WO2021073508A1 - 传输方法、装置、第一通信节点、第二通信节点及介质 - Google Patents
传输方法、装置、第一通信节点、第二通信节点及介质 Download PDFInfo
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Definitions
- This application relates to a wireless communication network, for example, to a transmission method, device, first communication node, second communication node, and medium.
- the first communication node can determine the signal of the second communication node, such as the measurement reference signal (Sounding Reference Signal, SRS), the physical uplink shared channel (Physical Uplink Shared Channel, PUSCH) signal, etc. Channel state information, based on this for frequency-domain selective scheduling, closed-loop power control, etc.; in addition, the first communication node can also send downlink signals to the second communication node, such as channel state information reference signals (Channel State Information-Reference). Signal, CSI-RS), Physical Downlink Shared Channel (PDSCH), etc., for the second communication node to receive, process, or measure.
- SRS Sounding Reference Signal
- PUSCH Physical Uplink Shared Channel
- Channel state information based on this for frequency-domain selective scheduling, closed-loop power control, etc.
- the first communication node can also send downlink signals to the second communication node, such as channel state information reference signals (Channel State Information-Reference). Signal, CSI-RS), Physical Downlink Shared Channel (PDSCH), etc.
- the second communication node may be configured with multiple antenna groups, and uplink signals or downlink signals may be transmitted through different uplink or downlink time slots.
- the flexibility of signal transmission between the first communication node and the second communication node is poor, which cannot guarantee effective and accurate signal transmission in various situations, and even leads to inconsistent signal transmission and reception links, which affects communication reliability.
- This application provides a transmission method, device, a first communication node, a second communication node, and a medium to improve the flexibility of signal transmission and the reliability of communication.
- the embodiment of the present application provides a transmission method, including:
- Sending instruction information where the instruction information is used to instruct the second communication node to send an uplink signal or instruct the second communication node to receive a downlink signal;
- the embodiment of the present application also provides a transmission method, including:
- An embodiment of the present application also provides a transmission device, including:
- a sending module configured to send instruction information, where the instruction information is used to instruct the second communication node to send an uplink signal or instruct the second communication node to receive a downlink signal;
- the first transmission module is configured to perform signal transmission with the second communication node according to the instruction information.
- An embodiment of the present application also provides a transmission device, including:
- a receiving module configured to receive instruction information, where the instruction information is used to instruct the second communication node to send an uplink signal or instruct the second communication node to receive a downlink signal;
- the second transmission module is configured to perform signal transmission with the first communication node according to the instruction information.
- the embodiment of the present application also provides a first communication node, including:
- One or more processors are One or more processors;
- Storage device for storing one or more programs
- the one or more processors When the one or more programs are executed by the one or more processors, the one or more processors implement the foregoing transmission method.
- the embodiment of the present application also provides a second communication node, including:
- One or more processors are One or more processors;
- Storage device for storing one or more programs
- the one or more processors When the one or more programs are executed by the one or more processors, the one or more processors implement the foregoing transmission method.
- the embodiments of the present application also provide a computer-readable storage medium, and a computer program is stored on the computer-readable storage medium, and when the program is executed by a processor, the foregoing transmission method is implemented.
- FIG. 1 is a flowchart of a transmission method provided by an embodiment
- Fig. 2 is a schematic diagram of a modified time slot offset parameter of signal transmission in an embodiment
- FIG. 3 is a flowchart of another transmission method provided by an embodiment
- FIG. 4 is a schematic structural diagram of a transmission device provided by an embodiment
- Figure 5 is a schematic structural diagram of another transmission device provided by an implementation
- FIG. 6 is a schematic structural diagram of a first communication node provided by an implementation
- Fig. 7 is a schematic structural diagram of a second communication node provided by an implementation.
- the Physical Downlink Control Channel (PDCCH) is used to carry downlink control information (Downlink Control Information, DCI), which can include uplink and downlink scheduling information and uplink power Control information.
- DCI Downlink Control Information
- the DCI format includes DCI format 0, 1, 1A, 1B, 1C, 1D, 2, 2A, 3, 3A, etc., which are added in the LTE (Long Term Evolution-Advanced, LTE-A) version 12 (Release 12)
- DCI format 2B, 2C, and 2D are used to support a variety of different applications and transmission modes.
- the first communication node may configure the equipment of the second communication node through DCI.
- the first communication node may be an evolved base station (e-Node-B, eNB), and the second communication node may be a user equipment (User Equipment, UE).
- the device of the second communication node may accept higher layers (Higher Layers) configuration, that is, configure the second communication node through higher layer signaling.
- higher layers Higher Layers
- a measurement reference signal (Sounding Reference Signal, SRS) is a signal used between a second communication node and a first communication node to measure channel state information (CSI).
- the second communication node can periodically send uplink data on the last data symbol of the sending subframe according to parameters such as frequency band, frequency domain position, sequence cyclic shift, period, and subframe offset indicated by the first communication node.
- SRS Signal Reference Signal
- the first communication node judges the uplink CSI of the second communication node according to the received SRS, and performs operations such as frequency domain selection scheduling and closed-loop power control according to the obtained CSI.
- non-precoded SRS namely antenna-specific SRS
- the first communication node can estimate the original uplink CSI by receiving the non-precoded SRS, but cannot estimate the original uplink CSI based on the precoded DMRS.
- the second communication node uses multiple antennas to transmit non-precoded SRS, the SRS resources required by each second communication node will increase, resulting in simultaneous multiplexing in the wireless communication system. The number of second communication nodes decreases.
- the second communication node can be triggered by higher layer signaling (also known as trigger type 0) or DCI trigger (also known as trigger type 1 trigger).
- the second communication node sends SRS.
- the trigger by higher layer signaling is periodic SRS
- the trigger by DCI is non- Periodic SRS.
- LTE-A Release 10 a way to send aperiodic SRS is added, which improves the utilization rate of SRS resources to a certain extent and improves the flexibility of resource scheduling.
- High-frequency signals have a very large fading in space. Although it will cause high-frequency signals in outdoor communication to have spatial fading loss, but due to its With the reduction of the wavelength, more antennas can usually be used, so that communication can be carried out based on the beam to compensate for the fading loss in the space.
- each antenna needs to have a set of radio frequency links, and digital beamforming also brings problems of increased cost and power loss. Therefore, in the research, it is more inclined to hybrid beamforming, that is, the radio frequency beam and the digital beam together form the final beam.
- the second communication node may be configured with multiple antenna groups, the uplink signal or the downlink signal may be transmitted through different uplink or downlink time slots, etc.
- the flexibility of signal transmission between the first communication node and the second communication node is poor, which cannot guarantee effective and accurate signal transmission in various situations, and even leads to inconsistent signal transmission and reception links, which affects communication reliability.
- a transmission method which instructs a second communication node to send an uplink signal or receive a downlink signal by sending instruction information, which is suitable for various signal transmission situations and improves the difference between the first communication node and the second communication node.
- the flexibility of inter-signal transmission ensures the reliability of transmission.
- the first communication node may be a base station of a macro cell, a base station or transmission node of a small cell, a sending node in a high-frequency communication system, a sending node in an Internet of Things system, a satellite node, etc.
- the second communication node may be a node in a communication system such as a UE, a mobile phone, a portable device, a car, and a satellite node.
- the uplink signal may be an SRS, an uplink DMRS, an uplink signal for random access, a PUSCH signal, or a phase tracking reference signal.
- the information of the antenna or the antenna group may be the identification information of the antenna or the antenna group, the port information of the antenna or the antenna group, or the beam identification information corresponding to the antenna or the antenna group.
- the information indicating SRS resources may be SRS sequences, SRS time-frequency position parameters, and so on.
- the second communication node is configured as 1T2R, 2T4R, or 4T8R.
- T represents the number of sending links
- R represents the number of receiving links.
- 1T2R represents the number of sending links is 1, and the number of receiving links is 2.
- a time slot is used as a time unit, and the time unit may also be a symbol, a subframe, or a frame.
- Fig. 1 is a flow chart of a transmission method provided by an embodiment.
- the transmission method provided in this embodiment can be applied to the first communication node. As shown in FIG. 1, the method includes step 110 and step 120.
- step 110 indication information is sent, where the indication information is used to instruct the second communication node to send an uplink signal or to instruct the second communication node to receive a downlink signal.
- step 120 signal transmission is performed with the second communication node according to the instruction information.
- the transmission method in this embodiment instructs the second communication node to send uplink signals or receive downlink signals by sending instruction information, which is suitable for various signal transmission situations, and improves the signal transmission between the first communication node and the second communication node. Flexibility to ensure the reliability of transmission.
- the indication information includes an antenna group associated parameter, and the antenna group associated parameter corresponds to an antenna group that transmits an uplink signal.
- it further includes at least one of the following: configuring the antenna group associated parameters in the measurement reference signal SRS resource or SRS resource set configured by high-layer signaling; and corresponding to the downlink control information DCI according to the mask selected by the antenna group
- the cyclic redundancy check code is used for scrambling, wherein the indication information is sent through the DCI.
- the first communication node may be a base station
- the second communication node may be a UE.
- the UE antennas can be divided into two groups, and each antenna group supports 1T2R.
- the base station can determine which group of antenna configuration is better by measuring the uplink signal, and instruct the UE to send the uplink signal on the group of antennas through signaling.
- the method for indicating the antenna group of the UE to send the uplink signal through signaling includes at least one of the following: 1) Configure the antenna group related parameters in the SRS resource set or SRS resource configured by higher layer signaling, and the antenna group related parameters are used to indicate the antenna group 0 or antenna group 1.
- the antenna group related parameters are configured for antenna group 0 and antenna group 1, respectively, to indicate the antenna group that transmits aperiodic SRS, and the corresponding aperiodic SRS resource trigger (Aperiodic SRS-Resource Trigger) is configured for the antenna group related parameters.
- Aperiodic SRS-Resource Trigger is configured for the antenna group related parameters.
- CRC Cyclic Redundancy Check
- the UE's ability to transmit/receive antenna ports includes the following: t1r1-t1r2; t1r1-t1r2-t1r4; t1r1-t1r2-t2r4; t1r1-t2r2; t1r1-t2r2-t4r4; for example, for t1r1 -t1r2-t1r4, you can configure 3 parameters t1r1, t1r2, t1r4 in SRS resource set or SRS resource configured by high-level signaling, and configure aperiodic SRS resource trigger 1, aperiodic SRS resource trigger for each parameter association 2.
- Aperiodic SRS resource trigger 3 when DCI dynamically triggers aperiodic SRS, a configuration can be dynamically selected from t1r1, t1r2, and t1r4 for signal transmission.
- the indication information includes a first time slot offset parameter, and the first time slot offset parameter corresponds to a time slot in which an uplink signal is sent; and the uplink signal includes an aperiodic SRS.
- it further includes: configuring the first slot offset parameter in the SRS resource or SRS resource set configured by high-layer signaling.
- the method further includes: in the case that multiple first slot offset parameters are configured in the SRS resource or the SRS resource set, determining the first slot offset parameter according to the SRS request field of the DCI, and the multiple The first time slot offset parameters are associated with multiple aperiodic SRS resource trigger parameters or code points.
- multiple slot offset parameters are configured in the SRS resource set, and the corresponding Aperiodic SRS-Resource Trigger is configured for each SlotOffset, so as to enhance the flexibility of aperiodic SRS transmission.
- the base station configures two SlotOffset parameters for the SRS resource set of the UE, namely SlotOffset0 and SlotOffset1, and configures the Aperiodic SRS-Resource Trigger values corresponding to SlotOffset0 and SlotOffset1 to 1 and 3.
- the base station can pass In the SRS request field in the DCI, a SlotOffset is dynamically selected to indicate to the UE to send aperiodic SRS.
- the SlotOffset0 corresponding to the Aperiodic SRS-Resource Trigger with the value of 1 is indicated to the UE; if the value of the SRS request field in the DCI is 11, the value will be The SlotOffset1 corresponding to the Aperiodic SRS-Resource Trigger of 3 is indicated to the UE, thereby enhancing the flexibility of aperiodic SRS transmission.
- the first slot offset parameter is expressed as SlotOffset
- the second slot offset parameter can also be expressed as SlotOffset, and its functions are all used to indicate the time of the transmission signal.
- the first target time slot is expressed as n+SlotOffset
- the second target time slot can also be expressed as n+SlotOffset, and its functions are all used to express the transmission signal Time slot.
- the indication information includes subband parameters, and the subband parameters correspond to subbands for transmitting uplink signals; the uplink signals include SRS; and the indication information is used to indicate that the second communication node is in the SRS is transmitted repeatedly or frequency hopping on the subband.
- the method further includes: receiving a broadband SRS sent by the second communication node; and determining the subband by measuring the broadband SRS.
- the broadband SRS is sent by a part of physical resource blocks in the activated bandwidth part BWP of the second communication node.
- the first communication node instructs the second communication node to send the SRS in two steps, so as to enhance the coverage capability of the SRS and improve the measurement accuracy of the SRS.
- Step1 The second communication node sends a broadband SRS on the activated bandwidth part (Bandwidth Part, BWP), and in order to enhance the coverage of the SRS, only sends the SRS on a partial physical resource block (PRB).
- BWP activated bandwidth part
- PRB physical resource block
- Step2 The first communication node determines the part of the subband that needs to be accurately measured by measuring the broadband SRS, and instructs the second communication node through signaling. After receiving the signaling instruction, the second communication node repeats it on some subbands Send or frequency hop to send SRS.
- the indication information is sent through DCI used for uplink scheduling or downlink scheduling; the uplink signal includes SRS.
