Communication method and related device
By receiving and measuring multiple reference signals, and based on the measurement results and the number of events, the system determines the trigger for beam measurement reporting, thus solving the problem of low accuracy in beam measurement results and improving data transmission efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-30
- Publication Date
- 2026-04-07
AI Technical Summary
In the prior art, beam measurement results triggered by reference signal measurement results have low accuracy, leading to incorrect operations performed on the network side.
By receiving and measuring K first reference signals and L second reference signals, and based on the measurement results and the number of events, the trigger beam measurement reporting is determined to reduce the inaccuracy caused by the time fluctuation of the reference signal measurement results.
It improves the accuracy of beam measurement results, assists the network side in performing correct operations, and improves data transmission efficiency.
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Figure CN121815408A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of communication, and in particular to a communication method and related apparatus. BACKGROUND
[0002] Multiple input multiple output (MIMO) is an antenna system in which multiple channels are formed between the transmitting end and the receiving end by using multiple antennas at both the transmitting end and the receiving end to improve channel capacity. When a base station transmits data to a user equipment (UE) by using the MIMO technology, the base station needs to rely on the reference signal measurement result fed back by the UE. Therefore, the reference signal measurement between the base station and the UE is crucial to the transmission performance of the MIMO system.
[0003] At present, the base station needs to first transmit signaling for the configuration of reference signal measurement to inform the UE of the time and behavior of the reference signal measurement; then the base station transmits reference signals to the UE for reference signal measurement; the UE measures the reference signals transmitted by the base station to obtain the reference signal measurement result; and the base station determines the precoding information for the transmission of service data according to the reference signal measurement result reported by the UE, so as to transmit the service data.
[0004] However, the beam measurement result triggered by the reference signal measurement result has low accuracy at present, thereby misleading the network side to perform incorrect operations based on the beam measurement result. SUMMARY
[0005] Embodiments of the present application provide a communication method and related apparatus, which can improve the accuracy of the reported beam measurement result to effectively assist the network side to perform correct operations.
[0006] In a first aspect, embodiments of the present application provide a communication method applied to a first communication apparatus. It can be understood that the communication method can be executed by the first communication apparatus, which can be a terminal device, a chip (system) or circuit for the terminal device, and the present application does not limit this. The communication method comprises the following steps.
[0007] receiving K first reference signals and L second reference signals from a second communication apparatus, K being an integer greater than 0 and L being an integer greater than 0;
[0008] measuring the K first reference signals to obtain a first measurement result and measuring the L second reference signals to obtain a second measurement result;
[0009] obtaining a measurement result corresponding to each of the K first reference signals based on the first measurement result;
[0010] based on the first measurement result and the second measurement result, obtaining a number of first events corresponding to each pair of reference signals in the K*L pairs of reference signals, the first event including a difference between one measurement result corresponding to one of the L second reference signals and one measurement result corresponding to one of the K first reference signals being greater than a first threshold value;
[0011] based on the measurement result corresponding to each of the K first reference signals and / or the number of first events corresponding to each pair of reference signals in the K*L pairs of reference signals, determining triggering of reporting of the beam measurement.
[0012] In the embodiments of the present application, a communication method is provided, a second communication device sends K first reference signals and L second reference signals to a first communication device, and correspondingly, the first communication device receives the K first reference signals and the L second reference signals from the second communication device. Furthermore, the first communication device measures the K first reference signals to obtain first measurement results, and measures the L second reference signals to obtain second measurement results. The first communication device obtains a measurement result corresponding to each of the K first reference signals based on the first measurement results, and obtains a number of first events corresponding to each pair of reference signals in the K*L pairs of reference signals based on the first measurement result and the second measurement result. The first communication device determines triggering of reporting of the beam measurement based on the measurement result corresponding to each of the K first reference signals and / or the number of first events corresponding to each pair of reference signals in the K*L pairs of reference signals. The communication device herein can also be a processor / chip that can be used to execute computer-executable instructions, and the embodiments of the present application do not limit this.
[0013] The K first reference signals and the L second reference signals in the embodiments of the present application can be transmitted / received once or multiple times, and the embodiments of the present application do not limit this. Correspondingly, the K first reference signals and the L second reference signals in the embodiments of the present application can also be measured once or multiple times, and the first measurement result and the second measurement result obtained can include one or more measurement results, and the embodiments of the present application do not limit this.
[0014] The measurement result corresponding to each of the K first reference signals obtained based on the first measurement result in the embodiments of the present application can include one measurement result corresponding to one measurement of each first reference signal, can include multiple measurement results corresponding to multiple measurements of each first reference signal, or can include one measurement result calculated according to the multiple measurement results, and the embodiments of the present application do not limit this.
[0015] The first event in the embodiments of the present application includes that a difference between a measurement result corresponding to one of the L second reference signals and a measurement result corresponding to one of the K first reference signals is greater than a first threshold. Optionally, the first threshold can be specified by a protocol, or can be configured by the second communication device, or can be determined by the first communication device autonomously, and the embodiments of the present application do not limit this. It can be understood that the first threshold can be adjusted according to the communication requirements of different application scenarios, and the embodiments of the present application do not limit this. Optionally, the first event can also be referred to as "event-7", and the embodiments of the present application do not limit the specific name of the first event.
[0016] Currently, as long as a measurement result of a reference signal corresponding to an inactivated beam is higher than a measurement result of a reference signal corresponding to an activated beam, and is higher than a threshold, beam measurement reporting is triggered. However, the measurement result corresponding to the reference signal fluctuates greatly with time, and a measurement result at a certain moment cannot completely reflect the quality of the reference signal. Therefore, according to the current triggering mechanism of beam measurement reporting, the accuracy of the triggered beam measurement result is low, thereby misleading the network side to perform incorrect operations based on the beam measurement result.
[0017] In the embodiments of the present application, the triggering of beam measurement reporting is determined based on the measurement result corresponding to each of the K first reference signals and / or the number of times of the first event corresponding to each of the KxL pairs of reference signals, which can reduce or even eliminate the inaccuracy caused by the fluctuation of the measurement result corresponding to the reference signal with time, thereby improving the accuracy of the reported beam measurement result, to effectively assist the network side to perform correct operations.
[0018] In a possible implementation, the K first reference signals include at least one reference signal corresponding to a first beam, and the first beam is a beam not used for current data transmission between the first communication device and the second communication device; and the L second reference signals include at least one reference signal corresponding to a second beam, and the second beam is an inactivated beam.
[0019] In the embodiment, the K first reference signals include at least one reference signal corresponding to a first beam, the first beam being a beam not used in current data transmission between the first communication device and the second communication device but activated, and the first beam can be referred to as an "active beam" optionally, and the specific name of the first beam is not limited in the embodiment. The L second reference signals include at least one reference signal corresponding to a second beam, the second beam being an inactivated beam, and the second beam can be referred to as a "new beam" optionally, and the specific name of the second beam is not limited in the embodiment. It can be understood that, by using the beam measurement reporting triggering mechanism in the embodiment, when it is determined to trigger the beam measurement reporting, the one or more beams not used in current data transmission between the first communication device and the second communication device but activated (i.e., the first beam) can be replaced by one or more inactivated beams with better quality (i.e., the second beam) based on the reported measurement results, so as to improve the data transmission efficiency between the first communication device and the second communication device.
[0020] In a possible implementation, the obtaining the number of times of the first event corresponding to each pair of reference signals in the K*L pairs of reference signals comprises:
[0021] obtaining the number of times of the first event corresponding to each pair of reference signals in the K*L pairs of reference signals in a first time window;
[0022] The obtaining the measurement result corresponding to each first reference signal in the K first reference signals comprises:
[0023] obtaining the measurement result corresponding to each first reference signal in the K first reference signals in a second time window;
[0024] The first time window and the second time window are the same or overlap.
[0025] In the embodiment, the number of the first events corresponding to each of the K*L pairs of reference signals is within a first time window, the measurement result corresponding to each of the K first reference signals is within a second time window, and the first time window and the second time window can be the same or overlap. Optionally, the first time window and the second time window can be completely the same, or the first time window can contain the second time window, or the second time window can contain the first time window, or the first time window and the second time window can partially overlap, and the first time window is after the second time window, or the first time window and the second time window can partially overlap, and the first time window is before the second time window, and the like, which are not limited in the embodiments of the present application. Optionally, the second time window can also be a time window for measuring the L second reference signals, which is not limited in the embodiments of the present application. Through the configuration of the first time window and / or the second time window in the embodiments of the present application, the inaccuracy caused by the fluctuation of the measurement result corresponding to the reference signal over time can be reduced or even eliminated, so that the accuracy of the reported beam measurement result can be improved to effectively assist the network side to perform correct operation.
[0026] Optionally, one time window can be configured for the measurement of all K first reference signals, or multiple time windows can be configured for the measurement of different first reference signals or a set of first reference signals in the K first reference signals, which is not limited in the embodiments of the present application.
[0027] Optionally, one time window can be configured for the measurement of all L second reference signals, or multiple time windows can be configured for the measurement of different second reference signals or a set of second reference signals in the L second reference signals, which is not limited in the embodiments of the present application.
[0028] In a possible implementation, the first time window and / or the second time window is specified by a protocol, or is configured by the second communication device, or is configured by the first communication device.
[0029] In the embodiment, the first time window and / or the second time window can be specified by a protocol, or can be configured by the second communication device, or can be determined by the first communication device, which is not limited in the embodiments of the present application.
[0030] In a possible implementation, the measurement result corresponding to each of the K first reference signals is determined by one or more reference signal received power (RSRP) corresponding to each first reference signal.
[0031] In the embodiment, the measurement result corresponding to each of the K first reference signals includes one or more measurement results corresponding to each of the K first reference signals, and specifically can include one or more reference signal received powers (RSRP) corresponding to each of the K first reference signals and determined by the one or more RSRP corresponding to each of the K first reference signals. Alternatively, the measurement result corresponding to each of the K first reference signals can be obtained by averaging or weighted averaging or other calculation of the one or more RSRP corresponding to each of the K first reference signals, and the embodiments of the present application do not limit this. Alternatively, the RSRP can be replaced by a signal to interference plus noise ratio (SINR), a reference signal receiving quality (RSRQ), a received signal strength indication (RSSI) or other measurement results, and the embodiments of the present application do not limit this. Through the embodiments of the present application, the inaccuracy caused by the fluctuation of the measurement result corresponding to the reference signal over time can be reduced or even eliminated, so that the accuracy of the reported beam measurement result can be improved to effectively assist the network side to perform correct operation.
[0032] In a possible implementation, the determining of the triggering of the beam measurement reporting based on the measurement result corresponding to each of the K first reference signals and / or the number of the first event corresponding to each of the K*L pairs of reference signals includes:
[0033] sorting the K first reference signals in descending order of the measurement result corresponding to each of the K first reference signals;
[0034] if the number of the first event corresponding to the first pair of reference signals in the K*L pairs of reference signals is greater than or equal to a second threshold, triggering the beam measurement reporting; wherein the first pair of reference signals includes a reference signal A and a reference signal B, the reference signal A is a first reference signal ranked at an Mth position in the K first reference signals, and M is an integer satisfying 0
[0035] In the embodiment, a possible implementation of determining to trigger beam measurement reporting is provided, specifically, K first reference signals are sorted in descending order according to measurement results corresponding to each first reference signal, and if the number of times of a first event corresponding to a first pair of reference signals in K*L pairs of reference signals is greater than or equal to a second threshold, it is determined to trigger beam measurement reporting. The first pair of reference signals includes reference signal A and reference signal B, and the reference signal A is a first reference signal ranked in the Mth position in the K first reference signals, and the reference signal B is a second reference signal in the L second reference signals. It can be understood that for the first reference signal ranked in the Mth position in the K first reference signals (assuming it is reference signal A), if the number of times of a first event between one second reference signal (assuming it is reference signal B) and the first reference signal is greater than or equal to the second threshold, it is determined to trigger beam measurement reporting. Compared with the current method of triggering beam measurement reporting as long as the measurement result of the reference signal corresponding to the unactivated beam pair is higher than the measurement result of the reference signal corresponding to the activated beam, and the measurement result is higher than a threshold, the embodiment of the application determines to trigger beam measurement reporting based on the measurement result corresponding to each first reference signal in the K first reference signals and the number of times of the first event corresponding to each pair of reference signals in the K*L pairs of reference signals, which can reduce or even eliminate the inaccuracy caused by the fluctuation of the measurement result corresponding to the reference signal over time, thereby improving the accuracy of the reported beam measurement result, to effectively assist the network side to perform correct operation.
