WO2022236488A1 - 信道繁忙率的测量方法、终端设备和网络设备 - Google Patents
信道繁忙率的测量方法、终端设备和网络设备 Download PDFInfo
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Definitions
- the embodiment of the present application relates to the communication field, and more specifically, relates to a method for measuring a channel busy rate, a terminal device, and a network device.
- DRX partial sensing
- Sidelink Discontinuous Reception SL
- the terminal device is not always in the listening state. For example, in the case of partial listening, the terminal device only listens to a part of time slots in each cycle. Under the SL DRX mechanism, the terminal device receives data during the DRX activation period, but does not receive data during the DRX inactivation period, and usually does not perform measurement.
- CBR Channel Busy Ratio
- the embodiment of the present application provides a method for measuring channel busy rate, terminal equipment and network equipment, which can be applied to calculate CBR in a sidelink transmission system configured with SL DRX or partial interception.
- a method for measuring a channel busy rate comprising:
- the terminal device determines the CBR at the target time according to the measurement result of the Sidelink Received Signal Strength Indicator (SL RSSI) within N time units before the target time.
- SL RSSI Sidelink Received Signal Strength Indicator
- a method for measuring a channel busy rate comprising:
- the network device sends first information to the terminal device, where the first information is used to indicate N time units before the target time, and the measurement results for SL RSSI within the N time units are used to determine the CBR of the target time.
- a terminal device configured to execute the method in the first aspect above.
- the terminal device includes a functional module for executing the method in the first aspect above.
- a network device configured to execute the method in the second aspect above.
- the network device includes a functional module for executing the method in the second aspect above.
- a terminal device including a processor and a memory.
- the memory is used to store a computer program
- the processor is used to call and run the computer program stored in the memory to execute the method in the first aspect above.
- a sixth aspect provides a network device, including a processor and a memory.
- the memory is used to store a computer program
- the processor is used to call and run the computer program stored in the memory to execute the method in the first aspect above.
- an apparatus for implementing the method in any one of the first aspect to the second aspect above.
- the device includes: a processor, configured to invoke and run a computer program from the memory, so that the device installed with the device executes the method in any one of the above first to second aspects.
- a computer-readable storage medium for storing a computer program, and the computer program causes a computer to execute the method in any one of the above-mentioned first aspect to the second aspect.
- a computer program product including computer program instructions, the computer program instructions causing a computer to execute the method in any one of the above first to second aspects.
- a computer program which, when running on a computer, causes the computer to execute the method in any one of the above first to second aspects.
- the terminal device determines the CBR of the target time according to the measurement results of the SL RSSI in N time units before the target time, which can be applied to calculate the CBR in the sidelink transmission system configured with SL DRX or partial interception .
- FIG. 1 is a schematic diagram of a communication system architecture applied in an embodiment of the present application.
- Fig. 2 is a schematic diagram of another communication system architecture applied in the embodiment of the present application.
- Fig. 3 is a schematic diagram of uplink communication within a network coverage provided by the present application.
- Fig. 4 is a schematic diagram of partial network coverage side communication provided by the present application.
- Fig. 5 is a schematic diagram of outbound communication provided by the network coverage provided by the present application.
- Fig. 6 is a schematic diagram of unicast sidelink communication provided by the present application.
- Fig. 7 is a schematic diagram of multicast sideline communication provided by the present application.
- Fig. 8 is a schematic diagram of broadcast sideline communication provided by the present application.
- Fig. 9 is a schematic diagram of resource selection based on interception provided by the present application.
- Fig. 10 is a schematic diagram of a sideline DRX mechanism provided by the present application.
- Fig. 11 is a schematic diagram of a partial interception mechanism provided by the present application.
- Fig. 12 is a schematic flowchart of a wireless communication method provided according to an embodiment of the present application.
- Fig. 13 is a schematic diagram of determining N time units according to an embodiment of the present application.
- FIG. 14 is another schematic diagram of determining N time units according to an embodiment of the present application.
- FIG. 15 is another schematic diagram of determining N time units according to an embodiment of the present application.
- FIG. 16 is another schematic diagram of determining N time units according to an embodiment of the present application.
- Fig. 17 is a schematic flowchart of another wireless communication method provided according to an embodiment of the present application.
- Fig. 18 is a schematic block diagram of a terminal device provided according to an embodiment of the present application.
- Fig. 19 is a schematic block diagram of a network device provided according to an embodiment of the present application.
- Fig. 20 is a schematic block diagram of a communication device provided according to an embodiment of the present application.
- Fig. 21 is a schematic block diagram of a device provided according to an embodiment of the present application.
- Fig. 22 is a schematic block diagram of a communication system provided according to an embodiment of the present application.
- the technical solution of the embodiment of the present application can be applied to various communication systems, such as: Global System of Mobile communication (Global System of Mobile communication, GSM) system, code division multiple access (Code Division Multiple Access, CDMA) system, broadband code division multiple access (Wideband Code Division Multiple Access, WCDMA) system, General Packet Radio Service (GPRS), Long Term Evolution (LTE) system, Advanced long term evolution (LTE-A) system , New Radio (NR) system, evolution system of NR system, LTE (LTE-based access to unlicensed spectrum, LTE-U) system on unlicensed spectrum, NR (NR-based access to unlicensed spectrum) on unlicensed spectrum unlicensed spectrum (NR-U) system, Non-Terrestrial Networks (NTN) system, Universal Mobile Telecommunications System (UMTS), Wireless Local Area Networks (WLAN), Wireless Fidelity (Wireless Fidelity, WiFi), fifth-generation communication (5th-Generation, 5G) system or other communication systems, etc.
- GSM Global System of Mobile
- D2D Device to Device
- M2M Machine to Machine
- MTC Machine Type Communication
- V2V Vehicle to Vehicle
- V2X Vehicle to everything
- the communication system in the embodiment of the present application may be applied to a carrier aggregation (Carrier Aggregation, CA) scenario, may also be applied to a dual connectivity (Dual Connectivity, DC) scenario, and may also be applied to an independent (Standalone, SA) deployment Web scene.
- Carrier Aggregation, CA Carrier Aggregation
- DC Dual Connectivity
- SA independent deployment Web scene
- the communication system in the embodiment of the present application may be applied to an unlicensed spectrum, where the unlicensed spectrum may also be considered as a shared spectrum; or, the communication system in the embodiment of the present application may also be applied to a licensed spectrum, where, Licensed spectrum can also be considered as non-shared spectrum.
- the embodiments of the present application describe various embodiments in conjunction with network equipment and terminal equipment, wherein the terminal equipment may also be referred to as user equipment (User Equipment, UE), access terminal, user unit, user station, mobile station, mobile station, remote station, remote terminal, mobile device, user terminal, terminal, wireless communication device, user agent or user device, etc.
- user equipment User Equipment, UE
- access terminal user unit
- user station mobile station
- mobile station mobile station
- remote station remote terminal
- mobile device user terminal
- terminal wireless communication device
- wireless communication device user agent or user device
- the terminal device can be a station (STATION, ST) in a WLAN, a cellular phone, a cordless phone, a Session Initiation Protocol (Session Initiation Protocol, SIP) phone, a wireless local loop (Wireless Local Loop, WLL) station, a personal digital assistant (Personal Digital Assistant, PDA) devices, handheld devices with wireless communication functions, computing devices or other processing devices connected to wireless modems, vehicle-mounted devices, wearable devices, next-generation communication systems such as terminal devices in NR networks, or future Terminal equipment in the evolved public land mobile network (Public Land Mobile Network, PLMN) network, etc.