- the indication information includes configuration parameters of the SRS, and the configuration parameters include at least one of the following: the antenna group associated parameters corresponding to the transmitted SRS, the time slot offset associated parameters, the spatial relationship of the beams, and the frequency domain position And the cyclic shift of the SRS sequence.
- the first communication node triggers the transmission of the SRS through the uplink or downlink scheduled DCI without PUSCH/PDSCH, and dynamically indicates the configuration parameters of the SRS in the DCI.
- the configuration parameters of SRS include at least one of the following: the antenna group associated parameters corresponding to the transmitted SRS, the time slot offset associated parameters, and the spatial relationship of the beams (the spatial relationship of the beams of the transmitted SRS can be based on the received SRS, CSI-RS or synchronization
- the signal block Synchronization Signal/Physical Broadcast Channel Block, SSB
- SSB Synchrom Broadcast Channel Block
- the value of the UL-SCH indicator in the DCI format 0_1 can be set to 0, and/or the value or state in the CSI request field can be set to all 0s to use the DCI format 0_1 to trigger aperiodic SRS. Or from the perspective of the UE, the UE does not expect to receive a DCI format 0_1 in which the value of the UL-SCH indicator is 0, the CSI request field is all 0s, and the SRS request field is all 0s.
- the indication information is used to instruct the second communication node to send the aperiodic SRS resource set in the first target time slot; wherein, the first target The time slot is the k+1th available or valid time slot after the time slot corresponding to the first time slot offset parameter, and k is 0 or a positive integer.
- the indication information is used to instruct the second communication node to send the aperiodic SRS resource set in the first target time slot; wherein, the first target The time slot is the k+1th available or valid time slot counted from the reference time slot, or the k+1th available or valid time slot within the N time slots counted from the reference time slot Slot, k is 0 or a positive integer, N is a positive integer in the first preset range or equal to the product of E and (k+1), E is a positive integer in the second preset range, and the reference time slot is For the time slot corresponding to the value rounded down by the product of n and the first parameter, n corresponds to the time slot that triggers the aperiodic SRS, and the first parameter is the ratio of the ⁇ SRS power of 2 to the ⁇ PDCCH power of 2 , ⁇ SRS is the subcarrier interval configuration of the triggered SRS; ⁇ PDCCH
- the k is determined by at least one of the following methods: configured by radio resource control RRC signaling; equal to the first slot offset parameter; configured by RRC signaling and the k corresponds to one SRS Trigger status or antenna group associated parameters; said k corresponds to a control resource set; said k corresponds to a time slot where the PDCCH triggering the SRS is located; and said k is a predetermined value.
- the indication information is used to instruct the second communication node to send the aperiodic SRS in the second target time slot; wherein, the second target time slot is The SRS resource of the second communication node or the first effective time slot in the time slots configured in the SRS resource set, or the effective time slot corresponding to the SRS resource or SRS resource set of the second communication node and the PDCCH that triggers the aperiodic SRS
- the time slot of the time slot has the smallest time slot offset.
- the indication information is used to instruct the second communication node to send an aperiodic SRS in the third target time slot; wherein, the third target time slot is a trigger
- N is a positive integer within the first preset range.
- the indication information is used to indicate the second communication
- the node sends the aperiodic SRS in the third target time slot; wherein, the third target time slot is the first valid time slot of the N time slots after the time slot where the PDCCH triggering the aperiodic SRS is located, or is The first valid time slot among the N time slots after the time slot corresponding to the first time slot offset parameter, where N is a positive integer within the first preset range.
- the indication information is used to indicate that the second communication node is in the time slot corresponding to the first time slot offset parameter or in the Aperiodic SRS is transmitted on some symbols in the last time slot of the N time slots.
- the effective time slot includes at least one of the following: an available or effective uplink time slot or a special time slot or a flexible time slot; the uplink used to transmit SRS resources or at least one SRS resource in the SRS resource set Time slot or special time slot or flexible time slot; uplink time slot or special time slot or flexible time slot used to send SRS resources or all SRS resources in SRS resource set; used to send SRS resource or at least one SRS in SRS resource set
- the uplink time slots or special time slots or flexible time slots that do not conflict with sending other uplink signals; there are available uplink symbols in the time slot for SRS resources or all resources in the SRS resource set to send SRS resources and meet the triggering requirements.
- the first communication node may be a base station
- the second communication node may be a UE.
- the base station may configure an SRS resource set to the UE through Radio Resource Control (RRC) signaling, and the SRS resource set includes SlotOffset of the time slot for transmitting aperiodic SRS.
- RRC Radio Resource Control
- DCI format 2-0 can dynamically modify the time slot format, and dynamically modify the time slot for sending aperiodic SRS determined by SlotOffset into a downlink time slot. In this case, the SlotOffset parameter will no longer be applicable, resulting in the inability to determine the aperiodic transmission SRS time slot.
- Figure 2 is a schematic diagram of a modified time slot offset parameter for signal transmission in an embodiment.
- the solution includes at least one of the following:
- Solution 1 If time slot n+SlotOffset is not a valid time slot, the predefined UE will transmit the aperiodic SRS resource set in time slot n or the k+1 effective time slot after time slot n+SlotOffset, where k is taken The value can be 0 or a positive integer.
- the determination of k includes at least one of the following: 1) The base station configures to the UE through RRC signaling; 2) It is equal to SlotOffset; 3) The base station configures multiple values of k to the UE through RRC signaling , These multiple k values respectively correspond to multiple SRS trigger states (SRS trigger states) or Aperiodic SRS-Resource Triggers; 4) are associated with the control resource set (Control Resource Set, CORESET); 5) are associated with the PDCCH that triggers the SRS. Gap correlation; 6) is a predetermined value, such as 0, or other predetermined values.
- Solution 2 Predefine the UE to transmit the aperiodic SRS resource set in the k+1th effective time slot after the time slot n.
- the interval between the first symbol of the SRS resource of the k+1th slot and the last symbol of the PDCCH triggering the aperiodic SRS is greater than or equal to N2, or greater than or equal to N2+14, where N2 is based on Rel -15 is obtained from the NR protocol, which is a value determined based on the processing capability of the UE and the subcarrier spacing.
- N2 is based on Rel -15 is obtained from the NR protocol, which is a value determined based on the processing capability of the UE and the subcarrier spacing.
- the interval between the first symbol of the SRS resource of the k+1th effective time slot and the last symbol of the PDCCH triggering the aperiodic SRS is greater than or equal to a predetermined value A, wherein the predetermined value A is in the acquisition parameter It includes at least one of the following: the PDCCH for scheduling the uplink channel and/or signal and the minimum value of the uplink channel and/or signal, and the subcarrier spacing relationship between the PDCCH and the SRS.
- the predetermined value A is the first value
- the predetermined value A is the second value, wherein the first value is less than or equal to The second value.
- the value of k can be 0 or a positive integer
- the way of determining k includes at least one of the following: 1) Configured by the base station to the UE through RRC signaling; 2) equal to SlotOffset; 3) From the base station to the UE through RRC signaling Configure multiple k values, which correspond to multiple SRS trigger states or Aperiodic SRS-Resource Triggers; 4) associate with CORESET; 5) associate with the time slot of the PDCCH that triggers the SRS; 6 ) Is a predetermined value, such as 0, or other predetermined values.
- the SRS resource set configured by the base station for the UE contains multiple SlotOffsets, such as SlotOffset 1, SlotOffset 2, SlotOffset 3, SlotOffset 4, and the UE is in slot n+SlotOffset 1, slot n+SlotOffset 2, and slot n +SlotOffset 3, slot n+SlotOffset 4 sequentially search for valid time slots, and send the SRS resource set in the first valid time slot. For example, first determine whether time slot n+SlotOffset 1 is a valid time slot. If n+SlotOffset 1 is an invalid time slot, then determine whether n+SlotOffset 2 is a valid time slot.
- n+SlotOffset 2 is a valid time slot
- the UE sends the SRS resource set on slot n+SlotOffset 2. Or, the UE first determines the effective time slot in time slot n+SlotOffset 1, time slot n+SlotOffset 2, time slot n+SlotOffset 3, time slot n+SlotOffset 4, for example, determines time slot n+SlotOffset 2, time slot
- the slot n+SlotOffset 3 is a valid time slot, and the UE transmits the SRS resource set in the time slot of min (n+SlotOffset 2, n+SlotOffset 3).
- Solution 4 If the configured SlotOffset or the triggered offset is set, at least one SRS resource in the triggered aperiodic SRS resource set is on at least one downlink symbol, then the SRS resource set is behind the slot (n+SlotOffset) or the slot Send in the first valid time slot in the N time slots following n, where N is a predefined integer between 1 and 50.
- Solution 5 If no valid time slot is found in the N time slots following time slot n or time slot (n+SlotOffset), then the UE is in time slot (n+SlotOffset) or time slot (n+SlotOffset+N) Part of the SRS resource in the SRS resource set is sent on part of the symbols in, where N is a predefined integer between 1 and 50.
- the solutions 4 and 5 can also be used, that is, the SRS resource set is in the time slot ( n+SlotOffset) or the first valid time slot in the N time slots after the time slot n, and if no valid time slot is found in the N time slots after the time slot (n+SlotOffset), the UE Part of the SRS resource in the SRS resource set is sent on part of the symbols in the time slot (n+SlotOffset) or the time slot (n+SlotOffset+N), where N is a predefined integer between 1 and 50.
- the effective time slot includes at least one of the following: 1) Available or valid uplink time slot/special time slot/flexible time slot, special time slot means that it can be used to transmit uplink
- the signal can also be used to send a mixed time slot of a downlink signal.
- the transmission direction of the time domain symbol where the at least one SRS resource is located is not downlink, and the transmission direction of the time domain symbol where the SRS is located in the effective time slot It can be an uplink or a flexible symbol, such as a flexible (flexible) time domain symbol.
- the transmission direction is obtained through time slot structure information; 2) Uplink time slot/special time slot that can be sent by at least one SRS resource in the SRS resource set; 3) Uplink time slot/special time slot that can be sent by all SRS resources in the SRS resource set Time slot; 4) At least one SRS resource in the SRS resource set transmits uplink time slots/special time slots that will not conflict with other uplink signals.
- Other signals can refer to uplink signals, such as periodic SRS, other aperiodic SRS, PUSCH, PUCCH Etc.; 5) A time slot that can be used to transmit all SRS resources in the SRS resource set and meets the minimum time requirement between PDCCH and SRS transmission; 6) The PDCCH and the start of the SRS resource in the effective time slot The time interval between time domain symbols is greater than or equal to the predetermined value A; 7) the time interval between the PDCCH and the starting time domain symbol in the SRS resource set in the effective time slot is greater than or equal to The predetermined value A; 8) the effective time unit is within the predetermined time window after the PDCCH; 9) between the PDCCH and the effective time slot, the time structure information does not change; 10) The time interval between the latest PDCCH including the time slot structure information and the start symbol of the measurement reference signal resource in the effective time slot before the effective time unit is greater than or equal to the first predetermined time interval; 11) Within the predetermined time window after the PDCCH, the time
- the effective time slot is searched at the SRS resource collection level; 15)
- the transmission direction of the time domain symbol occupied by the SRS resource is not downlink, for example, it may be uplink or flexible time domain symbols or special time domain symbols, The transmission direction is obtained through the time slot structure information. That is, the SRS resource level searches for a valid time slot. Whether to find a valid time slot based on the CSI-RS resource set level or the CSI-RS resource level can optionally be determined according to the configuration information in the CSI-RS resource set. For example, when the configuration in the SRS set is beam management, according to CSI-RS resource collection level searches for effective time slots, otherwise, it searches for effective time slots independently based on each CSI-RS resource.
- the above-mentioned PDCCH is the PDCCH for scheduling the SRS. 16) All SRS resources in the SRS resource set send uplink time slots/special time slots that do not conflict with other signals.
- the UE receives a DCI that triggers aperiodic SRS in time slot n, it will K + 1 start of the valid (Valid) aperiodic SRS transmission resource slot in the set count 10 (k + 1) th slot, where, k is the value of the level parameter SlotOffset configuration, [mu] to trigger an SRS SRS Sub-carrier spacing configuration, ⁇ PDCCH is the sub-carrier spacing configuration of the PDCCH carrying the trigger command.
- the time slot that contains the available uplink symbols for transmission of all SRS resources in the SRS resource set and meets the minimum time requirement between the PDCCH that triggers the aperiodic SRS and the transmission of all SRS resources in the resource set is a valid time slot. When multiple triggered SRS resources conflict, only the latest (latest) DCI triggered aperiodic SRS resources are sent.
- the indication information includes a second time slot offset parameter, and the second time slot offset parameter corresponds to a time slot for receiving a downlink signal;
- the downlink signal includes a channel state information reference signal CSI-RS ;
- the indication information is used to instruct the second communication node to receive aperiodic CSI-RS.
- it further includes: configuring the second slot offset parameter in a CSI-RS resource or a CSI-RS resource set configured by high-level signaling.
- the indication information is used to indicate that the first communication node sends the aperiodic CSI-RS resource set in the fourth target time slot, wherein the first communication node sends the aperiodic CSI-RS resource set in the fourth target time slot.
- the fourth target time slot is the h+1th available or valid time slot counted from the time slot where the aperiodic CSI-RS resource set is triggered, or the time slot counted from the time slot where the aperiodic CSI-RS resource set is triggered.
- the h+1th available or valid time slot in M time slots, h is 0 or a positive integer
- N is a positive integer in the first preset range or equal to the product of F and (k+1), F It is a positive integer in the second preset range.
