WO2024032665A1 - Procédé et appareil de configuration, équipement d'utilisateur et dispositif côté réseau - Google Patents

Procédé et appareil de configuration, équipement d'utilisateur et dispositif côté réseau Download PDF

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Publication number
WO2024032665A1
WO2024032665A1 PCT/CN2023/112031 CN2023112031W WO2024032665A1 WO 2024032665 A1 WO2024032665 A1 WO 2024032665A1 CN 2023112031 W CN2023112031 W CN 2023112031W WO 2024032665 A1 WO2024032665 A1 WO 2024032665A1
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WIPO (PCT)
Prior art keywords
configuration
network side
side device
beam failure
wake
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PCT/CN2023/112031
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English (en)
Chinese (zh)
Inventor
洪琪
王臣玺
李�根
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维沃移动通信有限公司
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Publication of WO2024032665A1 publication Critical patent/WO2024032665A1/fr

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/20Manipulation of established connections
    • H04W76/28Discontinuous transmission [DTX]; Discontinuous reception [DRX]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0048Allocation of pilot signals, i.e. of signals known to the receiver
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/08Testing, supervising or monitoring using real traffic
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/046Wireless resource allocation based on the type of the allocated resource the resource being in the space domain, e.g. beams
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W74/00Wireless channel access
    • H04W74/08Non-scheduled access, e.g. ALOHA
    • H04W74/0833Random access procedures, e.g. with 4-step access
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02DCLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
    • Y02D30/00Reducing energy consumption in communication networks
    • Y02D30/70Reducing energy consumption in communication networks in wireless communication networks

Definitions

  • This application belongs to the field of communication technology, and specifically relates to a configuration method, device, user equipment and network side equipment.
  • C-DRX Cell Discontinuous Reception
  • the network side device is configured on the network side device. If the network side device is in the active state during the DRX configuration period, the network side device can monitor and receive uplink signals and/or uplink channels; if the network side device is in the active state during the DRX configuration period, In the inactive state, the network side device does not receive or monitor uplink signals and/or uplink channels. Therefore, the user equipment (User Equipment, UE) is required to send a wake-up signal WUS to indicate whether the network side device is activated in the subsequent DRX cycle. wake. If the network side device detects the WUS signal sent by the UE, it enters the active state, monitors and receives uplink signals and/or uplink channels; otherwise, the network side device continues to be in the inactive state in subsequent C-DRX cycles.
  • UE User Equipment
  • the network side device may not be able to receive this request. Therefore, feedback information cannot be sent to the UE, so that the UE cannot establish a new beam connection. In this way, a configuration method is urgently needed so that the UE can receive feedback information sent by the network side device, thereby establishing a new beam connection.
  • Embodiments of the present application provide a configuration method, device, user equipment, and network side equipment, which enable the UE to receive feedback information sent by the network side equipment, thereby establishing a new beam connection.
  • a configuration method includes: the UE obtains a first configuration; the UE determines transmission modes corresponding to at least two time domain locations according to the first configuration; wherein the first configuration is based on the network side device.
  • the discontinuous transmission configuration is determined; the discontinuous transmission configuration includes: a second configuration and a third configuration; the second configuration is: a discontinuous transmission configuration that requires the UE to send a wake-up signal to wake up; the third configuration is: wake up after a preset time coming discontinuous transfer configuration.
  • a configuration device which includes: an acquisition module and a determination module; and an acquisition module for acquiring the first configuration.
  • Determining module configured to determine at least two configurations according to the first configuration obtained by the obtaining module The transmission method corresponding to each time domain position.
  • the first configuration is determined based on the discontinuous transmission configuration of the network side device;
  • the discontinuous transmission configuration includes: the second configuration and the third configuration;
  • the second configuration is: the discontinuous transmission configuration that requires the UE to send a wake-up signal to wake up;
  • the third configuration is: a discontinuous transmission configuration that wakes up after a preset time.
  • a configuration method includes: the network side device configures a first configuration; the network side device sends the first configuration; wherein the first configuration is determined based on the discontinuous transmission configuration of the network side device;
  • the continuous transmission configuration includes: a second configuration and a third configuration; the second configuration is: a discontinuous transmission configuration that requires the UE to send a wake-up signal to wake up; and the third configuration is: a discontinuous transmission configuration that wakes up after a preset time.
  • a configuration device which includes: a configuration module and a sending module.
  • Configuration module used to configure the first configuration.
  • the sending module is used to send the first configuration configured by the configuration module.