- PLMN Public Land Mobile Network
- the terminal device can be deployed on land, including indoor or outdoor, handheld, wearable or vehicle-mounted; it can also be deployed on water (such as ships, etc.); it can also be deployed in the air (such as aircraft, balloons and satellites) superior).
- the terminal device may be a mobile phone (Mobile Phone), a tablet computer (Pad), a computer with a wireless transceiver function, a virtual reality (Virtual Reality, VR) terminal device, an augmented reality (Augmented Reality, AR) terminal Equipment, wireless terminal equipment in industrial control, wireless terminal equipment in self driving, wireless terminal equipment in remote medical, wireless terminal equipment in smart grid , wireless terminal equipment in transportation safety, wireless terminal equipment in smart city, or wireless terminal equipment in smart home.
- a virtual reality (Virtual Reality, VR) terminal device an augmented reality (Augmented Reality, AR) terminal Equipment
- wireless terminal equipment in industrial control wireless terminal equipment in self driving
- wireless terminal equipment in remote medical wireless terminal equipment in smart grid
- wireless terminal equipment in transportation safety wireless terminal equipment in smart city, or wireless terminal equipment in smart home.
- the terminal device may also be a wearable device.
- Wearable devices can also be called wearable smart devices, which is a general term for the application of wearable technology to intelligently design daily wear and develop wearable devices, such as glasses, gloves, watches, clothing and shoes.
- a wearable device is a portable device that is worn directly on the body or integrated into the user's clothing or accessories. Wearable devices are not only a hardware device, but also achieve powerful functions through software support, data interaction, and cloud interaction.
- Generalized wearable smart devices include full-featured, large-sized, complete or partial functions without relying on smart phones, such as smart watches or smart glasses, etc., and only focus on a certain type of application functions, and need to cooperate with other devices such as smart phones Use, such as various smart bracelets and smart jewelry for physical sign monitoring.
- the network device may be a device for communicating with the mobile device, and the network device may be an access point (Access Point, AP) in WLAN, a base station (Base Transceiver Station, BTS) in GSM or CDMA , or a base station (NodeB, NB) in WCDMA, or an evolved base station (Evolutional Node B, eNB or eNodeB) in LTE, or a relay station or access point, or a vehicle-mounted device, a wearable device, and an NR network A network device or a base station (gNB) in a network device or a network device in a future evolved PLMN network or a network device in an NTN network.
- AP Access Point
- BTS Base Transceiver Station
- NodeB, NB base station
- Evolutional Node B, eNB or eNodeB evolved base station
- LTE Long Term Evolution
- eNB evolved base station
- gNB base station
- the network device may have a mobile feature, for example, the network device may be a mobile device.
- the network equipment may be a satellite or a balloon station.
- the satellite can be a low earth orbit (low earth orbit, LEO) satellite, a medium earth orbit (medium earth orbit, MEO) satellite, a geosynchronous earth orbit (geosynchronous earth orbit, GEO) satellite, a high elliptical orbit (High Elliptical Orbit, HEO) satellite. ) Satellite etc.
- the network device may also be a base station installed on land, water, and other locations.
- the network device may provide services for a cell, and the terminal device communicates with the network device through the transmission resources (for example, frequency domain resources, or spectrum resources) used by the cell, and the cell may be a network device ( For example, a cell corresponding to a base station), the cell may belong to a macro base station, or may belong to a base station corresponding to a small cell (Small cell), and the small cell here may include: a metro cell (Metro cell), a micro cell (Micro cell), a pico cell ( Pico cell), Femto cell, etc. These small cells have the characteristics of small coverage and low transmission power, and are suitable for providing high-speed data transmission services.
- the transmission resources for example, frequency domain resources, or spectrum resources
- the cell may be a network device (
- the cell may belong to a macro base station, or may belong to a base station corresponding to a small cell (Small cell)
- the small cell here may include: a metro cell (Metro cell), a micro cell (Micro
- the "indication" mentioned in the embodiments of the present application may be a direct indication, may also be an indirect indication, and may also mean that there is an association relationship.
- a indicates B which can mean that A directly indicates B, for example, B can be obtained through A; it can also indicate that A indirectly indicates B, for example, A indicates C, and B can be obtained through C; it can also indicate that there is an association between A and B relation.
- the term "corresponding" may indicate that there is a direct or indirect correspondence between the two, or that there is an association between the two, or that it indicates and is indicated, configuration and is configuration etc.
- predefined or “preconfigured” can be realized by pre-saving corresponding codes, tables or other methods that can be used to indicate relevant information in devices (for example, including terminal devices and network devices).
- the application does not limit its specific implementation.
- pre-defined may refer to defined in the protocol.
- the "protocol” may refer to a standard protocol in the communication field, for example, may include the LTE protocol, the NR protocol, and related protocols applied to future communication systems, which is not limited in the present application.
- Fig. 1 is a schematic diagram of a communication system to which the embodiment of the present application is applicable.
- the transmission resources of the vehicle-mounted terminals (vehicle-mounted terminal 121 and vehicle-mounted terminal 122 ) are allocated by the base station 110 , and the vehicle-mounted terminals transmit data on the sidelink according to the resources allocated by the base station 110 .
- the base station 110 may allocate resources for a single transmission to the terminal, or may allocate resources for semi-static transmission to the terminal.
- Fig. 2 is a schematic diagram of another communication system to which the embodiment of the present application is applicable.
- the vehicle-mounted terminals (vehicle-mounted terminal 131 and vehicle-mounted terminal 132 ) autonomously select transmission resources on sidelink resources for data transmission.
- the vehicle-mounted terminal may select transmission resources randomly, or select transmission resources by listening.
- side communication according to the network coverage of the communicating terminal, it can be divided into network coverage inner communication, as shown in Figure 3; part of the network coverage side communication, as shown in Figure 4 ; and network coverage outer line communication, as shown in FIG. 5 .
- Figure 3 In network coverage inner line communication, all terminals performing side line communication are within the coverage of the same base station, thus, the above terminals can all perform side line based on the same side line configuration by receiving configuration signaling from the base station communication.
- FIG 4 In the case of partial network coverage for sidelink communication, some terminals performing sidelink communication are located within the coverage of the base station. These terminals can receive configuration signaling from the base station and perform sidelink communication according to the configuration of the base station. However, terminals located outside the network coverage cannot receive the configuration signaling from the base station. In this case, the terminals outside the network coverage will use the pre-configuration information and the physical The information carried in the Physical Sidelink Broadcast Channel (PSBCH) determines the sidelink configuration for sidelink communication.
- PSBCH Physical Sidelink Broadcast Channel
- Figure 5 For outbound communication under network coverage, all terminals performing side communication are located outside the network coverage, and all terminals determine side communication according to pre-configuration information to perform side communication.
- device-to-device communication is based on a sidelink (Sidelink, SL) transmission technology based on device to device (D2D), and the communication data in the traditional cellular system is received or sent through the base station.
- the method is different, so it has higher spectral efficiency and lower transmission delay.
- the Internet of Vehicles system adopts the method of terminal-to-terminal direct communication, and two transmission modes are defined in 3GPP, which are respectively recorded as: the first mode and the second mode.