- the h is determined by at least one of the following methods: configured by RRC signaling; equal to the second slot offset parameter; configured by RRC signaling and the h corresponds to a CSI-RS trigger state;
- the h corresponds to the control resource set;
- the h corresponds to the time slot of the PDCCH that triggers the CSI-RS; and
- the h is a predetermined value.
- the indication information is used to indicate that the first communication node sends the aperiodic CSI-RS in the fifth target time slot, where the fifth target The time slot is the first effective time slot in the time slots configured in the CSI-RS resource set of the second communication node; or the time slot offset is the smallest among the effective time slots configured in the CSI-RS resource set of the second communication node Time slot.
- the indication information is used to indicate that the first communication node sends the aperiodic CSI-RS in the fifth target time slot, where the fifth target
- the time slot is the first valid time slot among the M time slots after the time slot where the PDCCH triggering the aperiodic CSI-RS is located, or is the M time slot after the time slot corresponding to the second time slot offset parameter
- M is a positive integer within the second preset range.
- the indication information indicates that the first communication node is The fifth target time slot sends an aperiodic CSI-RS resource set; wherein, the fifth target time slot is the first valid time of the M time slots after the time slot where the PDCCH that triggers the aperiodic CSI-RS is located The slot, or the first valid slot among M slots after the slot corresponding to the first slot offset parameter, and M is a positive integer within the second preset range.
- the indication information is used to indicate that the first communication node is in the time slot corresponding to the second time slot offset parameter or in the Aperiodic CSI-RS is transmitted on some symbols in the last time slot of the M time slots.
- the effective time slot includes at least one of the following: an available or effective downlink time slot, a special time slot, or a flexible time slot; at least one of a CSI-RS resource or a CSI-RS resource set is used to transmit The uplink time slot or special time slot or flexible time slot of CSI-RS resources; the uplink time slot or special time slot or flexible time slot used to transmit all CSI-RS resources in the CSI-RS resource or CSI-RS resource set; At least one CSI-RS resource in the CSI-RS resource or at least one CSI-RS resource in the CSI-RS resource set, and uplink time slot or special time slot or flexible time slot that does not conflict with the transmission of other uplink signals; the time slot contains the available downlink The symbols are used for CSI-RS resources or all resources in the CSI-RS resource set to send CSI-RS resources and to meet the minimum time requirement between the PDCCH triggering the aperiodic CSI-RS and the sending of all CSI-RS resources in the resource set.
- the first communication node may be a base station, and the second communication node may be a UE.
- the base station may configure an SRS resource set to the UE through Radio Resource Control (RRC) signaling, and the SRS resource set includes The time slot offset parameter aperiodicTriggeringOffset for transmitting aperiodic CSI-RS.
- RRC Radio Resource Control
- the SRS resource set includes The time slot offset parameter aperiodicTriggeringOffset for transmitting aperiodic CSI-RS.
- the time slot of the PDCCH that triggers the aperiodic CSI-RS is n.
- DCI format 2-0 can dynamically modify the time slot format.
- the time slot for transmitting aperiodic CSI-RS ie time slot n+aperiodicTriggeringOffset
- the time slot for transmitting aperiodic CSI-RS is dynamically modified to the uplink time slot.
- the solution includes at least one of the following:
- Solution 1 Time slot n+aperiodicTriggeringOffset is not a valid time slot, then the predefined UE sends aperiodic CSI-RS resource set in the h+1th effective time slot after time slot n or time slot n+aperiodicTriggeringOffset, where h The value of can be 0 or a positive integer, and the determination method of h includes at least one of the following: 1) Configured by the base station to the UE through RRC signaling; 2) Equal to aperiodicTriggeringOffset; 3) Configured by the base station to the UE through RRC signaling.
- these multiple h values correspond to multiple CSI-RS trigger states (CSI-RS trigger states); 4) are associated with CORESET; 5) are associated with the time slot of the physical downlink control channel (PDCCH) that triggers the CSI-RS Association; 6) is a predetermined value, such as 0, or other predetermined values;
- the predefined base station transmits the aperiodic CSI-RS resource set in the h+1th effective time slot after the time slot n.
- the value of h can be 0 or a positive integer
- the determination of h includes at least one of the following: 1) Configured by the base station to the UE through RRC signaling; 2) equal to the aperiodicTriggeringOffset; 3) sent by the base station to the UE through RRC signaling Configure multiple h values, which correspond to multiple CSI-RS trigger states (CSI-RS trigger states); 4) Associate with CORESET; 5) Where the physical downlink control channel (PDCCH) that triggers CSI-RS is located Time slot association; 6) is a predetermined value, such as 0, or other predetermined values.
- PDCCH physical downlink control channel
- the CSI-RS resource set configured by the base station for the UE contains multiple aperiodicTriggeringOffset, such as aperiodicTriggeringOffset1, aperiodicTriggeringOffset2, aperiodicTriggeringOffset3, aperiodicTriggeringOffset4, then the base station is in time slot n+aperiodicTriggeringOffset1, time slot n+aperiodicTriggeringOffset1 In slot n+aperiodicTriggeringOffset 3 and slot n+aperiodicTriggeringOffset 4, the effective time slot is sequentially searched, and the CSI-RS resource set is sent in the first effective time slot.
- aperiodicTriggeringOffset such as aperiodicTriggeringOffset1, aperiodicTriggeringOffset2, aperiodicTriggeringOffset3, aperiodicTriggeringOffset4
- n+aperiodicTriggeringOffset 1 is a valid time slot. If n+aperiodicTriggeringOffset 1 is an invalid time slot, then determine whether n+aperiodicTriggeringOffset 2 is a valid time slot. If n+aperiodicTriggeringOffset 2 is a valid time slot, then The UE sends the SRS resource set on time slot n+aperiodicTriggeringOffset-2, and so on.
- the base station first determines the effective time slot in time slot n+aperiodicTriggeringOffset 1, time slot n+aperiodicTriggeringOffset 2, time slot n+aperiodicTriggeringOffset 3, time slot n+aperiodicTriggeringOffset 4, for example, determines time slot n+aperiodicTriggeringOffset 2, time The slot n+aperiodicTriggeringOffset 3 is a valid time slot, and the UE transmits the CSI-RS resource set in the time slot of min (n+aperiodicTriggeringOffset 2, n+aperiodicTriggeringOffset 3).
- Solution 4 If the configured aperiodicTriggeringOffset or the triggered offset, at least one CSI-RS resource in the triggered aperiodic CSI-RS resource set is set on at least one uplink symbol, then the CSI-RS resource set is in the time slot (n+ aperiodicTriggeringOffset) or the first valid time slot within M time slots after time slot n.
- M is a predefined integer between 1 and 50.
- Solution 5 If no valid time slot is found in the M time slots behind the time slot (n+aperiodicTriggeringOffset), then the base station has some symbols in the time slot (n+aperiodicTriggeringOffset) or time slot (n+aperiodicTriggeringOffset+N) Part of the CSI-RS resources in the CSI-RS resource set is sent on the upper side.
- M is a predefined integer between 1 and 50.
- the solutions 4 and 5 can also be adopted, namely CSI-RS
- the resource set is sent in the first valid time slot in the M time slots after the time slot (n+aperiodicTriggeringOffset) or after the time slot n, and if it is not found in the M time slots after the time slot (n+aperiodicTriggeringOffset) Valid time slot, the UE transmits part of the SRS resource in the SRS resource set on part of the symbols in the time slot (n+aperiodicTriggeringOffset) or time slot (n+aperiodicTriggeringOffset+N), and M is a predefined one between 1 and 50 Integers.
- the valid time slot includes at least one of the following: 1) Available or valid downlink time slot/special time slot; 2) Available for at least one CSI-RS resource set. Downlink time slot/special time slot for RS resource transmission; 3) Downlink time slot/special time slot for sending at least one CSI-RS resource in the CSI-RS resource set; 4) At least one CSI-RS resource in the CSI-RS resource set The downlink time slot/special time slot where RS resource transmission does not conflict with other downlink signals; 5) All resources in the CSI-RS resource set can be transmitted by CSI-RS resources and meet the minimum time between PDCCH and CSI-RS transmission The required time slot; 6) In the time slot, the transmission direction of the time domain symbols occupied by all CSI-RS resources in the CSI-RS resource set is not uplink, for example, it may be downlink or flexible time domain symbols or special Time domain symbols, where the transmission direction is obtained through the time slot structure information.
- the effective time slot is searched at the CSI-RS resource set level; 7)
- the transmission direction of the time domain symbol occupied by the CSI-RS resource is not uplink, for example, it may be downlink or flexible time domain symbols or special Time domain symbols, where the transmission direction is obtained through the time slot structure information.
- the CSI-RS resource level searches for effective time slots. Whether to find the effective time slot based on the CSI-RS resource set level or the CSI-RS resource level can optionally be determined according to the configuration information in the CSI-RS resource set. For example, when on/off is configured, according to CSI-RS.
- the effective time slot is searched for at the RS resource set level, otherwise the effective time slot is searched independently based on each CSI-RS resource.
- the interval between the PDCCH and the start time domain symbol of the CSI-RS resource set in the time slot is greater than a second predetermined value, where the second predetermined value is beamSwitchTiming, where beamSwitchTiming represents the transmission configuration indication indicated by the PDCCH (Transmission Configuration Indication).
- TCI is the minimum time interval applied to CSI-RS reception, or the minimum time interval between PDCCH and CSI-RS.
- the effective time slot is within the predetermined time window after the PDCCH; 9) The time structure information does not change between the PDCCH and the effective time slot; 10) Before the effective time slot The time interval between the most recent PDCCH including the time slot structure information and the start symbol of the measurement reference signal resource in the effective time slot is greater than or equal to the first predetermined time interval; 11) in the PDCCH Afterwards, within the predetermined time window, the time structure information does not change; 12) between the PDCCH and the effective time slot, based on the same time slot structure information; 13) after the PDCCH, the predetermined time structure information Within the time window, it is based on the same time slot structure information.
- the above-mentioned PDCCH is a PDCCH for scheduling the CSI-RS.
- the first communication node is in the k+1 effective time slot in the 10(k+1) time slots counted from time slot n Sending aperiodic CSI-RS resource set, where k is the value configured by the high-level parameter aperiodicTriggeringOffset, and the time slot contains available downlink symbols for sending all CSI-RS resources in the CSI-RS resource set and meeting triggering aperiodic CSI -The time slot required for the minimum time between the PDCCH of the RS and the transmission of all CSI-RS resources in the resource set is a valid time slot. When multiple triggered CSI-RS resources conflict, only the latest (latest) DCI triggered aperiodic CSI-RS resources are sent.
- the method further includes: when at least one resource in the triggered aperiodic SRS or aperiodic CSI-RS resource set conflicts with other signals to be transmitted, removing conflicting symbols in the resource set, or postponing Transmission of aperiodic SRS or aperiodic CSI-RS, or removal of the other signals to be transmitted that have conflicts, and priority transmission of aperiodic SRS or aperiodic CSI-RS.
- the indication information is also used to indicate: when the transmission of at least two aperiodic SRS or aperiodic CSI-RS is triggered by the same DCI or different DCIs, or when the transmission of at least two aperiodic SRS or aperiodic CSI-RS is triggered
- SRS resources or SRS resource sets or multiple CSI-RS resources or CSI-RS resource sets conflict with each other, only aperiodic SRS resources or SRS resource sets or aperiodic CSI-RS resources or resource sets triggered by the most recent DCI are transmitted , Or only transmit aperiodic SRS resource or SRS resource set or aperiodic CSI-RS resource or resource set with the smallest or largest resource set identifier.
- the conflicting resources or symbols are deleted, or the entire SRS resource is postponed
- the SRS resource set (CSI-RS resource set) is sent; or, other conflicting uplink signals (downlink signals) are eliminated, and the SRS resource set (CSI-RS resource set) is sent first.
- the base station triggers simultaneous transmission of multiple SRS resource sets (CSI-RS resource sets) through the same DCI or different DCIs, only the SRS resource set triggered by the most recent DCI (CSI-RS resource set) is sent, or only the resources are sent Set identifier (ID) of a small or large SRS resource set (CSI-RS resource set).
- ID Set identifier
- the indication information includes a third time slot offset parameter, and the third time slot offset parameter corresponds to a time slot for sending a downlink signal; the downlink signal includes PDSCH; and the indication information is used for Instruct the second communication node to receive the PDSCH.
- the method further includes: configuring at least one information element through RRC signaling, the at least one information element is used to configure the time domain relationship between the PDCCH and the PDSCH, and the at least one information element corresponds to at least one time domain, respectively.
- Slot offset parameter when there are at least two information units, it is determined through DCI signaling that the slot offset parameter corresponding to one information unit is the third slot offset parameter.
- the indication information is used to instruct the second communication node to receive the PDSCH in the sixth target time slot, where the sixth target time slot is the location where the PDCCH is located.
- the time slot or the r+1th available or valid downlink time slot or special time slot after the time slot corresponding to the sixth time slot offset parameter, r is 0 or a positive integer.
- the r is determined by at least one of the following methods: configured by RRC signaling; equal to the third slot offset parameter; configured by RRC signaling and the r corresponds to a CSI-RS trigger state;
- the r corresponds to the control resource set;
- the r corresponds to the time slot in which the PDCCH for scheduling the PDSCH is located; and
- the r is a predetermined value.
- the first communication node may be a base station
- the second communication node may be a UE.
- the base station configures one or more information elements (Information element, IE) PDSCH-TimeDomainResourceAllocation to the UE through RRC signaling to configure the time domain between PDCCH and PDSCH relationship.