  • the first configuration is determined based on the discontinuous transmission configuration of the network side device; the discontinuous transmission configuration includes: the second configuration and the third configuration; the second configuration is: discontinuous transmission that requires the user equipment UE to send a wake-up signal to wake up Configuration; the third configuration is: discontinuous transmission configuration that wakes up after a preset time.
  • a terminal in a fifth aspect, includes a processor and a memory.
  • the memory stores programs or instructions that can be run on the processor.
  • the program or instructions are executed by the processor, the following implementations are implemented: The steps of the method described in one aspect.
  • a terminal including a processor and a communication interface, wherein the processor is configured to obtain a first configuration; and determine transmission modes corresponding to at least two time domain positions according to the first configuration.
  • a network side device in a seventh aspect, includes a processor and a memory.
  • the memory stores programs or instructions that can be run on the processor.
  • the program or instructions are executed by the processor.
  • a network side device including a processor and a communication interface, wherein the processor is configured to configure a first configuration and send the first configuration.
  • a ninth aspect provides a configuration system, including: a terminal and a network side device.
  • the terminal can be used to perform the steps of the configuration method as described in the first aspect.
  • the network side device can be used to perform the steps of the configuration method as described in the third aspect.
  • a readable storage medium is provided. Programs or instructions are stored on the readable storage medium. When the programs or instructions are executed by a processor, the steps of the method described in the first aspect are implemented, or the steps of the method are implemented as described in the first aspect. The steps of the method described in the third aspect.
  • a chip in an eleventh aspect, includes a processor and a communication interface.
  • the communication interface is coupled to the processor.
  • the processor is used to run programs or instructions to implement the method described in the first aspect. The steps of a method, or steps of implementing a method as described in the third aspect.
  • a computer program/program product is provided, the computer program/program product is stored in a storage medium, and the computer program/program product is executed by at least one processor to implement as described in the first aspect
  • the UE obtains the first configuration; the UE determines at least two time domains based on the first configuration The transmission mode corresponding to the location; wherein, the first configuration is determined based on the discontinuous transmission configuration of the network side device; the discontinuous transmission configuration includes: the second configuration and the third configuration; the second configuration is: the UE needs to send a wake-up signal to wake up The discontinuous transmission configuration; the third configuration is: the discontinuous transmission configuration that wakes up after a preset time.
  • the UE can obtain the first configuration determined according to the second configuration and the third configuration, that is, the UE can obtain at least two configurations, and thus can determine the transmission modes corresponding to at least two time domain locations, therefore, the UE can obtain the first configuration according to at least two configurations.
  • the transmission method corresponding to each time domain position sends data to the network side device, so that the UE can receive feedback information sent by the network side device, thereby establishing a new beam connection.
  • Figure 1 is a schematic architectural diagram of a communication system provided by an embodiment of the present application.
  • Figure 2 is a schematic diagram of a beam establishment method provided by an embodiment of the present application.
  • Figure 3 is a schematic diagram of selecting and determining a downlink beam provided by an embodiment of the present application.
  • Figure 4 is a schematic diagram of beam failure recovery provided by an embodiment of the present application.
  • Figure 5 is a schematic diagram of beam failure detection provided by an embodiment of the present application.
  • Figure 6 is a schematic diagram of the operation of a downlink wake-up signal provided by an embodiment of the present application.
  • Figure 7 is one of the schematic diagrams of a configuration method provided by an embodiment of the present application.
  • Figure 8 is a second schematic diagram of a configuration method provided by an embodiment of the present application.
  • Figure 9 is one of the structural schematic diagrams of a configuration device provided by an embodiment of the present application.
  • Figure 10 is the second structural schematic diagram of a configuration device provided by an embodiment of the present application.
  • Figure 11 is a schematic diagram of the hardware structure of a communication device provided by an embodiment of the present application.
  • Figure 12 is a schematic diagram of the hardware structure of a UE provided by an embodiment of the present application.
  • Figure 13 is a schematic diagram of the hardware structure of a network-side device provided by an embodiment of the present application.
  • first, second, etc. in the description and claims of this application are used to distinguish similar objects and are not used to describe a specific order or sequence. It is to be understood that the terms so used are interchangeable under appropriate circumstances so that the embodiments of the present application can be practiced in sequences other than those illustrated or described herein, and “first” and “second” are intended to distinguish It is usually one type, and the number of objects is not limited.
  • the first object can be one or multiple.
  • “and/or” in the description and claims indicates at least one of the connected objects, and the character “/" generally indicates that the related objects are in an "or” relationship.