- the embodiment of the present application may be applied to the second mode.
- the first mode the transmission resources of the terminal are allocated by the base station, and the terminal sends data on the sidelink according to the resources allocated by the base station; the base station can allocate resources for a single transmission to the terminal, and can also allocate semi-static transmission to the terminal Resources. As shown in FIG. 3 , the terminal is located within the coverage of the network, and the network allocates transmission resources for sidelink transmission to the terminal.
- the second mode the terminal selects a resource from the resource pool for data transmission.
- the terminal is located outside the coverage of the cell, and the terminal independently selects transmission resources from the pre-configured resource pool for sidelink transmission; or, as shown in Figure 3, the terminal independently selects transmission resources from the resource pool configured by the network Make sideways transfers.
- New Radio-Vehicle to Everything NR-V2X
- NR-V2X New Radio-Vehicle to Everything
- it supports automatic driving, so it puts forward higher requirements for data interaction between vehicles, such as higher throughput, lower Latency, higher reliability, larger coverage, more flexible resource allocation, etc.
- unicast transmission there is only one terminal at the receiving end, as shown in Figure 6, unicast transmission is performed between UE1 and UE2; for multicast transmission, the receiving end is all terminals in a communication group, or all terminals in a certain communication group All terminals within the transmission distance, as shown in Figure 7, UE1, UE2, UE3 and UE4 form a communication group, in which UE1 sends data, and other terminal devices in the group are receiving terminals; for broadcast transmission mode, its receiving The terminal is any terminal around the transmitting terminal. As shown in FIG. 8 , UE1 is the transmitting terminal, and other terminals around it, UE2-UE6 are all receiving terminals.
- a resource pool is introduced in the sideline transmission system.
- the so-called resource pool is a collection of transmission resources. Whether it is the transmission resource configured by the network or the transmission resource independently selected by the terminal, it is a resource in the resource pool.
- Resource pools can be configured through pre-configuration or network configuration, and one or more resource pools can be configured.
- the resource pool is further divided into a sending resource pool and a receiving resource pool.
- the sending resource pool means that the transmission resources in the resource pool are used to send sidelink data;
- the receiving resource pool means that the terminal receives sidelink data on the transmission resources in the resource pool.
- full listening means that the terminal can listen to data sent by other terminals in all time slots (or subframes) except the time slot for sending data; and Partial sensing (partial sensing) is for terminal energy saving.
- the terminal only needs to sense part of the time slot (or subframe), and selects resources based on the result of partial sensing.
- the upper layer when the upper layer does not configure partial interception, it defaults to full interception for resource selection.
- the terminal will select resources within [n+T 1 , n+T 2 ] according to the interception result in the interception window [n-1000,n-1].
- the time unit of the listening window and the selection window is at least one of the following: millisecond, time slot, and subframe.
- the time n includes at least one of the following: the time when resource selection is triggered, the time when resource reselection is triggered, the time when the upper layer triggers the lower layer to report resources, and the time when a new data packet arrives.
- the above multiple times may be the same time, for example, the time when resource selection is triggered is also the time when a new data packet arrives; the time when resource reselection is triggered is also the time when a new data packet arrives; the time when resource selection is triggered, At the same time, it is also the moment when the upper layer triggers the lower layer to report resources.
- T 2min (prio TX ) ⁇ T 2 ⁇ 100
- T 2min (prio TX ) is a parameter configured by the upper layer, and the selection of T 1 should be greater than the processing delay of the terminal, and the selection of T 2 needs to be Within the range of service delay requirements, for example, if the service delay requirement is 50ms, then 20 ⁇ T 2 ⁇ 50, and the service delay requirement is 100ms, then 20 ⁇ T 2 ⁇ 100, as shown in Figure 9 .
- the process of resource selection by the terminal in the selection window is as follows: (The specific resource selection process can refer to the operation steps described in the above standard, and several main resource selection steps are listed here)
- the terminal will select all available resources in the window as a set A.
- the terminal has no listening result for some subframes in the listening window, the resources of these subframes in the corresponding subframes in the selection window are excluded.
- PSSCH-RSRP Physical Sidelink Control Channel
- the selection of the PSSCH-RSRP threshold is determined by the detected priority information carried in the PSCCH and the priority of the data to be transmitted by the terminal.
- the terminal will increase the threshold of PSSCH-RSRP by 3dB, and repeat steps 1-3 until the number of remaining resources in set A is greater than the total number of resources 20%.
- the terminal performs Sidelink Received Signal Strength Indicator (SLRSSI) detection on the remaining resources in set A, and sorts them according to the energy level, and ranks the 20% with the lowest energy (relative to the resources in set A) number) resources into collection B.
- SRSSI Sidelink Received Signal Strength Indicator
- the terminal selects a resource from set B with a medium probability for data transmission.
- the terminal based on partial interception selects Y time slots in the resource selection window, and judges whether the resources on the Y time slots can be used as candidate resources according to the interception results, and puts them in the set if they can In S B , if the number of elements in the set S B is greater than or equal to 20% of the total number of resources on Y time slots, report S B to the upper layer.
- discontinuous reception Discontinuous Reception, DRX
- DRX discontinuous Reception
- the terminal device when there is data to be transmitted, the terminal device must always monitor the Physical Downlink Control Channel (PDCCH), and send and receive data according to the instruction message sent by the network side, which leads to power consumption of the terminal device and data transmission delays are relatively large. Therefore, the 3GPP standard protocol introduces a DRX mechanism energy-saving strategy in the LTE system.
- PDCCH Physical Downlink Control Channel
- the basic mechanism of DRX is to configure a DRX cycle (DRX cycle) for a terminal device in the Radio Resource Control (RRC) connected (RRC_CONNECTED) state.
- the DRX cycle consists of "On Duration” and "Opportunity for DRX": during the "On Duration” time (also known as active time, activation period), the terminal device monitors And receive the physical downlink control channel (Physical Downlink Control Channel, PDCCH); during the "Opportunity for DRX" time (also known as inactive time, inactive period or sleep period), the terminal device does not receive PDCCH to reduce power consumption, compared to DRX on duration, Opportunity for DRX time can also be called DRX inactivation period (DRX off duration).
- the terminal device controls the activation (on duration) and inactivation (off duration) of the terminal device according to some timer parameters configured by the network.
- the energy-saving and consumption-reducing mechanism of the terminal is discussed.
- the DRX mechanism in SL that is, SL DRX.
- the terminal receives data sent by other terminals within the On duration range. If no data is detected, it enters a sleep state within the DRX off duration range to save power consumption.
- the measurement result of CBR reflects the congestion degree of the channel, and the value range is [0,1]. The higher the CBR value, the more congested the channel and the more prone to resource conflicts; the lower the CBR value, the more idle the channel and the lower the probability of conflicts.
- the CBR measurement value of the terminal device in time slot n is the ratio of the number of subchannels whose SL RSSI measurement results exceed the preconfigured threshold in the measurement window [na,n-1] to the total number of subchannels measured by the terminal in this window,
- the partial sensing mechanism and the SL DRX mechanism are introduced.
- the terminal device is not always in the listening state, for example, in some In the case of listening, the terminal device will only listen to a part of the time slots in each cycle, as shown in Figure 11: the terminal device does not listen to all the time slots in the listening window, but only listens to part of the time slots .