[0036] In a possible implementation, the second threshold is specified by a protocol, or is configured by the second communication device, or is configured by the first communication device.
[0037] In the embodiment, the second threshold described above can be specified by a protocol, or can be configured by the second communication device, or can be autonomously determined by the first communication device, and the embodiment of the application does not limit this. It can be understood that the second threshold can be adjusted according to the communication requirements of different application scenarios, and the embodiment of the application does not limit this.
[0038] In a possible implementation, the determination to trigger beam measurement reporting based on the measurement result corresponding to each first reference signal in the K first reference signals and / or the number of times of the first event corresponding to each pair of reference signals in the K*L pairs of reference signals includes:
[0039] Based on the number of times of the first event corresponding to each pair of reference signals in the K*L pairs of reference signals, the maximum number of times of the first event corresponding to each first reference signal in the K first reference signals is obtained.
[0040] If there is a first reference signal set in the K first reference signals, beam measurement reporting is triggered; wherein the maximum number of L times of the first event corresponding to each first reference signal in the first reference signal set is greater than or equal to a third threshold, and the number of first reference signals in the first reference signal set is greater than or equal to a fourth threshold.
[0041] In the embodiment, a possible specific implementation of determining to trigger beam measurement reporting is provided, specifically, based on the number of times of the first event corresponding to each pair of reference signals in the KxL pairs of reference signals, the maximum number of L times of the first event corresponding to each first reference signal in the K first reference signals is obtained, and if there is a first reference signal set in the K first reference signals, it is determined to trigger beam measurement reporting. Wherein the maximum number of L times of the first event corresponding to each first reference signal in the first reference signal set is greater than or equal to a third threshold, and the number of first reference signals in the first reference signal set is greater than or equal to a fourth threshold. It can be understood that for the first reference signal whose signal quality is in the Nth place (N is an integer satisfying 0
[0042] In a possible implementation, the third threshold and / or the fourth threshold is specified by a protocol, or determined by configuration information of the second communication device, or determined by configuration information of the first communication device.
[0043] In the embodiment, the third threshold and / or the fourth threshold can be specified by a protocol, or can be determined by configuration information of the second communication device, or can be determined by configuration information of the first communication device, and the present application does not limit this. It can be understood that the third threshold and / or the fourth threshold can be adjusted according to the communication requirements of different application scenarios, and the present application does not limit this.
[0044] Optionally, the fourth threshold can be calculated by the first communication device and / or the second communication device according to the configured information, for example, for the first reference signal with the Nth (N is an integer satisfying 0 < N ≤ K) signal quality in the K first reference signals, if the number of the first reference signals in the first reference signal set is N-1, and the N-1 is greater than or equal to K-N+1, it is determined to trigger the beam measurement reporting. At this time, the K-N+1 can be understood as the fourth threshold, that is, the fourth threshold can be calculated by the configured K and N.
[0045] Optionally, the fourth threshold can also be directly determined by the first communication device and / or the second communication device according to the configured information, for example, for the first reference signal with the Nth (N is an integer satisfying 0 < N ≤ K) signal quality in the K first reference signals, if the number of the first reference signals in the first reference signal set is greater than or equal to N, it is determined to trigger the beam measurement reporting. At this time, the N can be understood as the fourth threshold, that is, the fourth threshold can be directly determined by the configured N.
[0046] In a second aspect, an embodiment of the present application provides a communication method applied to a second communication device. It can be understood that the communication method can be executed by the second communication device, which can be a network device or a chip (system) or circuit for the network device, and the present application does not limit this. The communication method comprises:
[0047] sending K first reference signals and L second reference signals to a first communication device, K being an integer greater than 0 and L being an integer greater than 0; wherein the K first reference signals are used to determine a first measurement result, the L second reference signals are used to determine a second measurement result, the first measurement result is used to determine a measurement result corresponding to each of the K first reference signals, and the first measurement result and the second measurement result are used to determine a number of a first event corresponding to each pair of reference signals in K×L pairs of reference signals, the first event including a difference between a measurement result corresponding to one of the L second reference signals and a measurement result corresponding to one of the K first reference signals being greater than a first threshold value;
[0048] receiving a beam measurement report from the first communication device, the beam measurement report being triggered by the measurement result corresponding to each of the K first reference signals and / or the number of the first event corresponding to each pair of reference signals in the K×L pairs of reference signals;
[0049] updating transmission configuration indication information corresponding to the K first reference signals.
[0050] In the embodiments of the present application, a communication method is provided. A second communication device sends K first reference signals and L second reference signals to a first communication device. Correspondingly, the first communication device receives the K first reference signals and the L second reference signals from the second communication device. The first communication device measures the K first reference signals to obtain first measurement results, and measures the L second reference signals to obtain second measurement results. The first communication device obtains a measurement result corresponding to each of the K first reference signals based on the first measurement results, and obtains a number of first events corresponding to each of the K*L pairs of reference signals based on the first measurement results and the second measurement results. The first communication device determines to trigger a beam measurement report based on the measurement result corresponding to each of the K first reference signals and / or the number of first events corresponding to each of the K*L pairs of reference signals, and reports the measurement result to the second communication device. Correspondingly, the second communication device receives the beam measurement report, and updates transmission configuration indication information corresponding to the K first reference signals based on the beam measurement report. The communication device in the present application can also be a processor / chip that can execute computer instructions, and the embodiments of the present application do not limit this.
[0051] The K first reference signals and the L second reference signals in the embodiments of the present application can be transmitted / received once or multiple times, and the embodiments of the present application do not limit this. Correspondingly, the K first reference signals and the L second reference signals in the embodiments of the present application can also be measured once or multiple times, and the first measurement results and the second measurement results obtained can include one or more measurement results, and the embodiments of the present application do not limit this.
[0052] The measurement result corresponding to each of the K first reference signals obtained based on the first measurement results in the embodiments of the present application can include one measurement result corresponding to one measurement of each first reference signal, can include multiple measurement results corresponding to multiple measurements of each first reference signal, or can include one measurement result calculated based on the multiple measurement results, and the embodiments of the present application do not limit this.
[0053] The first event in the embodiments of the present application includes that a difference between a measurement result corresponding to one of the L second reference signals and a measurement result corresponding to one of the K first reference signals is greater than a first threshold. Optionally, the first threshold can be specified by a protocol, or can be configured by the second communication device, or can be determined autonomously by the first communication device, and the embodiments of the present application do not limit this. It can be understood that the first threshold can be adjusted according to the communication requirements of different application scenarios, and the embodiments of the present application do not limit this. Optionally, the first event can also be referred to as "event-7", and the embodiments of the present application do not limit the specific name of the first event.
[0054] In the embodiments of the present application, updating the transmission configuration indication information corresponding to the K first reference signals can replace one or more of the K first reference signals with one or more of the L second reference signals with better quality, so as to improve the transmission efficiency of data transmission between the first communication device and the second communication device using the updated K first reference signals corresponding to the beams.
[0055] At present, as long as the measurement result of the reference signal corresponding to the unactivated beam is higher than the measurement result of the reference signal corresponding to the activated beam, and is higher than a threshold, the beam measurement reporting is triggered. However, the measurement result corresponding to the reference signal fluctuates greatly with time, and the measurement result at a certain moment cannot completely reflect the quality of the reference signal. Therefore, according to the current triggering mechanism of the beam measurement reporting, the accuracy of the triggered beam measurement result is low, thereby misleading the network side to perform incorrect operations based on the beam measurement result.
[0056] In the embodiments of the present application, the beam measurement reporting is triggered based on the measurement result corresponding to each of the K first reference signals and / or the number of the first event corresponding to each of the KxL reference signals, which can reduce or even eliminate the inaccuracy caused by the fluctuation of the measurement result corresponding to the reference signal with time, thereby improving the accuracy of the reported beam measurement result, so as to effectively assist the network side to perform correct operations and update the transmission configuration indication information corresponding to the K first reference signals in time.
[0057] In a possible implementation, the K first reference signals include at least one reference signal corresponding to a first beam, and the first beam is a beam not used for current data transmission between the first communication device and the second communication device; and the L second reference signals include at least one reference signal corresponding to a second beam, and the second beam is an unactivated beam.
[0058] In this embodiment, the aforementioned K first reference signals include at least one reference signal corresponding to a first beam. This first beam is an active beam that is currently unused in the data transmission between the first and second communication devices. Optionally, this first beam can be called an "active beam," and this embodiment does not limit the specific name of the first beam. The aforementioned L second reference signals include at least one reference signal corresponding to a second beam. This second beam is an inactive beam. Optionally, this second beam can be called a "new beam," and this embodiment does not limit the specific name of the second beam. It is understood that through the beam measurement reporting triggering mechanism in this embodiment, when it is determined that beam measurement reporting is triggered, it can effectively assist the network side in replacing one or more active beams (i.e., the aforementioned first beams) that are currently unused in the data transmission between the first and second communication devices (i.e., better quality inactive beams) with one or more inactive beams (i.e., the aforementioned second beams) based on the reported measurement results, thereby improving the data transmission efficiency between the first and second communication devices.
[0059] In one possible implementation, the number of times the first event corresponds to each pair of reference signals in the K×L pairs of reference signals is located within a first time window, and the measurement result corresponding to each of the K first reference signals is located within a second time window; wherein the first time window and the second time window are the same or overlap.
[0060] In one possible implementation, the first time window and / or the second time window are defined by a protocol, or configured by the second communication device, or configured by the first communication device.
[0061] In one possible implementation, the measurement result corresponding to each of the K first reference signals is determined by the reference signal received power (RSRP) corresponding to one or more first reference signals.
[0062] In one possible implementation, the beam measurement reporting is triggered by the measurement result corresponding to each of the K first reference signals and / or the number of first events corresponding to each pair of reference signals in the K×L pairs of reference signals, including:
[0063] The number of times the first event corresponding to the first pair of reference signals exists in the K×L pairs of reference signals is greater than or equal to the second threshold; wherein, the first pair of reference signals includes reference signal A and reference signal B, the reference signal A is the first reference signal ranked in the Mth position according to the measurement results corresponding to each of the K first reference signals from high to low, where M is an integer satisfying 0 < M ≤ K, and the reference signal B is one of the L second reference signals.
[0064] In a possible implementation, the second threshold is specified by a protocol, or configured by the second communication device, or configured by the first communication device.
[0065] In a possible implementation, the beam measurement reporting is triggered by the measurement result corresponding to each of the K first reference signals and / or the number of the first events corresponding to each of the K*L pairs of reference signals, including:
[0066] There is a first reference signal set in the K first reference signals; wherein the maximum number of the L numbers of the first events corresponding to each of the first reference signals in the first reference signal set is greater than or equal to a third threshold, the maximum number of the L numbers of the first events corresponding to each of the first reference signals in the first reference signal set is determined by the number of the first events corresponding to each of the K*L pairs of reference signals, and the number of the first reference signals in the first reference signal set is greater than or equal to a fourth threshold.
[0067] In a possible implementation, the third threshold and / or the fourth threshold are specified by a protocol, or determined by the configuration information of the second communication device, or determined by the configuration information of the first communication device.
[0068] As to the second aspect and any possible implementation, the steps performed can refer to the corresponding first aspect and the corresponding implementation.
[0069] As to the technical effects brought by the second aspect and any possible implementation, refer to the introduction of the technical effects of the corresponding first aspect and the corresponding implementation.
[0070] In a third aspect, the embodiments of the present application provide a communication device, which comprises units for performing the method of any of the first aspect.
[0071] In a possible design, the device comprises:
[0072] A communication unit, configured to receive K first reference signals and L second reference signals from a second communication device, K being an integer greater than 0, and L being an integer greater than 0;
[0073] A processing unit, configured to measure the K first reference signals to obtain first measurement results, and measure the L second reference signals to obtain second measurement results;
[0074] The processing unit is further configured to obtain, based on the first measurement results, a measurement result corresponding to each of the K first reference signals.
[0075] the processing unit is further configured to obtain, based on the first measurement results and the second measurement results, a number of first events corresponding to each of the K*L pairs of reference signals, the first event including a difference between a measurement result corresponding to one of the L second reference signals and a measurement result corresponding to one of the K first reference signals being greater than a first threshold value;
[0076] the processing unit is further configured to determine, based on the measurement result corresponding to each of the K first reference signals and / or the number of first events corresponding to each of the K*L pairs of reference signals, to trigger a beam measurement report.
[0077] The processing unit and the communication unit according to the third aspect and any possible implementation of the third aspect perform the steps as described with reference to the first aspect and the corresponding implementation.