  • LTE Long Term Evolution
  • LTE-Advanced, LTE-A Long Term Evolution
  • CDMA Code Division Multiple Access
  • TDMA Time Division Multiple Access
  • FDMA Frequency Division Multiple Access
  • OFDMA Orthogonal Frequency Division Multiple Access
  • SC-FDMA Single-carrier Frequency Division Multiple Access
  • NR New Radio
  • FIG. 1 shows a block diagram of a wireless communication system to which embodiments of the present application are applicable.
  • the wireless communication system includes a terminal 11 and a network side device 12.
  • the terminal 11 can be a mobile phone, a tablet computer (Tablet Personal Computer), a laptop computer (Laptop Computer), or a notebook computer, a personal digital assistant (Personal Digital Assistant, PDA), a handheld computer, a netbook, or a super mobile personal computer.
  • Tablet Personal Computer Tablet Personal Computer
  • laptop computer laptop computer
  • PDA Personal Digital Assistant
  • PDA Personal Digital Assistant
  • UMPC ultra-mobile personal computer
  • UMPC mobile Internet device
  • Mobile Internet Device MID
  • augmented reality augmented reality, AR
  • VR virtual reality
  • robots wearable devices
  • VUE vehicle-mounted equipment
  • PUE pedestrian terminal
  • smart home home equipment with wireless communication functions, such as refrigerators, TVs, washing machines or furniture, etc.
  • game consoles personal computers (personal computers, PC), teller machines or self-service Terminal devices
  • wearable devices include: smart watches, smart bracelets, smart headphones, smart glasses, smart jewelry (smart bracelets, smart bracelets, smart rings, smart necklaces, smart anklets, smart anklets, etc.), Smart wristbands, smart clothing, etc.
  • the network side equipment 12 may include access network equipment or core network equipment, where the access network equipment 12 may also be called wireless access network equipment, radio access network (Radio Access Network, RAN), radio access network function or Wireless access network unit.
  • the access network device 12 may include a base station, a WLAN access point or a WiFi node, etc.
  • the base station may be called a Node B, an evolved Node B (eNB), an access point, a Base Transceiver Station (BTS), a radio Base station, radio transceiver, Basic Service Set (BSS), Extended Service Set (ESS), Home B-Node, Home Evolved B-Node, Transmitting Receiving Point (TRP) or all
  • eNB evolved Node B
  • BTS Base Transceiver Station
  • BSS Basic Service Set
  • ESS Extended Service Set
  • Home B-Node Home Evolved B-Node
  • TRP Transmitting Receiving Point
  • 5G NR due to the lack of low-frequency resources, 5G NR usually uses high-frequency bands, such as millimeter waves; however, since the propagation loss of high-frequency bands is greater than that of low-frequency bands, its coverage distance is worse than that of LTE. Therefore, in order to solve the above problems, multi-antenna beam forming can be used to enhance the signal and thereby enhance the coverage.
  • high-frequency bands such as millimeter waves
  • Beamforming is a signal processing technique that uses an array of sensors to send and receive signals in a direction. Beamforming technology adjusts the parameters of the basic units of the phase array so that signals at certain angles obtain constructive interference, while signals at other angles obtain destructive interference, so that the antenna beam points in a specific direction. Among them, the establishment of the downlink beam is generally determined by the synchronization signal block (Synchronization Signal block, SSB) and the channel state information reference signal (Channel State Information-Reference Signal, CSI-RS) reference signal.
  • SSB Synchronization Signal block
  • CSI-RS Channel State Information-Reference Signal
  • the same SSB is usually sent to different directions in the form of beams according to Time Division Duplexing (TDD), so that UEs in all directions can receive the SSB.
  • TDD Time Division Duplexing
  • Figure 2 shows a method of establishing a downlink beam through SSB.
  • the base station sends multiple SSBs (corresponding to different SSB indexes) covering different directions.
  • the UE receives multiple SSBs with different signal strengths, so it can select an SSB beam with the strongest signal from multiple SSBs with different signal strengths.
  • the NR random access process uses beams, in which the SSB has multiple transmission opportunities within the time domain period, and has corresponding numbers, which can correspond to different beams respectively.
  • the UE only when the SSB beam scans When the signal covers the UE, the UE has the opportunity to send the preamble. Therefore, when the network side device receives the preamble from the UE, it can obtain the best downlink beam. Therefore, it is necessary to establish an association between SSB and preamble. Since preamble can only be sent on the downlink random access channel (Physical Random Access Channel, PRACH) occasion, the association between SSB and PRACH occasion can be established.
  • PRACH Physical Random Access Channel
  • Figure 3 is a schematic diagram illustrating a downlink beam selection and determination. As shown in Figure 3, the downlink beam selection and determination can be implemented through the following steps 11 to 13.
