication information is used to instruct the second terminal device to activate one or more resource configuration information for processing the cross-link interference measurement signal, or the second indication information is used to indicate the second terminal device The device deactivates one or more resource configuration information for processing the cross-link interference measurement signal.
  • the second terminal device can receive the first indication information based on RRC signaling, so as to obtain the resource configuration information for processing the cross-link interference measurement signal, and can also determine according to the indication of the received second indication information activating or deactivating the resource configuration information for processing the cross-link interference measurement signal, so that the second terminal device can perform full-duplex communication based on the obtained resource configuration information, thereby minimizing interference during the full-duplex communication of the terminal device, Improve the quality and efficiency of communication transmission.
  • FIG. 12 is a schematic flowchart of a communication method provided by an embodiment of the present disclosure, and the method is executed by a second terminal device. As shown in Figure 12, the method may include but not limited to the following steps:
  • Step 121 Based on RRC signaling, receive first indication information, where the first indication information is used to indicate to the second terminal device resource configuration information for processing cross-link interference measurement signals.
  • step 121 For the specific content and implementation manner of step 121, reference may be made to the descriptions of other embodiments of the present disclosure, which will not be repeated here.
  • Step 122 Receive third indication information, where the third indication information is used to instruct the second terminal device to trigger one or more resource configuration information for processing cross-link interference measurement signals.
  • step 122 for the specific content and implementation manner of step 122, reference may be made to the descriptions of other embodiments of the present disclosure, which will not be repeated here.
  • the second terminal device can receive the first indication information based on RRC signaling, so as to obtain the resource configuration information for processing the cross-link interference measurement signal, and can also obtain the Trigger and process the resource configuration information of the cross-link interference measurement signal, so that full-duplex communication can be performed based on the obtained resource configuration information, thereby minimizing the interference during the full-duplex communication process of the terminal device and improving the quality and efficiency of communication transmission .
  • FIG. 13 is a schematic flowchart of a communication method provided by an embodiment of the present disclosure, and the method is executed by a second terminal device. As shown in Figure 13, the method may include but not limited to the following steps:
  • Step 131 Based on the RRC signaling, receive first indication information, where the first indication information is used to indicate resource configuration information for processing cross-link interference measurement signals to the second terminal device.
  • step 131 For the specific content and implementation manner of step 131, reference may be made to the descriptions of other embodiments of the present disclosure, which will not be repeated here.
  • Step 132 Based on the MAC CE, receive second indication information, where the second indication information is used to instruct the second terminal device to activate one or more resource configuration information for processing cross-link interference measurement signals, or the second indication information is used to Instructing the second terminal device to deactivate one or more resource configuration information for processing cross-link interference measurement signals.
  • step 131 For the specific content and implementation manner of step 131, reference may be made to the descriptions of other embodiments of the present disclosure, which will not be repeated here.
  • Step 133 Based on the DCI, receive third indication information, where the third indication information is used to instruct the second terminal device to trigger one or more resource configuration information for processing the cross-link interference measurement signal.
  • step 133 For the specific content and implementation manner of step 133, reference may be made to the descriptions of other embodiments of the present disclosure, which will not be repeated here.
  • the second terminal device can receive the first indication information based on RRC signaling to determine the resource configuration information that triggers the cross-link interference measurement signal, and then determine activation or deactivation based on the indication of the MAC CE Process the resource configuration information of the cross-link interference measurement signal, and also determine and trigger the processing of the resource configuration information of the cross-link interference measurement signal based on the indication of the DCI, so that the second terminal device can perform full-duplex communication based on the obtained resource configuration information , so as to minimize the interference of the terminal equipment in the process of using full-duplex communication, and improve the quality and efficiency of communication transmission.
  • the methods provided in the embodiments of the present disclosure are introduced from the perspectives of the network device, the first terminal device, and the second terminal device.
  • the network device, the first terminal device and the second terminal device may include a hardware structure and a software module, in the form of a hardware structure, a software module, or a hardware structure plus a software module to realize the above functions.
  • a certain function among the above-mentioned functions may be implemented in the form of a hardware structure, a software module, or a hardware structure plus a software module.
  • FIG. 14 is a schematic structural diagram of a communication device 140 provided by an embodiment of the present disclosure.
  • the communication device 140 shown in the figure may include a transceiver module 1401 .
  • the transceiver module 1401 may include a sending module and/or a receiving module, the sending module is used to realize the sending function, the receiving module is used to realize the receiving function, and the sending and receiving module 1401 can realize the sending function and/or the receiving function.
  • the communication device 140 may be a network device, may also be a device in the network device, and may also be a device that can be matched and used with the network device.
  • Communication device 140 including:
  • the transceiver module 1401 is configured to send first indication information, where the first indication information is used to indicate resource configuration information for processing cross-link interference measurement signals to the terminal device.
  • the first indication information includes at least one of the following:
  • the cross-link interference measurement signal is at least one of the following:
  • the transmission beam set for transmitting the cross-link interference measurement signal is indicated by any of the following: specifying a synchronization block SSB set, or specifying a channel state information reference signal CSI RS set.
  • the transceiver module 1401 is specifically used for:
  • the transceiver module 1401 is also used for:
  • Sending second indication information where the second indication information is used to instruct the terminal device to activate one or more resource configuration information for processing cross-link interference measurement signals, or the second indication information is used to indicate The terminal device deactivates one or more pieces of resource configuration information for processing cross-link interference measurement signals.
  • the transceiver module 1401 is also specifically used for:
  • the second indication information is sent based on a medium access control MAC control unit CE.
  • the transceiver module 1401 is also used for:
  • the transceiver module 1401 is also specifically used for:
  • the communication device provided by this disclosure enables the terminal device to perform full-duplex communication based on the obtained resource configuration information by instructing the terminal device to process the resource configuration information of the cross-link interference measurement signal, thereby reducing the use of full-duplex communication by the terminal device as much as possible. Interference in the communication process improves the quality and efficiency of communication transmission.
  • the communication device 140 may be the first terminal device, may also be a device in the first terminal device, and may also be a device that can be matched and used with the first terminal device.
  • Communication device 140 including:
  • the transceiver module 1401 is configured to receive first indication information, where the first indication information is used to indicate to the apparatus resource configuration information for sending a cross-link interference measurement signal.
  • the first indication information includes at least one of the following:
  • a transmission beam set for transmitting the cross-link interference measurement signal is
  • the cross-link interference measurement signal is at least one of the following:
  • the transmission beam set for transmitting the cross-link interference measurement signal is indicated by any of the following: specifying a synchronization block SSB set, or specifying a channel state information reference signal CSI RS set.
  • the above device 140 also includes:
  • a processing module configured to determine the uplink beam corresponding to the optimal receiving beam of the specified SSB set as the transmitting beam of the cross-link interference measurement signal
  • the processing module is further configured to determine the uplink beam corresponding to the optimal receiving beam of the specified CSI RS set as the transmitting beam of the cross-link interference measurement signal.
  • the transceiver module 1401 is specifically used for:
  • the transceiver module 1401 is also used for:
  • the second indication information is used to instruct the apparatus to activate one or more resource configuration information for sending cross-link interference measurement signals, or the second indication information is used to indicate the The device deactivates one or more pieces of resource configuration information for sending cross-link interference measurement signals.
  • the transceiver module 1401 is also specifically used for:
  • the transceiver module 1401 is also used for:
  • the transceiver module 1401 is also specifically used for:
  • the third indication information is received.
  • the communication device provided in the present disclosure can acquire the resource configuration information for sending the cross-link interference measurement signal according to the indication of the first indication information. Therefore, full-duplex communication can be performed based on the obtained resource configuration information, thereby minimizing interference in the process of using full-duplex communication by the terminal device, and improving the quality and efficiency of communication transmission.
  • the communication device 140 may be the second terminal device, may also be a device in the second terminal device, and may also be a device that can be matched and used with the second terminal device.
  • Communication device 140 including:
  • the transceiver module 1401 is configured to receive first indication information, where the first indication information is used to indicate resource configuration information for processing cross-link interference measurement signals to the apparatus.
  • the first indication information includes at least one of the following:
  • the cross-link interference measurement signal is at least one of the following:
  • the transceiver module 1401 is also used for:
  • the receiving beam configured by the network device is used to receive the cross-link interference measurement signal.
  • the transceiver module 1401 is specifically used for:
  • the transceiver module 1401 is also used for:
  • the second indication information is used to instruct the apparatus to activate one or more resource configuration information for processing cross-link interference measurement signals, or the second indication information is used to indicate the The device deactivates one or more pieces of resource configuration information for processing cross-link interference measurement signals.
  • the transceiver module 1401 is also specifically used for:
  • the transceiver module 1401 is also used for:
  • the transceiver module 1401 is also specifically used for:
  • the third indication information is received.
  • the communication device provided in the present disclosure may acquire resource configuration information for processing cross-link interference measurement signals according to the indication of the first indication information. Therefore, full-duplex communication can be performed based on the obtained resource configuration information, thereby minimizing interference in the process of using full-duplex communication by the terminal device, and improving the quality and efficiency of communication transmission.
  • FIG. 15 is a schematic structural diagram of another communication device 150 provided by an embodiment of the present disclosure.
  • the communication device 150 may be a network device, a first terminal device, or a second terminal device, or a chip, a chip system, or a processor that supports the network device to implement the above method, or it may be a device that supports the first A chip, a chip system, or a processor, etc., for the terminal device to implement the above method may also be a chip, a chip system, or a processor, etc. for supporting the second terminal device to implement the above method.
  • the device can be used to implement the methods described in the above method embodiments, and for details, refer to the descriptions in the above method embodiments.
  • Communications device 150 may include one or more processors 1501 .
  • the processor 1501 may be a general purpose processor or a special purpose processor or the like. For example, it can be a baseband processor or a central processing unit.
  • the baseband processor can be used to process communication protocols and communication data
  • the central processing unit can be used to control communication devices (such as base stations, baseband chips, terminal equipment, terminal equipment chips, DU or CU, etc.) and execute computer programs , to process data for computer programs.
  • the communication device 150 may further include one or more memories 1502, on which a computer program 1504 may be stored, and the processor 1501 executes the computer program 1504, so that the communication device 150 executes the method described in the foregoing method embodiments. method.
  • data may also be stored in the memory 1502 .
  • the communication device 150 and the memory 1502 can be set separately or integrated together.
  • the communication device 150 may further include a transceiver 1505 and an antenna 1506 .
  • the transceiver 1505 may be called a transceiver unit, a transceiver, or a transceiver circuit, etc., and is used to implement a transceiver function.
  • the transceiver 1505 may include a receiver and a transmitter, and the receiver may be called a receiver or a receiving circuit for realizing a receiving function; the transmitter may be called a transmitter or a sending circuit for realizing a sending function.
  • the communication device 150 may further include one or more interface circuits 1507 .
  • the interface circuit 1507 is used to receive code instructions and transmit them to the processor 1501 .
  • the processor 1501 runs the code instructions to enable the communication device 150 to execute the methods described in the foregoing method embodiments.
  • the communication device 150 is a network device: the transceiver 1505 is used to execute step 21 in FIG. 2; step 31 in FIG. 3; step 32 in FIG. 3; step 41 in FIG. 4; step 42 in FIG. 4; Step 51 in FIG. 5; Step 52 in FIG. 5 or Step 53 in FIG.
  • the communication device 150 is the first terminal device: the transceiver 1505 is used to execute step 61 in FIG. 6; step 71 in FIG. 7; step 72 in FIG. 7; step 81 in FIG. 8; step 82 in FIG. 8; Step 91 in FIG. 9 ; step 92 in FIG. 9 or step 93 in FIG. 9 .
  • the communication device 150 is the second terminal device: the transceiver 1505 is used to execute step 101 in FIG. 10; step 111 in FIG. 11; step 112 in FIG. 11; step 121 in FIG. 12; step 122 in FIG. 12; Step 131 in FIG. 13 ; step 132 in FIG. 13 or step 133 in FIG. 13 .
  • the processor 1501 may include a transceiver for implementing receiving and sending functions.
  • the transceiver may be a transceiver circuit, or an interface, or an interface circuit.
  • the transceiver circuits, interfaces or interface circuits for realizing the functions of receiving and sending can be separated or integrated together.
  • the above-mentioned transceiver circuit, interface or interface circuit may be used for reading and writing code/data, or the above-mentioned transceiver circuit, interface or interface circuit may be used for signal transmission or transmission.
  • the processor 1501 may store a computer program 1503 , and the computer program 1503 runs on the processor 1501 to enable the communication device 150 to execute the methods described in the foregoing method embodiments.
  • the computer program 1503 may be solidified in the processor 1501, and in this case, the processor 1501 may be implemented by hardware.