[0078] The technical effects brought by the third aspect and any possible implementation of the third aspect can be referred to the description of the technical effects brought by the first aspect and the corresponding implementation.
[0079] In a fourth aspect, an embodiment of the present application provides a communication apparatus, which comprises units for performing the method according to any one of the second aspect.
[0080] In a possible design, the apparatus includes:
[0081] the communication unit is configured to send, to a first communication apparatus, K first reference signals and L second reference signals, K being an integer greater than 0 and L being an integer greater than 0, wherein the K first reference signals are used to determine first measurement results, the L second reference signals are used to determine second measurement results, the first measurement results are used to determine a measurement result corresponding to each of the K first reference signals, and the first measurement results and the second measurement results are used to determine a number of first events corresponding to each of K*L pairs of reference signals, the first event including a difference between a measurement result corresponding to one of the L second reference signals and a measurement result corresponding to one of the K first reference signals being greater than a first threshold value;
[0082] the communication unit is further configured to receive a beam measurement report from the first communication apparatus, the beam measurement report being triggered by the measurement result corresponding to each of the K first reference signals and / or the number of first events corresponding to each of the K*L pairs of reference signals;
[0083] The processing unit is configured to update transmission configuration indication information corresponding to the K first reference signals.
[0084] The processing unit and the communication unit according to the fourth aspect and any possible implementation perform the steps as described with respect to the second aspect and the corresponding implementation.
[0085] The technical effects brought by the fourth aspect and any possible implementation can be referred to the introduction of the technical effects of the second aspect and the corresponding implementation.
[0086] Optionally, in the communication apparatus according to any one of the third aspect to the fourth aspect and any possible implementation, the communication apparatus further includes:
[0087] In an implementation, the communication apparatus is a communication device. When the communication apparatus is a communication device, the communication unit can be a transceiver, or an input / output interface; and the processing unit can be at least one processor. Optionally, the transceiver can be a transceiver circuit. Optionally, the input / output interface can be an input / output circuit.
[0088] In another implementation, the communication apparatus is a chip (system) or a circuit used in a communication device. When the communication apparatus is a chip (system) or a circuit used in a communication device, the communication unit can be a communication interface (input / output interface), an interface circuit, an output circuit, an input circuit, a pin or related circuit on the chip (system) or the circuit; and the processing unit can be at least one processor, a processing circuit or a logic circuit, etc.
[0089] In the fifth aspect, an embodiment of the present application provides a communication apparatus, which includes a processor. The processor is coupled with a memory and is configured to execute instructions in the memory to implement the method according to any one of the first aspect to the second aspect and any possible implementation. Optionally, the communication apparatus further includes the memory. Optionally, the communication apparatus further includes a communication interface, and the processor is coupled with the communication interface.
[0090] In the sixth aspect, an embodiment of the present application provides a communication apparatus, which includes a logic circuit and a communication interface. The communication interface is configured to receive information or send information; and the logic circuit is configured to receive information or send information through the communication interface, so that the communication apparatus performs the method according to any one of the first aspect to the second aspect and any possible implementation.
[0091] In a seventh aspect, an embodiment of the present application provides a computer readable storage medium, which is used to store a computer program (also referred to as code or instruction); when the computer program is run on a computer, the method in any one of the first aspect to the second aspect and any possible implementation manner is implemented.
[0092] In an eighth aspect, an embodiment of the present application provides a computer program product, which includes: a computer program (also referred to as code or instruction); when the computer program is run, the computer executes the method in any one of the first aspect to the second aspect and any possible implementation manner.
[0093] In a ninth aspect, an embodiment of the present application provides a chip, which includes a processor, the processor is used to execute an instruction, when the processor executes the instruction, the chip executes the method in any one of the first aspect to the second aspect and any possible implementation manner. Optionally, the chip further includes a communication interface, the communication interface is used to receive a signal or send a signal.
[0094] In a tenth aspect, an embodiment of the present application provides a communication system, which includes at least one communication device in the third aspect, or the communication device in the fourth aspect, or the communication device in the fifth aspect, or the communication device in the sixth aspect, or the chip in the ninth aspect.
[0095] In an eleventh aspect, an embodiment of the present application provides a communication system, which includes a first communication device and a second communication device, the first communication device is used to execute the method in the first aspect and any possible implementation manner, and the second communication device is used to execute the method in the second aspect and any possible implementation manner.
[0096] In addition, in the process of executing the method in any one of the first aspect to the second aspect and any possible implementation manner, the process of sending information and / or receiving information in the above method can be understood as the process of outputting information by the processor, and / or the process of receiving input information by the processor. When the information is output, the processor can output the information to the transceiver (or communication interface or sending module) so as to be transmitted by the transceiver. After the information is output by the processor, it can also need to be processed in other ways before reaching the transceiver. Similarly, when the processor receives the input information, the transceiver (or communication interface or sending module) receives the information and inputs it to the processor. Furthermore, after the transceiver receives the information, the information can need to be processed in other ways before being input to the processor.
[0097] For example, the sending information mentioned in the foregoing method can be understood as processor output information. For another example, the receiving information can be understood as processor receiving input information.
[0098] Optionally, for the transmitting, sending and receiving operations involved in the processor, if no special description is made, or if it does not contradict the actual role or inherent logic in the related description, it can be more generally understood as processor output and receiving, input operations.
[0099] Optionally, in the process of executing the method of any one of the first aspect to the second aspect and any possible implementation manner, the processor can be a processor specially used for executing the method, or a processor executing the method by executing computer instructions in a memory, such as a general-purpose processor. The memory can be a non-transitory memory, such as a read-only memory (ROM), which can be integrated on the same chip as the processor, or can be separately arranged on different chips. The type of the memory and the arrangement manner of the memory and the processor are not limited in the embodiments of the present application.
[0100] In a possible implementation manner, the at least one memory is located outside the device.
[0101] In another possible implementation manner, the at least one memory is located inside the device.
[0102] In another possible implementation manner, part of the at least one memory is located inside the device, and the other part of the at least one memory is located outside the device.
[0103] In the present application, the processor and the memory can also be integrated into one device, that is, the processor and the memory can also be integrated together. BRIEF DESCRIPTION OF DRAWINGS
[0104] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiments of the present application. Obviously, the drawings described below are only some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without creative labor on the basis of these drawings.
[0105] Figure 1 A schematic diagram of a communication system provided by the embodiments of the present application;
[0106] Figure 2 A flowchart of a communication method provided by the embodiments of the present application;
[0107] Figure 3 A structural schematic diagram of a communication device provided by an embodiment of the present application is shown in FIG. 1.
[0108] Figure 4 A structural schematic diagram of a communication device provided by an embodiment of the present application is shown in FIG. 1.
[0109] Figure 5 A structural schematic diagram of a chip provided by an embodiment of the present application is shown in FIG. 1. DETAILED DESCRIPTION
[0110] In order to make the purpose, technical solutions and advantages of the present application clearer, the embodiments of the present application will be described below in conjunction with the drawings of the embodiments of the present application.
[0111] The terms "first" and "second" and the like in the specification of the present application, claims and drawings are used to distinguish different objects, and are not used to describe a specific order. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion. For example, a process, method, system, product or device, etc. including a series of steps or units is not limited to the listed steps or units, but can optionally include other steps or units not listed or inherent to the process, method, product or device, etc.
[0112] In this document, "embodiment" means that the specific features, structures or characteristics described in connection with the embodiment can be included in at least one embodiment of the present application. The appearance of this phrase in various places in the specification does not necessarily mean the same embodiment, nor is it independent or alternative to other embodiments. It can be explicitly and implicitly understood by those skilled in the art that, unless otherwise specified and logically contradictory, the terms and / or descriptions between various embodiments of the present application are consistent and can be mutually referred to, and the technical features in different embodiments can be combined to form new embodiments according to their inherent logical relationship.
[0113] It should be understood that in the present application, "at least one" refers to one or more, "multiple" refers to two or more, "at least two" refers to two or three and three or more, and "and / or" is used to describe the association relationship of the associated objects, which means that there can be three relationships, for example, "A and / or B" can mean: only A, only B, and A and B exist at the same time, where A and B can be singular or plural. The character " / " generally represents an "or" relationship between the associated objects before and after it. "At least one of the following" or similar expressions means any combination of these items, including any combination of single or multiple items. For example, at least one of a, b or c can mean: a, b, c, "a and b", "a and c", "b and c", or "a and b and c", where a, b, and c can be single or multiple.
[0114] It should be noted that in the present application, "indication" can include direct indication, indirect indication, display indication, and implicit indication. When describing that certain indication information is used to indicate A, it can be understood that the indication information carries A, directly indicates A, or indirectly indicates A.
[0115] In the present application, the information indicated by the indication information is referred to as the to-be-indicated information. In the specific implementation process, there are many ways to indicate the to-be-indicated information, for example, but not limited to, the to-be-indicated information can be directly indicated, such as the to-be-indicated information itself or the index of the to-be-indicated information. The to-be-indicated information can also be indirectly indicated by indicating other information, where the other information and the to-be-indicated information have an association relationship. The to-be-indicated information can also be indicated only by a part of the to-be-indicated information, and the other part of the to-be-indicated information is known or agreed in advance. For example, the indication of a specific information can also be achieved by means of the arrangement order of each information agreed in advance (for example, the protocol stipulates), thereby reducing the indication overhead to a certain extent. The to-be-indicated information can be sent together as a whole, or can be sent separately into multiple sub-information, and the sending period and / or sending time of these sub-information can be the same or different. The specific sending method is not limited by the present application. The sending period and / or sending time of these sub-information can be pre-defined, for example, pre-defined according to the protocol, or can be configured by the transmitting end device by sending configuration information to the receiving end device.
[0116] It should be noted that in this application, "sending" can be understood as "output", and "receiving" can be understood as "input". "Sending information to A" means that A is the destination of information transmission, and A is not limited to direct sending on the air interface. "Sending information to A" includes directly sending information to A, and also includes indirectly sending information to A through a transmitter. Therefore, "sending information to A" can also be understood as "outputting information to A". Similarly, "receiving information from A" means that the source of the information is A, which includes directly receiving information from A, and also includes indirectly receiving information from A through a receiver. Therefore, "receiving information from A" can also be understood as "inputting information from A".
[0117] The method provided by the application can be applied to various communication systems, for example, can be an internet of things (IoT) system, a narrow band internet of things (NB-IoT) system, a long term evolution (LTE) system, and also can be a 5th-generation (5G) communication system, and a new communication system (such as 6G) in future communication development.
[0118] The technical solutions provided by the application can also be applied to machine type communication (MTC), long term evolution-machine (LTE-M), device-to-device (D2D) network, machine to machine (M2M) network, internet of things (IoT) network or other network. The IoT network may, for example, include a vehicle network. In the vehicle network system, the communication mode is collectively referred to as vehicle-to-everything (V2X, X can represent any thing), for example, the V2X may include vehicle-to-vehicle (V2V) communication, vehicle-to-infrastructure (V2I) communication, vehicle-to-pedestrian (V2P) communication or vehicle-to-network (V2N) communication, etc. For example, the V2X communication mode shown in the following figure can be used in the vehicle network system. Figure 1 In the above-mentioned technical solutions, the terminal device and the terminal device can communicate through D2D technology, M2M technology or V2X technology, etc.
[0119] Please refer to Figure 1 , Figure 1 is a schematic diagram of a communication system provided by an embodiment of the present application.
[0120] As Figure 1 indicated, the communication system can include at least one access network device and at least one terminal device.
[0121] The introductions of the access network device and the terminal device are as follows respectively:
[0122] Exemplarily, the access network device can be a next generation node B (gNB), a next generation evolved node B (ng-eNB), or an access network device in future 6G communication, etc. The access network device can be any kind of device with wireless transceiving function, including but not limited to the base station (BS) as indicated above. The base station can also be a base station in future communication system such as the sixth generation communication system. Optionally, the access network device can be an access node, a wireless relay node, a wireless backhaul node, etc. in a wireless fidelity (WiFi) system. Optionally, the access network device can be a wireless controller in a cloud radio access network (CRAN) scenario. Optionally, the access network device can be a wearable device or a vehicle-mounted device, etc. Optionally, the access network device can also be a small station, a transmission reception point (TRP) (or also can be called a transmission point), etc. It can be understood that the access network device can also be a base station in a future evolved public land mobile network (PLMN), etc.