- the information unit PDSCH-TimeDomainResourceAllocation includes the parameter k0, which represents the offset between the time slot where the PDSCH is located and the time slot where the PDCCH is scheduled for this PDSCH.
- one of the multiple information units can be dynamically selected through DCI signaling, thereby determining k0, and then determining the time slot for transmitting the PDSCH.
- DCI format 2-0 can dynamically modify the time slot format. When the time slot for transmitting the PDSCH determined by the parameter k0 is dynamically modified to an uplink time slot, the base station will not be able to transmit the PDSCH scheduled by the PDCCH at this time.
- RRC signaling can only configure a limited k0 value for the base station to dynamically select, which imposes restrictions on the resource scheduling of the base station.
- the base station can be pre-defined to transmit PDSCH in the k0th available or valid downlink time slot/special time slot after the PDCCH is located, or it can The predefined base station transmits the PDSCH in the r+1th available or valid downlink time slot/special time slot after the time slot determined by the parameter k0, where the value of r can be 0 or positive Integer, the method for determining r includes at least one of the following: 1) The base station configures multiple r values to the UE through RRC signaling; 2) the base station configures multiple r values to the UE through RRC signaling, and these multiple r values correspond to multiple CSIs. -The trigger state of the RS; 3) Associate with CORESET
- the transmission direction of the time domain symbols occupied by the PDSCH in the effective time slot is not uplink.
- the transmission direction is determined by time slot structure information.
- the indication information includes a fourth time slot offset parameter, and the fourth time slot offset parameter corresponds to a time slot for transmitting an uplink signal; the uplink signal includes PUSCH; and the indication information is used for Instruct the second communication node to send the PUSCH.
- the method further includes: configuring at least one information element through RRC signaling, the at least one information element is used to configure the time domain relationship between the PDCCH and the PUSCH, and the at least one information element corresponds to at least one time domain, respectively.
- Slot offset parameter in the case where there are at least two information units, it is determined through DCI signaling that the slot offset parameter corresponding to one information unit is the fourth slot offset parameter.
- the indication information is used to instruct the second communication node to transmit PUSCH in the seventh target time slot, where the seventh target time slot is the time slot where the PDCCH is located. Or the y+1th available or valid downlink time slot or special time slot after the time slot corresponding to the fourth time slot offset associated parameter, y is 0 or a positive integer.
- the y is determined by at least one of the following methods: configured by RRC signaling; equal to the fourth slot offset parameter; configured by RRC signaling and the y corresponds to a CSI-RS trigger state; The y corresponds to the control resource set; the y corresponds to the time slot in which the PDCCH for scheduling the PDSCH is located.
- the base station configures one or more information elements (Information element, IE) PUSCH-TimeDomainResourceAllocation to the UE through RRC signaling, the information element PUSCH-TimeDomainResourceAllocation Used to configure the time domain relationship between PDCCH and PUSCH.
- the information unit PUSCH-TimeDomainResourceAllocation includes a parameter k2, where k2 represents the offset between the time slot where the PUSCH is located and the time slot where the PDCCH is scheduled for this PUSCH.
- one of the multiple information units can be dynamically selected through DCI signaling, thereby determining k2, and then determining the time slot for transmitting PUSCH.
- DCI format 2-0 can dynamically modify the time slot format.
- the time slot for transmitting the PUSCH determined by the parameter k2 is dynamically modified to a downlink time slot, the UE will not be able to transmit the PUSCH scheduled by the PDCCH at this time.
- RRC signaling can only configure a limited k2 value for the base station to dynamically select, which brings restrictions on the resource scheduling of the base station.
- the UE can be predefined to transmit PUSCH in the k2 available or valid uplink time slot/special time slot after the predetermined time A of the PDCCH time slot, or , UE can be predefined to transmit PUSCH in the y+1th available or valid uplink time slot/special time slot after the time slot determined by parameter k2, where the value of y can be 0 Or a positive integer, the method for determining y includes at least one of the following: 1) the base station configures the UE through RRC signaling; 2) the base station configures multiple y values to the UE through RRC signaling, and the multiple y values correspond to multiple values respectively.
- the trigger state of each CSI-RS; 3) is associated with CORESET; 4) is associated with the time slot where the PDCCH of the PUSCH is scheduled.
- the transmission direction of the time domain symbols occupied by the PUSCH in the effective time slot is not downlink.
- the transmission direction is determined by time slot structure information.
- the indication information includes a fifth time slot offset parameter, and the fifth time slot offset parameter corresponds to the time slot in which the uplink signal is sent; the uplink signal includes PUCCH associated with acknowledgement and non-acknowledgement information The indication information is used to instruct the second communication node to send the PUCCH of the associated confirmation and non-confirmation information.
- the method further includes: configuring at least one preset parameter through RRC signaling, where the preset parameter is used to configure the time domain relationship between the PDSCH and the PUCCH.
- the indication information is used to instruct the second communication node to send the PUCCH in the eighth target time slot, where the eighth target time slot is the time slot in which the PDSCH is located or the fifth time slot
- the x+1th available or valid downlink time slot or special time slot after the time slot corresponding to the offset correlation parameter, x is 0 or a positive integer.
- the x is determined by at least one of the following methods: configured by RRC signaling; equal to the fifth slot offset parameter; configured by RRC signaling and the x corresponds to a CSI-RS trigger state; The x corresponds to the control resource set; the x corresponds to the time slot where the PDCCH for scheduling the PDSCH is located.
- the base station configures the parameter k1 to the UE through signaling to indicate the PDSCH and PUCCH With the time slot offset relationship between ACK/NACK.
- DCI format 2-0 can dynamically modify the time slot format. When the time slot for sending PUCCH determined by parameter k1 is dynamically modified to a downlink time slot, the UE will not be able to send PUCCH at this time.
- RRC signaling can only configure a limited k1 value for the base station to dynamically select, which imposes restrictions on the resource scheduling of the base station.
- the UE when the above situation is encountered, the UE can be predefined to send PUCCH in the k1 available or valid uplink time slot/special time slot after the PDSCH time slot, or it can be pre-defined.
- the method for determining x includes at least one of the following: 1) the base station configures the UE through RRC signaling; 2) the base station configures multiple x values to the UE through RRC signaling, and the multiple x values correspond to multiple CSI-
- the trigger state of the RS is associated with the control resource set CORESET; 4) is associated with the time slot where the PDSCH is located, wherein the transmission direction of the time domain symbols occupied by the PUCCH in the effective time slot is not downlink.
- the transmission direction is determined by time slot structure information.
- the time slot structure information includes at least one of the following: according to the position of the time domain symbol where the synchronization signal is located; according to the semi-static frame structure; according to the DCI format 2_0; according to the time domain symbol where the PRACH is located;
- the time slot structure information before the PDCCH; the time slot structure information in each time unit after the PDCCH includes the effective time slot structure information in each time unit; when determining the transmission direction of the time domain symbols, The priority is higher than the time slot structure information of the target signal.
- the transmission direction of a time domain symbol is determined as uplink through the time slot structure information, but the target signal is the above-mentioned aperiodic CSI-RS/PDSCH, and the priority of the time slot structure information is higher, that is, the transmission direction of the domain symbol at this time is uplink .
- the priority of the PDSCH/PUSCH/AP-SRS/AP-CSI-RS scheduled by the DCI is higher than that of the periodic signal.
- the transmission direction of one of the time domain symbols includes: uplink, downlink, and flexible.
- the transmission direction of Flexible can be changed to uplink or downlink by the target signal.
- the time slot structure information satisfies at least one of the following characteristics: 1) When determining the transmission direction of the time domain symbol, the priority of the time slot structure information is higher than the time slot structure of the target signal Information; 2) between the PDCCH and the effective time slot, the time structure information does not change; 3) the most recent PDCCH including the time slot structure information before the effective time unit and the effective time slot The time interval between the start symbols of the measurement reference signal resource is greater than or equal to the first predetermined time interval; 4) within the predetermined time window after the PDCCH, the time structure information does not change; 5) Between the PDCCH and the effective time slot, based on the same time slot structure information 6) Within the predetermined time window after the PDCCH, based on the same time slot structure information.
- the aforementioned time unit is a time slot.
- this embodiment does not exclude other time units, such as subframes, frames, etc., where the SRS is located according to the aforementioned rules.
- Fig. 3 is a flow chart of a transmission method provided by an embodiment.
- the transmission method provided in this embodiment can be applied to the second communication node. As shown in FIG. 3, the method includes step 210 and step 220.
- step 210 receiving instruction information, where the instruction information is used to instruct the second communication node to send an uplink signal or to instruct the second communication node to receive a downlink signal.
- step 220 signal transmission is performed with the first communication node according to the instruction information.
- the transmission method in this embodiment uses indication information to instruct the second communication node to send uplink signals or receive downlink signals, which is suitable for various signal transmission situations, and improves the flexibility of signal transmission between the first communication node and the second communication node. Performance to ensure the reliability of transmission.
- the indication information includes an antenna group associated parameter, and the antenna group associated parameter corresponds to an antenna group that transmits an uplink signal.
- the antenna group related parameters are configured by the measurement reference signal SRS resource or SRS resource centralized configuration configured by the first communication node in the higher layer signaling.
- the first communication node scrambles the cyclic redundancy check code corresponding to the downlink control information DCI according to the mask selected by the antenna group, wherein the indication information is sent through the DCI.
- the indication information includes a first time slot offset parameter, and the first time slot offset parameter corresponds to a time slot in which an uplink signal is sent; and the uplink signal includes an aperiodic SRS.
- the first time slot offset parameter is configured by the SRS resource or SRS resource collectively configured by the first communication node in high-level signaling.
- the first slot offset parameter is determined by the first communication node according to the SRS request field of the DCI, so The multiple first slot offset parameters are associated with multiple aperiodic SRS resource trigger parameters or code points.
- the indication information includes subband parameters, and the subband parameters correspond to subbands for transmitting uplink signals; the uplink signals include SRS; and the indication information is used to indicate that the second communication node is in the SRS is transmitted repeatedly or frequency hopping on the subband.
- the method further includes: sending a broadband SRS to the first communication node.
- the first communication node determines the subband by measuring the SRS of the broadband.
- the broadband SRS is sent by a part of physical resource blocks in the activated bandwidth part BWP of the second communication node.
- the indication information is sent through DCI used for uplink scheduling or downlink scheduling; the uplink signal includes SRS.
- the indication information includes configuration parameters of the SRS, and the configuration parameters include at least one of the following: the antenna group associated parameters corresponding to the transmitted SRS, the time slot offset associated parameters, the spatial relationship of the beams, and the frequency domain position And the cyclic shift of the SRS sequence.
- the indication information is used to instruct the second communication node to send the aperiodic SRS resource set in the first target time slot; wherein, the first target The time slot is the k+1th available or valid time slot after the time slot corresponding to the first time slot offset parameter, and k is 0 or a positive integer.
- the indication information is used to instruct the second communication node to send the aperiodic SRS resource set in the first target time slot; wherein, the first target The time slot is the k+1th available or valid time slot counted from the reference time slot, or the k+1th available or valid time slot within the N time slots counted from the reference time slot Slot, k is 0 or a positive integer, N is a positive integer in the first preset range or equal to the product of E and (k+1), E is a positive integer in the second preset range, and the reference time slot is For the time slot corresponding to the value rounded down by the product of n and the first parameter, n corresponds to the time slot that triggers the aperiodic SRS, and the first parameter is the ratio of the ⁇ SRS power of 2 to the ⁇ PDCCH power of 2 , ⁇ SRS is the subcarrier interval configuration of the triggered SRS; ⁇ PDCCH
- the k is determined by at least one of the following methods: configured by radio resource control signaling RRC signaling; equal to the first slot offset parameter; configured by RRC signaling and the k corresponds to An SRS trigger state or antenna group associated parameter; the k corresponds to the control resource set; the k corresponds to the time slot of the PDCCH that triggers the SRS; the k is a predetermined value.
- the indication information is used to instruct the second communication node to send the aperiodic SRS in the second target time slot; wherein, the second target time slot is The SRS resource of the second communication node or the first effective time slot in the time slots configured in the SRS resource set, or the effective time slot corresponding to the SRS resource or SRS resource set of the second communication node and the PDCCH that triggers the aperiodic SRS
- the time slot of the time slot has the smallest time slot offset.
- the indication information is used to instruct the second communication node to send an aperiodic SRS in the third target time slot; wherein, the third target time slot is a trigger
- N is a positive integer within the first preset range.
- the indication information is used to indicate the second communication
- the node sends the aperiodic SRS in the third target time slot; wherein, the third target time slot is the first valid time slot of the N time slots after the time slot where the PDCCH triggering the aperiodic SRS is located, or is The first valid time slot among the N time slots after the time slot corresponding to the first time slot offset parameter, where N is a positive integer within the first preset range.
- the indication information is used to indicate that the second communication node is in the time slot corresponding to the first time slot offset parameter or in the Aperiodic SRS is transmitted on some symbols in the last time slot of the N time slots.
- the effective time slot includes at least one of the following: an available or effective uplink time slot or a special time slot or a flexible time slot; the uplink used to transmit SRS resources or at least one SRS resource in the SRS resource set Time slot or special time slot or flexible time slot; uplink time slot or special time slot or flexible time slot used to send SRS resources or all SRS resources in SRS resource set; used to send SRS resource or at least one SRS in SRS resource set Uplink time slots or special time slots or flexible time slots that do not conflict with sending other uplink signals; there are available uplink symbols in the time slot for the transmission of SRS resources or all SRS resources in the SRS resource set and satisfy the triggering aperiodic The time slot required for the minimum time between the PDCCH of the SRS and the transmission of all SRS in the resource set.