- the terminal device receives data during the DRX activation period, but does not receive data during the DRX inactivation period, and usually does not perform measurement.
- how to determine the CBR is a problem to be solved.
- this application proposes a solution for determining CBR, which can be applied to calculate CBR in a sidelink transmission system configured with SL DRX or partial interception.
- FIG. 12 is a schematic flowchart of a method 200 for measuring channel occupancy according to an embodiment of the present application. As shown in FIG. 12 , the method 200 for measuring channel occupancy may include at least some of the following:
- the terminal device determines the CBR of the target time according to the measurement results of the SL RSSI within N time units before the target time.
- the embodiment of the present application can be applied to the partial interception mechanism and the SL DRX mechanism. Certainly, the embodiments of the present application may also be applied to other mechanisms or scenarios, which are not limited in the present application.
- the terminal device measures the SL RSSI within the N time units, and acquires the measurement results for the SL RSSI within the N time units. That is, in the embodiment of the present application, the N time units are time units in which the terminal device can perform SL RSSI measurement.
- the ratio of the number of subchannels whose SL RSSI measurement results exceed the preset threshold in N time units to the total number of subchannels measured by the terminal in the N time units is the target time CBR.
- the preset threshold value is configured by a network device, or, the preset threshold value is agreed upon in a protocol.
- N is pre-configured or agreed by a protocol, or N is configured by a network device.
- N is indicated by the network device through the indication information included in the resource pool configuration.
- the time units in the N time units include but are not limited to at least one of the following:
- the N time units are time units in which the terminal device can perform SL RSSI measurement, or, the N time units do not include a time unit in which the terminal device cannot perform SL RSSI measurement.
- the N time units include part or all of the time units in the DRX activation period.
- the number of time units included in the DRX active period can be determined through DRX configuration.
- the DRX configuration may include but not limited to at least one of the following:
- the number of time units included in the DRX activation period is determined by at least one of the following:
- the terminal device may measure or listen to SLRSSI during the DRX inactive period, and the N time units include the DRX active period and the time unit during which the terminal may perform SLRSSI measurement during the DRX inactive period.
- the N time units include part or all of candidate time units within at least one cycle in the resource listening window, and the N time units do not include non-candidate time units in the resource listening window.
- the embodiment of the present application is applied to a partial interception mechanism.
- the number and time domain positions of candidate time units included in the at least one period are determined by the number and time domain positions of candidate time units selected by the terminal device in the resource selection window.
- the number of candidate time units selected by the terminal device in the resource selection window is determined according to a configuration parameter, where the configuration parameter is used to indicate the minimum number of time units selected in the resource selection window.
- the N time units do not include at least one of the following:
- the N time units are N time units at which the terminal located before and closest to the target time unit can perform SLRSSI measurement.
- Embodiment 1 the measurement of CBR is performed in configuring the SL DRX system.
- the system is configured with SL DRX, and the cycle of DRX (DRX cycle) is 200 time slots. ) decision, without configuring the sideline DRX deactivation timer (sl-drx-InactivityTimer) or sideline DRX retransmission timer (sl-drx-RetransmissionTimer), etc., and the duration of sl-drx-onDurationTimer is 50 slots , as shown in (a) in Figure 13.
- the terminal device When the terminal device needs to determine the CBR measurement result at time slot n, the terminal device needs to determine the CBR of time slot n according to the SL RSSI measurement results of 100 time slots before time slot n. Since the DRX inactive period is included before time slot n, if the terminal device does not perform SL RSSI measurement during the DRX inactive period, the terminal device can only measure 100 slots) to calculate the CBR from the measurement results of the SL RSSI of the slots, as shown in (b) in Figure 13.
- the terminal device determines that the time slot n of the CBR is within the DRX activation period, and the terminal device measures a total of 10 time slots before the time slot n in the current DRX activation period SLRSSI, the terminal device further needs to determine the CBR of time slot n according to the measurement results of SL RSSI in the first two DRX activation periods, including 50 CBRs in the first DRX activation period before the DRX activation period where the time slot n is located. time slots and 40 time slots in the second preceding DRX activation period.
- the system is configured with SL DRX
- the cycle of DRX (DRX cycle) is 200 time slots
- the duration of sl-drx-onDurationTimer is configured as 50 time slots
- sl-drx -InactivityTimer has a duration of 40 slots.
- the terminal device When the terminal device receives PSCCH or PSSCH during the DRX activation period, it will start or reset the sl-drx-InactivityTimer, and before the sl-drx-InactivityTimer expires, the terminal device is in the DRX active state, as shown in Figure 14 (b ) and (c), the terminal device receives the PSCCH at time slot 29, and at the end of the time slot, sl-drx-InactivityTimer is started at slot 30, and the duration of the sl-drx-InactivityTimer is 40 time slots. Before the sl-drx-InactivityTimer expires, the terminal device does not receive the PSCCH again.
- the terminal device needs to determine the CBR measurement result at time slot n according to the SL RSSI measurement results of 100 time slots before time slot n.
- the terminal device can only measure the SL RSSI according to the two DRX active periods (a total of 100 CBR is calculated from the measurement results of the SL RSSI of slots within slots), as shown in (b) in Figure 14.
- the terminal device determines that the time slot n of CBR is in the DRX active period, and the terminal device measures the SLRSSI of 10 time slots in total before the time slot n in the current DRX active period , the terminal device further needs to determine the CBR of time slot n according to the measurement results of SL RSSI in the first two DRX active periods, including the 50 hours in the first DRX active period before the DRX active period where the time slot n is located. slots and the 40 slots in the previous second DRX activation period.
- Embodiment 2 CBR measurement is performed in a partial interception mechanism.
- the terminal device may perform partial interception, and select resources based on the result of the partial interception, as shown in FIG. 11 above.
- a terminal device needs to obtain CBR, it can only determine CBR based on the measurement results of the SL RSSI on those time slots that the terminal device has partially intercepted.
- the terminal device When the terminal device needs to determine the CBR at the time slot n, the terminal device needs to determine the CBR of the time slot n according to the SL RSSI measurement results of the 100 time slots before the time slot n. Therefore, the terminal device needs to calculate the CBR of the slot n according to the measurement results of the SL RSSI in the 4 periods before the slot n (the penultimate period includes only the last 10 slots). For example, the terminal device determines the CBR according to the measurement results of 30 time slots in the periods 100ms, 200ms, and 300ms before the time slot n and the measurement results of 10 time slots in the period 400ms.
- Embodiment 2 further, if the terminal equipment includes a time slot for sending sideline data within the 30 time slots, the terminal equipment cannot perform SL RSSI measurement on the time slot for sending sideline data, and the transmission The time slots for sidelink data cannot be used to calculate the CBR, so the time slots used for calculating the CBR need to be postponed forward.
- each cycle can be used for SL RSSI measurement
- the number of time slots is 28, so the terminal device needs to calculate the time slot according to the measurement results of SL RSSI in the 4 cycles before the time slot n (the penultimate cycle includes the last 16 time slots that can be used for sideline measurement) n CBR.
- Embodiment 3 CBR measurement is performed in a system configured with SL DRX and partial interception.
- SL DRX and partial interception are configured at the same time, and the terminal device can perform SL RSSI measurement or interception during the DRX inactive period. Specifically, when the terminal device needs to obtain the CBR, the CBR may be determined based on the measurement results of the SL RSSI on those time slots where the terminal device has partially intercepted.