[0123] In some deployments, a base station (such as a gNB) can be composed of a centralized unit (CU) and a distributed unit (DU). That is, the functions of a base station in an access network are split, and part of the functions of the base station are deployed in a CU, and the remaining functions are deployed in a DU. And multiple DUs share one CU, which can save costs and facilitate network expansion. In some other deployments of the base station, the CU can also be divided into a CU-control plane (CP) and a CU-user plane (UP), etc. In some other deployments of the base station, the base station can also be a radio unit (RU), etc. In some other deployments of the base station, the base station can also be an open radio access network (ORAN) architecture, etc. The specific type of the base station is not limited in the present application. For example, when the base station is an ORAN architecture, the base station shown in the embodiments of the present application can be an access network device in the ORAN, or a module in the access network device, etc. In the ORAN system, the CU can also be referred to as an open (O)-CU, the DU can also be referred to as an O-DU, the CU-DU can also be referred to as an O-CU-DU, the CU-UP can also be referred to as an O-CU-UP, and the RU can also be referred to as an O-RU.
[0124] For ease of description, the access network device will be taken as an example of a base station in the following description of the methods involved in the present application.
[0125] For example, this terminal device can also be called user equipment (UE), a terminal, etc. A terminal device is a device with wireless transceiver capabilities that can be deployed on land, including indoors or outdoors, handheld, wearable, or vehicle-mounted; it can also be deployed on water, such as on ships; and it can be deployed in the air, such as on airplanes, balloons, or satellites. Terminal devices can be mobile phones, tablets, computers with wireless transceiver capabilities, virtual reality (VR) terminal devices, augmented reality (AR) terminal devices, wireless terminals in industrial control, wireless terminals in self-driving vehicles, wireless terminals in remote medical care, wireless terminals in smart grids, wireless terminals in transportation safety, wireless terminals in smart cities, wireless terminals in smart homes, and so on. It is understood that this terminal device can also be a terminal device in future 6G networks or a terminal device in future evolved PLMNs, etc.
[0126] It is understood that the terminal device shown in this application may include not only vehicles (such as complete vehicles) in the Internet of Vehicles, but also in-vehicle equipment or in-vehicle terminals in the Internet of Vehicles. This application does not limit the specific form of the terminal device when it is applied to the Internet of Vehicles.
[0127] For ease of description, the method involved in this application will be described below using the UE as an example of the terminal device.
[0128] like Figure 1 As shown, the communication system may also include at least one core network device, which is described below:
[0129] Exemplarily, the core network device includes user access control, mobility management, session management, user security authentication, charging and other services. It is composed of multiple functional units, which can be divided into control plane and data plane functional entities. Among them, the access and mobility management unit (AMF) is responsible for user access management, security authentication, and mobility management. The location management unit (LMF) is responsible for managing and controlling the positioning service request of the target terminal and processing positioning related information. The user plane unit (UPF) is responsible for managing the transmission of user plane data, traffic statistics and other functions.
[0130] In Figure 1 The communication system shown in the figure includes one core network device, two base stations and eight UEs, such as Figure 1 The core network device, base station 1 and base station 2 in the figure, and UE1 to UE8. In the communication system, base station 1 can send downlink signals such as configuration information or downlink control information (DCI) to UE1 to UE6, and UE1 to UE6 can send uplink signals such as SRS or physical uplink shared channel (PUSCH) to base station 1. Base station 1 can also send downlink signals to UE7 to UE8 through base station 2, and UE7 to UE8 can send uplink signals to base station 1 through base station 2. Base station 2 can send downlink signals such as configuration information or DCI to UE7 to UE8, and UE7 to UE8 can send uplink signals such as SRS or PUSCH to base station 2. It can be understood that for the communication mode between UEs, reference can be made to the description above, which will not be described in detail here.
[0131] It should be understood that Figure 1 Exemplarily, one core network device, two base stations and eight UEs are shown, as well as the communication links between the communication devices. Optionally, the communication system can include multiple base stations, and each base station can include other number of UEs within its coverage range, such as more or less UEs, etc., which are not limited in the present application.
[0132] The above-mentioned various communication devices, such as Figure 1The core network device, the base station 1 and the base station 2, the UE 1 to the UE 8 in the communication system can be configured with multiple antennas. The multiple antennas can include at least one transmitting antenna for transmitting a signal and at least one receiving antenna for receiving a signal, and the like, and the embodiments of the present application are not limited to the specific structure of each communication device. Optionally, the communication system can further include a network controller, a mobile management entity and other network entities, and the embodiments of the present application are not limited thereto.
[0133] It can be understood that Figure 1 The communication system diagram shown is only an example, and for other forms of communication system diagrams, reference can be made to relevant standards or protocols, and the like, which will not be described one by one here.
[0134] The various embodiments shown below can be applicable to Figure 1 The communication system shown can also be applicable to other forms of communication systems, and the following will not be described in detail.
[0135] The present application provides a communication method, which is applied to the field of communication technology, such as communication in the beam measurement reporting scenario. In order to more clearly describe the scheme of the present application, some knowledge related to beam measurement reporting will be introduced first.
[0136] Channel state information (channel state information, CSI) in the field of wireless communication refers to the channel properties of a communication link. It describes the attenuation factor of a signal on each transmission path, i.e. the value of each element in the channel gain matrix H, such as signal scattering, environmental attenuation (fading, multipath fading or shadowing fading), distance attenuation (power decay of distance), and the like. CSI can make the communication system adapt to the current channel conditions, and provide a guarantee for high reliability and high rate communication in a multi-antenna system.
[0137] Multiple input multiple output (multiple input multiple output, MIMO) technology is an antenna system that uses multiple antennas at the transmitting end and the receiving end to form multiple channels between the transmitting and receiving ends, in order to improve the channel capacity. When the base station transmits data to the UE using the MIMO technology, it needs to rely on the reference signal measurement result (which can also be understood as the CSI measurement result) fed back by the UE to the base station.
[0138] Therefore, the reference signal measurement (which can also be understood as the CSI measurement) between the base station and the UE is crucial to the transmission performance of the MIMO system.
[0139] The basic flow of CSI measurement is as follows:
[0140] The base station needs to first send channel measurement configuration information to the UE, for configuration of channel measurement, to inform the UE of the time and behavior of channel measurement; then the base station sends a channel measurement pilot signal to the UE, for channel measurement; the UE performs CSI measurement according to the channel measurement pilot signal sent by the base station, obtains a CSI measurement result, and reports the CSI measurement result to the base station; the base station determines precoding information for service data transmission according to the CSI measurement result reported by the UE, and then transmits the service data.
[0141] The CSI measurement result reported by the UE can include multiple pieces of information, such as but not limited to a rank indicator (RI), a channel quality indicator (CQI), a precoding matrix indicator (PMI), and the like, and the present application does not limit this.
[0142] Correspondingly, the base station can determine the number of streams for data transmission to the UE according to the RI fed back by the UE, can determine the modulation order and the code rate of channel coding for data transmission to the UE according to the CQI fed back by the UE, and can determine the precoding for data transmission to the UE according to the PMI fed back by the UE.
[0143] Optionally, one or more of the channel measurement configuration information, the channel measurement pilot signal, the CSI measurement result, and the service data can be sent through one or more of a radio resource control (RRC) message, a media access control-control element (MAC CE), downlink control information (DCI), and a physical downlink shared channel (PDSCH).
[0144] It should be understood that the above sending manners are only exemplary descriptions and should not be regarded as a limitation on the embodiments of the present application. Embodiments obtained based on the above sending manners or reasonable modifications thereof all belong to the protection scope of the embodiments of the present application.
[0145] However, the accuracy of the beam measurement result triggered by the reference signal measurement result is currently low, thereby misleading the network side to perform incorrect operations based on the beam measurement result.
[0146] In view of this, in the embodiments of the present application, a new communication method is provided, which can improve the accuracy of the reported beam measurement result to effectively assist the network side to perform correct operations.
[0147] Please refer to Figure 2 , Figure 2 A flowchart of a communication method provided by an embodiment of the present application is shown. The communication method is applied to the field of communication technology, such as communication in a beam measurement reporting scenario. It can be understood that the communication method can be executed by a communication device, which can be a network device and / or a terminal device, or a chip (system) or circuit for a network device and / or a terminal device, and the present application does not limit this. The communication method includes but is not limited to the following steps:
[0148] S201: The second communication device sends K first reference signals and L second reference signals to the first communication device, and correspondingly, the first communication device receives the K first reference signals and the L second reference signals.
[0149] It can be understood that the first communication device in the embodiment of the present application is a device carrying a processor that can be used to execute computer execution instructions, which can be a handheld terminal (such as a mobile phone, a tablet computer, etc.), a vehicle-mounted terminal (such as a wireless terminal in a self-driving vehicle, etc.), etc., and specifically can be a terminal device (including but not limited to any device in UE1-UE8, A-IoT device 1-A-IoT device 2, etc.) in the above Figure 1 , which is used to participate in the execution of the communication method in the embodiment of the present application to improve the accuracy of the reported beam measurement results and effectively assist the network side to perform correct operations.
[0150] It can be understood that the second communication device in the embodiment of the present application is a device carrying a processor that can be used to execute computer execution instructions, which can be an access network device, such as a base station, a transmission point TRP, etc., and specifically can be an access network device (including but not limited to any device in base station 1 and base station 2, etc.) in the above Figure 1 , which is used to execute the communication method in the embodiment of the present application to improve the accuracy of the reported beam measurement results and effectively assist the network side to perform correct operations.
[0151] Wherein, K is an integer greater than 0, and L is an integer greater than 0.
[0152] Optionally, the K first reference signals and the L second reference signals can be transmitted / received once or multiple times, and the embodiment of the present application does not limit this.
[0153] Optionally, the transmission / reception order between the K first reference signals and the L second reference signals can be random and have no sequence, and the embodiment of the present application does not limit this.
[0154] S202: The first communication device measures K first reference signals to obtain first measurement results, and measures L second reference signals to obtain second measurement results.
[0155] Optionally, the K first reference signals and the L second reference signals can be measured once or multiple times, and embodiments of the present application do not limit this.
[0156] Correspondingly, the obtained first measurement results and second measurement results can also include one or more measurement results, and embodiments of the present application do not limit this.
[0157] Optionally, the measurement order between the K first reference signals and the L second reference signals can be random, and there is no priority, and embodiments of the present application do not limit this.
[0158] S203: The first communication device obtains a measurement result corresponding to each of the K first reference signals based on the first measurement results.
[0159] Optionally, the measurement result corresponding to each of the K first reference signals based on the first measurement results can include one measurement result corresponding to one measurement of each first reference signal, can include multiple measurement results corresponding to multiple measurements of each first reference signal, and can also include one measurement result calculated according to the multiple measurement results, and embodiments of the present application do not limit this.
[0160] Optionally, the measurement result corresponding to each of the K first reference signals is determined by one or more reference signal received powers (RSRP) corresponding to each first reference signal.
[0161] It can be understood that the measurement result corresponding to each of the K first reference signals includes one or more measurement results corresponding to each first reference signal, and specifically can include one or more RSRP corresponding to each first reference signal and is determined by one or more RSRP corresponding to each first reference signal.
[0162] Optionally, the measurement result corresponding to each of the K first reference signals can be obtained by an average or weighted average or other calculation mode of one or more RSRP corresponding to each first reference signal, and embodiments of the present application do not limit this.
[0163] Optionally, the RSRP can be replaced by a measurement result such as a signal to interference plus noise ratio (SINR), a reference signal receiving quality (RSRQ), a received signal strength indication (RSSI), and the like, and the embodiments of the present application do not limit this.
[0164] Through the embodiments of the present application, the inaccuracy caused by the fluctuation of the measurement result corresponding to the reference signal over time can be reduced or even eliminated, thereby the accuracy of the reported beam measurement result can be improved to effectively assist the network side to perform correct operations.
[0165] S204: The first communication device obtains the number of times of the first event corresponding to each pair of reference signals in the K*L pairs of reference signals based on the first measurement result and the second measurement result.
[0166] The first event includes that the difference between the one-time measurement result corresponding to one of the L second reference signals and the one-time measurement result corresponding to one of the K first reference signals is greater than a first threshold.
[0167] Optionally, the first threshold can be specified by a protocol, or can be configured by the second communication device, or can be determined by the first communication device independently, and the embodiments of the present application do not limit this.
[0168] It can be understood that the first threshold can be adjusted according to the communication requirements of different application scenarios, and the embodiments of the present application do not limit this.
[0169] Optionally, the first event can also be referred to as "Event-7", and the embodiments of the present application do not limit the specific name of the first event.
[0170] Optionally, the execution order of steps S203 and S204 can be random, and there is no priority, and the embodiments of the present application do not limit this.