  • the base station is used as the transmitting end Tx and the UE receiving end Rx is used as an example for explanation:
  • Step 11 Tx sends SSB signals for beam scanning (one SSB corresponds to one Tx beam).
  • both the base station and the UE beam are traversing, and the UE side needs to automatically find a suitable Rx beam for each SSB signal.
  • SSB is the top layer of quasi co-location technology (Quasi Co-Location, QCL), it needs to ensure that each SSB corresponds to a suitable Rx beam.
  • Step 12 Tx performs beam refinement scanning by sending CSI-RS (periodic, semi-persistent or aperiodic) or SSB (periodic only) signals within the wide beam range of Tx determined in step 11, where, Rx beam No change, determine Tx narrow beam narrow beam.
  • CSI-RS periodic, semi-persistent or aperiodic
  • SSB periodic only
  • step 13 can be understood as not configuring the QCL relationship, the UE independently receives and scans the signal, and the Rx performs beam scanning to determine the Rx beam.
  • BFR Beam Failure Recovery
  • the UE Since the UE monitors the Physical Downlink Control Channel (PDCCH) through periodic reference signals, which refers to the communication quality of the channel, if the UE finds that the channel cannot provide reliable communication, the UE will declare a beam failure. The UE will then be notified of the failure indication and a new suitable beam.
  • PDCCH Physical Downlink Control Channel
  • Beam failure recovery is a process that combines L1 (physical layer) and L2 (MAC layer) operations, in which beam failure detection (Beam Failure Dection, BFD) and recovery involve related protocols 321 of the MAC layer in L2, and related content of the L1 layer Reflected in 213, also known as link recovery.
  • Beam failure recovery consists of the following four parts: beam failure detection (similar to, but different from, Radio Link Management (RLM)), determination of new candidate beams, beam failure recovery request, and beam recovery.
  • RLM Radio Link Management
  • Figure 4 shows a schematic diagram of beam failure recovery provided by an embodiment of the present application.
  • the UE measures the Beam Failure Detection Reference Signal (BFD RS) at the physical layer and determines whether a beam failure event occurs based on the measurement results.
  • the condition for judgment is: if it is detected that the metric of all control beam control beams (obtaining the hypothetical physical downlink control channel PDCCH) block error rate (Block Error Rate) meets the preset conditions (ie: exceeds the preset threshold, the If the threshold is the corresponding bler), it is determined to be a beam failure indication (Beam Failure Instance, BFI).
  • the UE physical layer reports an indication to the UE upper layer (MAC layer).
  • the reporting process is periodic, and the BFI reporting period is BFD RS.
  • the shortest period, the lower bound is 2ms.
  • the UE upper layer uses counter (Counter) and timer (Timer) to count the BFI reported by the physical layer. Every time it receives BFI, it restarts the timer (Beam Failure Recovery Timer). When the timer times out, the counter counts again. When the counter reaches the network configuration When the maximum number of times, the UE declares that a beam failure event has occurred.
  • the counter and timer of the UE's MAC layer are configured for each active bandwidth part (Bandwidth Part, BWP), and the counter and timer on each BWP are started and maintained independently.
  • Figure 5 shows a schematic diagram of beam failure detection provided by an embodiment of the present application.
  • BFD-RS can be configured through explicit or implicit methods.
  • BFD-RS is represented by set q0.
  • the UE expects single port RS in the set q0.
  • Display configuration Configure periodic CSI-RS resources as BFD-RS to the UE through Radio Resource Control (RRC).
  • RRC Radio Resource Control
  • BFD-RS must have a QCL relationship with PDCCH DMRS (CORESET).
  • the RS used for BFD/RLM may be jointly configured, that is, in one RRC message.
  • Implicit configuration BFD-RS is determined by the RS in the activated TCI state corresponding to the PDCCH, and the index of the RS is included in set q0.
  • TCI state contains two RSs
  • the RS corresponding to QCL type D is taken.
  • the BFD-RS set will be updated as the PDCCH tag control information (Tag Control Information, TCI) state is updated.
  • the reference signal in Set q1 is associated with the physical random access channel resource, which can be regarded as the beam associated with the PRACH resource.
  • q-new new candidate beam
  • BFRQ will be performed on the PRACH resource corresponding to q_new.
  • NBI-RS must be configured.
  • the reference signal may be: (1)P-CSI-RS; (2) SSB; (3) SBB+CSI-RS
  • the UE physical layer When the UE physical layer is looking for a new candidate beam, it will report the measurement results that meet the preset conditions (that is, L1-RSRP is greater than the configured value rsrp-ThresholdSSB) to the UE upper layer.