- the indication information includes a second time slot offset parameter, and the second time slot offset parameter corresponds to a time slot for receiving a downlink signal;
- the downlink signal includes a channel state information reference signal CSI-RS ;
- the indication information is used to instruct the second communication node to receive aperiodic CSI-RS.
- the second slot offset parameter is configured by the CSI-RS resource or CSI-RS resource set configured by the first communication node in high-level signaling.
- the indication information is used to indicate that the first communication node sends the aperiodic CSI-RS resource set in the fourth target time slot, wherein the first communication node sends the aperiodic CSI-RS resource set in the fourth target time slot.
- the fourth target time slot is the h+1th available or valid time slot counted from the time slot where the aperiodic CSI-RS resource set is triggered, or the time slot counted from the time slot where the aperiodic CSI-RS resource set is triggered.
- the h+1th available or valid time slot in M time slots, h is 0 or a positive integer
- N is a positive integer in the first preset range or equal to the product of F and (k+1), F It is a positive integer in the second preset range.
- h is determined by at least one of the following methods: configured through RRC signaling; equal to the second slot offset parameter; configured through RRC signaling and the h corresponds to a CSI-RS trigger state; h corresponds to the control resource set; the h corresponds to the time slot of the PDCCH that triggers the CSI-RS.
- the indication information is used to indicate that the first communication node sends the aperiodic CSI-RS in the fifth target time slot, where the fifth target The time slot is the first effective time slot in the time slots configured in the CSI-RS resource set of the second communication node; or the time slot offset is the smallest among the effective time slots configured in the CSI-RS resource set of the second communication node Time slot.
- the indication information is used to indicate that the first communication node sends the aperiodic CSI-RS in the fifth target time slot, where the fifth target
- the time slot is the first valid time slot among the M time slots after the time slot where the PDCCH triggering the aperiodic CSI-RS is located, or is the M time slot after the time slot corresponding to the second time slot offset parameter
- M is a positive integer within the second preset range.
- the indication information indicates that the first communication node is The fifth target time slot sends an aperiodic CSI-RS resource set; wherein, the fifth target time slot is the first valid time of the M time slots after the time slot where the PDCCH that triggers the aperiodic CSI-RS is located The slot, or the first valid slot among M slots after the slot corresponding to the first slot offset parameter, and M is a positive integer within the second preset range.
- the indication information is used to indicate that the first communication node is in the time slot corresponding to the second time slot offset parameter or in the Aperiodic CSI-RS is transmitted on some symbols in the last time slot of the M time slots.
- the effective time slot includes at least one of the following: an available or effective downlink time slot, a special time slot, or a flexible time slot; at least one of a CSI-RS resource or a CSI-RS resource set is used to transmit The uplink time slot or special time slot or flexible time slot of CSI-RS resources; the uplink time slot or special time slot or flexible time slot used to transmit all CSI-RS resources in the CSI-RS resource or CSI-RS resource set; At least one CSI-RS resource in the CSI-RS resource or at least one CSI-RS resource in the CSI-RS resource set, and uplink time slot or special time slot or flexible time slot that does not conflict with the transmission of other uplink signals; the time slot contains the available downlink The symbols are used for CSI-RS resources or all CSI-RS resource transmissions in the CSI-RS resource set and meet the minimum time requirement between the PDCCH triggering the aperiodic CSI-RS and the transmission of all CSI-RS resources in the resource set.
- the method further includes: when at least one resource in the triggered aperiodic SRS or aperiodic CSI-RS resource set conflicts with other signals to be transmitted, removing conflicting symbols in the resource set, or postponing Transmission of aperiodic SRS or aperiodic CSI-RS, or removal of the other signals to be transmitted that have conflicts, and priority transmission of aperiodic SRS or aperiodic CSI-RS.
- the indication information is also used to indicate: when the transmission of at least two aperiodic SRS or aperiodic CSI-RS is triggered by the same DCI or different DCIs, or when the transmission of at least two aperiodic SRS or aperiodic CSI-RS is triggered
- SRS resources or SRS resource sets or multiple CSI-RS resources or CSI-RS resource sets conflict with each other, only aperiodic SRS resources or SRS resource sets or aperiodic CSI-RS resources or resource sets triggered by the most recent DCI are transmitted , Or only transmit aperiodic SRS resource or SRS resource set or aperiodic CSI-RS resource or resource set with the smallest or largest resource set identifier.
- the indication information includes a third time slot offset parameter, and the third time slot offset parameter corresponds to a time slot for sending a downlink signal; the downlink signal includes PDSCH; and the indication information is used for Instruct the second communication node to receive the PDSCH.
- the first communication node is further configured to configure at least one information unit through RRC signaling, the at least one information unit is used to configure the time domain relationship between the PDCCH and the PDSCH, and the at least one information unit is respectively Corresponding to at least one time slot offset parameter; in the case where there are at least two information units, it is determined through DCI signaling that the time slot offset parameter corresponding to one information unit is the third time slot offset parameter.
- the indication information is used to instruct the second communication node to receive the PDSCH in the sixth target time slot, where the sixth target time slot is the location where the PDCCH is located.
- the time slot or the r+1th available or valid downlink time slot or special time slot after the time slot corresponding to the sixth time slot offset parameter, r is 0 or a positive integer.
- the r is determined by at least one of the following methods: configured by RRC signaling; equal to the third slot offset parameter; configured by RRC signaling and the r corresponds to a CSI-RS trigger state;
- the r corresponds to the control resource set;
- the r corresponds to the time slot in which the PDCCH for scheduling the PDSCH is located; and
- the r is a predetermined value.
- the indication information includes a fourth time slot offset parameter, and the fourth time slot offset parameter corresponds to a time slot for transmitting an uplink signal; the uplink signal includes PUSCH; and the indication information is used for Instruct the second communication node to send the PUSCH.
- the first communication node is further configured to configure at least one information unit through RRC signaling, the at least one information unit is used to configure the time domain relationship between the PDCCH and the PUSCH, and the at least one information unit respectively Corresponding to at least one time slot offset parameter; in the case where there are at least two information units, it is determined through DCI signaling that the time slot offset parameter corresponding to one information unit is the fourth time slot offset parameter.
- the indication information is used to instruct the second communication node to transmit PUSCH in the seventh target time slot, where the seventh target time slot is the time slot where the PDCCH is located. Or the y+1th available or valid downlink time slot or special time slot after the time slot corresponding to the fourth time slot offset associated parameter, y is 0 or a positive integer.
- y is determined by at least one of the following methods: configured through RRC signaling; equal to the fourth slot offset parameter; configured through RRC signaling and the y corresponds to a CSI-RS trigger state; y corresponds to the control resource set; the y corresponds to the time slot where the PDCCH for scheduling the PDSCH is located.
- the indication information includes a fifth time slot offset parameter, and the fifth time slot offset parameter corresponds to the time slot in which the uplink signal is sent; the uplink signal includes PUCCH associated with acknowledgement and non-acknowledgement information The indication information is used to instruct the second communication node to send the PUCCH of the associated confirmation and non-confirmation information.
- the first communication node is further configured to configure at least one preset parameter through RRC signaling, and the preset parameter is used to configure the time domain relationship between the PDSCH and the PUCCH.
- the indication information is used to instruct the second communication node to send the PUCCH in the eighth target time slot, where the eighth target time slot is the time slot in which the PDSCH is located or the fifth time slot
- the x+1th available or valid downlink time slot or special time slot after the time slot corresponding to the offset correlation parameter, x is 0 or a positive integer.
- x is determined by at least one of the following methods: configured by RRC signaling; equal to the fifth slot offset parameter; configured by RRC signaling and the x corresponds to a CSI-RS trigger state; x corresponds to the control resource set; the x corresponds to the time slot in which the PDCCH for scheduling the PDSCH is located.
- Fig. 4 is a schematic structural diagram of a transmission device provided by an embodiment. As shown in FIG. 4, the transmission device includes: a sending module 310 and a first transmission module 320.
- the sending module 310 is configured to send instruction information, where the instruction information is used to instruct the second communication node to send an uplink signal or instruct the second communication node to receive a downlink signal;
- the first transmission module 320 is configured to perform signal transmission with the second communication node according to the instruction information.
- the transmission device of this embodiment instructs the second communication node to send uplink signals or receive downlink signals by sending instruction information, which is suitable for various signal transmission situations and improves the flexibility of signal transmission between the first communication node and the second communication node. Performance to ensure the reliability of transmission.
- the indication information includes an antenna group associated parameter, and the antenna group associated parameter corresponds to an antenna group that transmits an uplink signal.
- it further includes at least one of the following: configuring the antenna group associated parameters in the measurement reference signal SRS resource or SRS resource set configured by high-layer signaling; and corresponding to the downlink control information DCI according to the mask selected by the antenna group
- the cyclic redundancy check code is used for scrambling, wherein the indication information is sent through the DCI.
- the indication information includes a first time slot offset parameter, and the first time slot offset parameter corresponds to a time slot in which an uplink signal is sent; and the uplink signal includes an aperiodic SRS.
- the method further includes: configuring the first slot offset parameter in the SRS resource or SRS resource set configured by high-layer signaling.
- the method further includes: in the case that multiple first slot offset parameters are configured in the SRS resource or the SRS resource set, determining the first slot offset parameter according to the SRS request field of the DCI, and the multiple The first time slot offset parameters are associated with multiple aperiodic SRS resource trigger parameters or code points.
- the indication information includes subband parameters, and the subband parameters correspond to subbands for transmitting uplink signals; the uplink signals include SRS; and the indication information is used to indicate that the second communication node is in the SRS is transmitted repeatedly or frequency hopping on the subband.
- the method further includes: receiving a broadband SRS sent by the second communication node; and determining the subband by measuring the broadband SRS.
- the broadband SRS is sent by a part of physical resource blocks in the activated bandwidth part BWP of the second communication node.
- the indication information is sent through DCI used for uplink scheduling or downlink scheduling; the uplink signal includes SRS.
- the indication information includes configuration parameters of the SRS, and the configuration parameters include at least one of the following: the antenna group associated parameters corresponding to the transmitted SRS, the time slot offset associated parameters, the spatial relationship of the beams, and the frequency domain position And the cyclic shift of the SRS sequence.
- the indication information is used to instruct the second communication node to send the aperiodic SRS resource set in the first target time slot; wherein, the first target The time slot is the k+1th available or valid time slot after the time slot corresponding to the first time slot offset parameter, and k is 0 or a positive integer.
- the indication information is used to instruct the second communication node to send the aperiodic SRS resource set in the first target time slot; wherein, the first target The time slot is the k+1th available or valid time slot counted from the reference time slot, or the k+1th available or valid time slot within the N time slots counted from the reference time slot Slot, k is 0 or a positive integer, N is a positive integer in the first preset range or equal to the product of E and (k+1), E is a positive integer in the second preset range, and the reference time slot is For the time slot corresponding to the value rounded down by the product of n and the first parameter, n corresponds to the time slot that triggers the aperiodic SRS, and the first parameter is the ratio of the ⁇ SRS power of 2 to the ⁇ PDCCH power of 2 , ⁇ SRS is the subcarrier interval configuration of the triggered SRS; ⁇ PDCCH
- the k is determined by at least one of the following methods: configured by radio resource control RRC signaling; equal to the first slot offset parameter; configured by RRC signaling and the k corresponds to one SRS Trigger status or antenna group associated parameters; said k corresponds to a control resource set; said k corresponds to a time slot where the PDCCH triggering the SRS is located; and said k is a predetermined value.
- the indication information is used to instruct the second communication node to send the aperiodic SRS in the second target time slot; wherein, the second target time slot is The SRS resource of the second communication node or the first effective time slot in the time slots configured in the SRS resource set, or the effective time slot corresponding to the SRS resource or SRS resource set of the second communication node and the PDCCH that triggers the aperiodic SRS
- the time slot of the time slot has the smallest time slot offset.
- the indication information is used to instruct the second communication node to send an aperiodic SRS in the third target time slot; wherein, the third target time slot is a trigger
- N is a positive integer within the first preset range.
- the indication information is used to indicate the second communication
- the node sends the aperiodic SRS in the third target time slot; wherein, the third target time slot is the first valid time slot of the N time slots after the time slot where the PDCCH triggering the aperiodic SRS is located, or is The first valid time slot among the N time slots after the time slot corresponding to the first time slot offset parameter, where N is a positive integer within the first preset range.
- the indication information is used to indicate that the second communication node is in the time slot corresponding to the first time slot offset parameter or in the Aperiodic SRS is transmitted on some symbols in the last time slot of the N time slots.
- the effective time slot includes at least one of the following: an available or effective uplink time slot or a special time slot or a flexible time slot; the uplink used to transmit SRS resources or at least one SRS resource in the SRS resource set Time slot or special time slot or flexible time slot; uplink time slot or special time slot or flexible time slot used to send SRS resources or all SRS resources in SRS resource set; used to send SRS resource or at least one SRS in SRS resource set Uplink time slots or special time slots or flexible time slots that do not conflict with sending other uplink signals; there are available uplink symbols in the time slot for the transmission of SRS resources or all SRS resources in the SRS resource set and satisfy the triggering aperiodic The time slot required for the minimum time between the PDCCH of the SRS and the transmission of all SRS in the resource set.
- the indication information includes a second time slot offset parameter, and the second time slot offset parameter corresponds to a time slot for receiving a downlink signal;
- the downlink signal includes a channel state information reference signal CSI-RS ;
- the indication information is used to instruct the second communication node to receive aperiodic CSI-RS.