[0171] S205: The first communication device determines to trigger the beam measurement report based on the measurement result corresponding to each of the K first reference signals and / or the number of times of the first event corresponding to each pair of reference signals in the K*L pairs of reference signals.
[0172] It can be understood that the first communication device can determine to trigger the beam measurement reporting based on one or more of the measurement result corresponding to each of the K first reference signals, and the number of the first event corresponding to each of the K*L pairs of reference signals.
[0173] Optionally, the first communication device determining to trigger the beam measurement reporting can include, but is not limited to, the following implementation manners.
[0174] Manner one:
[0175] The K first reference signals are sorted in descending order of the measurement result corresponding to each of the K first reference signals.
[0176] If the number of the first event corresponding to a first pair of reference signals in the K*L pairs of reference signals is greater than or equal to a second threshold value, the beam measurement reporting is triggered.
[0177] The first pair of reference signals includes a reference signal A and a reference signal B, the reference signal A is a first reference signal ranked at an Mth position in the K first reference signals after the sorting, M is an integer satisfying 0
[0178] Optionally, the second threshold value can be specified by a protocol, or can be configured by the second communication device, or can be determined by the first communication device independently, and the embodiments of the present application do not limit this.
[0179] It can be understood that the second threshold value can be adjusted according to the communication requirements of different application scenarios, and the embodiments of the present application do not limit this.
[0180] It can be understood that for the first reference signal ranked at the Mth position in the K first reference signals (assuming it is the reference signal A), if the number of the first event between one second reference signal (assuming it is the reference signal B) and the first reference signal is greater than or equal to the second threshold value, it is determined to trigger the beam measurement reporting.
[0181] Compared with the current manner of triggering the beam measurement reporting only when the measurement result of the reference signal corresponding to the unactivated beam pair is higher than the measurement result of the reference signal corresponding to the activated beam, and the measurement result is higher than a threshold, the embodiments of the present application determine to trigger the beam measurement reporting based on the measurement result corresponding to each of the K first reference signals and the number of the first event corresponding to each of the K*L pairs of reference signals, which can reduce or even eliminate the inaccuracy caused by the fluctuation of the measurement result corresponding to the reference signal over time, thereby improving the accuracy of the reported beam measurement result, and effectively assisting the network side to perform correct operations.
[0182] Mode two:
[0183] Based on the number of the first events corresponding to each of the pairs of reference signals in the K*L pairs of reference signals, the maximum number of the L numbers of the first events corresponding to each of the first reference signals in the K first reference signals is obtained.
[0184] If there is a first reference signal set in the K first reference signals, the beam measurement reporting is triggered.
[0185] Wherein, the maximum number of the L numbers of the first events corresponding to each of the first reference signals in the first reference signal set is greater than or equal to a third threshold, and the number of the first reference signals in the first reference signal set is greater than or equal to a fourth threshold.
[0186] Optionally, the third threshold and / or the fourth threshold can be specified by a protocol, or can be determined by the configuration information of the second communication device, or can be determined by the configuration information of the first communication device, and the embodiments of the present application do not limit this.
[0187] It can be understood that the third threshold and / or the fourth threshold can be adjusted according to the communication needs of different application scenarios, and the embodiments of the present application do not limit this.
[0188] Optionally, the fourth threshold can be calculated by the first communication device and / or the second communication device according to the configured information, for example, for the first reference signal with the signal quality ranked in the Nth place (N is an integer satisfying 0
[0189] Optionally, the fourth threshold can also be directly determined by the first communication device and / or the second communication device according to the configured information, for example, for the first reference signal with the signal quality ranked in the Nth place (N is an integer satisfying 0
[0190] It can be understood that, for the first reference signal with the signal quality ranked in the Nth place (N is an integer satisfying 0
[0191] Compared with the prior method of triggering the reporting of the beam measurement only when the measurement result of the reference signal corresponding to the non-activated beam is higher than the measurement result of the reference signal corresponding to the activated beam and the difference is higher than a threshold, the embodiment of the present application determines the triggering of the reporting of the beam measurement based on the number of times of the first event corresponding to each pair of reference signals in the K*L pairs of reference signals, which can reduce or even eliminate the inaccuracy caused by the fluctuation of the measurement result of the reference signal over time, thereby improving the accuracy of the reported beam measurement result and effectively assisting the network side to perform correct operations.
[0192] It should be understood that the above-mentioned manner one and manner two are only used to exemplarily illustrate the determination of the triggering of the reporting of the beam measurement by the first communication device, and should not be used to limit the embodiments of the present application.
[0193] It should be understood that the new embodiments obtained based on the reasonable deformation or supplement of the above-mentioned manner one and / or manner two all belong to the protection scope of the present application.
[0194] S206: The first communication device sends the reporting of the beam measurement to the second communication device, and correspondingly, the second communication device receives the reporting of the beam measurement.
[0195] S207: The second communication device updates the transmission configuration indication information corresponding to the K first reference signals.
[0196] The above-mentioned updating of the transmission configuration indication information corresponding to the K first reference signals can replace one or more first reference signals in the K first reference signals with one or more second reference signals with better quality in the L second reference signals, so as to improve the transmission efficiency of the data transmission between the first communication device and the second communication device by using the updated K first reference signals.
[0197] Optionally, the transmission configuration indication information corresponding to the K first reference signals can specifically include one or more activated transmission configuration indicator states (activated TCI states). The activated TCI state refers to the TCI state for the PDSCH activated by the network side for the UE through the MAC CE. Each activated TCI state is associated with a downlink (DL) transmission beam, and the network side can indicate a TCI state for the UE from the activated TCI states through the DCI, indicating that the network side uses the downlink transmission beam associated with the TCI state to send the PDSCH scheduled by the DCI.
[0198] Currently, as long as the measurement result of the reference signal corresponding to the unactivated beam is higher than the measurement result of the reference signal corresponding to the activated beam, and the difference is higher than a threshold, the beam measurement reporting is triggered. However, the measurement result corresponding to the reference signal fluctuates greatly over time, and the measurement result at a certain moment cannot completely reflect the quality of the reference signal. For example, the Mth best activated TCI state determined at a previous measurement moment may be different from the Mth best activated TCI state determined at a subsequent measurement moment. Therefore, according to the current triggering mechanism of the beam measurement reporting, the accuracy of the beam measurement result triggered for reporting is low, thereby misleading the network side to perform incorrect operations based on the beam measurement result.
[0199] In the embodiments of the present application, the second communication device sends K first reference signals and L second reference signals to the first communication device. Correspondingly, the first communication device receives the K first reference signals and the L second reference signals from the second communication device. The first communication device measures the K first reference signals to obtain first measurement results, and measures the L second reference signals to obtain second measurement results. The first communication device obtains the measurement result corresponding to each of the K first reference signals based on the first measurement results, and obtains the number of first events corresponding to each of the K*L pairs of reference signals based on the first measurement results and the second measurement results. The first communication device determines to trigger the beam measurement reporting based on the measurement result corresponding to each of the K first reference signals and / or the number of first events corresponding to each of the K*L pairs of reference signals, and reports the measurement results to the second communication device. Correspondingly, the second communication device receives the beam measurement reporting, and updates the transmission configuration indication information corresponding to the K first reference signals based on the beam measurement reporting.
[0200] Through the embodiments of the present application, the determination of triggering the beam measurement reporting based on the measurement result corresponding to each of the K first reference signals and / or the number of first events corresponding to each of the K*L pairs of reference signals can reduce or even eliminate the inaccuracy caused by the fluctuation of the measurement result corresponding to the reference signal over time, thereby improving the accuracy of the reported beam measurement result, effectively assisting the network side to perform correct operations, and updating the transmission configuration indication information corresponding to the K first reference signals in time.
[0201] In a possible embodiment, the K first reference signals include at least one reference signal corresponding to a first beam, and the L second reference signals include at least one reference signal corresponding to a second beam.
[0202] The first beam is a beam that is not used for current data transmission between the first communication device and the second communication device, and the second beam is an inactivated beam.
[0203] It can be understood that the first beam is a beam that is not used for current data transmission between the first communication device and the second communication device but is activated. Alternatively, the first beam can be referred to as an “active beam”, and the specific name of the first beam is not limited in the embodiments of the present application.
[0204] It can be understood that the second beam is a beam that is not used for current data transmission between the first communication device and the second communication device and is not activated. Alternatively, the second beam can be referred to as a “new beam”, and the specific name of the second beam is not limited in the embodiments of the present application.
[0205] Through the beam measurement reporting triggering mechanism in the embodiments of the present application, when it is determined to trigger beam measurement reporting, one or more beams that are not used for current data transmission between the first communication device and the second communication device but are activated (i.e., the first beam described above) can be effectively replaced by one or more beams that are not used for current data transmission between the first communication device and the second communication device and are not activated (i.e., the second beam described above) and have better quality, based on the reported measurement results, to improve the data transmission efficiency between the first communication device and the second communication device.
[0206] In a possible embodiment, the number of times of the first event corresponding to each pair of reference signals in the K*L pairs of reference signals obtained in the step S204 is located in a first time window, and the measurement result corresponding to each of the K first reference signals obtained in the step S203 is located in a second time window.
[0207] The first time window and the second time window can be the same or overlap.
[0208] Alternatively, the first time window and the second time window can be completely the same.
[0209] Alternatively, the first time window contains the second time window.
[0210] Alternatively, the second time window contains the first time window.
[0211] Alternatively, the first time window and the second time window partially overlap, and the first time window is after the second time window.
[0212] Alternatively, the first time window and the second time window partially overlap, and the first time window is before the second time window.
[0213] It can be understood that the specific relationship between the first time window and the second time window is not limited in the embodiments of the present application.
[0214] Optionally, the second time window can also be a time window corresponding to measurement of the L second reference signals, or the time window corresponding to measurement of the L second reference signals can also be another time window, and the embodiments of the present application do not make any limitation in this regard.
[0215] Optionally, the first time window and / or the second time window can be specified by a protocol, or can be configured by the second communication device, or can be autonomously determined by the first communication device, and the embodiments of the present application do not make any limitation in this regard.
[0216] Optionally, one time window can be configured for measurement of all K first reference signals, or multiple time windows can be configured for measurement of different first reference signals or a set of first reference signals in the K first reference signals, and the embodiments of the present application do not make any limitation in this regard.
[0217] Optionally, one time window can be configured for measurement of all L second reference signals, or multiple time windows can be configured for measurement of different second reference signals or a set of second reference signals in the L second reference signals, and the embodiments of the present application do not make any limitation in this regard.
[0218] Through configuration of the first time window and / or the second time window in the embodiments of the present application, the inaccuracy caused by fluctuation of measurement results corresponding to reference signals over time can be reduced or even eliminated, so that the accuracy of reported beam measurement results can be improved to effectively assist the network side to perform correct operations.
[0219] The present application also provides a communication method. It can be understood that the steps of the communication method in the embodiments of the present application can be regarded as reasonable deformation or supplement of the embodiments of the above Figure 2 ; or it can be understood that the communication method in the embodiments of the present application can also be regarded as an independently executable embodiment, and the present application does not make any limitation in this regard. The communication method is applied to the field of communication technology, such as communication in the scene of beam measurement reporting.
[0220] It can be understood that the terminal device / UE involved in the communication method provided by the embodiments of the present application can refer to the first communication device in the communication method shown in the above Figure 2 ; the network device / network side / gNB involved in the communication method provided by the embodiments of the present application can refer to the second communication device in the communication method shown in the above Figure 2 , and details are not described herein.
[0221] The communication method includes but is not limited to the following steps:
[0222] Step 1: The network side configures the UE with K activated TCI states associated beams (active beams) and L new beams.
[0223] Wherein, the K activated TCI states associated beams are associated with downlink reference signals (DL RS) corresponding to the active beams, and the L new beams are associated with DL RS corresponding to the new beams.
[0224] Optionally, the activated TCI states associated active beams can be numbered, denoted as active beam#k (k = 1, 2, …, K, K is an integer greater than 0).
[0225] Optionally, the new beams can be numbered, denoted as new beam#l (l = 1, 2, …, L, L is an integer greater than 0).
[0226] Optionally, the DL RS corresponding to the active beams can refer to the description of the K first reference signals in the above Figure 2 Optionally, the DL RS corresponding to the new beams can refer to the description of the L second reference signals in the above Figure 2 The embodiments are not described here.
[0227] Step 2: For each pair {active beam#k, new beam#l}, the number D of Event-7 occurring within a time / quantity window W0 is counted k,l .
[0228] Wherein, if L1-RSRP of new beam#l - L1-RSRP of active beam#k > threshold, it is recorded as once Event-7.