- the terminal device When the terminal device needs to determine the CBR at the time slot n, the terminal device needs to determine the CBR of the time slot n according to the SL RSSI measurement results of the 100 time slots before the time slot n. Therefore, the terminal device needs to calculate the CBR of the slot n according to the measurement results of the SL RSSI in the 4 periods before the slot n (the penultimate period includes only the last 10 slots). For example, the terminal device determines the CBR according to the measurement results of 30 time slots in the periods 100ms, 200ms, and 300ms before the time slot n and the measurement results of 10 time slots in the period 400ms.
- Embodiment 3 further, if the terminal equipment includes a time slot for sending sideline data within the 30 time slots, the terminal equipment cannot perform SL RSSI measurement on the time slot for sending sideline data, and the transmission The time slots for sidelink data cannot be used to calculate the CBR, so the time slots used for calculating the CBR need to be postponed forward.
- each cycle can be used for SL RSSI measurement
- the number of time slots is 28, so the terminal device needs to calculate the time slot according to the measurement results of SL RSSI in the 4 cycles before the time slot n (the penultimate cycle includes the last 16 time slots that can be used for sideline measurement) n CBR.
- the terminal device determines the CBR at the target time according to the measurement results of the SL RSSI within N time units before the target time, which can be applied to sidelink transmissions configured with SL DRX or partial interception.
- the CBR is calculated in the system.
- terminal-side embodiments of the present application are described in detail above in conjunction with FIG. 12 to FIG. 16 , and the network-side embodiments of the present application are described in detail below in conjunction with FIG. 17 . It should be understood that the network-side embodiments correspond to the terminal-side embodiments. For similar descriptions, reference may be made to the terminal-side embodiments.
- FIG. 17 is a schematic flowchart of a method 300 for measuring channel occupancy according to an embodiment of the present application. As shown in FIG. 17 , the method 300 for measuring channel occupancy may include at least part of the following content:
- the network device sends first information to the terminal device, where the first information is used to indicate N time units before the target time, and the measurement results for SL RSSI within the N time units are used to determine the CBR of the target time.
- the embodiment of the present application can be applied to the partial interception mechanism and the SL DRX mechanism. Certainly, the embodiments of the present application may also be applied to other mechanisms or scenarios, which are not limited in the present application.
- the terminal device measures the SL RSSI within the N time units, and acquires the measurement results for the SL RSSI within the N time units. That is, in the embodiment of the present application, the N time units are time units in which the terminal device can perform SL RSSI measurement.
- the ratio of the number of subchannels whose SL RSSI measurement results exceed the preset threshold in N time units to the total number of subchannels measured by the terminal in the N time units is the target time CBR.
- the preset threshold value is configured by a network device, or, the preset threshold value is agreed upon in a protocol.
- N is pre-configured or agreed by a protocol, or N is configured by a network device.
- N is indicated by the network device through the indication information included in the resource pool configuration.
- the time units in the N time units include but are not limited to at least one of the following:
- the N time units are time units in which the terminal device can perform SL RSSI measurement, or, the N time units do not include a time unit in which the terminal device cannot perform SL RSSI measurement.
- the N time units include part or all of the time units in the DRX activation period.
- the number of time units included in the DRX active period can be determined through DRX configuration.
- the DRX configuration may include but not limited to at least one of the following:
- the number of time units included in the DRX activation period is determined by at least one of the following:
- the terminal device may measure or listen to SLRSSI during the DRX inactive period, and the N time units include the DRX active period and the time unit during which the terminal may perform SLRSSI measurement during the DRX inactive period.
- the N time units include part or all of candidate time units within at least one cycle in the resource listening window, and the N time units do not include non-candidate time units in the resource listening window.
- the embodiment of the present application is applied to a partial interception mechanism.
- the number and time domain positions of candidate time units included in the at least one period are determined by the number and time domain positions of candidate time units selected by the terminal device in the resource selection window.
- the number of candidate time units selected by the terminal device in the resource selection window is determined according to a configuration parameter, where the configuration parameter is used to indicate the minimum number of time units selected in the resource selection window.
- the N time units do not include at least one of the following:
- the N time units are N time units at which the terminal located before and closest to the target time unit can perform SLRSSI measurement.
- the network device configures the first information.
- the network device can indicate N time units before the target time, so that the terminal device can determine the CBR of the target time according to the measurement results for SL RSSI in N time units before the target time, and can It is suitable for calculating CBR in sidelink transmission systems configured with SL DRX or partial interception.
- Fig. 18 shows a schematic block diagram of a terminal device 400 according to an embodiment of the present application.
- the terminal device 400 includes:
- the processing unit 410 is configured to determine the channel busy rate CBR at the target time according to the measurement results of the sideline received signal strength indicator SL RSSI in N time units before the target time.
- the N time units are time units in which the terminal device can perform SL RSSI measurement, or, the N time units do not include a time unit in which the terminal device cannot perform SL RSSI measurement.
- the N time units include part or all of the time units in the DRX active period of discontinuous reception, or,
- the N time units include the time units during which the terminal equipment can perform SLRSSI measurement during the DRX active period and the DRX inactive period.
- the number of time units included in the DRX activation period is determined by at least one of the following:
- the N time units include part or all of candidate time units within at least one cycle in the resource listening window, and the N time units do not include non-candidate time units in the resource listening window.
- the number and time domain positions of candidate time units included in the at least one period are determined by the number and time domain positions of candidate time units selected by the terminal device in the resource selection window.
- the number of candidate time units selected by the terminal device in the resource selection window is determined according to a configuration parameter, where the configuration parameter is used to indicate the minimum number of time units selected in the resource selection window.
- the terminal device is applied to a scenario where resource selection is performed based on partial interception.
- the N time units are N time units at which the terminal device located before and closest to the target time unit can perform SLRSSI measurement.
- the N time units do not include at least one of the following:
- N is pre-configured or agreed by a protocol, or N is configured by a network device.
- N is indicated by the network device through the indication information included in the resource pool configuration.
- the time units in the N time units include at least one of the following:
- the aforementioned processing unit may be one or more processors.
- terminal device 400 may correspond to the terminal device in the method embodiment of the present application, and the above-mentioned and other operations and/or functions of each unit in the terminal device 400 are for realizing the method shown in FIG. 12
- the corresponding process of the terminal device in 200 will not be repeated here.
- Fig. 19 shows a schematic block diagram of a network device 500 according to an embodiment of the present application.
- the network device 500 includes:
- the communication unit 510 is configured to send first information to the terminal device, where the first information is used to indicate N time units before the target time, and the measurement results of the sideline received signal strength indication SL RSSI within the N time units are used for Determine the channel busy rate CBR at the target time.
- the N time units are time units in which the terminal device can perform SL RSSI measurement, or, the N time units do not include a time unit in which the terminal device cannot perform SL RSSI measurement.
- the N time units include part or all of the time units in the DRX active period of discontinuous reception, or,
- the N time units include the time units during which the terminal equipment can perform SLRSSI measurement during the DRX active period and the DRX inactive period.
- the number of time units included in the DRX activation period is determined by at least one of the following:
- the N time units include part or all of candidate time units within at least one cycle in the resource listening window, and the N time units do not include non-candidate time units in the resource listening window.
- the number and time domain positions of candidate time units included in the at least one period are determined by the number and time domain positions of candidate time units selected by the terminal device in the resource selection window.