  • the communication device 150 may include a circuit, and the circuit may implement the function of sending or receiving or communicating in the foregoing method embodiments.
  • the processors and transceivers described in this disclosure can be implemented on integrated circuits (integrated circuits, ICs), analog ICs, radio frequency integrated circuits (RFICs), mixed signal ICs, application specific integrated circuits (ASICs), printed circuit boards ( printed circuit board, PCB), electronic equipment, etc.
  • the processor and transceiver can also be fabricated using various IC process technologies, such as complementary metal oxide semiconductor (CMOS), nMetal-oxide-semiconductor (NMOS), P-type Metal oxide semiconductor (positive channel metal oxide semiconductor, PMOS), bipolar junction transistor (bipolar junction transistor, BJT), bipolar CMOS (BiCMOS), silicon germanium (SiGe), gallium arsenide (GaAs), etc.
  • CMOS complementary metal oxide semiconductor
  • NMOS nMetal-oxide-semiconductor
  • PMOS P-type Metal oxide semiconductor
  • BJT bipolar junction transistor
  • BiCMOS bipolar CMOS
  • SiGe silicon germanium
  • GaAs gallium arsenide
  • the communication device described in the above embodiments may be a network device, but the scope of the communication device described in the present disclosure is not limited thereto, and the structure of the communication device may not be limited by FIG. 15 .
  • a communication device may be a stand-alone device or may be part of a larger device.
  • the communication device may be:
  • a set of one or more ICs may also include storage components for storing data and computer programs;
  • ASIC such as modem (Modem);
  • the communication device may be a chip or a chip system
  • the schematic structural diagram of the chip shown in FIG. 16 refer to the schematic structural diagram of the chip shown in FIG. 16 .
  • the chip shown in FIG. 16 includes a processor 1601 and an interface 1602 .
  • the number of processors 1601 may be one or more, and the number of interfaces 1602 may be more than one.
  • Interface 1602 used to execute step 21 in Fig. 2; Step 31 in Fig. 3; Step 32 in Fig. 3; Step 33 in Fig. 3; Step 41 in Fig. 4; Step 42 in Fig. 4; Step 51 in FIG. 5; Step 52 in FIG. 5; Step 61 in FIG. 6 or Step 62 in FIG.
  • the interface 1602 is used to execute step 61 in Fig. 6; step 71 in Fig. 7; step 72 in Fig. 7; step 81 in Fig. 8; step 82 in Fig. 8; step 91 in Fig. 9; Step 92 in or step 93 in FIG. 9 .
  • Interface 1602 used to execute step 101 in Figure 10; Step 111 in Figure 11; Step 112 in Figure 11; Step 121 in Figure 12; Step 122 in Figure 12; Step 131 in Figure 13; Figure 13 Step 132 in or step 133 in FIG. 13 .
  • the chip further includes a memory 1603 for storing necessary computer programs and data.
  • An embodiment of the present disclosure further provides a communication system, the system includes the communication device as the network device in the foregoing embodiment of FIG. 14 , or the system includes the communication device as the network device in the foregoing embodiment of FIG. 15 .
  • the present disclosure also provides a computer-readable storage medium on which instructions are stored, and when the instructions are executed by a computer, the functions of any one of the above method embodiments are realized.
  • the present disclosure also provides a computer program product, which implements the functions of any one of the above method embodiments when the computer program product is executed by a computer.
  • all or part of them may be implemented by software, hardware, firmware or any combination thereof.
  • software When implemented using software, it may be implemented in whole or in part in the form of a computer program product.
  • the computer program product comprises one or more computer programs. When the computer program is loaded and executed on the computer, all or part of the processes or functions according to the embodiments of the present disclosure will be generated.
  • the computer can be a general purpose computer, a special purpose computer, a computer network, or other programmable devices.
  • the computer program can be stored in or transmitted from one computer-readable storage medium to another computer-readable storage medium, for example, the computer program can be downloaded from a website, computer, server or data center Transmission to another website site, computer, server or data center by wired (such as coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (such as infrared, wireless, microwave, etc.).
  • the computer-readable storage medium may be any available medium that can be accessed by a computer, or a data storage device such as a server or a data center integrated with one or more available media.
  • the available medium may be a magnetic medium (for example, a floppy disk, a hard disk, a magnetic tape), an optical medium (for example, a high-density digital video disc (digital video disc, DVD)), or a semiconductor medium (for example, a solid state disk (solid state disk, SSD)) etc.
  • a magnetic medium for example, a floppy disk, a hard disk, a magnetic tape
  • an optical medium for example, a high-density digital video disc (digital video disc, DVD)
  • a semiconductor medium for example, a solid state disk (solid state disk, SSD)
  • At least one in the present disclosure can also be described as one or more, and a plurality can be two, three, four or more, and the present disclosure is not limited.
  • the technical feature is distinguished by "first”, “second”, “third”, “A”, “B”, “C” and “D”, etc.
  • the technical features described in the “first”, “second”, “third”, “A”, “B”, “C” and “D” have no sequence or order of magnitude among the technical features described.
  • each table in the present disclosure may be configured or predefined.
  • the values of the information in each table are just examples, and may be configured as other values, which are not limited in the present disclosure.
  • the corresponding relationship shown in some rows may not be configured.
  • appropriate deformation adjustments can be made based on the above table, for example, splitting, merging, and so on.
  • the names of the parameters shown in the titles of the above tables may also adopt other names understandable by the communication device, and the values or representations of the parameters may also be other values or representations understandable by the communication device.
  • other data structures can also be used, for example, arrays, queues, containers, stacks, linear tables, pointers, linked lists, trees, graphs, structures, classes, heaps, hash tables or hash tables can be used Wait.