[0229] Optionally, the number of Event-7 corresponding to each pair {active beam#k, new beam#l} in this step 2 can refer to the description of step S204 in the above Figure 2 The embodiments are not described here.
[0230] Optionally, the Event-7 in this step 2 can refer to the description of the first event in the above Figure 2 The embodiments are not described here.
[0231] Step 3: For each active beam #m, calculate the average or weighted average P of one or more L1-RSRP measurements measured within a time / quantity window W1 m , and sort the average L1-RSRP of all active beams in descending order.
[0232] Optionally, the time / quantity window W0 and / or W1 can be agreed by protocol, or configured by the network side, or determined by the UE autonomously, and the embodiments of the present application do not limit this.
[0233] Optionally, one time / quantity window can be configured for all active beams, or multiple time / quantity windows can be configured for different active beams or different sets of active beams, and the embodiments of the present application do not limit this.
[0234] Optionally, the time / quantity window W0 and the time / quantity window W1 correspond to each other, and are overlapped or the same.
[0235] Optionally, when the time / quantity window W0 and / or W1 changes, the sorting of the active beams in step 3 should be updated.
[0236] Optionally, the time / quantity window W0 can refer to the description of the first time window in the above Figure 2 embodiment, and the time / quantity window W1 can refer to the description of the second time window in the above Figure 2 embodiment, which will not be repeated here.
[0237] Step 4: For the active beam #k0 ranked in the Mth position (M is an integer satisfying 0 , if there is a new beam #l0, the number of times of Event-7 occurring within the time window W0 .
[0238] , D TH may be agreed by protocol, or configured by the network side, or determined by the UE autonomously, and the embodiments of the present application do not limit this.
[0239] Optionally, the method of triggering beam measurement reporting in this step 4 can refer to the description of the first method in the above Figure 2 embodiment, which will not be repeated here.
[0240] Currently, as long as the measurement result of the reference signal corresponding to the unactivated beam is higher than the measurement result of the reference signal corresponding to the activated beam, and is higher than a threshold, the beam measurement reporting is triggered. However, the measurement result corresponding to the reference signal fluctuates greatly over time, and the measurement result at a certain moment cannot fully reflect the quality of the reference signal. For example, the Mth best activated TCI state determined at a previous measurement moment may be different from the Mth best activated TCI state determined at a subsequent measurement moment. Therefore, according to the current triggering mechanism of the beam measurement reporting, the accuracy of the beam measurement result triggered for reporting is low, thereby misleading the network side to perform incorrect operations based on the beam measurement result.
[0241] According to the embodiments of the present application, the quality of the activated TCI state is determined based on the measurement result corresponding to each active beam and the number of Event-7 corresponding to each pair of {active beam #k, new beam #l}, and the Mth best activated TCI state is determined more accurately, thereby avoiding the network side from making incorrect activated TCI state updates due to the UE autonomously determining the best activated TCI state, and further affecting the performance of beam management and user experience.
[0242] The present application also provides a communication method. It can be understood that the steps of the communication method in the embodiments of the present application can be regarded as reasonable modifications or supplements of the embodiments of the above Figure 2 ; or it can be understood that the communication method in the embodiments of the present application can also be regarded as an independently executable embodiment, and the present application does not limit this. The communication method is applied to the field of communication technology, such as communication in the scene of beam measurement reporting.
[0243] It can be understood that the terminal device / UE involved in the communication method provided by the embodiments of the present application can refer to the first communication device in the communication method shown in the above Figure 2 ; the network device / network side / gNB involved in the communication method provided by the embodiments of the present application can refer to the second communication device in the communication method shown in the above Figure 2 , which will not be described here.
[0244] The communication method includes but is not limited to the following steps:
[0245] Step 1: The network side configures K activated TCI states associated beams (active beams) for the UE, and configures L new beams (new beams).
[0246] wherein the K activated TCI states are associated with K beams, and the L new beams are associated with L beams.
[0247] Optionally, the activated TCI states can be numbered as active beam#k (k = 1, 2, …, K, K is an integer greater than 0), and the active beams are numbered as active beam#k.
[0248] Optionally, the new beams can be numbered as new beam#l (l = 1, 2, …, L, L is an integer greater than 0).
[0249] Optionally, the DL RS corresponding to the active beams can refer to the description of the K first reference signals in the above-mentioned Figure 2 Optionally, the DL RS corresponding to the new beams can refer to the description of the L second reference signals in the above-mentioned Figure 2 Optionally, the DL RS corresponding to the new beams can refer to the description of the L second reference signals in the above-mentioned
[0250] Step 2: For each pair {active beam#k, new beam#l}, the number D of Event-7 occurring in a time / quantity window W0 is counted. k,l .
[0251] wherein if L1-RSRP of new beam#l - L1-RSRP of active beam#k > threshold, it is recorded as once Event-7.
[0252] Optionally, the counting of the number of Event-7 corresponding to each pair {active beam#k, new beam#l} in this step 2 can refer to the description of step S204 in the above-mentioned Figure 3 Optionally, the counting of the number of Event-7 corresponding to each pair {active beam#k, new beam#l} in this step 2 can refer to the description of step S204 in the above-mentioned
[0253] Optionally, the Event-7 in this step 2 can refer to the description of the first event in the above-mentioned Figure 3 Optionally, the Event-7 in this step 2 can refer to the description of the first event in the above-mentioned
[0254] Optionally, the time / quantity window W0 in this step 2 can refer to the description of the first time window in the above-mentioned Figure 3 Optionally, the time / quantity window W0 in this step 2 can refer to the description of the first time window in the above-mentioned
[0255] Step 3: Within a time / quantity window W0, for each active beam #k, determine D k = max{D k,1 ,D k,2 ,…,D k,L}.
[0256] Wherein, max{} represents taking the maximum value from one or more values.
[0257] For the active beam #k0 located at the Nth position (N is an integer satisfying 0 < N ≤ K), if the number of active beams ≥ (K-N+1) is greater than D , the beam measurement reporting is triggered.
[0258] Wherein, D TH may be agreed by the protocol, or configured by the network side, or determined by the UE itself, and the embodiments of the present application do not limit this.
[0259] Optionally, the method of triggering beam measurement reporting in step 3 can refer to the description of method two in the above Figure 2 embodiment, which will not be repeated here.
[0260] Currently, as long as the measurement result of the reference signal corresponding to the unactivated beam is higher than the measurement result of the reference signal corresponding to the activated beam, and is higher than a threshold, the beam measurement reporting is triggered. However, the measurement result corresponding to the reference signal fluctuates greatly with time, and the one-time measurement result at a certain time cannot completely reflect the quality of the reference signal. For example, the Nth best activated TCI state determined at the previous measurement time may be different from the Nth best activated TCI state determined at the next measurement time. Therefore, according to the current triggering mechanism of beam measurement reporting, the accuracy of the beam measurement result triggered for reporting is low, which misleads the network side to perform incorrect operations based on the beam measurement result.
[0261] According to the embodiment of the present application, the number of Event-7 corresponding to each pair of {active beam #k, new beam #l} and the maximum number of L times of Event-7 corresponding to each active beam are used to determine the triggering of beam measurement reporting, so as to determine the quality of activated TCI states and the Nth best activated TCI state more accurately, and avoid the UE from determining the best activated TCI state, which may cause the network side to make an incorrect activated TCI state update, and further affect the performance of beam management and user experience.
[0262] The above describes the method of the embodiment of the present application in detail, and the following provides an apparatus for implementing any one of the methods of the embodiment of the present application, for example, an apparatus including units (or means) for implementing each step performed by the device in any one of the above methods.
[0263] Please refer to Figure 2 , Figure 2 The structure of a communication apparatus provided by the embodiment of the present application is shown in the following.
[0264] As Figure 3 shown, the communication apparatus 30 can include a communication unit 301 and a processing unit 302. The communication unit 301 and the processing unit 302 can be software, hardware, or a combination of software and hardware.
[0265] The communication unit 301 can implement the sending function and / or the receiving function, and the communication unit 301 can also be described as a transceiver unit. The communication unit 301 can also be a unit integrating an acquisition unit and a sending unit, wherein the acquisition unit is used to implement the receiving function, and the sending unit is used to implement the sending function. Optionally, the communication unit 301 can be used to receive information sent by other apparatuses, and also can be used to send information to other apparatuses.
[0266] In a possible design, the communication apparatus 30 can correspond to the first communication apparatus in the method embodiment described above Figure 2 , and the communication apparatus 30 can be the first communication apparatus or a chip in the first communication apparatus. The communication apparatus 30 can include units for performing operations performed by the first communication apparatus in the method embodiment described above Figure 2 , and each unit in the communication apparatus 30 is respectively for implementing operations performed by the first communication apparatus in the method embodiment described above Figure 2 . Descriptions of each unit are as follows:
[0267] The communication unit 301 is configured to receive K first reference signals and L second reference signals from a second communication device, K being an integer greater than 0, and L being an integer greater than 0.
[0268] The processing unit 302 is configured to measure the K first reference signals to obtain first measurement results, and measure the L second reference signals to obtain second measurement results.
[0269] The processing unit 302 is further configured to obtain, based on the first measurement results, a measurement result corresponding to each of the K first reference signals.
[0270] The processing unit 302 is further configured to obtain, based on the first measurement results and the second measurement results, a number of first events corresponding to each of K*L pairs of reference signals, the first event including a difference between a measurement result corresponding to one of the L second reference signals and a measurement result corresponding to one of the K first reference signals being greater than a first threshold.
[0271] The processing unit 302 is further configured to determine, based on the measurement result corresponding to each of the K first reference signals and / or the number of first events corresponding to each of the K*L pairs of reference signals, to trigger reporting of a beam measurement.
[0272] In a possible implementation, the K first reference signals include reference signals corresponding to at least one first beam, the first beam being a beam not used for current data transmission between the first communication device and the second communication device; and the L second reference signals include reference signals corresponding to at least one second beam, the second beam being an inactivated beam.
[0273] In a possible implementation, the processing unit 302 is specifically configured to obtain, within a first time window, the number of first events corresponding to each of the K*L pairs of reference signals.
[0274] The processing unit 302 is specifically configured to obtain, within a second time window, the measurement result corresponding to each of the K first reference signals.
[0275] The first time window and the second time window are the same or overlap.
[0276] In a possible implementation, the first time window and / or the second time window is specified by a protocol, or is configured by the second communication device, or is configured by the first communication device.
[0277] In a possible implementation, the measurement result corresponding to each of the K first reference signals is determined by one or more reference signal received power (RSRP) corresponding to each of the K first reference signals.
[0278] In a possible implementation, the processing unit 302 is specifically configured to sort the K first reference signals in descending order of the measurement result corresponding to each of the K first reference signals.
[0279] The processing unit 302 is specifically configured to trigger beam measurement reporting if the number of the first event corresponding to the first pair of reference signals in the K*L pairs of reference signals is greater than or equal to a second threshold, where the first pair of reference signals includes a reference signal A and a reference signal B, the reference signal A is a first reference signal ranked at an Mth position in the K first reference signals, and M is an integer satisfying 0 < M ≤ K, and the reference signal B is one of the L second reference signals.
[0280] In a possible implementation, the second threshold is specified by a protocol, or is configured by the second communication device, or is configured by the first communication device.
[0281] In a possible implementation, the processing unit 302 is specifically configured to obtain a maximum number of the first event corresponding to each of the K first reference signals based on the number of the first event corresponding to each pair of reference signals in the K*L pairs of reference signals.
[0282] The processing unit 302 is specifically configured to trigger beam measurement reporting if there is a first reference signal set in the K first reference signals, where a maximum number of the first event corresponding to each of the first reference signal set is greater than or equal to a third threshold, and a number of the first reference signals in the first reference signal set is greater than or equal to a fourth threshold.
[0283] In a possible implementation, the third threshold and / or the fourth threshold are specified by a protocol, or are determined by configuration information of the second communication device, or are determined by configuration information of the first communication device.