- the number of candidate time units selected by the terminal device in the resource selection window is determined according to a configuration parameter, where the configuration parameter is used to indicate the minimum number of time units selected in the resource selection window.
- the network device is applied to a scenario where resource selection is performed based on partial interception.
- the N time units are N time units at which the terminal device located before and closest to the target time unit can perform SLRSSI measurement.
- the N time units do not include at least one of the following:
- N is pre-configured or agreed by a protocol, or N is configured by a network device.
- N is indicated by the network device through the indication information included in the resource pool configuration.
- the time units in the N time units include at least one of the following:
- the network device 500 may correspond to the network device in the method embodiment of the present application, and the above-mentioned and other operations and/or functions of each unit in the network device 500 are to realize the method shown in FIG. 17
- the corresponding processes of the network devices in 300 will not be repeated here.
- FIG. 20 is a schematic structural diagram of a communication device 600 provided by an embodiment of the present application.
- the communication device 600 shown in FIG. 20 includes a processor 610, and the processor 610 can call and run a computer program from a memory, so as to implement the method in the embodiment of the present application.
- the communication device 600 may further include a memory 620 .
- the processor 610 can invoke and run a computer program from the memory 620, so as to implement the method in the embodiment of the present application.
- the memory 620 may be an independent device independent of the processor 610 , or may be integrated in the processor 610 .
- the communication device 600 may further include a transceiver 630, and the processor 610 may control the transceiver 630 to communicate with other devices, specifically, to send information or data to other devices, or Receive messages or data from other devices.
- the transceiver 630 may include a transmitter and a receiver.
- the transceiver 630 may further include antennas, and the number of antennas may be one or more.
- the communication device 600 may specifically be the network device of the embodiment of the present application, and the communication device 600 may implement the corresponding processes implemented by the network device in each method of the embodiment of the present application. For the sake of brevity, the Let me repeat.
- the communication device 600 may specifically be the terminal device of the embodiment of the present application, and the communication device 600 may implement the corresponding processes implemented by the terminal device in each method of the embodiment of the present application. Let me repeat.
- Fig. 21 is a schematic structural diagram of a device according to an embodiment of the present application.
- the apparatus 700 shown in FIG. 21 includes a processor 710, and the processor 710 can call and run a computer program from a memory, so as to implement the method in the embodiment of the present application.
- the device 700 may further include a memory 720 .
- the processor 710 can invoke and run a computer program from the memory 720, so as to implement the method in the embodiment of the present application.
- the memory 720 may be an independent device independent of the processor 710 , or may be integrated in the processor 710 .
- the device 700 may further include an input interface 730 .
- the processor 710 can control the input interface 730 to communicate with other devices or chips, specifically, can obtain information or data sent by other devices or chips.
- the device 700 may further include an output interface 740 .
- the processor 710 can control the output interface 740 to communicate with other devices or chips, specifically, can output information or data to other devices or chips.
- the device can be applied to the network device in the embodiments of the present application, and the device can implement the corresponding processes implemented by the network device in the methods of the embodiments of the present application. For the sake of brevity, details are not repeated here.
- the device can be applied to the terminal device in the embodiment of the present application, and the device can implement the corresponding process implemented by the terminal device in each method of the embodiment of the present application. For the sake of brevity, details are not repeated here.
- the device mentioned in the embodiment of the present application may also be a chip.
- it may be a system-on-a-chip, a system-on-a-chip, a system-on-a-chip, or a system-on-a-chip.
- Fig. 22 is a schematic block diagram of a communication system 800 provided by an embodiment of the present application. As shown in FIG. 22 , the communication system 800 includes a terminal device 810 and a network device 820 .
- the terminal device 810 can be used to realize the corresponding functions realized by the terminal device in the above method
- the network device 820 can be used to realize the corresponding functions realized by the network device in the above method.
- the processor in the embodiment of the present application may be an integrated circuit chip, which has a signal processing capability.
- each step of the above-mentioned method embodiments may be completed by an integrated logic circuit of hardware in a processor or instructions in the form of software.
- the above-mentioned processor can be a general-purpose processor, a digital signal processor (Digital Signal Processor, DSP), an application-specific integrated circuit (Application Specific Integrated Circuit, ASIC), an off-the-shelf programmable gate array (Field Programmable Gate Array, FPGA) or other available Program logic devices, discrete gate or transistor logic devices, discrete hardware components.
- DSP Digital Signal Processor
- ASIC Application Specific Integrated Circuit
- FPGA Field Programmable Gate Array
- a general-purpose processor may be a microprocessor, or the processor may be any conventional processor, or the like.
- the steps of the method disclosed in the embodiments of the present application may be directly implemented by a hardware decoding processor, or implemented by a combination of hardware and software modules in the decoding processor.
- the software module can be located in a mature storage medium in the field such as random access memory, flash memory, read-only memory, programmable read-only memory or electrically erasable programmable memory, register.
- the storage medium is located in the memory, and the processor reads the information in the memory, and completes the steps of the above method in combination with its hardware.
- the memory in the embodiments of the present application may be a volatile memory or a nonvolatile memory, or may include both volatile and nonvolatile memories.
- the non-volatile memory can be read-only memory (Read-Only Memory, ROM), programmable read-only memory (Programmable ROM, PROM), erasable programmable read-only memory (Erasable PROM, EPROM), electronically programmable Erase Programmable Read-Only Memory (Electrically EPROM, EEPROM) or Flash.
- the volatile memory can be Random Access Memory (RAM), which acts as external cache memory.
- RAM Static Random Access Memory
- SRAM Static Random Access Memory
- DRAM Dynamic Random Access Memory
- Synchronous Dynamic Random Access Memory Synchronous Dynamic Random Access Memory
- SDRAM double data rate synchronous dynamic random access memory
- Double Data Rate SDRAM, DDR SDRAM enhanced synchronous dynamic random access memory
- Enhanced SDRAM, ESDRAM synchronous connection dynamic random access memory
- Synchlink DRAM, SLDRAM Direct Memory Bus Random Access Memory
- Direct Rambus RAM Direct Rambus RAM
- the memory in the embodiment of the present application may also be a static random access memory (static RAM, SRAM), a dynamic random access memory (dynamic RAM, DRAM), Synchronous dynamic random access memory (synchronous DRAM, SDRAM), double data rate synchronous dynamic random access memory (double data rate SDRAM, DDR SDRAM), enhanced synchronous dynamic random access memory (enhanced SDRAM, ESDRAM), synchronous connection Dynamic random access memory (synch link DRAM, SLDRAM) and direct memory bus random access memory (Direct Rambus RAM, DR RAM), etc. That is, the memory in the embodiments of the present application is intended to include, but not be limited to, these and any other suitable types of memory.
- the embodiment of the present application also provides a computer-readable storage medium for storing computer programs.
- the computer-readable storage medium can be applied to the network device in the embodiment of the present application, and the computer program enables the computer to execute the corresponding process implemented by the network device in each method of the embodiment of the present application. For the sake of brevity, I won't repeat them here.
- the computer-readable storage medium can be applied to the terminal device in the embodiment of the present application, and the computer program enables the computer to execute the corresponding process implemented by the terminal device in each method of the embodiment of the present application. For the sake of brevity, I won't repeat them here.
- the embodiment of the present application also provides a computer program product, including computer program instructions.