  • the reporting form (CRI/SSBRI, L1-RSRP) and beam The reporting is the same,
  • the physical layer reports the CSI-RS/SSB index and L1-RSRP values whose L1-RSRP value is greater than the threshold to the higher layer;
  • the physical layer will first think about the high-level knowledge to see if there is an RS that meets the L1-RSRP threshold. If there is, the RS index that meets the threshold condition and its measured L1-RSRP value will be reported to the high-level.
  • the UE upper layer selects a new candidate beam based on the physical layer report.
  • the MAC layer determines the PRACH channel (configured by the network) based on the selected new beam to perform BFRQ.
  • the threshold of L1-RSRP is divided into two situations:
  • RRC configures high-level parameters: rsrp-ThresholdSSB
  • RRC does not directly configure the threshold, but implicitly derives the L1-RSRP threshold of CSI-RS by configuring: powerControlOffsetSS (the power difference between CSI-RS and SSB).
  • a PDCCH-based wake-up signal is introduced.
  • the function of WUS is to inform the UE whether it needs to monitor the PDCCH during the duration (onDuration) of a specific discontinuous reception (Discontinuous Reception, DRX).
  • DRX discontinuous Reception
  • Figure 6 shows a schematic diagram of the operation of a downlink wake-up signal provided by an embodiment of the present application.
  • the WUS signal is a kind of downlink channel control information (Downlink Control Information, DCI), referred to as DCP (DCI with CRC scrambled by PS-RNTI), of which power saving RNTI (Power Saving-RNTI, PS-RNTI) It is an RNTI assigned by the network side device to the UE specifically for power saving features.
  • DCI Downlink Control Information
  • PS-RNTI Power Saving-RNTI
  • the DCI scrambled with this RNTI carries the network's wakeup/sleep instruction to the UE. Based on this indication, the UE decides whether to start the onDuration timer in the next DRX cycle and whether to monitor the PDCCH.
  • Figure 7 shows a flow chart of a configuration method provided by an embodiment of the present application.
  • the configuration method provided by the embodiment of the present application may include the following steps 201 and 202.
  • Step 201 The UE obtains the first configuration.
  • Step 202 The UE determines transmission modes corresponding to at least two time domain locations according to the first configuration.
  • the first configuration is determined based on the discontinuous transmission configuration of the network side device.
  • the UE may obtain the first configuration determined based on the discontinuous transmission configuration of the network side device, so that the UE may determine transmission modes corresponding to at least two time domain locations based on the obtained first configuration.
  • the discontinuous transmission configuration includes: a second configuration and a third configuration.
  • the second configuration is: a discontinuous transmission configuration that requires the UE to send a wake-up signal to wake up;
  • the third configuration is: a discontinuous transmission configuration that wakes up after a preset time.
  • the first configuration is determined based on the discontinuous transmission configuration of the network side device, including any of the following:
  • the first configuration is determined based on the second configuration and the third configuration
  • the first configuration is determined based on the fourth configuration, and the fourth configuration is generated by combining the second configuration and the third configuration.
  • the preset time is determined based on the wake-up parameter.
  • the wake-up parameters include at least one of the following: a predetermined wake-up period, a fixed wake-up time, and a fixed number of discontinuous transmission cycles; the wake-up parameters are preconfigured or agreed upon by the protocol.
  • the first configuration is determined based on the second configuration and the third configuration.
  • the network side device is configured with two sets of configurations, that is, the second configuration and the third configuration are configured at the same time.
  • the UE can simultaneously Get the second configuration and the third configuration.
  • the first configuration is determined based on the fourth configuration
  • the fourth configuration is generated by a combination of the second configuration and the third configuration.
  • the network side device is based on the second configuration and the third configuration.
  • the combination generates a set of fourth configurations, that is, when the fourth configuration generated by combination is configured, the UE obtains the fourth configuration.
  • the at least two time domain positions include at least: a first time domain position and a second time domain position;
  • the transmission methods include:
  • the UE In the second time domain position, the UE needs to send a wake-up signal before transmitting the channel or signal.
  • the UE may determine the transmission mode corresponding to at least the first time domain position and the second time domain position according to the first configuration.
  • the UE may determine transmission modes at different time domain locations according to the first configuration.
  • the UE may confirm the manner of performing uplink channel and/or uplink signal transmission/downlink channel and/or downlink signal reception at different time domain locations according to the first configuration.