  • Predefinition in the present disclosure can be understood as definition, predefinition, storage, prestorage, prenegotiation, preconfiguration, curing, or prefiring.

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Abstract

本公开实施例公开了一种通信方法及其装置,可应用于通信技术领域,其中,由网络设备执行的方法包括:发送第一指示信息,其中,第一指示信息用于向终端设备指示处理交叉链路干扰测量信号的资源配置信息,从而可使终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。

Description

一种通信方法及其装置 技术领域
本公开涉及通信技术领域,尤其涉及一种通信方法及其装置。
背景技术
通常,全双工通信(full duplex communication)技术是指设备间的业务相互传输可以发生在同样的时间、相同的频率带宽上。但若直接将全双工通信技术应用于通信系统中,对于各设备可能会带来严重的干扰。从而,如何减少设备之间使用全双工通信过程中的干扰,成为目前亟待解决的问题。
发明内容
本公开实施例提供一种通信方法及其装置,可应用于通信技术领域中。网络设备通过向终端设备指示处理交叉链路干扰测量信号的资源配置信息,使终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
第一方面,本公开实施例提供一种通信方法,所述方法由网络设备执行,该方法包括:发送第一指示信息,其中,第一指示信息用于向终端设备指示处理交叉链路干扰测量信号的资源配置信息。
在该方案中,网络设备通过向终端设备指示处理交叉链路干扰测量信号的资源配置信息,使终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可选的,所述第一指示信息中包括以下至少一项:
发送所述交叉链路干扰测量信号的时频域资源配置信息;
发送所述交叉链路干扰测量信号的发送波束集合;
测量所述交叉链路干扰测量信号的时频域资源配置信息;
接收所述交叉链路干扰测量信号的时频域资源配置信息;
接收所述交叉链路干扰测量信号的接收波束集合;以及,
交叉链路干扰测量量的上报阈值。
可选的,所述交叉链路干扰测量信号为以下至少一项:
物理上行共享信道PUSCH信号;
物理上行控制信道PUCCH信号;
探测参考信号SRS信号;以及,
指定的交叉链路干扰测量信号。
可选的,所述发送所述交叉链路干扰测量信号的发送波束集合由以下任一项指示:指定同步块SSB集合,或者,指定信道状态信息参考信号CSI RS集合。
可选的,所述发送第一指示信息,包括:
基于无线资源控制RRC信令,发送所述第一指示信息。
在该方案中,网络设备可以通过RRC信令,向终端设备指示处理交叉链路干扰测量信号的资源配置信息,使终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可选的,还包括:
发送第二指示信息,其中,所述第二指示信息用于指示所述终端设备激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息,或者所述第二指示信息用于指示所述终端设备去激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
在该方案中,网络设备可以向终端设备指示激活或者去激活交叉链路干扰测量信号的资源配置信息,使终端设备可以基于该资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可选的,所述发送第二指示信息,包括:
基于媒体接入控制MAC控制单元CE,发送所述第二指示信息。
在该方案中,网络设备可以通过MAC CE向终端设备指示激活或者去激活交叉链路干扰测量信号的资源配置信息,使终端设备可以基于该资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可选的,还包括:
发送第三指示信息,其中,所述第三指示信息用于指示所述终端设备触发一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
在该方案中,网络设备可以向终端设备指示触发处理交叉链路干扰测量信号的资源配置信息,使终端设备可以基于该资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可选的,所述发送第三指示信息,包括:
基于下行控制信息DCI,发送所述第三指示信息。
在该方案中,网络设备可以通过DCI向终端设备指示触发处理交叉链路干扰测量信号的资源配置信息,使终端设备可以基于该资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
第二方面,本公开实施例提供另一种通信方法,所述方法由第一终端设备执行,该方法包括:接收第一指示信息,其中,所述第一指示信息用于向所述第一终端设备指示发送交叉链路干扰测量信号的资源配置信息。
在该方案中,第一终端设备可以基于接收的第一指示信息,获知发送交叉链路干扰测量信号的资源配置信息,从而第一终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可选的,所述第一指示信息中包括以下至少一项:
发送所述交叉链路干扰测量信号的时频域资源配置信息;
发送所述交叉链路干扰测量信号的发送波束集合。
可选的,所述交叉链路干扰测量信号为以下至少一项:
物理上行共享信道PUSCH信号;
物理上行控制信道PUCCH信号;
探测参考信号SRS信号;以及,
指定的交叉链路干扰测量信号。
可选的,所述发送所述交叉链路干扰测量信号的发送波束集合由以下任一项指示:指定同步块SSB集合,或者,指定信道状态信息参考信号CSI RS集合。
可选的,还包括:
将指定SSB集合的最优接收波束对应的上行波束,确定为所述交叉链路干扰测量信号的发送波束;
或者,
将指定CSI RS集合的最优接收波束对应的上行波束,确定为所述交叉链路干扰测量信号的发送波束。
可选的,所述接收第一指示信息,包括:
基于RRC信令,接收所述第一指示信息。
在该方案中,第一终端设备可以通过RRC信令,接收第一指示信息,以获知发送交叉链路干扰测量信号的资源配置信息,从而第一终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可选的,还包括:
接收第二指示信息,其中,所述第二指示信息用于指示所述第一终端设备激活一个或多个所述发送交叉链路干扰测量信号的资源配置信息,或者所述第二指示信息用于指示所述第一终端设备去激活一个或多个所述发送交叉链路干扰测量信号的资源配置信息。
在该方案中,第一终端设备可以基于接收的第二指示信息,获知激活或者去激活发送交叉链路干扰测量信号的资源配置信息,从而第一终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可选的,所述接收第二指示信息,包括:
基于MAC CE,接收所述第二指示信息。
在该方案中,第一终端设备可以通过MAC CE,接收第二指示信息,以获知激活或者去激活发送交叉链路干扰测量信号的资源配置信息,从而第一终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可选的,还包括:
接收第三指示信息,其中,所述第三指示信息用于指示所述第一终端设备触发一个或多个所述发送交叉链路干扰测量信号的资源配置信息。
在该方案中,第一终端设备可以基于接收的第三指示信息,获知触发发送交叉链路干扰测量信号的资源配置信息,从而第一终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率
可选的,所述接收第三指示信息,包括:
基于DCI,接收所述第三指示信息。
在该方案中,第一终端设备可以通过DCI,接收第三指示信息,以获知触发发送交叉链路干扰测量信号的资源配置信息,从而第一终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率
第三方面,本公开实施例提供另一种通信方法,所述方法由第二终端设备执行,该方法包括:接收第一指示信息,其中,所述第一指示信息用于向所述第二终端设备指示处理交叉链路干扰测量信号的资源配置信息。
在该方案中,第二终端设备可以根据第一指示信息的指示,获知处理交叉链路干扰测量信号的资源配置信息。从而,第二终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可选的,所述第一指示信息中包括以下至少一项:
测量所述交叉链路干扰测量信号的时频域资源配置信息;
接收所述交叉链路干扰测量信号的时频域资源配置信息;
接收所述交叉链路干扰测量信号的接收波束集合;以及,
交叉链路干扰测量量的上报阈值。
可选的,所述交叉链路干扰测量信号为以下至少一项:
物理上行共享信道PUSCH信号;
物理上行控制信道PUCCH信号;
探测参考信号SRS信号;以及,
指定的交叉链路干扰测量信号。
可选的,还包括:
利用物理下行控制信道PDCCH的接收波束,接收所述交叉链路干扰测量信号;
或者,
利用物理下行共享信道PDSCH的接收波束,接收所述交叉链路干扰测量信号;
或者,
利用网络设备配置的接收波束,接收所述交叉链路干扰测量信号。
可选的,所述接收第一指示信息,包括:
基于RRC信令,接收所述第一指示信息。
在该方案中,第二终端设备可以根据第一指示信息的指示,获知处理交叉链路干扰测量信号的资源配置信息。从而,第二终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可选的,还包括:
接收第二指示信息,其中,所述第二指示信息用于指示所述第二终端设备激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息,或者所述第二指示信息用于指示所述第二终端设备去激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
可选的,所述接收第二指示信息,包括:
基于MAC CE,接收所述第二指示信息。
在该方案中,第二终端设备可以通过MAC CE接收第二指示信息,以获知激活或者去激活处理交叉链路干扰测量信号的资源配置信息。从而,第二终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可选的,还包括:
接收第三指示信息,其中,所述第三指示信息用于指示所述第二终端设备触发一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
在该方案中,第二终端设备可以基于接收的第三指示信息,获知触发处理交叉链路干扰测量信号的资源配置信息。从而,第二终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可选的,所述接收第三指示信息,包括:
基于DCI,接收所述第三指示信息。
在该方案中,第二终端设备可以通过DCI接收第三指示信息,以获知处理处理交叉链路干扰测量信号的资源配置信息。从而,第二终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
第四方面,本公开实施例提供一种通信装置,该通信装置具有实现上述第一方面所述的方法中网络设备的部分或全部功能,比如通信装置的功能可具备本公开中的部分或全部实施例中的功能,也可以具备单独实施本公开中的任一个实施例的功能。所述功能可以通过硬件实现,也可以通过硬件执行相应的软件实现。所述硬件或软件包括一个或多个与上述功能相对应的单元或模块。
在一种实现方式中,该通信装置的结构中可包括收发模块和处理模块,所述处理模块被配置为支持通信装置执行上述方法中相应的功能。所述收发模块用于支持通信装置与其他设备之间的通信。所述通信装置还可以包括存储模块,所述存储模块用于与收发模块和处理模块耦合,其保存通信装置必要的计算机程序和数据。
作为示例,处理模块可以为处理器,收发模块可以为收发器或通信接口,存储模块可以为存储器。
本公开提供的通信装置,通过向终端设备指示处理交叉链路干扰测量信号的资源配置信息,使终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
第五方面,本公开实施例提供一种通信装置,该通信装置具有实现上述第二方面所述的方法中第一终端设备的部分或全部功能,比如通信装置的功能可具备本公开中的部分或全部实施例中的功能,也可以具备单独实施本公开中的任一个实施例的功能。所述功能可以通过硬件实现,也可以通过硬件执行相应的软件实现。所述硬件或软件包括一个或多个与上述功能相对应的单元或模块。
在一种实现方式中,该通信装置的结构中可包括收发模块和处理模块,所述处理模块被配置为支持通信装置执行上述方法中相应的功能。所述收发模块用于支持通信装置与其他设备之间的通信。所述通信装置还可以包括存储模块,所述存储模块用于与收发模块和处理模块耦合,其保存通信装置必要的计算机程序和数据。
作为示例,处理模块可以为处理器,收发模块可以为收发器或通信接口,存储模块可以为存储器。
本公开提供的通信装置,可以基于接收的第一指示信息,获知发送交叉链路干扰测量信号的资源配置信息,从而可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
第六方面,本公开实施例提供一种通信装置,该通信装置具有实现上述第三方面所述的方法中第二终端设备的部分或全部功能,比如通信装置的功能可具备本公开中的部分或全部实施例中的功能,也可以具备单独实施本公开中的任一个实施例的功能。所述功能可以通过硬件实现,也可以通过硬件执行相应的软件实现。所述硬件或软件包括一个或多个与上述功能相对应的单元或模块。
在一种实现方式中,该通信装置的结构中可包括收发模块和处理模块,所述处理模块被配置为支持通信装置执行上述方法中相应的功能。所述收发模块用于支持通信装置与其他设备之间的通信。所述通信装置还可以包括存储模块,所述存储模块用于与收发模块和处理模块耦合,其保存通信装置必要的计算机程序和数据。
作为示例,处理模块可以为处理器,收发模块可以为收发器或通信接口,存储模块可以为存储器。
本公开提供的通信装置,可以根据第一指示信息的指示,获知处理交叉链路干扰测量信号的资源配置信息。从而,可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
第七方面,本公开实施例提供一种通信装置,该通信装置包括处理器,当该处理器调用存储器中的计算机程序时,执行上述第一方面所述的方法。
第八方面,本公开实施例提供一种通信装置,该通信装置包括处理器,当该处理器调用存储器中的计算机程序时,执行上述第二方面所述的方法。
第九方面,本公开实施例提供一种通信装置,该通信装置包括处理器,当该处理器调用存储器中的计算机程序时,执行上述第三方面所述的方法。