- the computer program product can be applied to the network device in the embodiments of the present application, and the computer program instructions enable the computer to execute the corresponding processes implemented by the network device in the various methods of the embodiments of the present application. For brevity, This will not be repeated here.
- the computer program product can be applied to the terminal device in the embodiments of the present application, and the computer program instructions cause the computer to execute the corresponding processes implemented by the terminal device in the methods of the embodiments of the present application.
- the computer program instructions cause the computer to execute the corresponding processes implemented by the terminal device in the methods of the embodiments of the present application.
- the embodiment of the present application also provides a computer program.
- the computer program can be applied to the network device in the embodiment of the present application, and when the computer program is run on the computer, the computer executes the corresponding process implemented by the network device in each method of the embodiment of the present application, For the sake of brevity, details are not repeated here.
- the computer program can be applied to the terminal device in the embodiment of the present application.
- the computer program executes the corresponding process implemented by the terminal device in each method of the embodiment of the present application, For the sake of brevity, details are not repeated here.
- the disclosed systems, devices and methods may be implemented in other ways.
- the device embodiments described above are only illustrative.
- the division of the units is only a logical function division. In actual implementation, there may be other division methods.
- multiple units or components can be combined or May be integrated into another system, or some features may be ignored, or not implemented.
- the mutual coupling or direct coupling or communication connection shown or discussed may be through some interfaces, and the indirect coupling or communication connection of devices or units may be in electrical, mechanical or other forms.
- the units described as separate components may or may not be physically separated, and the components shown as units may or may not be physical units, that is, they may be located in one place, or may be distributed to multiple network units. Part or all of the units can be selected according to actual needs to achieve the purpose of the solution of this embodiment.
- each functional unit in each embodiment of the present application may be integrated into one processing unit, each unit may exist separately physically, or two or more units may be integrated into one unit.
- the functions described are realized in the form of software functional units and sold or used as independent products, they can be stored in a computer-readable storage medium.
- the technical solution of the present application is essentially or the part that contributes to the prior art or the part of the technical solution can be embodied in the form of a software product, and the computer software product is stored in a storage medium, including Several instructions are used to make a computer device (which may be a personal computer, a server, or a network device, etc.) execute all or part of the steps of the methods described in the various embodiments of the present application.
- the aforementioned storage media include: U disk, mobile hard disk, read-only memory (Read-Only Memory, ROM), random access memory (Random Access Memory, RAM), magnetic disk or optical disc and other media that can store program codes. .
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Abstract
Description
Claims (62)
- 一种信道繁忙率的测量方法,其特征在于,包括:终端设备根据目标时间之前的N个时间单元内针对侧行接收信号强度指示SL RSSI的测量结果,确定所述目标时间的信道繁忙率CBR。
- 如权利要求1所述的方法,其特征在于,所述N个时间单元为所述终端设备可进行SL RSSI测量的时间单元,或者,所述N个时间单元不包括所述终端设备无法进行SL RSSI测量的时间单元。
- 如权利要求1或2所述的方法,其特征在于,所述N个时间单元包括非连续接收DRX激活期内的部分或者全部时间单元,或者,所述N个时间单元包括DRX激活期内和DRX非激活期内所述终端设备可进行SLRSSI测量的时间单元。
- 如权利要求3所述的方法,其特征在于,所述DRX激活期内包括的时间单元的数量通过以下至少之一确定:侧行DRX持续定时器,侧行DRX去激活定时器,侧行DRX重传定时器。
- 如权利要求1或2所述的方法,其特征在于,所述N个时间单元包括资源侦听窗内至少一个周期内的部分或者全部候选时间单元,且所述N个时间单元不包括资源侦听窗内的非候选时间单元。
- 如权利要求5所述的方法,其特征在于,所述至少一个周期内包括的候选时间单元的数量和时域位置通过所述终端设备在资源选择窗选取的候选时间单元的数量和时域位置确定。