- it further includes: configuring the second slot offset parameter in a CSI-RS resource or a CSI-RS resource set configured by high-level signaling.
- the indication information is used to indicate that the first communication node sends the aperiodic CSI-RS resource set in the fourth target time slot, wherein the first communication node sends the aperiodic CSI-RS resource set in the fourth target time slot.
- the fourth target time slot is the h+1th available or valid time slot counted from the time slot where the aperiodic CSI-RS resource set is triggered, or the time slot counted from the time slot where the aperiodic CSI-RS resource set is triggered.
- the h+1th available or valid time slot in M time slots, h is 0 or a positive integer
- N is a positive integer in the first preset range or equal to the product of F and (k+1), F It is a positive integer in the second preset range.
- the h is determined by at least one of the following methods: configured by RRC signaling; equal to the second slot offset parameter; configured by RRC signaling and the h corresponds to a CSI-RS trigger state;
- the h corresponds to the control resource set;
- the h corresponds to the time slot of the PDCCH that triggers the CSI-RS; and
- the h is a predetermined value.
- the indication information is used to indicate that the first communication node sends the aperiodic CSI-RS in the fifth target time slot, where the fifth target The time slot is the first effective time slot in the time slots configured in the CSI-RS resource set of the second communication node; or the time slot offset is the smallest among the effective time slots configured in the CSI-RS resource set of the second communication node Time slot.
- the indication information is used to indicate that the first communication node sends the aperiodic CSI-RS in the fifth target time slot, where the fifth target
- the time slot is the first valid time slot among the M time slots after the time slot where the PDCCH triggering the aperiodic CSI-RS is located, or is the M time slot after the time slot corresponding to the second time slot offset parameter
- M is a positive integer within the second preset range.
- the indication information indicates that the first communication node is The fifth target time slot sends an aperiodic CSI-RS resource set; wherein, the fifth target time slot is the first valid time of the M time slots after the time slot where the PDCCH that triggers the aperiodic CSI-RS is located The slot, or the first valid slot among M slots after the slot corresponding to the first slot offset parameter, and M is a positive integer within the second preset range.
- the indication information is used to indicate that the first communication node is in the time slot corresponding to the second time slot offset parameter or in the Aperiodic CSI-RS is transmitted on some symbols in the last time slot of the M time slots.
- the effective time slot includes at least one of the following: an available or effective downlink time slot, a special time slot, or a flexible time slot; at least one of a CSI-RS resource or a CSI-RS resource set is used to transmit The uplink time slot or special time slot or flexible time slot of CSI-RS resources; the uplink time slot or special time slot or flexible time slot used to transmit all CSI-RS resources in the CSI-RS resource or CSI-RS resource set; At least one CSI-RS resource in the CSI-RS resource or at least one CSI-RS resource in the CSI-RS resource set, and uplink time slot or special time slot or flexible time slot that does not conflict with the transmission of other uplink signals; the time slot contains the available downlink The symbols are used for CSI-RS resources or all resources in the CSI-RS resource set to send CSI-RS resources and to meet the minimum time requirement between the PDCCH triggering the aperiodic CSI-RS and the sending of all CSI-RS resources in the resource set.
- the method further includes: when at least one resource in the triggered aperiodic SRS or aperiodic CSI-RS resource set conflicts with other signals to be transmitted, removing conflicting symbols in the resource set, or postponing Transmission of aperiodic SRS or aperiodic CSI-RS, or removal of the other signals to be transmitted that have conflicts, and priority transmission of aperiodic SRS or aperiodic CSI-RS.
- the indication information is also used to indicate: when the transmission of at least two aperiodic SRS or aperiodic CSI-RS is triggered by the same DCI or different DCIs, or when the transmission of at least two aperiodic SRS or aperiodic CSI-RS is triggered
- SRS resources or SRS resource sets or multiple CSI-RS resources or CSI-RS resource sets conflict with each other, only aperiodic SRS resources or SRS resource sets or aperiodic CSI-RS resources or resource sets triggered by the most recent DCI are transmitted , Or only transmit aperiodic SRS resource or SRS resource set or aperiodic CSI-RS resource or resource set with the smallest or largest resource set identifier.
- the indication information includes a third time slot offset parameter, and the third time slot offset parameter corresponds to a time slot for sending a downlink signal; the downlink signal includes PDSCH; and the indication information is used for Instruct the second communication node to receive the PDSCH.
- the method further includes: configuring at least one information element through RRC signaling, the at least one information element is used to configure the time domain relationship between the PDCCH and the PDSCH, and the at least one information element corresponds to at least one time domain, respectively.
- Slot offset parameter when there are at least two information units, it is determined through DCI signaling that the slot offset parameter corresponding to one information unit is the third slot offset parameter.
- the indication information is used to instruct the second communication node to receive the PDSCH in the sixth target time slot, where the sixth target time slot is the location where the PDCCH is located.
- the time slot or the r+1th available or valid downlink time slot or special time slot after the time slot corresponding to the sixth time slot offset parameter, r is 0 or a positive integer.
- the r is determined by at least one of the following methods: configured by RRC signaling; equal to the third slot offset parameter; configured by RRC signaling and the r corresponds to a CSI-RS trigger state;
- the r corresponds to the control resource set;
- the r corresponds to the time slot in which the PDCCH for scheduling the PDSCH is located; and
- the r is a predetermined value.
- the indication information includes a fourth time slot offset parameter, and the fourth time slot offset parameter corresponds to a time slot for transmitting an uplink signal; the uplink signal includes PUSCH; and the indication information is used for Instruct the second communication node to send the PUSCH.
- the method further includes: configuring at least one information element through RRC signaling, the at least one information element is used to configure the time domain relationship between the PDCCH and the PUSCH, and the at least one information element corresponds to at least one time domain, respectively.
- Slot offset parameter in the case where there are at least two information units, it is determined through DCI signaling that the slot offset parameter corresponding to one information unit is the fourth slot offset parameter.
- the indication information is used to instruct the second communication node to transmit PUSCH in the seventh target time slot, where the seventh target time slot is the time slot where the PDCCH is located. Or the y+1th available or valid downlink time slot or special time slot after the time slot corresponding to the fourth time slot offset associated parameter, y is 0 or a positive integer.
- the y is determined by at least one of the following methods: configured by RRC signaling; equal to the fourth slot offset parameter; configured by RRC signaling and the y corresponds to a CSI-RS trigger state;
- the y corresponds to the control resource set;
- the y corresponds to the time slot in which the PDCCH of the PDSCH is scheduled; and the y is a predetermined value.
- the indication information includes a fifth time slot offset parameter, and the fifth time slot offset parameter corresponds to the time slot in which the uplink signal is sent; the uplink signal includes PUCCH associated with acknowledgement and non-acknowledgement information The indication information is used to instruct the second communication node to send the PUCCH of the associated confirmation and non-confirmation information.
- the method further includes: configuring at least one preset parameter through RRC signaling, where the preset parameter is used to configure the time domain relationship between the PDSCH and the PUCCH.
- the indication information is used to instruct the second communication node to send the PUCCH in the eighth target time slot, where the eighth target time slot is the time slot in which the PDSCH is located or the fifth time slot
- the x+1th available or valid downlink time slot or special time slot after the time slot corresponding to the offset correlation parameter, x is 0 or a positive integer.
- the x is determined by at least one of the following methods: configured by RRC signaling; equal to the fifth slot offset parameter; configured by RRC signaling and the x corresponds to a CSI-RS trigger state;
- the x corresponds to the control resource set;
- the x corresponds to the time slot in which the PDCCH for scheduling the PDSCH is located; and
- the x is a predetermined value.
- FIG. 5 is a schematic structural diagram of another transmission device provided by an embodiment. As shown in FIG. 5, the transmission device includes: a receiving module 410 and a second transmission module 420.
- the receiving module 410 is configured to receive indication information, where the indication information is used to instruct the second communication node to send an uplink signal or to instruct the second communication node to receive a downlink signal; the second transmission module 420 is configured to communicate with the indication information according to the indication information.
- the first communication node performs signal transmission.
- the transmission device of this embodiment by receiving instruction information and sending an uplink signal to the first communication node or receiving a downlink signal sent by the first communication node according to the second instruction information, is suitable for various signal transmission situations and improves the first communication.
- the flexibility of signal transmission between the node and the second communication node ensures the reliability of the transmission.
- the indication information includes an antenna group associated parameter, and the antenna group associated parameter corresponds to an antenna group that transmits an uplink signal.
- the antenna group related parameters are configured by the measurement reference signal SRS resource or SRS resource centralized configuration configured by the first communication node in the higher layer signaling.
- the first communication node scrambles the cyclic redundancy check code corresponding to the downlink control information DCI according to the mask selected by the antenna group, wherein the indication information is sent through the DCI.
- the indication information includes a first time slot offset parameter, and the first time slot offset parameter corresponds to a time slot in which an uplink signal is sent; and the uplink signal includes an aperiodic SRS.
- the first time slot offset parameter is configured by the SRS resource or SRS resource collectively configured by the first communication node in high-level signaling.
- the first slot offset parameter is determined by the first communication node according to the SRS request field of the DCI, so The multiple first slot offset parameters are associated with multiple aperiodic SRS resource trigger parameters or code points.
- the indication information includes subband parameters, and the subband parameters correspond to subbands for transmitting uplink signals; the uplink signals include SRS; and the indication information is used to indicate that the second communication node is in the SRS is transmitted repeatedly or frequency hopping on the subband.
- the method further includes: sending a broadband SRS to the first communication node.
- the first communication node determines the subband by measuring the SRS of the broadband.
- the broadband SRS is sent by a part of physical resource blocks in the activated bandwidth part BWP of the second communication node.
- the indication information is sent through DCI used for uplink scheduling or downlink scheduling; the uplink signal includes SRS.
- the indication information includes configuration parameters of the SRS, and the configuration parameters include at least one of the following: the antenna group associated parameters corresponding to the transmitted SRS, the time slot offset associated parameters, the spatial relationship of the beams, and the frequency domain position And the cyclic shift of the SRS sequence.
- the indication information is used to instruct the second communication node to send the aperiodic SRS resource set in the first target time slot; wherein, the first target The time slot is the k+1th available or valid time slot after the time slot corresponding to the first time slot offset parameter, and k is 0 or a positive integer.
- the indication information is used to instruct the second communication node to send the aperiodic SRS resource set in the first target time slot; wherein, the first target The time slot is the k+1th available or valid time slot counted from the reference time slot, or the k+1th available or valid time slot within the N time slots counted from the reference time slot Slot, k is 0 or a positive integer, N is a positive integer in the first preset range or equal to the product of E and (k+1), E is a positive integer in the second preset range, and the reference time slot is For the time slot corresponding to the value rounded down by the product of n and the first parameter, n corresponds to the time slot that triggers the aperiodic SRS, and the first parameter is the ratio of the ⁇ SRS power of 2 to the ⁇ PDCCH power of 2 , ⁇ SRS is the subcarrier interval configuration of the triggered SRS; ⁇ PDCCH
- the k is determined by at least one of the following methods: configured by radio resource control signaling RRC signaling; equal to the first slot offset parameter; configured by RRC signaling and the k corresponds to An SRS trigger state or antenna group associated parameter; the k corresponds to the control resource set; the k corresponds to the time slot of the PDCCH that triggers the SRS; the k is a predetermined value.
- the indication information is used to instruct the second communication node to send the aperiodic SRS in the second target time slot; wherein, the second target time slot is The SRS resource of the second communication node or the first effective time slot in the time slots configured in the SRS resource set, or the effective time slot corresponding to the SRS resource or SRS resource set of the second communication node and the PDCCH that triggers the aperiodic SRS
- the time slot of the time slot has the smallest time slot offset.
- the indication information is used to instruct the second communication node to send an aperiodic SRS in the third target time slot; wherein, the third target time slot is a trigger
- N is a positive integer within the first preset range.
- the indication information is used to indicate the second communication
- the node sends the aperiodic SRS in the third target time slot; wherein, the third target time slot is the first valid time slot of the N time slots after the time slot where the PDCCH triggering the aperiodic SRS is located, or is The first valid time slot among the N time slots after the time slot corresponding to the first time slot offset parameter, where N is a positive integer within the first preset range.
- the indication information is used to indicate that the second communication node is in the time slot corresponding to the first time slot offset parameter or in the Aperiodic SRS is transmitted on some symbols in the last time slot of the N time slots.
- the effective time slot includes at least one of the following: an available or effective uplink time slot or a special time slot or a flexible time slot; the uplink used to transmit SRS resources or at least one SRS resource in the SRS resource set Time slot or special time slot or flexible time slot; uplink time slot or special time slot or flexible time slot used to send SRS resources or all SRS resources in SRS resource set; used to send SRS resource or at least one SRS in SRS resource set
- the uplink time slots or special time slots or flexible time slots that do not conflict with sending other uplink signals; there are available uplink symbols in the time slot for SRS resources or all resources in the SRS resource set to send SRS resources and meet the triggering requirements.
- the indication information includes a second time slot offset parameter, and the second time slot offset parameter corresponds to a time slot for receiving a downlink signal;
- the downlink signal includes a channel state information reference signal CSI-RS ;
- the indication information is used to instruct the second communication node to receive aperiodic CSI-RS.
- the second slot offset parameter is configured by the CSI-RS resource or CSI-RS resource set configured by the first communication node in high-level signaling.
- the indication information is used to indicate that the first communication node sends the aperiodic CSI-RS resource set in the fourth target time slot, wherein the first communication node sends the aperiodic CSI-RS resource set in the fourth target time slot.