第十方面,本公开实施例提供一种通信装置,该通信装置包括处理器和存储器,该存储器中存储有计算机程序;所述处理器执行该存储器所存储的计算机程序,以使该通信装置执行上述第一方面所述的方法。
第十一方面,本公开实施例提供一种通信装置,该通信装置包括处理器和存储器,该存储器中存储有计算机程序;所述处理器执行该存储器所存储的计算机程序,以使该通信装置执行上述第二方面所述的方法。
第十二方面,本公开实施例提供一种通信装置,该通信装置包括处理器和存储器,该存储器中存储 有计算机程序;所述处理器执行该存储器所存储的计算机程序,以使该通信装置执行上述第三方面所述的方法。
第十三方面,本公开实施例提供一种通信装置,该装置包括处理器和接口电路,该接口电路用于接收代码指令并传输至该处理器,该处理器用于运行所述代码指令以使该装置执行上述第一方面所述的方法。
第十四方面,本公开实施例提供一种通信装置,该装置包括处理器和接口电路,该接口电路用于接收代码指令并传输至该处理器,该处理器用于运行所述代码指令以使该装置执行上述第二方面所述的方法。
第十五方面,本公开实施例提供一种通信装置,该装置包括处理器和接口电路,该接口电路用于接收代码指令并传输至该处理器,该处理器用于运行所述代码指令以使该装置执行上述第三方面所述的方法。
第十六方面,本发明实施例提供一种计算机可读存储介质,用于储存为上述网络设备所用的指令,当所述指令被执行时,使上述第一方面所述的方法被实现。
第十七方面,本发明实施例提供一种计算机可读存储介质,用于储存为上述第一终端设备所用的指令,当所述指令被执行时,使上述第二方面所述的方法被实现。
第十八方面,本发明实施例提供一种计算机可读存储介质,用于储存为上述第二终端设备所用的指令,当所述指令被执行时,使上述第三方面所述的方法被实现。
第十九方面,本公开还提供一种包括计算机程序的计算机程序产品,当其在计算机上运行时,使得计算机执行上述第一方面所述的方法。
第二十方面,本公开还提供一种包括计算机程序的计算机程序产品,当其在计算机上运行时,使得计算机执行上述第二方面所述的方法。
第二十一方面,本公开还提供一种包括计算机程序的计算机程序产品,当其在计算机上运行时,使得计算机执行上述第三方面所述的方法。
第二十二方面,本公开提供一种芯片系统,该芯片系统包括至少一个处理器和接口,用于支持网络设备实现第一方面所涉及的功能,例如,确定或处理上述方法中所涉及的数据和信息中的至少一种。在一种可能的设计中,所述芯片系统还包括存储器,所述存储器,用于保存网络设备必要的计算机程序和数据。该芯片系统,可以由芯片构成,也可以包括芯片和其他分立器件。
第二十三方面,本公开提供一种芯片系统,该芯片系统包括至少一个处理器和接口,用于支持第一终端设备实现第二方面所涉及的功能,例如,确定或处理上述方法中所涉及的数据和信息中的至少一种。在一种可能的设计中,所述芯片系统还包括存储器,所述存储器,用于保存第一终端设备必要的计算机程序和数据。该芯片系统,可以由芯片构成,也可以包括芯片和其他分立器件。
第二十四方面,本公开提供一种芯片系统,该芯片系统包括至少一个处理器和接口,用于支持第二终端设备实现第三方面所涉及的功能,例如,确定或处理上述方法中所涉及的数据和信息中的至少一种。在一种可能的设计中,所述芯片系统还包括存储器,所述存储器,用于保存第二终端设备必要的计算机程序和数据。该芯片系统,可以由芯片构成,也可以包括芯片和其他分立器件。
第二十五方面,本公开提供一种计算机程序,当其在计算机上运行时,使得计算机执行上述第一方面所述的方法。
第二十六方面,本公开提供一种计算机程序,当其在计算机上运行时,使得计算机执行上述第二方面所述的方法。
第二十七方面,本公开提供一种计算机程序,当其在计算机上运行时,使得计算机执行上述第三方面所述的方法。
附图说明
为了更清楚地说明本公开实施例或背景技术中的技术方案,下面将对本公开实施例或背景技术中所需要使用的附图进行说明。
图1是本公开实施例提供的一种通信系统的架构示意图;
图2是本公开一实施例提供的一种通信方法的流程示意图;
图3是本公开另一实施例提供的一种通信方法的流程示意图;
图4是本公开另一实施例提供的一种通信方法的流程示意图;
图5是本公开另一实施例提供的一种通信方法的流程示意图;
图6是本公开另一实施例提供的一种通信方法的流程示意图;
图7是本公开一实施例提供的一种通信方法的流程示意图;
图8是本公开另一实施例提供的一种通信方法的流程示意图;
图9是本公开另一实施例提供的一种通信方法的流程示意图;
图10是本公开另一实施例提供的一种通信方法的流程示意图;
图11是本公开另一实施例提供的一种通信方法的流程示意图;
图12是本公开另一实施例提供的一种通信方法的流程示意图;
图13是本公开另一实施例提供的一种通信方法的流程示意图;
图14是本公开一实施例的通信装置的结构示意图;
图15是本公开另一实施例的通信装置的结构示意图;
图16是本公开一实施例的芯片的结构示意图。
具体实施方式
为了便于理解,首先介绍本公开涉及的术语。
1、全双工通信(full duplex communication)
全双工通信可以分为频分复用(frequency division multiplexing,FDM)和时分复用(time division multiplexing,TDM)。
其中,FDM是指可以将整个传输频带划分为若干个频率通道,每个用户可以占用一个频率通道传输数据,频率通道之间留有防护频带。
另外,TDM是指可以将时间分割成小的时间片,每个时间片又分为若干个通道(时隙),每个用户可以占用一个通道传输数据。
2、无线资源控制(radio resource control,RRC)
RRC又可以称为无线资源管理(radio resource management,RRM)或者无线资源分配(radio resource allocation,RRA),是指通过一定的策略和手段进行无线资源管理、控制和调度,在满足服务质量的要求下,尽可能地充分利用有限的无线网络资源,确保到达规划的覆盖区域,尽可能地提高业务容量和资源利用率。
3、下行控制信息(downlink control information,DCI)
DCI可以包括上下行资源分配、混合自动重传请求信息、功率控制等。
为了更好的理解本公开实施例公开的一种通信方法,下面首先对本公开实施例适用的通信系统进行描述。
请参见图1,图1为本公开实施例提供的一种通信系统的架构示意图。该通信系统可包括但不限于一个网络设备、一个第一终端设备和一个第二终端设备,图1所示的设备数量和形态仅用于举例并不构成对本公开实施例的限定,实际应用中可以包括两个或两个以上的网络设备,两个或两个以上的第一终端设备,两个或两个以上的第一终端设备。图1所示的通信系统以包括一个网络设备11、一个第一终端设备12和一个第二终端设备13为例。
需要说明的是,本申请实施例的技术方案可以应用于各种通信系统。例如:长期演进(long term evolution,LTE)系统、第五代(5th generation,5G)移动通信系统、5G新空口(new radio,NR)系统,或者其他未来的新型移动通信系统等。还需要说明的是,本申请实施例中的侧链路还可以称为侧行链路或直通链路。
本申请实施例中的网络设备11是网络侧的一种用于发射或接收信号的实体。例如,网络设备11可以为演进型基站(evolved NodeB,eNB)、传输点(transmission reception point,TRP)、NR系统中的下一代基站(next generation NodeB,gNB)、其他未来移动通信系统中的基站或无线保真(wireless fidelity,WiFi)系统中的接入节点等。本申请的实施例对网络设备所采用的具体技术和具体设备形态不做限定。
本申请实施例提供的网络设备11可以是由集中单元(central unit,CU)与分布式单元(distributed unit,DU)组成的,其中,CU也可以称为控制单元(control unit),采用CU-DU的结构可以将网络设备,例如基站的协议层拆分开,部分协议层的功能放在CU集中控制,剩下部分或全部协议层的功能分布在DU中,由CU集中控制DU。
本申请实施例中的第一终端设备12以及第二终端设备13是用户侧的一种用于接收或发射信号的实体,如手机。终端设备也可以称为终端设备(terminal)、用户设备(user equipment,UE)、移动台(mobile station,MS)、移动终端设备(mobile terminal,MT)等。终端设备可以是具备通信功能的汽车、智能汽车、手机(mobile phone)、穿戴式设备、平板电脑(Pad)、带无线收发功能的电脑、 虚拟现实(virtual reality,VR)终端设备、增强现实(augmented reality,AR)终端设备、工业控制(industrial control)中的无线终端设备、无人驾驶(self-driving)中的无线终端设备、远程手术(remote medical surgery)中的无线终端设备、智能电网(smart grid)中的无线终端设备、运输安全(transportation safety)中的无线终端设备、智慧城市(smart city)中的无线终端设备、智慧家庭(smart home)中的无线终端设备等等。本申请的实施例对第一终端设备12以及第二终端设备13所采用的具体技术和具体设备形态不做限定。
可以理解的是,本公开实施例描述的通信系统是为了更加清楚的说明本公开实施例的技术方案,并不构成对于本公开实施例提供的技术方案的限定,本领域普通技术人员可知,随着系统架构的演变和新业务场景的出现,本公开实施例提供的技术方案对于类似的技术问题,同样适用。
下面结合附图对本公开所提供的通信方法及其装置进行详细地介绍。
请参见图2,图2是本公开实施例提供的一种通信方法的流程示意图,该方法由网络设备执行。如图2所示,该方法可以包括但不限于如下步骤:
步骤21,发送第一指示信息,其中,第一指示信息用于向终端设备指示处理交叉链路干扰测量信号的资源配置信息。
可以理解的是,终端设备可以为第一终端设备,或者也可以为第二终端设备。
其中,第一终端设备可以根据网络设备发送的第一指示信息,确定发送交叉链路干扰测量信号(cross link interference measurement signal)的资源配置信息,从而基于确定的资源配置信息,与网络设备进行全双工通信。
相应的,第二终端设备可以根据网络设备发送的第一指示信息,确定接收交叉链路干扰测量信号的资源配置信息,从而基于确定的资源配置信息,与网络设备进行全双工通信。
通常,网络设备可以根据自己支持的全双工通信信息进行全双工通信。而终端设备在进行全双工通信时,可能存在自干扰以及邻近终端设备间的互干扰问题,从而可能会对通信传输造成干扰,影响通信传输质量和效率。
本公开实施例中,网络设备可以通过向终端设备指示处理交叉链路干扰测量信号的资源配置信息,使终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可选的,第一指示信息可以指示发送交叉链路干扰测量信号的时频域资源配置信息。
其中,时频域资源配置信息,可以为发送交叉链路干扰测量信号的时域资源配置信息,或者也可以为频域资源配置信息,或者还可以为时域和频域资源配置信息等等,本公开对此不做限定。
比如,第一指示信息指示第一终端设备,发送交叉链路干扰测量信号的时域资源为t1至t2。则第一终端设备接收到该第一指示信息之后,即可在t1至t2时域资源内发送交叉链路干扰测量信号。
可选的,第一指示信息可以指示发送交叉链路干扰测量信号的发送波束集合。
其中,发送波束集合中,可以有一个发送波束,或者也可以有多个发送波束等等,本公开对此不做限定。
比如,第一指示信息指示第一终端设备,可以使用波束1和波束2发送交叉链路干扰测量信号。则第一终端设备接收到该第一指示信息之后,即可使用波束1和波束2发送交叉链路干扰测量信号。
可选的,第一指示信息可以指示测量交叉链路干扰测量信号的时频域资源配置信息。
比如,第一指示信息指示第二终端设备,测量交叉链路干扰测量信号的频域资源为F1和F2。则第二终端设备接收到该第一指示信息之后,即可在F1和F2频域资源上测量交叉链路干扰测量信号。
可选的,第一指示信息可以指示接收交叉链路干扰测量信号的时频域资源配置信息。
比如,第一指示信息指示第二终端设备,接收交叉链路干扰测量信号的频域资源为F1。则第二终端设备接收到该第一指示信息之后,即可在F1频域资源上接收交叉链路干扰测量信号。
可选的,第一指示信息可以指示接收交叉链路干扰测量信号的接收波束集合。
其中,接收波束集合中,可以有一个接收波束,或者也可以有多个接收波束等等,本公开对此不做限定。
比如,第一指示信息指示第二终端设备,可以使用波束1接收交叉链路干扰测量信号。则第二终端设备接收到该第一指示信息之后,即可使用波束接收交叉链路干扰测量信号。
可选的,第一指示信息可以指示交叉链路干扰测量量的上报阈值。
比如,第一指示信息指示第二终端设备,交叉链路干扰测量量的上报阈值为X。则第二终端设备接收到该第一指示信息之后,即可在交叉链路干扰测量量超过X时进行上报。
需要说明的是,上述示例仅是示意性说明,不能作为对本公开实施例中第一指示信息中包括内容的限定。
可以理解的是,第一指示信息,可以包括上述一项内容,或者也可以包括上述多项内容,本公开对此不做限定。
可选的,交叉链路干扰测量信号可以包括以下至少一项:物理上行共享信道(physical uplink shared channel,PUSCH)信号;物理上行控制信道(physical uplink control channel,PUCCH)信号;探测参考信号(sounding reference signal,SRS)以及指定的交叉链路干扰测量信号。
其中,交叉链路干扰测量信号,可能有多个,指定的交叉链路干扰测量信号,可以为其中的一个或几个等等,本公开对此不做限定。
比如,第一指示信息指示发送PUSCH信号的频域资源为F1、发送PUCCH信号的频域资源为F2。则第一终端设备接收到该第一指示信息之后,即可在F1频域资源上发送PUSCH信号、在F2频域资源上发送PUCCH信号。
需要说明的是,上述示例只是举例说明,不能作为对本公开实施例中第一指示信息中包括的内容等的限定。
可选的,交叉链路干扰测量信号的发送波束集合可以由以下任一项指示:指定同步块(synchronization signal block,SSB)集合,或者,指定信道状态信息(channel state information,CSI)参考信号(reference signal,RS)集合。
其中,SSB可以由主同步信号(primary synchronization signals,PSS)、辅同步信号(secondary synchronization signals,SSS)、广播物理信道(physical broadcast channel,PBCH)组成。
另外,SSB集合中可能有多个SSB,指定SSB集合中,可能有一个SSB,或者也能有几个SSB等等,本公开对此不做限定。
可以理解的是,CSI RS中可能有多个CSI RS,指定CSI RS集合中,可能有一个CSI RS,或者也能有几个CSI RS等等,本公开对此不做限定。
比如,指定SSB集合中包含PSS,PSS指示的发送波束集合为波束1和波束3。则第一终端设备接收到该PSS之后,即可使用波束1和波束3发送交叉链路干扰测量信号。
需要说明的是,上述示例只是举例说明,不能作为对本公开实施例中发送波束集合、SSB等的限定。