- 如权利要求6所述的方法,其特征在于,所述终端设备在资源选择窗选取的候选时间单元的数量是根据配置参数确定的,其中,所述配置参数用于指示在资源选择窗内选取的最小时间单元数量。
- 如权利要求5至7中任一项所述的方法,其特征在于,所述方法应用于基于部分侦听进行资源选取的场景。
- 如权利要求1至8中任一项所述的方法,其特征在于,所述N个时间单元是位于所述目标时间单元之前且距离所述目标时间单元最近的终端设备可进行SLRSSI测量的N个时间单元。
- 如权利要求1至9中任一项所述的方法,其特征在于,所述N个时间单元不包括以下至少之一:所述终端设备无法进行侦听的时间单元,不存在侦听结果的时间单元,所述终端设备发送侧行信息的时间单元。
- 如权利要求1至10中任一项所述的方法,其特征在于,N为预配置或协议约定的,或者,N为网络设备配置的。
- 如权利要求1至10中任一项所述的方法,其特征在于,N为网络设备通过资源池配置中包括的指示信息指示的。
- 如权利要求1至12中任一项所述的方法,其特征在于,所述N个时间单元中的时间单元包括以下至少之一:时隙、符号、子帧。
- 一种信道繁忙率的测量方法,其特征在于,包括:网络设备向终端设备发送第一信息,所述第一信息用于指示目标时间之前的N个时间单元,所述N个时间单元内针对侧行接收信号强度指示SL RSSI的测量结果用于确定所述目标时间的信道繁忙率CBR。
- 如权利要求14所述的方法,其特征在于,所述N个时间单元为所述终端设备可进行SL RSSI测量的时间单元,或者,所述N个时间单元不包括所述终端设备无法进行SL RSSI测量的时间单元。
- 如权利要求14或15所述的方法,其特征在于,所述N个时间单元包括非连续接收DRX激活期内的部分或者全部时间单元,或者,所述N个时间单元包括DRX激活期内和DRX非激活期内所述终端设备可进行SLRSSI测量的时间单元。
- 如权利要求16所述的方法,其特征在于,所述DRX激活期内包括的时间单元的数量通过以下至少之一确定:侧行DRX持续定时器,侧行DRX去激活定时器,侧行DRX重传定时器。
- 如权利要求14或15所述的方法,其特征在于,所述N个时间单元包括资源侦听窗内至少一个周期内的部分或者全部候选时间单元,且所述N个时间单元不包括资源侦听窗内的非候选时间单元。
- 如权利要求18所述的方法,其特征在于,所述至少一个周期内包括的候选时间单元的数量和时域位置通过所述终端设备在资源选择窗选取的候选时间单元的数量和时域位置确定。
- 如权利要求19所述的方法,其特征在于,所述终端设备在资源选择窗选取的候选时间单元的数量是根据配置参数确定的,其中,所述配置参数用于指示在资源选择窗内选取的最小时间单元数量。
- 如权利要求18至20中任一项所述的方法,其特征在于,所述方法应用于基于部分侦听进行资源选取的场景。
- 如权利要求14至21中任一项所述的方法,其特征在于,所述N个时间单元是位于所述目标时间单元之前且距离所述目标时间单元最近的终端设备可进行SLRSSI测量的N个时间单元。
- 如权利要求14至22中任一项所述的方法,其特征在于,所述N个时间单元不包括以下至少之一:所述终端设备无法进行侦听的时间单元,不存在侦听结果的时间单元,所述终端设备发送侧行信息的时间单元。
- 如权利要求14至23中任一项所述的方法,其特征在于,N为预配置或协议约定的,或者,N为网络设备配置的。
- 如权利要求14至23中任一项所述的方法,其特征在于,N为网络设备通过资源池配置中包括的指示信息指示的。
- 如权利要求14至25中任一项所述的方法,其特征在于,所述N个时间单元中的时间单元包括以下至少之一:时隙、符号、子帧。
- 一种终端设备,其特征在于,包括:处理单元,用于根据目标时间之前的N个时间单元内针对侧行接收信号强度指示SL RSSI的测量结果,确定所述目标时间的信道繁忙率CBR。
- 如权利要求27所述的终端设备,其特征在于,所述N个时间单元为所述终端设备可进行SL RSSI测量的时间单元,或者,所述N个时间单元不包括所述终端设备无法进行SL RSSI测量的时间单元。
- 如权利要求27或28所述的终端设备,其特征在于,所述N个时间单元包括非连续接收DRX激活期内的部分或者全部时间单元,或者,所述N个时间单元包括DRX激活期内和DRX非激活期内所述终端设备可进行SLRSSI测量的时间单元。
- 如权利要求29所述的终端设备,其特征在于,所述DRX激活期内包括的时间单元的数量通过以下至少之一确定:侧行DRX持续定时器,侧行DRX去激活定时器,侧行DRX重传定时器。
- 如权利要求27或28所述的终端设备,其特征在于,所述N个时间单元包括资 源侦听窗内至少一个周期内的部分或者全部候选时间单元,且所述N个时间单元不包括资源侦听窗内的非候选时间单元。
- 如权利要求31所述的终端设备,其特征在于,所述至少一个周期内包括的候选时间单元的数量和时域位置通过所述终端设备在资源选择窗选取的候选时间单元的数量和时域位置确定。
- 如权利要求32所述的终端设备,其特征在于,所述终端设备在资源选择窗选取的候选时间单元的数量是根据配置参数确定的,其中,所述配置参数用于指示在资源选择窗内选取的最小时间单元数量。
- 如权利要求31至33中任一项所述的终端设备,其特征在于,所述终端设备应用于基于部分侦听进行资源选取的场景。
- 如权利要求27至34中任一项所述的终端设备,其特征在于,所述N个时间单元是位于所述目标时间单元之前且距离所述目标时间单元最近的终端设备可进行SLRSSI测量的N个时间单元。
- 如权利要求27至35中任一项所述的终端设备,其特征在于,所述N个时间单元不包括以下至少之一:所述终端设备无法进行侦听的时间单元,不存在侦听结果的时间单元,所述终端设备发送侧行信息的时间单元。
- 如权利要求27至36中任一项所述的终端设备,其特征在于,N为预配置或协议约定的,或者,N为网络设备配置的。
- 如权利要求27至36中任一项所述的终端设备,其特征在于,N为网络设备通过资源池配置中包括的指示信息指示的。
- 如权利要求27至38中任一项所述的终端设备,其特征在于,所述N个时间单元中的时间单元包括以下至少之一:时隙、符号、子帧。
- 一种网络设备,其特征在于,包括:通信单元,用于向终端设备发送第一信息,所述第一信息用于指示目标时间之前的N个时间单元,所述N个时间单元内针对侧行接收信号强度指示SL RSSI的测量结果用于确定所述目标时间的信道繁忙率CBR。
- 如权利要求40所述的网络设备,其特征在于,所述N个时间单元为所述终端设备可进行SL RSSI测量的时间单元,或者,所述N个时间单元不包括所述终端设备无法进行SL RSSI测量的时间单元。
- 如权利要求40或41所述的网络设备,其特征在于,所述N个时间单元包括非连续接收DRX激活期内的部分或者全部时间单元,或者,所述N个时间单元包括DRX激活期内和DRX非激活期内所述终端设备可进行SLRSSI测量的时间单元。
- 如权利要求42所述的网络设备,其特征在于,所述DRX激活期内包括的时间单元的数量通过以下至少之一确定:侧行DRX持续定时器,侧行DRX去激活定时器,侧行DRX重传定时器。
- 如权利要求40或41所述的网络设备,其特征在于,所述N个时间单元包括资源侦听窗内至少一个周期内的部分或者全部候选时间单元,且所述N个时间单元不包括资源侦听窗内的非候选时间单元。
- 如权利要求44所述的网络设备,其特征在于,所述至少一个周期内包括的候选时间单元的数量和时域位置通过所述终端设备在资源选择窗选取的候选时间单元的数量和时域位置确定。
- 如权利要求45所述的网络设备,其特征在于,所述终端设备在资源选择窗选取的候选时间单元的数量是根据配置参数确定的,其中,所述配置参数用于指示在资源选 择窗内选取的最小时间单元数量。
- 如权利要求44至46中任一项所述的网络设备,其特征在于,所述网络设备应用于基于部分侦听进行资源选取的场景。
- 如权利要求40至47中任一项所述的网络设备,其特征在于,所述N个时间单元是位于所述目标时间单元之前且距离所述目标时间单元最近的终端设备可进行SLRSSI测量的N个时间单元。
- 如权利要求40至48中任一项所述的网络设备,其特征在于,所述N个时间单元不包括以下至少之一:所述终端设备无法进行侦听的时间单元,不存在侦听结果的时间单元,所述终端设备发送侧行信息的时间单元。
- 如权利要求40至49中任一项所述的网络设备,其特征在于,N为预配置或协议约定的,或者,N为网络设备配置的。
- 如权利要求40至49中任一项所述的网络设备,其特征在于,N为网络设备通过资源池配置中包括的指示信息指示的。
- 如权利要求40至51中任一项所述的网络设备,其特征在于,所述N个时间单元中的时间单元包括以下至少之一:时隙、符号、子帧。
- 一种终端设备,其特征在于,包括:处理器和存储器,该存储器用于存储计算机程序,所述处理器用于调用并运行所述存储器中存储的计算机程序,执行如权利要求1至13中任一项所述的方法。
- 一种网络设备,其特征在于,包括:处理器和存储器,该存储器用于存储计算机程序,所述处理器用于调用并运行所述存储器中存储的计算机程序,执行如权利要求14至26中任一项所述的方法。
- 一种芯片,其特征在于,包括:处理器,用于从存储器中调用并运行计算机程序,使得安装有所述芯片的设备执行如权利要求1至13中任一项所述的方法。
- 一种芯片,其特征在于,包括:处理器,用于从存储器中调用并运行计算机程序,使得安装有所述芯片的设备执行如权利要求14至26中任一项所述的方法。
- 一种计算机可读存储介质,其特征在于,用于存储计算机程序,所述计算机程序使得计算机执行如权利要求1至13中任一项所述的方法。
- 一种计算机可读存储介质,其特征在于,用于存储计算机程序,所述计算机程序使得计算机执行如权利要求14至26中任一项所述的方法。
- 一种计算机程序产品,其特征在于,包括计算机程序指令,该计算机程序指令使得计算机执行如权利要求1至13中任一项所述的方法。
- 一种计算机程序产品,其特征在于,包括计算机程序指令,该计算机程序指令使得计算机执行如权利要求14至26中任一项所述的方法。
- 一种计算机程序,其特征在于,所述计算机程序使得计算机执行如权利要求1至13中任一项所述的方法。
- 一种计算机程序,其特征在于,所述计算机程序使得计算机执行如权利要求14至26中任一项所述的方法。
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