- the fourth target time slot is the h+1th available or valid time slot counted from the time slot where the aperiodic CSI-RS resource set is triggered, or the time slot counted from the time slot where the aperiodic CSI-RS resource set is triggered.
- the h+1th available or valid time slot in M time slots, h is 0 or a positive integer
- N is a positive integer in the first preset range or equal to the product of F and (k+1), F It is a positive integer in the second preset range.
- h is determined by at least one of the following methods: configured through RRC signaling; equal to the second slot offset parameter; configured through RRC signaling and the h corresponds to a CSI-RS trigger state; h corresponds to the control resource set; the h corresponds to the time slot of the PDCCH that triggers the CSI-RS; and the h is a predetermined value.
- the indication information is used to indicate that the first communication node sends the aperiodic CSI-RS in the fifth target time slot, where the fifth target The time slot is the first effective time slot in the time slots configured in the CSI-RS resource set of the second communication node; or the time slot offset is the smallest among the effective time slots configured in the CSI-RS resource set of the second communication node Time slot.
- the indication information is used to indicate that the first communication node sends the aperiodic CSI-RS in the fifth target time slot, where the fifth target
- the time slot is the first valid time slot among the M time slots after the time slot where the PDCCH triggering the aperiodic CSI-RS is located, or is the M time slot after the time slot corresponding to the second time slot offset parameter
- M is a positive integer within the second preset range.
- the indication information indicates that the first communication node is The fifth target time slot sends an aperiodic CSI-RS resource set; wherein, the fifth target time slot is the first valid time of the M time slots after the time slot where the PDCCH that triggers the aperiodic CSI-RS is located The slot, or the first valid slot among M slots after the slot corresponding to the first slot offset parameter, and M is a positive integer within the second preset range.
- the indication information is used to indicate that the first communication node is in the time slot corresponding to the second time slot offset parameter or in the Aperiodic CSI-RS is transmitted on some symbols in the last time slot of the M time slots.
- the effective time slot includes at least one of the following: an available or effective downlink time slot, a special time slot, or a flexible time slot; at least one of a CSI-RS resource or a CSI-RS resource set is used to transmit The uplink time slot or special time slot or flexible time slot of CSI-RS resources; the uplink time slot or special time slot or flexible time slot used to transmit all CSI-RS resources in the CSI-RS resource or CSI-RS resource set; At least one CSI-RS resource in the CSI-RS resource or at least one CSI-RS resource in the CSI-RS resource set, and uplink time slot or special time slot or flexible time slot that does not conflict with the transmission of other uplink signals; the time slot contains the available downlink The symbols are used for CSI-RS resources or all resources in the CSI-RS resource set to send CSI-RS resources and to meet the minimum time requirement between the PDCCH triggering the aperiodic CSI-RS and the sending of all CSI-RS resources in the resource set.
- the method further includes: when at least one resource in the triggered aperiodic SRS or aperiodic CSI-RS resource set conflicts with other signals to be transmitted, removing conflicting symbols in the resource set, or postponing Transmission of aperiodic SRS or aperiodic CSI-RS, or removal of the other signals to be transmitted that have conflicts, and priority transmission of aperiodic SRS or aperiodic CSI-RS.
- the indication information is also used to indicate: in the case where the transmission of at least two aperiodic SRS or aperiodic CSI-RS is triggered by the same DCI or different DCIs, or when the transmission of at least two aperiodic SRS or aperiodic CSI-RS is triggered
- SRS resources or SRS resource sets or multiple CSI-RS resources or CSI-RS resource sets conflict with each other, only aperiodic SRS resources or SRS resource sets or aperiodic CSI-RS resources or resource sets triggered by the most recent DCI are transmitted , Or only transmit aperiodic SRS resource or SRS resource set or aperiodic CSI-RS resource or resource set with the smallest or largest resource set identifier.
- the indication information includes a third time slot offset parameter, and the third time slot offset parameter corresponds to a time slot for sending a downlink signal; the downlink signal includes PDSCH; and the indication information is used for Instruct the second communication node to receive the PDSCH.
- the first communication node is further configured to configure at least one information unit through RRC signaling, the at least one information unit is used to configure the time domain relationship between the PDCCH and the PDSCH, and the at least one information unit is respectively Corresponding to at least one time slot offset parameter; in the case where there are at least two information units, it is determined through DCI signaling that the time slot offset parameter corresponding to one information unit is the third time slot offset parameter.
- the indication information is used to instruct the second communication node to receive the PDSCH in the sixth target time slot, where the sixth target time slot is the location where the PDCCH is located.
- the time slot or the r+1th available or valid downlink time slot or special time slot after the time slot corresponding to the sixth time slot offset parameter, r is 0 or a positive integer.
- the r is determined by at least one of the following methods: configured by RRC signaling; equal to the third slot offset parameter; configured by RRC signaling and the r corresponds to a CSI-RS trigger state;
- the r corresponds to the control resource set;
- the r corresponds to the time slot in which the PDCCH for scheduling the PDSCH is located; and
- the r is a predetermined value.
- the indication information includes a fourth time slot offset parameter, and the fourth time slot offset parameter corresponds to a time slot for transmitting an uplink signal; the uplink signal includes PUSCH; and the indication information is used for Instruct the second communication node to send the PUSCH.
- the first communication node is further configured to configure at least one information unit through RRC signaling, the at least one information unit is used to configure the time domain relationship between the PDCCH and the PUSCH, and the at least one information unit respectively Corresponding to at least one time slot offset parameter; in the case where there are at least two information units, it is determined through DCI signaling that the time slot offset parameter corresponding to one information unit is the fourth time slot offset parameter.
- the indication information is used to instruct the second communication node to transmit PUSCH in the seventh target time slot, where the seventh target time slot is the time slot where the PDCCH is located. Or the y+1th available or valid downlink time slot or special time slot after the time slot corresponding to the fourth time slot offset associated parameter, y is 0 or a positive integer.
- y is determined by at least one of the following methods: configured through RRC signaling; equal to the fourth slot offset parameter; configured through RRC signaling and the y corresponds to a CSI-RS trigger state; y corresponds to the control resource set; the y corresponds to the time slot in which the PDCCH of the PDSCH is scheduled; and the y is a predetermined value.
- the indication information includes a fifth time slot offset parameter, and the fifth time slot offset parameter corresponds to the time slot in which the uplink signal is sent; the uplink signal includes PUCCH associated with acknowledgement and non-acknowledgement information The indication information is used to instruct the second communication node to send the PUCCH of the associated confirmation and non-confirmation information.
- the first communication node is further configured to configure at least one preset parameter through RRC signaling, and the preset parameter is used to configure the time domain relationship between the PDSCH and the PUCCH.
- the indication information is used to instruct the second communication node to send the PUCCH in the eighth target time slot, where the eighth target time slot is the time slot in which the PDSCH is located or the fifth time slot
- the x+1th available or valid downlink time slot or special time slot after the time slot corresponding to the offset correlation parameter, x is 0 or a positive integer.
- x is determined by at least one of the following methods: configured by RRC signaling; equal to the fifth slot offset parameter; configured by RRC signaling and the x corresponds to a CSI-RS trigger state; x corresponds to the control resource set; the x corresponds to the time slot in which the PDCCH for scheduling the PDSCH is located; and the x is a predetermined value.
- the embodiment of the present application also provides a first communication node.
- the transmission method may be executed by a transmission device, which may be implemented by software and/or hardware, and integrated in the first communication node.
- Fig. 6 is a schematic structural diagram of a first communication node provided by an embodiment.
- a first communication node provided by this embodiment includes: a processor 510 and a storage device 520.
- one processor 510 is taken as an example.
- the processor 510 and the storage device 520 in the device may be connected by a bus or other methods.
- FIG. Take the bus connection as an example.
- the one or more programs are executed by the one or more processors 510, so that the one or more processors implement the transmission method described in any of the foregoing embodiments.
- the storage device 520 in the first communication node is used as a computer-readable storage medium and can be used to store one or more programs.
- the programs can be software programs, computer-executable programs, and modules, as in the embodiment of the present invention.
- the program instructions/modules corresponding to the method include: a sending module 310 and a first transmission module 320).
- the processor 510 executes various functional applications and data processing of the first communication node by running the software programs, instructions, and modules stored in the storage device 520, that is, implements the transmission method in the foregoing method embodiment.
- the storage device 520 mainly includes a storage program area and a storage data area.
- the storage program area can store an operating system and an application program required by at least one function; the storage data area can store data created according to the use of the device, etc. (as in the above implementation) The instructions in the example, uplink signals, etc.).
- the storage device 520 may include a high-speed random access memory, and may also include a non-volatile memory, such as at least one magnetic disk storage device, a flash memory device, or other non-volatile solid-state storage devices.
- the storage device 520 may further include memories remotely provided with respect to the processor 510, and these remote memories may be connected to the first communication node through a network. Examples of the aforementioned networks include, but are not limited to, the Internet, corporate intranets, local area networks, mobile communication networks, and combinations thereof.
- the following operations are implemented: sending instruction information, where the instruction information is used to instruct the second communication node to send uplink Signal or instruct the second communication node to receive a downlink signal; and perform signal transmission with the second communication node according to the instruction information.
- the first communication node proposed in this embodiment belongs to the same concept as the transmission method proposed in the foregoing embodiment.
- the embodiment of the present application also provides a second communication node.
- the transmission method may be executed by a transmission device, which may be implemented by software and/or hardware, and integrated in the second communication node.
- FIG. 7 is a schematic structural diagram of a second communication node provided by an embodiment.
- a second communication node provided by this embodiment includes a processor 610 and a storage device 620.
- one processor 610 is taken as an example.
- the processor 610 and the storage device 620 in the device may be connected by a bus or other means. In FIG. Take the bus connection as an example.
- the one or more programs are executed by the one or more processors 610, so that the one or more processors implement the transmission method described in any of the foregoing embodiments.
- the storage device 620 in the second communication node is used as a computer-readable storage medium and can be used to store one or more programs.
- the programs can be software programs, computer-executable programs, and modules, as in the embodiment of the present invention.
- the program instructions/modules corresponding to the method include: a receiving module 410 and a second transmission module 420).
- the processor 610 executes various functional applications and data processing of the second communication node by running the software programs, instructions, and modules stored in the storage device 620, that is, implements the transmission method in the foregoing method embodiment.
- the storage device 620 mainly includes a storage program area and a storage data area.
- the storage program area can store an operating system and an application program required by at least one function; the storage data area can store data created according to the use of the device, etc. (as in the above implementation) The instructions in the example, uplink signals, etc.).
- the storage device 620 may include a high-speed random access memory, and may also include a non-volatile memory, such as at least one magnetic disk storage device, a flash memory device, or other non-volatile solid-state storage devices.
- the storage device 620 may further include memories remotely provided with respect to the processor 610, and these remote memories may be connected to the second communication node through a network. Examples of the aforementioned networks include, but are not limited to, the Internet, corporate intranets, local area networks, mobile communication networks, and combinations thereof.
- the following operations are implemented: sending instruction information, where the instruction information is used to instruct the second communication node to send uplink Signal or instruct the second communication node to receive a downlink signal; and perform signal transmission with the second communication node according to the instruction information.
- the second communication node proposed in this embodiment belongs to the same concept as the transmission method proposed in the foregoing embodiment.
- the embodiment of the present application also provides a storage medium containing computer-executable instructions, and the computer-executable instructions are used to execute a transmission method when executed by a computer processor.
- this application can be implemented by software and general hardware, or can be implemented by hardware.
- the technical solution of the present application can be embodied in the form of a software product, and the computer software product can be stored in a computer-readable storage medium, such as a computer floppy disk, read-only memory (ROM), Random Access Memory (RAM), flash memory (FLASH), hard disk or optical disk, etc., including multiple instructions to make a computer device (which can be a personal computer, server, or network device, etc.) execute any of this application The method described in the embodiment.
- the block diagram of any logic flow in the drawings of the present application may represent program steps, or may represent interconnected logic circuits, modules, and functions, or may represent a combination of program steps and logic circuits, modules, and functions.
- the computer program can be stored on the memory.
- the memory can be of any type suitable for the local technical environment and can be implemented using any suitable data storage technology, such as but not limited to read only memory (ROM), random access memory (RAM), optical storage devices and systems (digital multi-function optical discs) (Digital Versatile Disc, DVD) or compact disc (Compact Disc, CD)), etc.
- Computer-readable media may include non-transitory storage media.
- the data processor can be any type suitable for the local technical environment, such as but not limited to general-purpose computers, special-purpose computers, microprocessors, digital signal processors (Digital Signal Processing, DSP), application specific integrated circuits (ASICs) ), programmable logic devices (Field Programmable Gate Array, FPGA), and processors based on multi-core processor architecture.