通过实施本公开实施例,网络设备通过向终端设备指示处理交叉链路干扰测量信号的资源配置信息,使终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
请参见图3,图3是本公开实施例提供的一种通信方法的流程示意图,该方法由网络设备执行。如图3所示,该方法可以包括但不限于如下步骤:
步骤31,基于RRC信令,发送第一指示信息,其中,第一指示信息用于向终端设备指示处理交叉链路干扰测量信号的资源配置信息。
比如,协议约定或者网络设备配置:可以在RRC信令中增加特定的比特(bit)位,通过增加的bit位的取值表征第一指示信息。从而终端设备在接收到网络设备发送的RRC信令之后,按照协议约定,根据特定bit位的取值,获知第一指示信息等等,本公开对此不做限定。
需要说明的是,第一指示信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
步骤32,发送第二指示信息,其中,第二指示信息用于指示终端设备激活一个或多个处理交叉链路干扰测量信号的资源配置信息,或者第二指示信息用于指示终端设备去激活一个或多个处理交叉链路干扰测量信号的资源配置信息。
比如,协议约定或者网络设备配置:可以在第二指示信息中增加特定的bit位,通过增加的bit位的取值表征第二指示信息。
举例来说,协议约定:增加的bit位取值为1时,表征激活第一指示信息指示的全部处理交叉链路干扰测量信号的资源配置信息;增加的bit位取值为0时,表征去激活第一指示信息指示的全部处理交叉链路干扰测量信号的资源配置信息。从而终端设备在接收到网络设备发送的第二指示信息之后,按照协议约定,根据特定bit位的取值,即可获知是激活第一指示信息指示的全部处理交叉链路干扰测量信号的资源配置信息,或者是去激活第一指示信息指示的全部处理交叉链路干扰测量信号的资源配置信息等等。
又比如,协议约定或者网络设备配置:增加的bit位共有4位,每个bit位对应一个处理交叉链路干扰测量信号的资源配置信息。若其中某一bit位取值为1,表征激活该bit位对应的处理交叉链路干扰测量信号的资源配置信息,若其中多个bit位取值为1,表征激活多个bit位分别对应的处理交叉链路干扰测量信号的资源配置信息。或者,若其中某一bit位取值为0,表征去激活该bit位对应的处理交叉链路干扰测量信号的资源配置信息,若其中多个bit位取值为0,表征去激活多个bit位分别对应 的处理交叉链路干扰测量信号的资源配置信息。从而终端设备在接收到网络设备发送的第二指示信息之后,按照协议约定,根据特定bit位的取值,即可获知是激活一个或多个处理交叉链路干扰测量信号的资源配置信息,或者是去激活一个或多个处理交叉链路干扰测量信号的资源配置信息等等。
需要说明的是,上述示例只是举例说明,不能作为对本公开实施例中,第二指示信息、以及第二指示信息中的bit位的数量、取值等的限定。
需要说明的是,交叉链路干扰测量信号的资源配置信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
通过实施本公开实施例,网络设备可以基于RRC信令,发送第一指示信息,以向终端设备指示处理交叉链路干扰测量信号的资源配置信息,还可以发送第二指示信息,以向终端设备指示激活或去激活处理交叉链路干扰测量信号的资源配置信息,可使得终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
请参见图4,图4是本公开实施例提供的一种通信方法的流程示意图,该方法由网络设备执行。如图4所示,该方法可以包括但不限于如下步骤:
步骤41,基于RRC信令,发送第一指示信息,其中,第一指示信息用于向终端设备指示处理交叉链路干扰测量信号的资源配置信息。
需要说明的是,第一指示信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
需要说明的是,步骤41的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
步骤42,发送第三指示信息,其中,第三指示信息用于指示终端设备触发一个或多个处理交叉链路干扰测量信号的资源配置信息。
举例来说,可以协议约定或者网络设备配置,第三指示信息中的前2个bit的取值,用于表征触发发送交叉链路干扰测量信号的发送波束集合以及交叉链路干扰测量信号的上报阈值。比如,当该前两个bit的取值为“01”时,表征触发发送交叉链路干扰测量信号的发送波束集合,当该前两个bit的取值为“10”时,表征触发交叉链路干扰测量信号的上报阈值,当该前两个bit的取值为“11”时,表征触发发送交叉链路干扰测量信号的发送波束集合以及交叉链路干扰测量信号的上报阈值等等。从而终端设备在接收到网络设备发送的第三指示信息之后,按照协议约定,根据特定bit位的取值,即可获知触发一个或多个处理交叉链路干扰测量信号的资源配置信息。
或者,也可以通过多个bit的取值,表征触发一个或多个处理交叉链路干扰测量信号的资源配置信息等等,本公开对此不做限定。
或者,也可以提前约定好,第三指示信息中包含“AAA”时,表征触发一个处理交叉链路干扰测量信号的资源配置信息,包含“BBB”时,表征触发多个处理交叉链路干扰测量信号的资源配置信息等等。
需要说明的是,上述示例只是举例说明,不能作为对本公开实施例中处理交叉链路干扰测量信号的资源配置信息的具体内容、第三指示信息中的bit的取值以及二者对应关系等的限定。
需要说明的是,处理交叉链路干扰测量信号的资源配置信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
通过实施本公开实施例,网络设备可以基于RRC信令,发送第一指示信息,以向终端设备指示处理交叉链路干扰测量信号的资源配置信息,还可以基于DCI,发送第三指示信息,以向终端设备指示触发处理交叉链路干扰测量信号的资源配置信息,可使得终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
请参见图5,图5是本公开实施例提供的一种通信方法的流程示意图,该方法由网络设备执行。如图5所示,该方法可以包括但不限于如下步骤:
步骤51,基于RRC信令,发送第一指示信息,其中,第一指示信息用于向终端设备指示处理交叉链路干扰测量信号的资源配置信息。
需要说明的是,第一指示信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
需要说明的是,步骤51的具体内容及及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
步骤52,基于媒体接入控制控制单元,发送第二指示信息,其中,第二指示信息用于指示终端设备激活一个或多个处理交叉链路干扰测量信号的资源配置信息,或者第二指示信息用于指示终端设备去激活一个或多个处理交叉链路干扰测量信号的资源配置信息。
其中,媒体接入控制(media access control,MAC),主要负责控制与连接物理层的物理介质。
可以理解的是,可以协议约定或者网络设备配置,处理交叉链路干扰测量信号的资源配置信息与MAC控制单元(control element,CE)的bit间的对应关系。比如,协议约定:发送交叉链路干扰测量信号的时频域资源配置信息对应于MAC CE的第一个bit,接收交叉链路干扰测量信号的时频域资源配置信息对应于MAC CE的第二个bit等等。本公开对此不做限定。
可选的,可以通过协议约定或者网络设备配置,若激活某一处理交叉链路干扰测量信号的资源配置信息,则可以将其对应的bit的值取为1,若去激活某一处理交叉链路干扰测量信号的资源配置信息,则可以将其对应的bit的值取为0。
或者,也可以协议约定,MAC CE的多个bit的取值表征处理交叉链路干扰测量信号的资源配置信息。比如,MAC CE中包含2个bit,且处理交叉链路干扰测量信号的资源配置信息,分别为发送交叉链路干扰测量信号的发送波束集合以及接收交叉链路干扰测量信号的接收波束集合。若2个bit的值为00时,表征去激活发送交叉链路干扰测量信号的发送波束集合以及接收交叉链路干扰测量信号的接收波束集合;其值为01时,表征激活发送交叉链路干扰测量信号的发送波束集合,去激活接收交叉链路干扰测量信号的接收波束集合;其值为10时,表征激活接收交叉链路干扰测量信号的接收波束集合,去激活发送交叉链路干扰测量信号的发送波束集合;其值为11时,表征激活发送交叉链路干扰测量信号的发送波束集合以及接收交叉链路干扰测量信号的接收波束集合等等。
需要说明的是,上述示例只是举例说明,不能作为对本公开实施例中MAC CE包含的bit数、各比特的取值以及MAC CE的bit与处理交叉链路干扰测量信号的资源配置信息之间的对应关系等的限定。
需要说明的是,第二指示信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
步骤53,基于DCI,发送第三指示信息,其中,第三指示信息用于指示终端设备触发一个或多个处理交叉链路干扰测量信号的资源配置信息。
比如,可以在DCI中增加特定的bit位,通过增加的bit位以表征第三指示信息。
可选的,可以通过协议约定,DCI中增加的bit位取值为1时,表征触发该bit位对应的交叉链路干扰测量信号的资源配置信息。
比如,DCI中增加的bit位共有4位,每一个bit位对应一个处理交叉链路干扰测量信号的资源配置信息。比如,第一个bit位对应于发送交叉链路干扰测量信号的时频域资源配置信息,第二个bit位对应于发送交叉链路干扰测量信号的发送波束集合,第三个bit位对应于接收交叉链路干扰测量信号的时频域资源配置信息,第四个bit位对应于接收交叉链路干扰测量信号的接收波束集合。若第一个bit位和第二个bit的取值均为1,则终端设备在接收到网络设备发送的DCI之后,按照协议约定,根据特定bit位的取值,触发发送交叉链路干扰测量信号的时频域资源配置信息以及触发发送交叉链路干扰测量信号的发送波束集合等等。
需要说明的是,上述示例只是举例说明,不能作为对本公开实施例中处理交叉链路干扰测量信号的资源配置信息的具体内容、DCI中的bit的取值以及二者对应关系等的限定。
需要说明的是,处理交叉链路干扰测量信号的资源配置信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
通过实施本公开实施例,网络设备可以基于RRC信令,发送第一指示信息,以向终端设备指示处理交叉链路干扰测量信号的资源配置信息,之后还可以基于MAC CE,发送第二指示信息,以指示终端设备激活或者去激活处理交叉链路干扰测量信号的资源配置信息,还可以发送第三指示信息,以指示终端设备触发处理交叉链路干扰测量信号的资源配置信息,可使得终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
请参见图6,图6是本公开实施例提供的一种通信方法的流程示意图,该方法由第一终端设备执行。如图6所示,该方法可以包括但不限于如下步骤:
步骤61,接收第一指示信息,其中,第一指示信息用于向第一终端设备指示发送交叉链路干扰测量信号的资源配置信息。
通常,网络设备可以根据自己支持的全双工通信信息进行全双工通信。而终端设备在进行全双工通信时,可能存在自干扰以及邻近终端设备间的互干扰问题,从而可能会对通信传输造成干扰,影响通信传输质量和效率。
本公开实施例中,第一终端设备可以通过接收的网络设备发送的第一指示信息,获知发送交叉链路干扰测量信号的资源配置信息。从而,第一终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高了通信传输的质量和效率。
可选的,第一指示信息中可以包括以下至少一项:发送交叉链路干扰测量信号的时频域资源配置信息,以及发送交叉链路干扰测量信号的发送波束集合。
需要说明的是,第一指示信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
可选的,交叉链路干扰测量信号可以为以下至少一项:PUSCH信号;PUCCH信号;SRS信号;以及指定的交叉链路干扰测量信号。
需要说明的是,交叉链路干扰测量信号的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
可选的,发送交叉链路干扰测量信号的发送波束集合可以由以下任一项指示:指定SSB集合,或者,指定CSI RS集合。
其中,SSB集合中可能有多个SSB,指定SSB集合中,可能有一个SSB,或者也能有几个SSB等等,本公开对此不做限定。
需要说明的是,SSB集合以及CSI RS的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
可选的,可以将指定SSB集合的最优接收波束对应的上行波束,确定为交叉链路干扰测量信号的发送波束。
其中,通过最优接收波束进行波束的接收,可以使干扰尽量降低。本公开实施例中,为了保证交叉链路干扰测量信号发送的准确性和可靠性,可以将指定SSB集合的最优接收波束对应的上行波束,确定为交叉链路干扰测量信号的发送波束,以尽量减少交叉链路干扰测量信号发送的干扰。
可选的,还可以将指定CSI RS集合的最优接收波束对应的上行波束,确定为交叉链路干扰测量信号的发送波束,从而使得干扰尽量降低,提高交叉链路干扰测量信号发送的准确性和可靠性
通过实施本公开实施例,第一终端设备可以根据第一指示信息的指示,获知发送交叉链路干扰测量信号的资源配置信息,从而,第一终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
请参见图7,图7是本公开实施例提供的一种通信方法的流程示意图,该方法由第一终端设备执行。如图7所示,该方法可以包括但不限于如下步骤:
步骤71,基于RRC信令,接收第一指示信息,其中,第一指示信息用于向第一终端设备指示发送交叉链路干扰测量信号的资源配置信息。
比如,协议约定或者网络设备配置:可以在RRC信令中增加特定的bit位,通过增加的bit位的取值表征第一指示信息。从而第一终端设备在接收到网络设备发送的RRC信令之后,按照协议约定,根据特定bit位的取值,获知第一指示信息等等,本公开对此不做限定。
需要说明的是,第一指示信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
步骤72,接收第二指示信息,其中,第二指示信息用于指示第一终端设备激活一个或多个发送交叉链路干扰测量信号的资源配置信息,或者第二指示信息用于指示第一终端设备去激活一个或多个发送交叉链路干扰测量信号的资源配置信息。
比如,协议约定或者网络设备配置:可以在第二指示信息中增加特定的bit位,通过增加的bit位的取值表征第二指示信息。从而第一终端设备在接收到网络设备发送的第二指示信息之后,按照协议约定,再根据特定bit位的取值,即可获知是激活或者是去激活第一指示信息指示的发送交叉链路干扰测量信号的资源配置信息等等。
需要说明的是,上述示例只是举例说明,不能作为对本公开实施例中,第二指示信息、以及第二指示信息中的bit位的数量、取值等的限定。
通过实施本公开实施例,第一终端设备可以基于RRC信令,接收第一指示信息,以获知发送交叉链路干扰测量信号的资源配置信息,还可以根据接收的第二指示信息的指示,确定激活或者去激活发送交叉链路干扰测量信号的资源配置信息,从而第一终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
请参见图8,图8是本公开实施例提供的一种通信方法的流程示意图,该方法由第一终端设备执行。如图8所示,该方法可以包括但不限于如下步骤:
步骤81,基于RRC信令,接收第一指示信息,其中,第一指示信息用于向第一终端设备指示发送交叉链路干扰测量信号的资源配置信息。
需要说明的是,第一指示信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
需要说明的是,步骤81的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
步骤82,接收第三指示信息,其中,第三指示信息用于指示第一终端设备触发一个或多个发送交叉链路干扰测量信号的资源配置信息。
比如,协议约定或者网络设备配置:可以在第三指示信息中增加特定的bit位,通过增加的bit位的取值表征第三指示信息。从而第一终端设备在接收到网络设备发送的第三指示信息之后,按照协议约定,再根据特定bit位的取值,即可获知触发第一指示信息指示的发送交叉链路干扰测量信号的资源配置信息等等。
需要说明的是,上述示例只是举例说明,不能作为对本公开实施例中,第三指示信息、以及第三指示信息中的bit位的数量、取值等的限定。
需要说明的是,处理交叉链路干扰测量信号的资源配置信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
通过实施本公开实施例,第一终端设备可以基于RRC信令,接收第一指示信息,以获知发送交叉链路干扰测量信号的资源配置信息,还可以根据接收的第三指示信息的指示,获知触发发送交叉链路干扰测量信号的资源配置信息,从而可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
请参见图9,图9是本公开实施例提供的一种通信方法的流程示意图,该方法由第一终端设备执行。如图9所示,该方法可以包括但不限于如下步骤:
步骤91,基于RRC信令,接收第一指示信息,其中,第一指示信息用于向第一终端设备指示发送交叉链路干扰测量信号的资源配置信息。
需要说明的是,第一指示信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
需要说明的是,步骤91的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
步骤92,基于MAC CE,接收第二指示信息,其中,第二指示信息用于指示第一终端设备激活一个或多个发送交叉链路干扰测量信号的资源配置信息,或者第二指示信息用于指示终端设备去激活一个或多个发送交叉链路干扰测量信号的资源配置信息。
比如,可以协议约定或者网络设备配置,发送交叉链路干扰测量信号的资源配置信息与MAC CE中特定的bit位之间的对应关系。又比如,可以设定bit的取值为1时,表征激活对应的发送交叉链路干扰测量信号的资源配置信息,bit的取值为0时,表征去激活对应的发送交叉链路干扰测量信号的资源配置信息。从而,第一终端设备可以根据接收的MAC CE中特定的bit位的取值,确定是激活一个或多个发送交叉链路干扰测量信号的资源配置信息,或者去激活一个或多个发送交叉链路干扰测量信号的资源配置信息。
需要说明的是,上述示例只是举例说明,不能作为对本公开实施例中发送交叉链路干扰测量信号的资源配置信息的具体内容、MAC CE中的bit的取值以及二者对应关系等的限定。
步骤93,基于DCI,接收第三指示信息,其中,第三指示信息用于指示第一终端设备触发一个或多个发送交叉链路干扰测量信号的资源配置信息。
比如,可以在DCI中增加特定的bit位,通过增加的bit位以表征第三指示信息。
可选的,可以通过协议约定,DCI中增加的bit位取值为1时,表征触发该bit位对应的交叉链路干扰测量信号的资源配置信息。从而,第一终端设备可以根据接收的DCI中特定的bit位的取值,确定触发对应的发送交叉链路干扰测量信号的资源配置信息。
需要说明的是,上述示例只是举例说明,不能作为对本公开实施例中发送交叉链路干扰测量信号的资源配置信息的具体内容、DCI中的bit的取值以及二者对应关系等的限定。
通过实施本公开实施例,第一终端设备可以基于RRC信令,接收第一指示信息,以确定发送交叉链路干扰测量信号的资源配置信息,之后可以基于MAC CE的指示,确定激活或者去激活发送交叉链路干扰测量信号的资源配置信息,还可以基于DCI的指示,确定触发发送交叉链路干扰测量信号的资源配置信息,从而第一终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
请参见图10,图10是本公开实施例提供的一种通信方法的流程示意图,该方法由第二终端设备执行。如图10所示,该方法可以包括但不限于如下步骤:
步骤101,接收第一指示信息,其中,第一指示信息用于向第二终端设备指示处理交叉链路干扰测量信号的资源配置信息。
通常,网络设备可以根据自己支持的全双工通信信息进行全双工通信。而终端设备在进行全双工通信时,可能存在自干扰以及邻近终端设备间的互干扰问题,从而可能会对通信传输造成干扰,影响通信 传输质量和效率。
本公开实施例中,第二终端设备可以通过接收的网络设备发送的第一指示信息,获知处理交叉链路干扰测量信号的资源配置信息。从而,第二终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高了通信传输的质量和效率。
可选的,第一指示信息中可以包括以下至少一项:测量交叉链路干扰测量信号的时频域资源配置信息;接收交叉链路干扰测量信号的时频域资源配置信息;接收交叉链路干扰测量信号的接收波束集合;以及,交叉链路干扰测量量的上报阈值。
需要说明的是,第一指示信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
可选的,交叉链路干扰测量信号可以为以下至少一项:PUSCH信号;PUCCH信号;SRS信号;以及指定的交叉链路干扰测量信号。
需要说明的是,交叉链路干扰测量信号的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
可选的,可以利用物理下行控制信道(physical downlink control channel,PDCCH)的接收波束,接收交叉链路干扰测量信号。
比如说,协议约定或者网络设备配置,PDCCH的接收波束为波束1,则第二终端设备可以通过波束1接收交叉链路干扰测量信号。
可选的,也可以利用物理下行共享信道(physical downlink shared channel,PDSCH)的接收波束,接收交叉链路干扰测量信号。
比如说,协议约定或者网络设备配置,PDSCH的接收波束为波束3,则第二终端设备可以通过波束3接收交叉链路干扰测量信号。
可选的,还可以利用网络设备配置的接收波束,接收交叉链路干扰测量信号。
比如说,网络设备配置的接收波束为波束4,则第二终端设备可以通过波束4接收交叉链路干扰测量信号。
需要说明的是,上述示例只是举例说明,不能作为对本公开实施例中接收交叉链路干扰测量信号的波束等的限定。
通过实施本公开实施例,第二终端设备可以根据第一指示信息的指示,获知处理交叉链路干扰测量信号的资源配置信息。从而,第二终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
请参见图11,图11是本公开实施例提供的一种通信方法的流程示意图,该方法由第二终端设备执行。如图11所示,该方法可以包括但不限于如下步骤:
步骤111,基于RRC信令,接收第一指示信息,其中,第一指示信息用于向第二终端设备指示处理交叉链路干扰测量信号的资源配置信息。
需要说明的是,第一指示信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
需要说明的是,步骤111的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
步骤112,接收第二指示信息,其中,第二指示信息用于指示第二终端设备激活一个或多个处理交叉链路干扰测量信号的资源配置信息,或者第二指示信息用于指示第二终端设备去激活一个或多个处理交叉链路干扰测量信号的资源配置信息。
需要说明的是,处理交叉链路干扰测量信号的资源配置信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
需要说明的是,步骤112的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
通过实施本公开实施例,第二终端设备可以基于RRC信令,接收第一指示信息,以获知处理交叉链路干扰测量信号的资源配置信息,还可以根据接收的第二指示信息的指示,确定激活或者去激活处理交叉链路干扰测量信号的资源配置信息,从而第二终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
请参见图12,图12是本公开实施例提供的一种通信方法的流程示意图,该方法由第二终端设备执行。如图12所示,该方法可以包括但不限于如下步骤:
步骤121,基于RRC信令,接收第一指示信息,其中,第一指示信息用于向第二终端设备指示处理交叉链路干扰测量信号的资源配置信息。
需要说明的是,第一指示信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
需要说明的是,步骤121的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
步骤122,接收第三指示信息,其中,第三指示信息用于指示第二终端设备触发一个或多个处理交叉链路干扰测量信号的资源配置信息。
需要说明的是,处理交叉链路干扰测量信号的资源配置信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
需要说明的是,步骤122的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
通过实施本公开实施例,第二终端设备可以基于RRC信令,接收第一指示信息,以获知处理交叉链路干扰测量信号的资源配置信息,还可以根据接收的第三指示信息的指示,获知触发处理交叉链路干扰测量信号的资源配置信息,从而可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
请参见图13,图13是本公开实施例提供的一种通信方法的流程示意图,该方法由第二终端设备执行。如图13所示,该方法可以包括但不限于如下步骤:
步骤131,基于RRC信令,接收第一指示信息,其中,第一指示信息用于向第二终端设备指示处理交叉链路干扰测量信号的资源配置信息。
需要说明的是,第一指示信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
需要说明的是,步骤131的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
步骤132,基于MAC CE,接收第二指示信息,其中,第二指示信息用于指示第二终端设备激活一个或多个处理交叉链路干扰测量信号的资源配置信息,或者第二指示信息用于指示第二终端设备去激活一个或多个处理交叉链路干扰测量信号的资源配置信息。
需要说明的是,处理交叉链路干扰测量信号的资源配置信息的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
需要说明的是,步骤131的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
步骤133,基于DCI,接收第三指示信息,其中,第三指示信息用于指示第二终端设备触发一个或多个处理交叉链路干扰测量信号的资源配置信息。
需要说明的是,步骤133的具体内容及实现方式,可以参照本公开其他各实施例的说明,此处不再赘述。
通过实施本公开实施例,第二终端设备可以基于RRC信令,接收第一指示信息,以确定触发交叉链路干扰测量信号的资源配置信息,之后可以基于MAC CE的指示,确定激活或者去激活处理交叉链路干扰测量信号的资源配置信息,还可以基于DCI的指示,确定触发处理交叉链路干扰测量信号的资源配置信息,从而第二终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
上述本公开提供的实施例中,从网络设备、第一终端设备、第二终端设备的角度对本公开实施例提供的方法进行了介绍。为了实现上述本公开实施例提供的方法中的各功能,网络设备、第一终端设备和第二终端设备可以包括硬件结构、软件模块,以硬件结构、软件模块、或硬件结构加软件模块的形式来实现上述各功能。上述各功能中的某个功能可以以硬件结构、软件模块、或者硬件结构加软件模块的方式来执行。
请参见图14,为本公开实施例提供的一种通信装置140的结构示意图。图所示的通信装置140可包括收发模块1401。
收发模块1401可包括发送模块和/或接收模块,发送模块用于实现发送功能,接收模块用于实现接收功能,收发模块1401可以实现发送功能和/或接收功能。
可以理解的是,通信装置140可以是网络设备,也可以是网络设备中的装置,还可以是能够与网络设备匹配使用的装置。
通信装置140,包括:
收发模块1401,用于发送第一指示信息,其中,所述第一指示信息用于向终端设备指示处理交叉链路干扰测量信号的资源配置信息。
可选的,所述第一指示信息中包括以下至少一项:
发送所述交叉链路干扰测量信号的时频域资源配置信息;
发送所述交叉链路干扰测量信号的发送波束集合;
测量所述交叉链路干扰测量信号的时频域资源配置信息;
接收所述交叉链路干扰测量信号的时频域资源配置信息;
接收所述交叉链路干扰测量信号的接收波束集合;以及,
交叉链路干扰测量量的上报阈值。
可选的,所述交叉链路干扰测量信号为以下至少一项:
物理上行共享信道PUSCH信号;
物理上行控制信道PUCCH信号;
探测参考信号SRS信号;以及,
指定的交叉链路干扰测量信号。
可选的,所述发送所述交叉链路干扰测量信号的发送波束集合由以下任一项指示:指定同步块SSB集合,或者,指定信道状态信息参考信号CSI RS集合。
可选的,所述收发模块1401,具体用于:
基于无线资源控制RRC信令,发送所述第一指示信息。
可选的,所述收发模块1401,还用于:
发送第二指示信息,其中,所述第二指示信息用于指示所述终端设备激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息,或者所述第二指示信息用于指示所述终端设备去激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
可选的,所述收发模块1401,还具体用于:
基于媒体接入控制MAC控制单元CE,发送所述第二指示信息。
可选的,所述收发模块1401,还用于:
发送第三指示信息,其中,所述第三指示信息用于指示所述终端设备触发一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
可选的,所述收发模块1401,还具体用于:
基于下行控制信息DCI,发送所述第三指示信息。
本公开提供的通信装置,通过向终端设备指示处理交叉链路干扰测量信号的资源配置信息,使终端设备可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可以理解的是,通信装置140可以是第一终端设备,也可以是第一终端设备中的装置,还可以是能够与第一终端设备匹配使用的装置。
通信装置140,包括:
收发模块1401,用于接收第一指示信息,其中,所述第一指示信息用于向所述装置指示发送交叉链路干扰测量信号的资源配置信息。
可选的,所述第一指示信息中包括以下至少一项:
发送所述交叉链路干扰测量信号的时频域资源配置信息;
发送所述交叉链路干扰测量信号的发送波束集合。
可选的,所述交叉链路干扰测量信号为以下至少一项:
物理上行共享信道PUSCH信号;
物理上行控制信道PUCCH信号;
探测参考信号SRS信号;以及,
指定的交叉链路干扰测量信号。
可选的,所述发送所述交叉链路干扰测量信号的发送波束集合由以下任一项指示:指定同步块SSB集合,或者,指定信道状态信息参考信号CSI RS集合。
可选的,上述装置140,还包括:
处理模块,用于将指定SSB集合的最优接收波束对应的上行波束,确定为所述交叉链路干扰测量信号的发送波束;
或者,
所述处理模块,还用于将指定CSI RS集合的最优接收波束对应的上行波束,确定为所述交叉链路干扰测量信号的发送波束。
可选的,所述收发模块1401,具体用于:
基于RRC信令,接收所述第一指示信息。
可选的,所述收发模块1401,还用于:
接收第二指示信息,其中,所述第二指示信息用于指示所述装置激活一个或多个所述发送交叉链路干扰测量信号的资源配置信息,或者所述第二指示信息用于指示所述装置去激活一个或多个所述发送交叉链路干扰测量信号的资源配置信息。
可选的,所述收发模块1401,还具体用于:
基于MAC CE,接收所述第二指示信息。
可选的,所述收发模块1401,还用于:
接收第三指示信息,其中,所述第三指示信息用于指示所述装置触发一个或多个所述发送交叉链路干扰测量信号的资源配置信息。
可选的,所述收发模块1401,还具体用于:
基于DCI,接收所述第三指示信息。
本公开提供的通信装置,可以根据第一指示信息的指示,获知发送交叉链路干扰测量信号的资源配置信息。从而,可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
可以理解的是,通信装置140可以是第二终端设备,也可以是第二终端设备中的装置,还可以是能够与第二终端设备匹配使用的装置。
通信装置140,包括:
收发模块1401,用于接收第一指示信息,其中,所述第一指示信息用于向所述装置指示处理交叉链路干扰测量信号的资源配置信息。
可选的,所述第一指示信息中包括以下至少一项:
测量所述交叉链路干扰测量信号的时频域资源配置信息;
接收所述交叉链路干扰测量信号的时频域资源配置信息;
接收所述交叉链路干扰测量信号的接收波束集合;以及,
交叉链路干扰测量量的上报阈值。
可选的,所述交叉链路干扰测量信号为以下至少一项:
物理上行共享信道PUSCH信号;
物理上行控制信道PUCCH信号;
探测参考信号SRS信号;以及,
指定的交叉链路干扰测量信号。
可选的,所述收发模块1401,还用于:
利用物理下行控制信道PDCCH的接收波束,接收所述交叉链路干扰测量信号;
或者,
利用物理下行共享信道PDSCH的接收波束,接收所述交叉链路干扰测量信号;
或者,
利用网络设备配置的接收波束,接收所述交叉链路干扰测量信号。
可选的,所述收发模块1401,具体用于:
基于RRC信令,接收所述第一指示信息。
可选的,所述收发模块1401,还用于:
接收第二指示信息,其中,所述第二指示信息用于指示所述装置激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息,或者所述第二指示信息用于指示所述装置去激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
可选的,所述收发模块1401,还具体用于:
基于MAC CE,接收所述第二指示信息。
可选的,所述收发模块1401,还用于:
接收第三指示信息,其中,所述第三指示信息用于指示所述装置触发一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
可选的,所述收发模块1401,还具体用于:
基于DCI,接收所述第三指示信息。
本公开提供的通信装置,可以根据第一指示信息的指示,获知处理交叉链路干扰测量信号的资源配置信息。从而,可以基于获取的资源配置信息进行全双工通信,从而尽量减少了终端设备使用全双工通信过程中的干扰,提高通信传输的质量和效率。
请参见图15,图15是本公开实施例提供的另一种通信装置150的结构示意图。通信装置150可以是网络设备,也可以是第一终端设备,还可以是第二终端设备,也可以是支持网络设备实现上述方法的芯片、芯片系统、或处理器等,也可以是支持第一终端设备实现上述方法的芯片、芯片系统、或处理器等,还可以是支持第二终端设备实现上述方法的芯片、芯片系统、或处理器等。该装置可用于实现上述方法实施例中描述的方法,具体可以参见上述方法实施例中的说明。
通信装置150可以包括一个或多个处理器1501。处理器1501可以是通用处理器或者专用处理器等。例如可以是基带处理器或中央处理器。基带处理器可以用于对通信协议以及通信数据进行处理,中央处理器可以用于对通信装置(如,基站、基带芯片,终端设备、终端设备芯片,DU或CU等)进行控制,执行计算机程序,处理计算机程序的数据。
可选的,通信装置150中还可以包括一个或多个存储器1502,其上可以存有计算机程序1504,处理器1501执行所述计算机程序1504,以使得通信装置150执行上述方法实施例中描述的方法。可选的,所述存储器1502中还可以存储有数据。通信装置150和存储器1502可以单独设置,也可以集成在一起。
可选的,通信装置150还可以包括收发器1505、天线1506。收发器1505可以称为收发单元、收发机、或收发电路等,用于实现收发功能。收发器1505可以包括接收器和发送器,接收器可以称为接收机或接收电路等,用于实现接收功能;发送器可以称为发送机或发送电路等,用于实现发送功能。
可选的,通信装置150中还可以包括一个或多个接口电路1507。接口电路1507用于接收代码指令并传输至处理器1501。处理器1501运行所述代码指令以使通信装置150执行上述方法实施例中描述的方法。
通信装置150为网络设备:收发器1505用于执行图2中的步骤21;图3中的步骤31;图3中的步骤32;图4中的步骤41;图4中的步骤42;图5中的步骤51;图5中的步骤52或图5中的步骤53。
通信装置150为第一终端设备:收发器1505用于执行图6中的步骤61;图7中的步骤71;图7中的步骤72;图8中的步骤81;图8中的步骤82;图9中的步骤91;图9中的步骤92或图9中的步骤93。
通信装置150为第二终端设备:收发器1505用于执行图10中的步骤101;图11中的步骤111;图11中的步骤112;图12中的步骤121;图12中的步骤122;图13中的步骤131;图13中的步骤132或图13中的步骤133。
在一种实现方式中,处理器1501中可以包括用于实现接收和发送功能的收发器。例如该收发器可以是收发电路,或者是接口,或者是接口电路。用于实现接收和发送功能的收发电路、接口或接口电路可以是分开的,也可以集成在一起。上述收发电路、接口或接口电路可以用于代码/数据的读写,或者,上述收发电路、接口或接口电路可以用于信号的传输或传递。
在一种实现方式中,处理器1501可以存有计算机程序1503,计算机程序1503在处理器1501上运行,可使得通信装置150执行上述方法实施例中描述的方法。计算机程序1503可能固化在处理器1501中,该种情况下,处理器1501可能由硬件实现。
在一种实现方式中,通信装置150可以包括电路,所述电路可以实现前述方法实施例中发送或接收或者通信的功能。本公开中描述的处理器和收发器可实现在集成电路(integrated circuit,IC)、模拟IC、射频集成电路RFIC、混合信号IC、专用集成电路(application specific integrated circuit,ASIC)、印刷电路板(printed circuit board,PCB)、电子设备等上。该处理器和收发器也可以用各种IC工艺技术来制造,例如互补金属氧化物半导体(complementary metal oxide semiconductor,CMOS)、N型金属氧化物半导体(nMetal-oxide-semiconductor,NMOS)、P型金属氧化物半导体(positive channel metal oxide semiconductor,PMOS)、双极结型晶体管(bipolar junction transistor,BJT)、双极CMOS(BiCMOS)、硅锗(SiGe)、砷化镓(GaAs)等。
以上实施例描述中的通信装置可以是网络设备,但本公开中描述的通信装置的范围并不限于此,而且通信装置的结构可以不受图15的限制。通信装置可以是独立的设备或者可以是较大设备的一部分。例如所述通信装置可以是:
(1)独立的集成电路IC,或芯片,或,芯片系统或子系统;
(2)具有一个或多个IC的集合,可选的,该IC集合也可以包括用于存储数据,计算机程序的存储部件;
(3)ASIC,例如调制解调器(Modem);
(4)可嵌入在其他设备内的模块;
(5)接收机、终端设备、智能终端设备、蜂窝电话、无线设备、手持机、移动单元、车载设备、网络设备、云设备、人工智能设备等等;
(6)其他等等。
对于通信装置可以是芯片或芯片系统的情况,可参见图16所示的芯片的结构示意图。图16所示的芯片包括处理器1601和接口1602。其中,处理器1601的数量可以是一个或多个,接口1602的数量可以是多个。
对于芯片用于实现本公开实施例中网络设备的功能的情况:
接口1602,用于执行图2中的步骤21;图3中的步骤31;图3中的步骤32;图3中的步骤33;图4中的步骤41;图4中的步骤42;图5中的步骤51;图5中的步骤52;图6中的步骤61或图6中的步骤62。
对于芯片用于实现本公开实施例中第一终端设备的功能的情况:
接口1602,用于执行图6中的步骤61;图7中的步骤71;图7中的步骤72;图8中的步骤81;图8中的步骤82;图9中的步骤91;图9中的步骤92或图9中的步骤93。
对于芯片用于实现本公开实施例中第二终端设备的功能的情况:
接口1602,用于执行图10中的步骤101;图11中的步骤111;图11中的步骤112;图12中的步骤121;图12中的步骤122;图13中的步骤131;图13中的步骤132或图13中的步骤133。
可选的,芯片还包括存储器1603,存储器1603用于存储必要的计算机程序和数据。
本领域技术人员还可以了解到本公开实施例列出的各种说明性逻辑块(illustrative logical block)和步骤(step)可以通过电子硬件、电脑软件,或两者的结合进行实现。这样的功能是通过硬件还是软件来实现取决于特定的应用和整个系统的设计要求。本领域技术人员可以对于每种特定的应用,可以使用各种方法实现所述的功能,但这种实现不应被理解为超出本公开实施例保护的范围。
本公开实施例还提供一种通信系统,该系统包括前述图14实施例中作为网络设备的通信装置,或者,该系统包括前述图15实施例中作为网络设备的通信装置。
本公开还提供一种计算机可读存储介质,其上存储有指令,该指令被计算机执行时实现上述任一方法实施例的功能。
本公开还提供一种计算机程序产品,该计算机程序产品被计算机执行时实现上述任一方法实施例的功能。
在上述实施例中,可以全部或部分地通过软件、硬件、固件或者其任意组合来实现。当使用软件实现时,可以全部或部分地以计算机程序产品的形式实现。所述计算机程序产品包括一个或多个计算机程序。在计算机上加载和执行所述计算机程序时,全部或部分地产生按照本公开实施例所述的流程或功能。所述计算机可以是通用计算机、专用计算机、计算机网络、或者其他可编程装置。所述计算机程序可以存储在计算机可读存储介质中,或者从一个计算机可读存储介质向另一个计算机可读存储介质传输,例如,所述计算机程序可以从一个网站站点、计算机、服务器或数据中心通过有线(例如同轴电缆、光纤、数字用户线(digital subscriber line,DSL))或无线(例如红外、无线、微波等)方式向另一个网站站点、计算机、服务器或数据中心进行传输。所述计算机可读存储介质可以是计算机能够存取的任何可用介质或者是包含一个或多个可用介质集成的服务器、数据中心等数据存储设备。所述可用介质可以是磁性介质(例如,软盘、硬盘、磁带)、光介质(例如,高密度数字视频光盘(digital video disc,DVD))、或者半导体介质(例如,固态硬盘(solid state disk,SSD))等。
本领域普通技术人员可以理解:本公开中涉及的第一、第二等各种数字编号仅为描述方便进行的区分,并不用来限制本公开实施例的范围,也表示先后顺序。
本公开中的至少一个还可以描述为一个或多个,多个可以是两个、三个、四个或者更多个,本公开不做限制。在本公开实施例中,对于一种技术特征,通过“第一”、“第二”、“第三”、“A”、“B”、“C”和“D”等区分该种技术特征中的技术特征,该“第一”、“第二”、“第三”、“A”、“B”、“C”和“D”描述的技术特征间无先后顺序或者大小顺序。
本公开中各表所示的对应关系可以被配置,也可以是预定义的。各表中的信息的取值仅仅是举例,可以配置为其他值,本公开并不限定。在配置信息与各参数的对应关系时,并不一定要求必须配置各表中示意出的所有对应关系。例如,本公开中的表格中,某些行示出的对应关系也可以不配置。又例如,可以基于上述表格做适当的变形调整,例如,拆分,合并等等。上述各表中标题示出参数的名称也可以采用通信装置可理解的其他名称,其参数的取值或表示方式也可以通信装置可理解的其他取值或表示方式。上述各表在实现时,也可以采用其他的数据结构,例如可以采用数组、队列、容器、栈、线性表、指针、链表、树、图、结构体、类、堆、散列表或哈希表等。
本公开中的预定义可以理解为定义、预先定义、存储、预存储、预协商、预配置、固化、或预烧制。
本领域普通技术人员可以意识到,结合本文中所公开的实施例描述的各示例的单元及算法步骤,能够以电子硬件、或者计算机软件和电子硬件的结合来实现。这些功能究竟以硬件还是软件方式来执行,取决于技术方案的特定应用和设计约束条件。专业技术人员可以对每个特定的应用来使用不同方法来实 现所描述的功能,但是这种实现不应认为超出本公开的范围。
所属领域的技术人员可以清楚地了解到,为描述的方便和简洁,上述描述的系统、装置和单元的具体工作过程,可以参考前述方法实施例中的对应过程,在此不再赘述。
以上所述,仅为本公开的具体实施方式,但本公开的保护范围并不局限于此,任何熟悉本技术领域的技术人员在本公开揭露的技术范围内,可轻易想到变化或替换,都应涵盖在本公开的保护范围之内。因此,本公开的保护范围应以所述权利要求的保护范围为准。

Claims (65)

  1. 一种通信方法,其特征在于,由网络设备执行,所述方法包括:
    发送第一指示信息,其中,所述第一指示信息用于向终端设备指示处理交叉链路干扰测量信号的资源配置信息。
  2. 如权利要求1所述的方法,其特征在于,所述第一指示信息中包括以下至少一项:
    发送所述交叉链路干扰测量信号的时频域资源配置信息;
    发送所述交叉链路干扰测量信号的发送波束集合;
    测量所述交叉链路干扰测量信号的时频域资源配置信息;
    接收所述交叉链路干扰测量信号的时频域资源配置信息;
    接收所述交叉链路干扰测量信号的接收波束集合;以及,
    交叉链路干扰测量量的上报阈值。
  3. 如权利要求2所述的方法,其特征在于,所述交叉链路干扰测量信号为以下至少一项:
    物理上行共享信道PUSCH信号;
    物理上行控制信道PUCCH信号;