  • the method of performing uplink channel and/or uplink signal transmission/downlink channel and/or downlink signal reception at different time domain positions can be understood as:
  • a wake-up signal needs to be sent at the second time domain position to transmit the uplink channel and/or uplink signal
  • a wake-up signal needs to be sent at the second time domain position to receive the downlink channel and/or downlink signal.
  • the UE may obtain a first configuration, where the first configuration includes a second configuration and a third configuration, or the first configuration includes a fourth configuration generated by a combination of the second configuration and the third configuration. .
  • the UE when the first configuration includes the second configuration, that is, the UE is required to send a wake-up signal at the second time domain position, so that the network side device performs channel or signal transmission; in When the first configuration includes the third configuration, the network side device does not need the UE to send a wake-up signal, and the network side device can wake up after a preset time, or the network side device can wake up according to a fixed number of discontinuous transmission cycles, then the UE According to the second configuration and the third configuration, it may be determined that the channel or signal is directly transmitted at the first time domain position.
  • the network side device configures a discontinuous transmission configuration that requires the UE to send a wake-up signal to wake up (including a fixed number of discontinuous transmission cycles, etc.), And wake up once every fixed number of non-consecutive transmission cycles.
  • the wake-up parameters may be obtained by the UE through downlink RRC signaling or a downlink channel.
  • downlink channels/signals include: SSB, SIB1, PDCCH, PDSCH, MAC-CE, CSI-RS, etc.
  • the configuration method provided by this application also includes the following steps 301 and 302.
  • Step 301 When a beam failure event occurs, the UE determines the transmission information of the first beam failure recovery request according to the first configuration.
  • the transmission information includes: the maximum number of times the first beam failure recovery request is sent, or the target time domain position for sending the first beam failure recovery request.
  • the UE may determine the transmission information of the first beam failure recovery request according to the first configuration.
  • the UE may determine the first beam failure recovery request according to the first configuration.
  • the maximum number of transmissions, or the target time domain position of the first beam failure recovery request is the maximum number of transmissions, or the target time domain position of the first beam failure recovery request.
  • the UE determines the transmission information of the first beam failure recovery request according to the first configuration in the above step 301 can be specifically performed through the following step 301a, or step 301b, or step 301c, or step 301d implementation.
  • Step 301a The UE directly determines the maximum number of sending first beam failure recovery requests according to the first configuration.
  • the UE may directly determine the maximum number of transmissions of the first beam failure recovery request according to the third configuration, or the UE may directly determine the maximum number of transmissions of the first beam failure recovery request according to the fourth configuration.
  • the UE may directly determine the maximum number of transmissions of the first beam failure recovery request based on the fixed number of discontinuous transmission cycles of discontinuous propagation.
  • Step 301b The UE sends the target time domain position of the first beam failure recovery request according to the first configuration.
  • the UE may directly send the target time domain position of the first beam failure recovery request according to the third configuration, or the UE may directly send the target time domain position of the first beam failure recovery request according to the fourth configuration.
  • the UE may directly send the target time domain position of the first beam failure recovery request according to the fixed number of discontinuous transmission cycles of discontinuous propagation.
  • Step 301c The UE determines the maximum number of transmissions of the first beam failure recovery request according to the first configuration and the cycle duration corresponding to the discontinuous transmission configuration.
  • the UE may determine the maximum number of sending first beam failure recovery requests based on the third configuration and the cycle duration corresponding to the discontinuous transmission configuration, or the UE may determine the maximum number of transmissions of the first beam failure recovery request based on the fourth configuration and the cycle duration corresponding to the discontinuous transmission configuration.
  • the cycle length is used to determine the maximum number of times the first beam failure recovery request is sent.
  • the UE can determine the cycle duration corresponding to the discontinuous transmission configuration based on the fixed wake-up time, so that the UE determines the maximum number of transmissions of the first beam failure recovery request based on the cycle duration corresponding to the discontinuous transmission configuration.
  • Step 301d The UE sends the target time domain position of the first beam failure recovery request according to the first configuration and the cycle duration corresponding to the discontinuous transmission configuration.
  • the UE may send the target time domain position of the first beam failure recovery request according to the third configuration and the cycle duration corresponding to the discontinuous transmission configuration, or the UE may send the target time domain position of the first beam failure recovery request according to the fourth configuration and the discontinuous transmission configuration. Cycle duration, target time domain position for sending the first beam failure recovery request.
  • the UE can determine the cycle duration corresponding to the discontinuous transmission configuration based on the fixed wake-up time, so that the UE sends the target time domain of the first beam failure recovery request according to the cycle duration corresponding to the discontinuous transmission configuration. Location.
  • Step 302 The UE sends a first beam failure recovery request to the network side device based on the transmission information.