[0284] In Figure 2 In another possible design of the communication device 30, the communication device 30 can correspond to the second communication device in the method embodiment described above, and can be a chip in the second communication device. The communication device 30 can include a processor 301 and a memory 302. The memory 302 stores a computer program. The processor 301 is configured to execute the computer program stored in the memory 302. Figure 2 In the method embodiment shown in Figure 3The units of the operations performed by the second communication device in the illustrated method embodiment, and each unit in the communication device 30 is respectively used to implement the above Figure 2 The units of the operations performed by the second communication device in the illustrated method embodiment. The description of each unit is as follows:
[0285] The communication unit 301 is configured to send K first reference signals and L second reference signals to a first communication device, K is an integer greater than 0, and L is an integer greater than 0; wherein the K first reference signals are used to determine first measurement results, and the L second reference signals are used to determine second measurement results, the first measurement results are used to determine a measurement result corresponding to each of the K first reference signals, and the first measurement results and the second measurement results are used to determine a number of first events corresponding to each of the K*L pairs of reference signals, the first event including a difference between a measurement result corresponding to one of the L second reference signals and a measurement result corresponding to one of the K first reference signals being greater than a first threshold value;
[0286] The communication unit 301 is further configured to receive a beam measurement report from the first communication device, the beam measurement report being triggered by the measurement result corresponding to each of the K first reference signals and / or the number of first events corresponding to each of the K*L pairs of reference signals;
[0287] The processing unit 302 is configured to update transmission configuration indication information corresponding to the K first reference signals.
[0288] In a possible implementation, the K first reference signals include reference signals corresponding to at least one first beam, and the first beam is a beam not used for current data transmission between the first communication device and the second communication device; and the L second reference signals include reference signals corresponding to at least one second beam, and the second beam is an inactivated beam.
[0289] In a possible implementation, the number of first events corresponding to each of the K*L pairs of reference signals is located within a first time window, and the measurement result corresponding to each of the K first reference signals is located within a second time window; wherein the first time window and the second time window are the same or overlap.
[0290] In a possible implementation, the first time window and / or the second time window is specified by a protocol, or is configured by the second communication device, or is configured by the first communication device.
[0291] In a possible implementation, the measurement result corresponding to each of the K first reference signals is determined by one or more reference signal received power (RSRP) corresponding to each of the K first reference signals.
[0292] In a possible implementation, the beam measurement reporting is triggered by the measurement result corresponding to each of the K first reference signals and / or the number of the first event corresponding to each of the K*L pairs of reference signals, and the method comprises:
[0293] the number of the first event corresponding to a first pair of reference signals in the K*L pairs of reference signals is greater than or equal to a second threshold value; wherein the first pair of reference signals comprises a reference signal A and a reference signal B, the reference signal A is a first reference signal ranked at an Mth position from high to low according to the measurement result corresponding to each of the K first reference signals, M is an integer satisfying 0 < M ≤ K, and the reference signal B is one of the L second reference signals.
[0294] In a possible implementation, the second threshold value is specified by a protocol, or is configured by the second communication device, or is configured by the first communication device.
[0295] In a possible implementation, the beam measurement reporting is triggered by the measurement result corresponding to each of the K first reference signals and / or the number of the first event corresponding to each of the K*L pairs of reference signals, and the method comprises:
[0296] there is a first reference signal set in the K first reference signals; wherein a maximum number of L numbers of the first event corresponding to each of the first reference signal set is greater than or equal to a third threshold value, the maximum number of L numbers of the first event corresponding to each of the first reference signal set is determined by the number of the first event corresponding to each of the K*L pairs of reference signals, and the number of the first reference signal set is greater than or equal to a fourth threshold value.
[0297] In a possible implementation, the third threshold value and / or the fourth threshold value are specified by a protocol, or are determined by configuration information of the second communication device, or are determined by configuration information of the first communication device.
[0298] The method performed by the processing unit 302 and the communication unit 301 described above can refer to the corresponding method described above, which will not be described here again. Figure 3 The corresponding method, which will not be described here again.
[0299] As to the technical effects brought by any of the above designs and any possible implementation, please refer to the above Figure 4 The technical effects of the corresponding method are introduced here, which will not be repeated.
[0300] Optionally, in the communication apparatus in any of the above designs and any possible implementation, the communication unit can be a transceiver, or an input / output interface; the processing unit can be at least one processor.
[0301] In an implementation, the communication apparatus is a communication device. When the communication apparatus is a communication device, the communication unit can be a transceiver, or an input / output interface; the processing unit can be at least one processor. Optionally, the transceiver can be a transceiver circuit. Optionally, the input / output interface can be an input / output circuit.
[0302] In another implementation, the communication apparatus is a chip (system) or circuit used in a communication device. When the communication apparatus is a chip (system) or circuit used in a communication device, the communication unit can be a communication interface (input / output interface), interface circuit, output circuit, input circuit, pin or related circuit on the chip (system) or circuit; the processing unit can be at least one processor, processing circuit or logic circuit, etc.
[0303] According to the embodiments of the present application, Figure 4 Each unit in the apparatus shown can be respectively or all combined into one or several other units to constitute, or some of the units can be further split into a plurality of units with smaller functions to constitute, which can realize the same operation without affecting the realization of the technical effects of the embodiments of the present application. The above units are divided based on logical functions. In actual application, the function of one unit can also be realized by multiple units, or the functions of multiple units are realized by one unit. In other embodiments of the present application, based on the electronic device, other units can also be included. In actual application, these functions can also be realized by other units, and can be realized by multiple units in cooperation.
[0304] It should be noted that the implementation of each unit can also be referred to the corresponding description of the method embodiments shown in the above Figure 4 The method embodiments shown in the above
[0305] In Figure 4 In the communication apparatus 30 described above, the accuracy of the reported beam measurement results can be improved to effectively assist the network side to perform correct operations.
[0306] Please refer to Figure 4 , Figure 2 A structural schematic diagram of a communication apparatus provided by the embodiments of the present application.
[0307] It should be understood that Figure 2The communication device 40 shown is merely an example; the communication device in this application embodiment may also include other components, or include components related to... Figure 2 Components with similar functions, or not necessarily including Figure 2 All components.
[0308] The communication device 40 includes a communication interface 401 and at least one processor 402.
[0309] The communication device 40 can correspond to any node or device in the first communication device or the second communication device. The communication interface 401 is used to send and receive signals, and at least one processor 402 executes program instructions, causing the communication device 40 to implement the corresponding process of the method executed by the corresponding device in the above method embodiment.
[0310] In one possible design, the communication device 40 may correspond to the above. Figure 4 The first communication device in the illustrated method embodiment, such as communication device 40, can be a first communication device or a chip within a first communication device. The communication device 40 may include components for performing the operations performed by the first communication device in the above method embodiment, and each component in the communication device 40 is specifically designed to implement the operations performed by the first communication device in the above method embodiment. Specifically, it can be as follows:
[0311] Communication interface 401 is used to receive K first reference signals and L second reference signals from the second communication device, where K is an integer greater than 0 and L is an integer greater than 0.
[0312] The processor 402 is configured to measure the K first reference signals to obtain a first measurement result, and to measure the L second reference signals to obtain a second measurement result;
[0313] The processor 402 is further configured to obtain a measurement result corresponding to each of the K first reference signals based on the first measurement result;
[0314] The processor 402 is further configured to, based on the first measurement result and the second measurement result, obtain the number of times a first event corresponds to each pair of reference signals in the K×L pairs of reference signals, wherein the first event includes a measurement result corresponding to one of the L second reference signals and a measurement result corresponding to one of the K first reference signals having a difference greater than a first threshold.
[0315] The processor 402 is further configured to determine the trigger beam measurement reporting based on the measurement results corresponding to each of the K first reference signals and / or the number of first events corresponding to each pair of reference signals in the K×L pairs of reference signals.
[0316] In another possible design, the communication apparatus 40 can correspond to the second communication apparatus in the method embodiments described above Figure 5 The communication apparatus 40 can include the components used for performing the operations of the second communication apparatus in the method embodiments described above, and the components in the communication apparatus 40 are respectively used for implementing the operations of the second communication apparatus in the method embodiments described above. Specifically, the communication apparatus 40 can include the following components:
[0317] The communication interface 401 is configured to transmit K first reference signals and L second reference signals to a first communication apparatus, K is an integer greater than 0, and L is an integer greater than 0; wherein the K first reference signals are used to determine first measurement results, and the L second reference signals are used to determine second measurement results, the first measurement result is used to determine a measurement result corresponding to each of the K first reference signals, and the first measurement result and the second measurement result are used to determine a number of first events corresponding to each of K*L pairs of reference signals, the first event including a difference between a measurement result corresponding to one of the L second reference signals and a measurement result corresponding to one of the K first reference signals being greater than a first threshold value;
[0318] The communication interface 401 is further configured to receive a beam measurement report from the first communication apparatus, the beam measurement report being triggered by the measurement result corresponding to each of the K first reference signals and / or the number of first events corresponding to each of the K*L pairs of reference signals;
[0319] The processor 402 is configured to update transmission configuration indication information corresponding to the K first reference signals.
[0320] The method performed by the processor 402 and the communication interface 401 described above can refer to the method described above Figure 5 The corresponding method will not be described here.
[0321] As to the technical effects brought by any of the above designs and any of the possible implementation manners, the introduction of the technical effects of the corresponding method can be referred to, and the introduction will not be repeated here. Figure 2
[0322] In the communication apparatus 40 described above, the accuracy of the reported beam measurement results can be improved to effectively assist the network side to perform correct operations. Figure 2 For the case that the communication apparatus can be a chip or a chip system, the above description of the communication apparatus can be referred to.
[0323] Figure 2 A structural schematic diagram of the chip is shown.
[0324] As shown in Figure 2 The chip 50 includes a processor 501 and an interface 502. The number of the processor 501 can be one or more, and the number of the interface 502 can be multiple. It should be noted that the functions of the processor 501 and the interface 502 can be implemented by hardware design, software design, or a combination of software and hardware, which is not limited here.
[0325] Optionally, the chip 50 can further include a memory 503, which is used to store necessary program instructions and data.
[0326] In the present application, the processor 501 can be used to call the implementation program of the communication method provided by one or more embodiments of the present application in one or more devices or nodes in the first communication device and the second communication device from the memory 503, and execute the instructions contained in the program. The interface 502 can be used to output the execution result of the processor 501. In the present application, the interface 502 can be specifically used to output various messages or information of the processor 501.
[0327] The communication method provided by one or more embodiments of the present application can refer to the foregoing Figure 2 each embodiment shown, which will not be repeated here.
[0328] The processor in the embodiments of the present application can be a central processing unit (CPU), and can also be other general-purpose processors, digital signal processors (DSP), application specific integrated circuits (ASIC), field programmable gate arrays (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor can be a microprocessor or any conventional processor.
[0329] The memory in the embodiments of the present application is used to provide a storage space, and the storage space can store data such as an operating system and a computer program. The memory includes but is not limited to a random access memory (RAM), a read-only memory (ROM), an erasable programmable read only memory (EPROM), or a compact disc read-only memory (CD-ROM).
[0330] According to the method provided in the embodiments of the present application, the embodiments of the present application further provide a computer readable storage medium, and the computer readable storage medium stores a computer program. When the computer program runs on one or more processors, the above-mentioned method can be implemented. Figure 2 The method shown in the embodiments of the present application.
[0331] According to the method provided in the embodiments of the present application, the embodiments of the present application further provide a computer program product, and the computer program product includes a computer program. When the computer program runs on a processor, the above-mentioned method can be implemented. The method shown in the embodiments of the present application.
[0332] The embodiments of the present application further provide a system, and the system includes at least one communication device 30 or communication device 40 or chip 50 as described above, which is used to execute the above-mentioned The steps performed by the corresponding device in any embodiment.
[0333] The embodiments of the present application further provide a system, and the system includes one or more of the following: a first communication device, a second communication device; wherein the first communication device is used to execute the above-mentioned The steps performed by the first communication device in any embodiment, and the second communication device is used to execute the above-mentioned The steps performed by the second communication device in any embodiment.
[0334] The embodiments of the present application further provide a processing device, and the processing device includes a processor and an interface; and the processor is used to execute the method in any method embodiment.
[0335] It should be understood that the processing device described above can be a chip. For example, the processing device can be a field programmable gate array (FPGA), can be a general processor, a digital signal processor (DSP), an application specific integrated circuit (ASIC), a field programmable gate array (FPGA) or other programmable logic device, a discrete gate or transistor logic device, a discrete hardware component, can also be a system chip (SoC), can also be a central processing unit (CPU), can also be a network processor (NP), can also be a digital signal processing circuit (digital signal processor, DSP), can also be a micro controller unit (MCU), can also be a programmable logic device (PLD) or other integrated chip. The methods, steps and logic block diagrams disclosed in the embodiments of the present application can be implemented or executed. The general processor can be a microprocessor or the processor can be any conventional processor. The steps of the method disclosed in combination with the embodiments of the present application can be directly embodied as hardware code processor execution, or executed by hardware and software module combination in code processor. The software module can be located in random memory, flash memory, read only memory, programmable read only memory or electrically erasable programmable memory, register and other mature storage medium in the art. The storage medium is located in the memory, and the processor reads the information in the memory, and combines the hardware to complete the steps of the above method.