    探测参考信号SRS信号;以及,
    指定的交叉链路干扰测量信号。
  4. 如权利要求2所述的方法,其特征在于,所述发送所述交叉链路干扰测量信号的发送波束集合由以下任一项指示:指定同步块SSB集合,或者,指定信道状态信息参考信号CSI RS集合。
  5. 如权利要求1所述的方法,其特征在于,所述发送第一指示信息,包括:
    基于无线资源控制RRC信令,发送所述第一指示信息。
  6. 如权利要求1-5任一所述的方法,其特征在于,还包括:
    发送第二指示信息,其中,所述第二指示信息用于指示所述终端设备激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息,或者所述第二指示信息用于指示所述终端设备去激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
  7. 如权利要求6所述的方法,其特征在于,所述发送第二指示信息,包括:
    基于媒体接入控制MAC控制单元CE,发送所述第二指示信息。
  8. 如权利要求1-7任一所述的方法,其特征在于,还包括:
    发送第三指示信息,其中,所述第三指示信息用于指示所述终端设备触发一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
  9. 如权利要求8所述的方法,其特征在于,所述发送第三指示信息,包括:
    基于下行控制信息DCI,发送所述第三指示信息。
  10. 一种通信方法,其特征在于,由第一终端设备执行,所述方法包括:
    接收第一指示信息,其中,所述第一指示信息用于向所述第一终端设备指示发送交叉链路干扰测量信号的资源配置信息。
  11. 如权利要求10所述的方法,其特征在于,所述第一指示信息中包括以下至少一项:
    发送所述交叉链路干扰测量信号的时频域资源配置信息;
    发送所述交叉链路干扰测量信号的发送波束集合。
  12. 如权利要求11所述的方法,其特征在于,所述交叉链路干扰测量信号为以下至少一项:
    物理上行共享信道PUSCH信号;
    物理上行控制信道PUCCH信号;
    探测参考信号SRS信号;以及,
    指定的交叉链路干扰测量信号。
  13. 如权利要求11所述的方法,其特征在于,所述发送所述交叉链路干扰测量信号的发送波束集合由以下任一项指示:指定同步块SSB集合,或者,指定信道状态信息参考信号CSI RS集合。
  14. 如权利要求11所述的方法,其特征在于,还包括:
    将指定SSB集合的最优接收波束对应的上行波束,确定为所述交叉链路干扰测量信号的发送波束;
    或者,
    将指定CSI RS集合的最优接收波束对应的上行波束,确定为所述交叉链路干扰测量信号的发送波束。
  15. 如权利要求10所述的方法,其特征在于,所述接收第一指示信息,包括:
    基于RRC信令,接收所述第一指示信息。
  16. 如权利要求10-15任一所述的方法,其特征在于,还包括:
    接收第二指示信息,其中,所述第二指示信息用于指示所述第一终端设备激活一个或多个所述发送交叉链路干扰测量信号的资源配置信息,或者所述第二指示信息用于指示所述第一终端设备去激活一个或多个所述发送交叉链路干扰测量信号的资源配置信息。
  17. 如权利要求16所述的方法,其特征在于,所述接收第二指示信息,包括:
    基于MAC CE,接收所述第二指示信息。
  18. 如权利要求10-17任一所述的方法,其特征在于,还包括:
    接收第三指示信息,其中,所述第三指示信息用于指示所述第一终端设备触发一个或多个所述发送交叉链路干扰测量信号的资源配置信息。
  19. 如权利要求18所述的方法,其特征在于,所述接收第三指示信息,包括:
    基于DCI,接收所述第三指示信息。
  20. 一种通信方法,其特征在于,由第二终端设备执行,所述方法包括:
    接收第一指示信息,其中,所述第一指示信息用于向所述第二终端设备指示处理交叉链路干扰测量信号的资源配置信息。
  21. 如权利要求20所述的方法,其特征在于,所述第一指示信息中包括以下至少一项:
    测量所述交叉链路干扰测量信号的时频域资源配置信息;
    接收所述交叉链路干扰测量信号的时频域资源配置信息;
    接收所述交叉链路干扰测量信号的接收波束集合;以及,
    交叉链路干扰测量量的上报阈值。
  22. 如权利要求21所述的方法,其特征在于,所述交叉链路干扰测量信号为以下至少一项:
    物理上行共享信道PUSCH信号;
    物理上行控制信道PUCCH信号;
    探测参考信号SRS信号;以及,
    指定的交叉链路干扰测量信号。
  23. 如权利要求21所述的方法,其特征在于,还包括:
    利用物理下行控制信道PDCCH的接收波束,接收所述交叉链路干扰测量信号;
    或者,
    利用物理下行共享信道PDSCH的接收波束,接收所述交叉链路干扰测量信号;
    或者,
    利用网络设备配置的接收波束,接收所述交叉链路干扰测量信号。
  24. 如权利要求20所述的方法,其特征在于,所述接收第一指示信息,包括:
    基于RRC信令,接收所述第一指示信息。
  25. 如权利要求20-24任一所述的方法,其特征在于,还包括:
    接收第二指示信息,其中,所述第二指示信息用于指示所述第二终端设备激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息,或者所述第二指示信息用于指示所述第二终端设备去激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
  26. 如权利要求25所述的方法,其特征在于,所述接收第二指示信息,包括:
    基于MAC CE,接收所述第二指示信息。
  27. 如权利要求20-26任一所述的方法,其特征在于,还包括:
    接收第三指示信息,其中,所述第三指示信息用于指示所述第二终端设备触发一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
  28. 如权利要求27所述的方法,其特征在于,所述接收第三指示信息,包括:
    基于DCI,接收所述第三指示信息。
  29. 一种通信装置,其特征在于,所述装置包括:
    收发模块,用于发送第一指示信息,其中,所述第一指示信息用于向终端设备指示处理交叉链路干扰测量信号的资源配置信息。
  30. 如权利要求29所述的装置,其特征在于,所述第一指示信息中包括以下至少一项:
    发送所述交叉链路干扰测量信号的时频域资源配置信息;
    发送所述交叉链路干扰测量信号的发送波束集合;
    测量所述交叉链路干扰测量信号的时频域资源配置信息;
    接收所述交叉链路干扰测量信号的时频域资源配置信息;
    接收所述交叉链路干扰测量信号的接收波束集合;以及,
    交叉链路干扰测量量的上报阈值。
  31. 如权利要求30所述的装置,其特征在于,所述交叉链路干扰测量信号为以下至少一项:
    物理上行共享信道PUSCH信号;
    物理上行控制信道PUCCH信号;
    探测参考信号SRS信号;以及,
    指定的交叉链路干扰测量信号。
  32. 如权利要求30所述的装置,其特征在于,所述发送所述交叉链路干扰测量信号的发送波束集合由以下任一项指示:指定同步块SSB集合,或者,指定信道状态信息参考信号CSI RS集合。
  33. 如权利要求29所述的装置,其特征在于,所述收发模块,具体用于:
    基于无线资源控制RRC信令,发送所述第一指示信息。
  34. 如权利要求29-33任一所述的装置,其特征在于,所述收发模块,还用于:
    发送第二指示信息,其中,所述第二指示信息用于指示所述终端设备激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息,或者所述第二指示信息用于指示所述终端设备去激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
  35. 如权利要求34所述的装置,其特征在于,所述收发模块,还具体用于:
    基于媒体接入控制MAC控制单元CE,发送所述第二指示信息。
  36. 如权利要求29-35任一所述的装置,其特征在于,所述收发模块,还用于:
    发送第三指示信息,其中,所述第三指示信息用于指示所述终端设备触发一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
  37. 如权利要求36所述的装置,其特征在于,所述收发模块,还具体用于:
    基于下行控制信息DCI,发送所述第三指示信息。
  38. 一种通信装置,其特征在于,所述装置包括:
    收发模块,用于接收第一指示信息,其中,所述第一指示信息用于向所述装置指示发送交叉链路干扰测量信号的资源配置信息。
  39. 如权利要求38所述的装置,其特征在于,所述第一指示信息中包括以下至少一项:
    发送所述交叉链路干扰测量信号的时频域资源配置信息;
    发送所述交叉链路干扰测量信号的发送波束集合。
  40. 如权利要求39所述的装置,其特征在于,所述交叉链路干扰测量信号为以下至少一项:
    物理上行共享信道PUSCH信号;
    物理上行控制信道PUCCH信号;
    探测参考信号SRS信号;以及,
    指定的交叉链路干扰测量信号。
  41. 如权利要求39所述的装置,其特征在于,所述发送所述交叉链路干扰测量信号的发送波束集合由以下任一项指示:指定同步块SSB集合,或者,指定信道状态信息参考信号CSI RS集合。
  42. 如权利要求39所述的装置,其特征在于,还包括:
    处理模块,用于将指定SSB集合的最优接收波束对应的上行波束,确定为所述交叉链路干扰测量信号的发送波束;
    或者,
    所述处理模块,还用于将指定CSI RS集合的最优接收波束对应的上行波束,确定为所述交叉链路干扰测量信号的发送波束。
  43. 如权利要求38所述的装置,其特征在于,所述收发模块,具体用于:
    基于RRC信令,接收所述第一指示信息。
  44. 如权利要求38-43任一所述的装置,其特征在于,所述收发模块,还用于:
    接收第二指示信息,其中,所述第二指示信息用于指示所述装置激活一个或多个所述发送交叉链路干扰测量信号的资源配置信息,或者所述第二指示信息用于指示所述装置去激活一个或多个所述发送交叉链路干扰测量信号的资源配置信息。
  45. 如权利要求44所述的装置,其特征在于,所述收发模块,还具体用于:
    基于MAC CE,接收所述第二指示信息。
  46. 如权利要求38-45任一所述的装置,其特征在于,所述收发模块,还用于:
    接收第三指示信息,其中,所述第三指示信息用于指示所述装置触发一个或多个所述发送交叉链路干扰测量信号的资源配置信息。
  47. 如权利要求46所述的装置,其特征在于,所述收发模块,还具体用于:
    基于DCI,接收所述第三指示信息。
  48. 一种通信装置,其特征在于,所述装置包括:
    收发模块,用于接收第一指示信息,其中,所述第一指示信息用于向所述装置指示处理交叉链路干扰测量信号的资源配置信息。
  49. 如权利要求48所述的装置,其特征在于,所述第一指示信息中包括以下至少一项:
    测量所述交叉链路干扰测量信号的时频域资源配置信息;
    接收所述交叉链路干扰测量信号的时频域资源配置信息;
    接收所述交叉链路干扰测量信号的接收波束集合;以及,
    交叉链路干扰测量量的上报阈值。
  50. 如权利要求49所述的装置,其特征在于,所述交叉链路干扰测量信号为以下至少一项:
    物理上行共享信道PUSCH信号;
    物理上行控制信道PUCCH信号;
    探测参考信号SRS信号;以及,
    指定的交叉链路干扰测量信号。
  51. 如权利要求49所述的装置,其特征在于,所述收发模块,还用于:
    利用物理下行控制信道PDCCH的接收波束,接收所述交叉链路干扰测量信号;
    或者,
    利用物理下行共享信道PDSCH的接收波束,接收所述交叉链路干扰测量信号;
    或者,
    利用网络设备配置的接收波束,接收所述交叉链路干扰测量信号。
  52. 如权利要求48所述的装置,其特征在于,所述收发模块,具体用于:
    基于RRC信令,接收所述第一指示信息。
  53. 如权利要求48-52任一所述的装置,其特征在于,所述收发模块,还用于:
    接收第二指示信息,其中,所述第二指示信息用于指示所述装置激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息,或者所述第二指示信息用于指示所述装置去激活一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
  54. 如权利要求53所述的装置,其特征在于,所述收发模块,还具体用于:
    基于MAC CE,接收所述第二指示信息。
  55. 如权利要求48-54任一所述的装置,其特征在于,所述收发模块,还用于:
    接收第三指示信息,其中,所述第三指示信息用于指示所述装置触发一个或多个所述处理交叉链路干扰测量信号的资源配置信息。
  56. 如权利要求55所述的装置,其特征在于,所述收发模块,还具体用于:
    基于DCI,接收所述第三指示信息。
  57. 一种通信装置,其特征在于,所述装置包括处理器和存储器,所述存储器中存储有计算机程序,所述处理器执行所述存储器中存储的计算机程序,以执行如权利要求1至9中任一项所述的方法。
  58. 一种通信装置,其特征在于,所述装置包括处理器和存储器,所述存储器中存储有计算机程序,所述处理器执行所述存储器中存储的计算机程序,以执行如权利要求10至19中任一项所述的方法。
  59. 一种通信装置,其特征在于,所述装置包括处理器和存储器,所述存储器中存储有计算机程序,所述处理器执行所述存储器中存储的计算机程序,以执行如权利要求20至28中任一项所述的方法。
  60. 一种通信装置,其特征在于,包括:处理器和接口电路;
    所述接口电路,用于接收代码指令并传输至所述处理器;
    所述处理器,用于运行所述代码指令以执行如权利要求1至9中任一项所述的方法。
  61. 一种通信装置,其特征在于,包括:处理器和接口电路;
    所述接口电路,用于接收代码指令并传输至所述处理器;
    所述处理器,用于运行所述代码指令以执行如权利要求10至19中任一项所述的方法。
  62. 一种通信装置,其特征在于,包括:处理器和接口电路;
    所述接口电路,用于接收代码指令并传输至所述处理器;
    所述处理器,用于运行所述代码指令以执行如权利要求20至28中任一项所述的方法。
  63. 一种计算机可读存储介质,用于存储有指令,当所述指令被执行时,使如权利要求1至9中任一项所述的方法被实现。
  64. 一种计算机可读存储介质,用于存储有指令,当所述指令被执行时,使如权利要求10至19中任一项所述的方法被实现。
  65. 一种计算机可读存储介质,用于存储有指令,当所述指令被执行时,使如权利要求20至28中任一项所述的方法被实现。
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