  • the configuration method provided by this application also includes the following step 401 or step 402.
  • Step 401 When the number of times the first beam failure recovery request sent by the UE reaches the maximum number of times, the UE sends a second beam failure recovery request to the network side device.
  • the UE can establish a connection with the network side device by sending a second beam failure recovery request to the network side device. New beam connection.
  • the UE can report the second beam failure recovery request to the network side device through a new beam connection.
  • Step 402 If the UE does not receive the first feedback information fed back by the network side device at the first time domain position, the UE sends a second beam failure recovery request to the network side device.
  • the UE may communicate with the network by sending a second beam failure recovery request to the network side device.
  • the side device establishes a new beam connection.
  • the UE can report the second beam failure recovery to the network side device through a new beam connection. ask.
  • the UE can report a suitable beam (assumed to be Beam 1) to the network side device according to the measurement configuration sent by the network side device. If the network side device does not receive the UE beam at this time, If the network side device sends a wake-up signal, the network side device will not send feedback information to the UE, and the connection of Beam 1 will fail. However, if the network side device is set to wake up once in 5 non-consecutive transmission cycles, the UE It can be determined that after sending Beam 1 5 times, the network side device can receive it once.
  • a suitable beam assumed to be Beam 1
  • the UE does not receive the feedback information sent by the network side device after sending it 5 times to the network side device, it proves that the Beam 1 connection is unsuccessful. , at this time, the UE can report another Beam 2 that is different from Beam 1 to reconnect with the network side device.
  • the UE when a beam failure event occurs in the UE, if the UE confirms that it can directly transmit uplink channels and/or uplink signals at the first time domain position, and can directly transmit downlink channels and/or signals at the first time domain position.
  • the UE may choose to only send the beam failure recovery request in the first time domain position.
  • Embodiments of the present application provide a configuration method.
  • the UE obtains the first configuration; the UE determines the transmission modes corresponding to at least two time domain positions according to the first configuration; wherein the first configuration is determined based on the discontinuous transmission configuration of the network side device.
  • the discontinuous transmission configuration includes: a second configuration and a third configuration; the second configuration is: a discontinuous transmission configuration that requires the UE to send a wake-up signal to wake up; the third configuration is: a discontinuous transmission that wakes up after a preset time configuration.
  • the UE can obtain the first configuration determined according to the second configuration and the third configuration, that is, the UE can obtain at least two configurations, and thus can determine the transmission modes corresponding to at least two time domain locations, therefore, the UE can obtain the first configuration according to at least two configurations.
  • the transmission method corresponding to each time domain position sends data to the network side device, so that the UE can receive feedback information sent by the network side device, thereby establishing a new beam connection.
  • Figure 8 shows a flow chart of a configuration method provided by an embodiment of the present application.
  • the configuration method provided by the embodiment of the present application may include the following steps 501 and 502.
  • Step 501 The network side device configures the first configuration.
  • the first configuration is determined based on the discontinuous transmission configuration of the network side device
  • Discontinuous transmission configurations include: second configuration and third configuration;
  • the second configuration is: a discontinuous transmission configuration that requires the user equipment UE to send a wake-up signal to wake up;
  • the third configuration is: a discontinuous transmission configuration that wakes up after a preset time.
  • Step 502 The network side device sends the first configuration.
  • the first configuration is determined based on the discontinuous transmission configuration of the network side device, including any of the following:
  • the first configuration is determined based on the second configuration and the third configuration
  • the first configuration is determined based on the fourth configuration, and the fourth configuration is generated by combining the second configuration and the third configuration.
  • the first configuration is sent by the network side device to the UE through resource control signaling or a downlink channel.
  • downlink data may be transmitted at the location indicated by the first configuration.
  • the network side device can configure important or necessary information such as common signals (Common Signal), PDCCH, and paging messages to be transmitted at this location.
  • Common Signal Common Signal
  • PDCCH Physical Downlink Control Channel
  • paging messages to be transmitted at this location.
  • the network side device may monitor uplink data at the location indicated by the first configuration.
  • the network side device can configure the configuration authorization signal (Configured Grant, CG), channel sounding reference signal (Sounding Reference Signal, SRS) SRS, CSI-RE report and other important or necessary messages. Configure reception at this location.
  • the embodiment of the present application provides a configuration method.