[0336] It is to be appreciated that the memory in the embodiments of the application can be volatile, nonvolatile, or a combination of both. The non-volatile memory can be, for example, read only memory (ROM), programmable ROM (PROM), erasable PROM (EPROM), electrically EPROM (EEPROM), or flash memory. The volatile memory can be, for example, random access memory (RAM), which acts as external cache. By way of example and not limitation, many forms of RAM are available, such as static RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), double data rate SDRAM (DDR SDRAM), enhanced SDRAM (ESDRAM), Synchlink DRAM (SLDRAM), and direct Rambus RAM (DR RAM). It is to be appreciated that the system and method described herein can employ any of such memories or drives or a combination thereof.
[0337] In the embodiments described above, all or some of the steps can be implemented by using software, hardware, firmware or any combination thereof. When implemented by using software, all or some of the steps can be implemented by using one or more computer programs. When the computer programs are loaded into and executed by a computer, all or some of the steps described in the embodiments of the present application are performed. The computer can be a general purpose computer, a special purpose computer, a computer network, or other programmable apparatuses. The computer programs can be stored in a computer readable storage medium or transmitted from one computer readable storage medium to another computer readable storage medium, for example, the computer programs can be transmitted from a website, a computer, a server or a data center to another website, computer, server or data center through wired (for example, coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (for example, infrared, wireless, microwave, etc.) manner. The computer readable storage medium can be any available medium or a data storage device including one or more available media that is integrated into a server, data center, etc. The available medium can be a magnetic medium (for example, floppy disk, hard disk, magnetic tape), an optical medium (for example, high-density digital video disc (DVD)), or a semiconductor medium (for example, solid state disc (SSD)), etc.
[0338] The units in the various device embodiments described above and the electronic devices in the method embodiments correspond completely, and the corresponding steps are performed by the corresponding modules or units, for example, the communication unit (transceiver) performs the steps of receiving or transmitting in the method embodiments, and other steps except for transmitting and receiving can be performed by the processing unit (processor). The functions of the specific units can be referred to the corresponding method embodiments. The processor can be one or more.
[0339] It can be understood that the electronic device in the embodiments of the present application can perform some or all of the steps in the embodiments of the present application, and these steps or operations are only examples, and the embodiments of the present application can also perform other operations or various modifications of the operations. In addition, each step can be performed in a different order from that presented in the embodiments of the present application, and it is possible that not all the operations in the embodiments of the present application are performed.
[0340] Those skilled in the art can clearly understand that the units and algorithm steps of each example described in combination with the embodiments disclosed herein can be realized by electronic hardware or a combination of computer software and electronic hardware. Whether the functions are performed in hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of the present application.
[0341] Those skilled in the art can clearly understand that, for the convenience and brevity of the description, the specific working processes of the above-described system, device and unit can refer to the corresponding processes in the foregoing method embodiments, which will not be repeated here.
[0342] In several embodiments provided in the present application, it should be understood that the disclosed system, device and method can be implemented in other ways. For example, the above-described device embodiments are only schematic, for example, the division of the units is only a logical function division, and actual implementation can have another division manner, for example, a plurality of units or components can be combined or integrated into another system, or some features can be ignored or not executed. In addition, the coupling or direct coupling or communication connection between the units shown or discussed can be indirect coupling or communication connection through some interface, device or unit, and can be electrical, mechanical or other forms.
[0343] The units described as separate components can or can not be physically separated, and the components shown as units can or can not be physical units, that is, they can be located in one place, or can be distributed on a plurality of network units. Part or all of the units can be selected according to actual needs to achieve the purpose of the embodiment.
[0344] In addition, each functional unit in each embodiment of the present application can be integrated into a processing unit, or each unit can exist physically, or two or more units can be integrated into one unit.
[0345] If the functions are implemented in the form of software function units and sold or used as independent products, they can be stored in a computer readable storage medium. Based on this understanding, the technical solutions of the present application essentially or the parts that make contributions or parts of the technical solutions can be embodied in the form of a software product. The computer software product is stored in a storage medium and includes a plurality of instructions for causing a computer device (which can be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of the present application. The aforementioned storage medium includes: a U disk, a mobile hard disk, a read-only memory ROM, a random access memory RAM, a magnetic disk or an optical disk, and various media that can store program codes.
[0346] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited thereto. Any person skilled in the art can easily think of changes or replacements within the technical scope disclosed in the present application, which should be covered within the protection scope of the present application.
Claims
1. A communication method, characterized in that, Applied to a first communication device, the communication method includes: Receive K first reference signals and L second reference signals from the second communication device, where K is an integer greater than 0 and L is an integer greater than 0; A first measurement result is obtained by measuring the K first reference signals, and a second measurement result is obtained by measuring the L second reference signals; Based on the first measurement result, the measurement result corresponding to each of the K first reference signals is obtained; Based on the first measurement result and the second measurement result, the number of times the first event corresponds to each pair of reference signals in the K×L pairs of reference signals is obtained. The first event includes the difference between a measurement result corresponding to one of the L second reference signals and a measurement result corresponding to one of the K first reference signals being greater than a first threshold. Based on the measurement results corresponding to each of the K first reference signals and / or the number of first events corresponding to each pair of reference signals in the K×L pairs of reference signals, the trigger beam measurement reporting is determined.
2. The communication method according to claim 1, characterized in that, The K first reference signals include at least one reference signal corresponding to a first beam, where the first beam is an unused beam in the current data transmission between the first communication device and the second communication device; the L second reference signals include at least one reference signal corresponding to a second beam, where the second beam is an inactive beam.
3. The communication method according to claim 1 or 2, characterized in that, The process of obtaining the number of times the first event corresponds to each pair of reference signals in the K×L pairs of reference signals includes: The number of times the first event corresponds to each pair of reference signals in the K×L pairs of reference signals within the first time window is obtained; The step of obtaining the measurement result corresponding to each of the K first reference signals includes: The measurement result corresponding to each of the K first reference signals within the second time window is obtained; The first time window and the second time window are the same or overlap.
4. The communication method according to claim 3, characterized in that, The first time window and / or the second time window are specified by the protocol, or configured by the second communication device, or configured by the first communication device.
5. The communication method according to any one of claims 1 to 4, characterized in that, The measurement result corresponding to each of the K first reference signals is determined by the received power (RSRP) of one or more reference signals corresponding to each first reference signal.
6. The communication method according to any one of claims 1 to 5, characterized in that, The step of determining the trigger beam measurement reporting based on the measurement results corresponding to each of the K first reference signals and / or the number of first events corresponding to each pair of reference signals in the K×L pairs of reference signals includes: The K first reference signals are sorted from high to low according to the measurement results corresponding to each first reference signal; If the number of times the first event corresponding to the first pair of reference signals in the K×L pairs of reference signals is greater than or equal to the second threshold, beam measurement reporting is triggered; wherein, the first pair of reference signals includes reference signal A and reference signal B, the reference signal A is the first reference signal ranked in the Mth position among the K first reference signals, M is an integer satisfying 0<M≤K, and the reference signal B is one of the L second reference signals.
7. The communication method according to claim 6, characterized in that, The second threshold is specified by the protocol, or configured by the second communication device, or configured by the first communication device.
8. The communication method according to any one of claims 1 to 5, characterized in that, The step of determining the trigger beam measurement reporting based on the measurement results corresponding to each of the K first reference signals and / or the number of first events corresponding to each pair of reference signals in the K×L pairs of reference signals includes: Based on the number of times the first event corresponds to each pair of reference signals in the K×L pairs of reference signals, the maximum number of times is obtained among the L numbers of times the first event corresponds to each of the K first reference signals; If a first reference signal set exists among the K first reference signals, beam measurement reporting is triggered; wherein, the maximum number of the first event among the L counts corresponding to each first reference signal in the first reference signal set is greater than or equal to a third threshold, and the number of first reference signals in the first reference signal set is greater than or equal to a fourth threshold.
9. The communication method according to claim 8, characterized in that, The third threshold and / or the fourth threshold are specified by the protocol, or determined by the configuration information of the second communication device, or determined by the configuration information of the first communication device.
10. A communication method, characterized in that, Applied to a second communication device, the communication method includes: K first reference signals and L second reference signals are sent to a first communication device, where K is an integer greater than 0 and L is an integer greater than 0; wherein, the K first reference signals are used to determine a first measurement result, the L second reference signals are used to determine a second measurement result, the first measurement result is used to determine the measurement result corresponding to each of the K first reference signals, and the first measurement result and the second measurement result are used to determine the number of first events corresponding to each pair of reference signals in K×L pairs of reference signals, the first event including the difference between a measurement result corresponding to one of the L second reference signals and a measurement result corresponding to one of the K first reference signals being greater than a first threshold; Receive beam measurement reports from the first communication device; the beam measurement reports are triggered by the measurement results corresponding to each of the K first reference signals and / or the number of first events corresponding to each pair of reference signals in the K×L pairs of reference signals; Update the transmission configuration indication information corresponding to the K first reference signals.
11. The communication method according to claim 10, characterized in that, The K first reference signals include at least one reference signal corresponding to a first beam, where the first beam is an unused beam in the current data transmission between the first communication device and the second communication device; the L second reference signals include at least one reference signal corresponding to a second beam, where the second beam is an inactive beam.
12. The communication method according to claim 10 or 11, characterized in that, The number of times the first event corresponds to each pair of reference signals in the K×L pairs of reference signals is located within a first time window, and the measurement result corresponding to each of the K first reference signals is located within a second time window; wherein, the first time window and the second time window are the same or overlap.
13. The communication method according to claim 12, characterized in that, The first time window and / or the second time window are specified by the protocol, or configured by the second communication device, or configured by the first communication device.
14. The communication method according to any one of claims 10 to 13, characterized in that, The measurement result corresponding to each of the K first reference signals is determined by the received power (RSRP) of one or more reference signals corresponding to each first reference signal.
15. The communication method according to any one of claims 10 to 14, characterized in that, The beam measurement reporting is triggered by the measurement result corresponding to each of the K first reference signals and / or the number of first events corresponding to each pair of reference signals in the K×L pairs of reference signals, including: The number of times the first event corresponding to the first pair of reference signals exists in the K×L pairs of reference signals is greater than or equal to the second threshold; wherein, the first pair of reference signals includes reference signal A and reference signal B, the reference signal A is the first reference signal ranked in the Mth position according to the measurement results corresponding to each of the K first reference signals from high to low, where M is an integer satisfying 0 < M ≤ K, and the reference signal B is one of the L second reference signals.
16. The communication method according to claim 15, characterized in that, The second threshold is specified by the protocol, or configured by the second communication device, or configured by the first communication device.
17. The communication method according to any one of claims 10 to 14, characterized in that, The beam measurement reporting is triggered by the measurement result corresponding to each of the K first reference signals and / or the number of first events corresponding to each pair of reference signals in the K×L pairs of reference signals, including: The K first reference signals include a first reference signal set; wherein, the maximum number of times among the L counts of the first event corresponding to each first reference signal in the first reference signal set is greater than or equal to a third threshold, the maximum number of times among the L counts of the first event corresponding to each first reference signal in the first reference signal set is determined by the count of the first event corresponding to each pair of reference signals in the K×L pairs of reference signals, and the number of first reference signals in the first reference signal set is greater than or equal to a fourth threshold.
18. The communication method according to claim 17, characterized in that, The third threshold and / or the fourth threshold are specified by the protocol, or determined by the configuration information of the second communication device, or determined by the configuration information of the first communication device.
19. A communication device, characterized in that, Includes units for performing the method as described in any one of claims 1 to 9 or 10 to 18.
20. A communication device, characterized in that, Includes a processor for performing the method as claimed in any one of claims 1 to 9 or 10 to 18.
21. A communication device, characterized in that, It includes logic circuits and interfaces, wherein the logic circuits and the interfaces are coupled; The interface is used for inputting and / or outputting information, and the logic circuit is used for performing the method as claimed in any one of claims 1 to 9 or 10 to 18.
22. A communication system, characterized in that, include: First communication device and second communication device; Wherein, the first communication device is used to perform the method as described in any one of claims 1 to 9, and the second communication device is used to perform the method as described in any one of claims 10 to 18.
23. A computer-readable storage medium, characterized in that, The computer-readable storage medium is used to store a computer program, which, when executed, performs the method as claimed in any one of claims 1 to 9 or 10 to 18.
24. A computer program product, characterized in that, The computer program product includes a computer program that, when executed, performs the method as claimed in any one of claims 1 to 9 or 10 to 18.