- DSP Digital Signal Processing
- ASICs application specific integrated circuits
- FPGA Field Programmable Gate Array
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Abstract
Description
Claims (35)
- 一种传输方法,包括:发送指示信息,所述指示信息用于指示第二通信节点发送上行信号或者指示第二通信节点接收下行信号;根据所述指示信息与所述第二通信节点进行信号传输。
- 根据权利要求1所述的方法,其中,所述指示信息包括第一时隙偏移参数,所述第一时隙偏移参数对应于发送所述上行信号的时隙;所述上行信号包括非周期的测量参考信号SRS。
- 根据权利要求2所述的方法,还包括:在高层信令配置的SRS资源或SRS资源集中配置所述第一时隙偏移参数。
- 根据权利要求3所述的方法,还包括:在所述SRS资源或SRS资源集中配置多个第一时隙偏移参数的情况下,根据下行控制信息DCI的SRS请求域确定所述多个第一时隙偏移参数,所述多个第一时隙偏移参数关联多个非周期SRS资源触发器参数或码点。
- 根据权利要求1所述的方法,其中,所述指示信息包括子带参数,所述子带参数对应于发送所述上行信号的子带;所述上行信号包括SRS;所述指示信息用于指示第二通信节点在所述子带上重复发送或者频率跳转发送SRS。
- 根据权利要求2所述的方法,其中,在使用DCI触发非周期SRS的情况下,所述指示信息用于指示第二通信节点在第一目标时隙发送非周期SRS资源集;其中,所述第一目标时隙为所述第一时隙偏移参数对应的时隙之后的第k+1个可用的时隙或有效时隙,k为0或正整数。
- 根据权利要求2所述的方法,其中,在使用DCI触发非周期SRS的情况下,所述指示信息用于指示第二通信节点在第一目标时隙发送非周期SRS资源集;其中,所述第一目标时隙为从参考时隙开始计数的第k+1个可用的时隙或有效时隙,或者为从参考时隙开始计数的在N个时隙内的第k+1个可用的时隙或有效时隙,k为0或正整数,N为第一预设范围内的正整数或者等于E与(k+1)的乘积,E为第二预设范围内的正整数,所述参考时隙为对n与第一参数的乘积向下取整的值所对应的时隙,n对应于触发非周期SRS的时隙,第一参数为2 的μ SRS次幂与2的μ PDCCH次幂的比值,μ SRS为触发的SRS的子载波间隔配置;μ PDCCH为携带触发命令的物理下行控制信道PDCCH的子载波间隔配置;所述第一目标时隙的SRS资源的首个符号与触发非周期SRS的PDCCH的最后一个符号之间的间隔大于或等于预设值。
- 根据权利要求6或7所述的方法,其中,所述k通过以下方式至少之一确定:通过无线资源控制RRC信令配置;等于所述第一时隙偏移参数;通过RRC信令配置且所述k对应于一个SRS触发状态或天线组关联参数;所述k对应于控制资源集;所述k对应于触发SRS的PDCCH所在的时隙;所述k为预定值。
- 根据权利要求6或7所述的方法,其中,所述有效时隙包括以下至少之一:可用的或有效的上行时隙或特殊时隙或灵活时隙;用于发送SRS资源或SRS资源集中的至少一个SRS资源的上行时隙或特殊时隙或灵活时隙;用于发送SRS资源或SRS资源集中的全部SRS资源的上行时隙或特殊时隙或灵活时隙;用于发送SRS资源或SRS资源集中的至少一个SRS资源且不与发送其他上行信号互相冲突的上行时隙或特殊时隙或灵活时隙;时隙中有可获得的上行符号用于SRS资源或SRS资源集中的全部SRS资源发送且满足触发非周期SRS的PDCCH与SRS资源集中所有SRS发送之间的最小时间要求的时隙。
- 根据权利要求1所述的方法,其中,所述指示信息包括第二时隙偏移参数,所述第二时隙偏移参数对应于接收下行信号的时隙;所述下行信号包括信道状态信息参考信号CSI-RS;所述指示信息用于指示第二通信节点接收非周期的CSI-RS。
- 根据权利要求10所述的方法,还包括:在高层信令配置的CSI-RS资源或CSI-RS资源集中配置所述第二时隙偏移参数。
- 根据权利要求10所述的方法,其中,对于DCI触发的非周期CSI-RS资源集,所述指示信息用于表示第一通信节点在第四目标时隙发送所述非周期的CSI-RS资源集,其中,所述第四目标时隙为从触发非周期CSI-RS资源集所在时隙开始计数的第h+1个可用的时隙或有效时隙,或者为从触发非周期CSI-RS资源集所在时隙开始计数的M个时隙内的第h+1个可用的时隙或有效时隙,h为0或正整数,M为第一预设范围内的正整数或者等于F与(h+1)的乘积,F为第二预设范围内的正整数。
- 根据权利要求12所述的方法,其中,所述h通过以下方式至少之一确定:通过RRC信令配置;等于第二时隙偏移参数;通过RRC信令配置且所述h对应于一个CSI-RS触发状态;所述h对应于控制资源集;所述h对应于触发CSI-RS的PDCCH所在的时隙;所述h为预定值。
- 根据权利要求12所述的方法,其中,所述有效时隙包括以下至少之一:可用的或有效的下行时隙或特殊时隙或灵活时隙;用于发送CSI-RS资源或CSI-RS资源集中的至少一个CSI-RS资源的上行时隙或特殊时隙或灵活时隙;用于发送CSI-RS资源或CSI-RS资源集中的全部CSI-RS资源的上行时隙或特殊时隙或灵活时隙;用于发送CSI-RS资源或CSI-RS资源集中的至少一个CSI-RS资源且不与发送其他上行信号互相冲突的上行时隙或特殊时隙或灵活时隙;时隙中包含有可获得的下行符号用于CSI-RS资源或CSI-RS资源集中的全部CSI-RS资源发送且满足触发非周期CSI-RS的PDCCH与CSI-RS资源集中所有CSI-RS资源发送之间的最小时间要求的时隙。
- 根据权利要求1所述的方法,其中,所述指示信息还用于指示:在通过相同的DCI或不同的DCI触发了至少两个非周期SRS或非周期CSI-RS的发送的情况下,或者在触发的多个SRS资源或SRS资源集或多个CSI-RS资源或CSI-RS资源集互相冲突的情况下,只传输最近的DCI触发的非周期SRS资源或SRS资源集或非周期CSI-RS资源或资源集,或者只传输资源 集标识最小的或最大的非周期SRS资源或SRS资源集或非周期CSI-RS资源或资源集。
- 一种传输方法,包括:接收指示信息,所述指示信息用于指示第二通信节点发送上行信号或者指示第二通信节点接收下行信号;根据所述指示信息与第一通信节点进行信号传输。
- 根据权利要求16所述的方法,其中,所述指示信息包括第一时隙偏移参数,所述第一时隙偏移参数对应于发送上行信号的时隙;所述上行信号包括非周期的测量参考信号SRS。
- 根据权利要求17所述的方法,其中,所述第一时隙偏移参数由第一通信节点在高层信令配置的SRS资源或SRS资源集中配置。
- 根据权利要求18所述的方法,其中,在所述SRS资源或SRS资源集中配置多个第一时隙偏移参数的情况下,所述多个第一时隙偏移参数由第一通信节点根据下行控制信息DCI的SRS请求域确定,所述多个第一时隙偏移参数关联多个非周期SRS资源触发器参数或码点。
- 根据权利要求16所述的方法,其中,所述指示信息包括子带参数,所述子带参数对应于发送所述上行信号的子带;所述上行信号包括SRS;所述指示信息用于指示第二通信节点在所述子带上重复发送或者频率跳转发送SRS。
- 根据权利要求17所述的方法,其中,在使用DCI触发非周期SRS的情况下,所述指示信息用于指示第二通信节点在第一目标时隙发送非周期SRS资源集;其中,所述第一目标时隙为所述第一时隙偏移参数对应的时隙之后的第k+1个可用的时隙或有效时隙,k为0或正整数。
- 根据权利要求17所述的方法,其中,在使用DCI触发非周期SRS的情况下,所述指示信息用于指示第二通信节点在第一目标时隙发送非周期SRS资源集;其中,所述第一目标时隙为从参考时隙开始计数的第k+1个可用的时隙或有效时隙,或者为从参考时隙开始计数的在N个时隙内的第k+1个可用的时隙或有效时隙,k为0或正整数,N为第一预设范围内的正整数或者等于E与(k+1)的乘积,E为第二预设范围内的正整数,所述参考时隙为对n与第一参数的乘积 向下取整的值所对应的时隙,n对应于触发非周期SRS的时隙,第一参数为2的μ SRS次幂与2的μ PDCCH次幂的比值,μ SRS为触发的SRS的子载波间隔配置;μ PDCCH为携带触发命令的物理下行控制信道PDCCH的子载波间隔配置;所述第一目标时隙的SRS资源的首个符号与触发非周期SRS的PDCCH的最后一个符号之间的间隔大于或等于预设值。
- 根据权利要求21或22所述的方法,其中,所述k通过以下方式至少之一确定:通过无线资源控制RRC信令配置;等于所述第一时隙偏移参数;通过RRC信令配置且所述k对应于一个SRS触发状态或天线组关联参数;所述k对应于控制资源集;所述k对应于触发SRS的PDCCH所在的时隙;所述k为预定值。
- 根据权利要求21或22所述的方法,其中,所述有效时隙包括以下至少之一:可用的或有效的上行时隙或特殊时隙或灵活时隙;用于发送SRS资源或SRS资源集中的至少一个SRS资源的上行时隙或特殊时隙或灵活时隙;用于发送SRS资源或SRS资源集中的全部SRS资源的上行时隙或特殊时隙或灵活时隙;用于发送SRS资源或SRS资源集中的至少一个SRS资源且不与发送其他上行信号互相冲突的上行时隙或特殊时隙或灵活时隙;时隙中有可获得的上行符号用于SRS资源或SRS资源集中的全部SRS资源发送且满足触发非周期SRS的PDCCH与SRS资源集中所有SRS发送之间的最小时间要求的时隙。
- 根据权利要求16所述的方法,其中,所述指示信息包括第二时隙偏移参数,所述第二时隙偏移参数对应于接收下行信号的时隙;所述下行信号包括信道状态信息参考信号CSI-RS;所述指示信息用于指示第二通信节点接收非周期的CSI-RS。
- 根据权利要求25所述的方法,其中,所述第二时隙偏移参数由第一通 信节点在高层信令配置的CSI-RS资源或CSI-RS资源集中配置。
- 根据权利要求25所述的方法,其中,对于DCI触发的非周期CSI-RS资源集,所述指示信息用于表示第一通信节点在第四目标时隙发送所述非周期的CSI-RS资源集,其中,所述第四目标时隙为从触发非周期CSI-RS资源集所在时隙开始计数的第h+1个可用的时隙或有效时隙,或者为从触发非周期CSI-RS资源集所在时隙开始计数的M个时隙内的第h+1个可用的时隙或有效时隙,h为0或正整数,M为第一预设范围内的正整数或者等于F与(h+1)的乘积,F为第二预设范围内的正整数。
- 根据权利要求27所述的方法,其中,所述h通过以下方式至少之一确定:通过RRC信令配置;等于第二时隙偏移参数;通过RRC信令配置且所述h对应于一个CSI-RS触发状态;所述h对应于控制资源集;所述h对应于触发CSI-RS的PDCCH所在的时隙;所述h为预定值。
- 根据权利要求27所述的方法,其中,所述有效时隙包括以下至少之一:可用的或有效的下行时隙或特殊时隙或灵活时隙;用于发送CSI-RS资源或CSI-RS资源集中的至少一个CSI-RS资源的上行时隙或特殊时隙或灵活时隙;用于发送CSI-RS资源或CSI-RS资源集中的全部CSI-RS资源的上行时隙或特殊时隙或灵活时隙;用于发送CSI-RS资源或CSI-RS资源集中的至少一个CSI-RS资源且不与发送其他上行信号互相冲突的上行时隙或特殊时隙或灵活时隙;时隙中包含有可获得的下行符号用于CSI-RS资源或CSI-RS资源集中的全部CSI-RS资源发送且满足触发非周期CSI-RS的PDCCH与CSI-RS资源集中所有CSI-RS资源发送之间的最小时间要求的时隙。
- 根据权利要求16所述的方法,其中,所述指示信息还用于指示:在通过相同的DCI或不同的DCI触发了至少两个非周期SRS或非周期CSI-RS的发送的情况下,或者在触发的多个SRS资源或SRS资源集或多个CSI-RS资源或CSI-RS资源集互相冲突的情况下,只传输最近的DCI触发的非 周期SRS资源或SRS资源集或非周期CSI-RS资源或资源集,或者只传输资源集标识最小的或最大的非周期SRS资源或SRS资源集或非周期CSI-RS资源或资源集。
- 一种传输装置,包括:发送模块,设置为发送指示信息,所述指示信息用于指示第二通信节点发送上行信号或者指示第二通信节点接收下行信号;第一传输模块,设置为根据所述指示信息与所述第二通信节点进行信号传输。
- 一种传输装置,包括:接收模块,设置为接收指示信息,所述指示信息用于指示第二通信节点发送上行信号或者指示第二通信节点接收下行信号;第二传输模块,设置为根据所述指示信息与第一通信节点进行信号传输。
- 一种第一通信节点,包括:至少一个处理器;存储装置,设置为存储至少一个程序;当所述至少一个程序被所述至少一个处理器执行,使得所述至少一个处理器实现如权利要求1-15中任一项所述的传输方法。
- 一种第二通信节点,包括:至少一个处理器;存储装置,设置为存储至少一个程序;当所述至少一个程序被所述至少一个处理器执行,使得所述至少一个处理器实现如权利要求16-30中任一项所述的传输方法。
- 一种计算机可读存储介质,其上存储有计算机程序,该程序被处理器执行时实现如权利要求1-15中任一项所述的传输方法或如权利要求16-30中任一项所述的传输方法。
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JP2023510448A (ja) | 2023-03-14 |
KR20220082867A (ko) | 2022-06-17 |
US20220330300A1 (en) | 2022-10-13 |
EP4047850A4 (en) | 2023-11-08 |
CN110650001A (zh) | 2020-01-03 |
CN115664612A (zh) | 2023-01-31 |
JP2024096435A (ja) | 2024-07-12 |
EP4047850A1 (en) | 2022-08-24 |
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