  • the network side device can configure the first configuration and send the first configuration to the UE. Since the first configuration is determined by the network side device based on the second configuration and the third configuration, that is, The network side device can configure a first configuration including at least two sets of configurations, and send the first configuration to the UE, so that the UE can obtain the first configuration determined according to the second configuration and the third configuration, that is, the UE can obtain at least Two configurations, so that the transmission modes corresponding to at least two time domain locations can be determined. Therefore, the UE can send data to the network side device according to the transmission modes corresponding to at least two time domain locations, so that the network side device can receive the data sent by the UE. data and send feedback information to the UE to establish a new beam connection.
  • the execution subject may be a configuration device.
  • the configuration device performing the configuration method is taken as an example to illustrate the configuration device provided by the embodiment of the present application.
  • Figure 9 shows a possible structural diagram of the configuration device involved in the embodiment of the present application.
  • the configuration device 60 may include: an acquisition module 61 and a determination module 62 .
  • the acquisition module 61 is used to acquire the first configuration.
  • the determining module 62 is configured to determine the transmission modes corresponding to at least two time domain positions according to the first configuration obtained by the obtaining module 61 .
  • the first configuration is determined based on the discontinuous transmission configuration of the network side device;
  • the discontinuous transmission configuration includes: the second configuration and the third configuration;
  • the second configuration is: the discontinuous transmission configuration that requires the UE to send a wake-up signal to wake up;
  • the third configuration is: a discontinuous transmission configuration that wakes up after a preset time.
  • Embodiments of the present application provide a configuration device. Since the UE can obtain the first configuration determined based on the second configuration and the third configuration, that is, the UE can obtain at least two configurations, thereby determining at least two time domain locations corresponding to the first configuration. pass transmission mode, therefore, the UE can send data to the network side device according to the transmission mode corresponding to at least two time domain positions, so that the UE can receive feedback information sent by the network side device, thereby establishing a new beam connection.
  • the at least two time domain positions include at least: a first time domain position and a second time domain position; wherein the transmission method includes: directly transmitting a channel or signal at the first time domain position ; In the second time domain position, the UE needs to send a wake-up signal before transmitting the channel or signal.
  • the first configuration is determined based on the discontinuous transmission configuration of the network side device, including any of the following: the first configuration is determined based on the second configuration and the third configuration; the first configuration is Determined based on the fourth configuration, which is generated by combining the second configuration and the third configuration.
  • the above-mentioned configuration device 60 also includes: a sending module; and a determining module 62, which is also configured to determine the transmission information of the first beam failure recovery request according to the first configuration when a beam failure event occurs,
  • the transmission information includes: the maximum number of times the first beam failure recovery request is sent, or the target time domain position for sending the first beam failure recovery request.
  • the sending module is also configured to send a first beam failure recovery request to the network side device based on the transmission information determined by the determining module 62 .
  • the determination module 62 is specifically configured to directly determine the maximum number of times to send the first beam failure recovery request according to the first configuration, or to send the target time domain position of the first beam failure recovery request; or , according to the first configuration and the cycle duration corresponding to the discontinuous transmission configuration, determine the maximum number of times of sending the first beam failure recovery request, or determine the target time domain position for sending the first beam failure recovery request.
  • the sending module is also configured to, after sending the first beam failure recovery request to the network side device based on the transmission information determined by the determination module 62, send the first beam failure recovery request sent by the UE.
  • the number of times reaches the maximum number of transmissions, or when the UE does not receive the first feedback information fed back by the network side device at the first time domain position, a second beam failure recovery request is sent to the network side device.
  • the preset time is determined based on wake-up parameters; wherein the wake-up parameters include at least one of the following: a predetermined wake-up period, a fixed wake-up time, and a fixed number of non-continuous transmission cycles; the wake-up parameters are preconfigured or as stipulated in the agreement.
  • Figure 10 shows a possible structural schematic diagram of the configuration device involved in the embodiment of the present application.
  • the configuration device 70 includes: a configuration module 71 and a sending module 72 .
  • the configuration module 71 is used to configure the first configuration.
  • the sending module 72 is configured to send the first configuration configured by the configuration module 71 .
  • the first configuration is determined based on the discontinuous transmission configuration of the network side device; the discontinuous transmission configuration includes: the second configuration and the third configuration; the second configuration is: discontinuous transmission that requires the user equipment UE to send a wake-up signal to wake up Configuration; the third configuration is: discontinuous transmission configuration that wakes up after a preset time.
  • the embodiment of the present application provides a configuration device.
  • the network side device can configure the first configuration and send the first configuration to the UE. Since the first configuration is determined by the network side device based on the second configuration and the third configuration, that is, The network side device can configure a first configuration including at least two sets of configurations, and send the first configuration to the UE, so that the UE can obtain the first configuration determined according to the second configuration and the third configuration, that is, the UE can obtain at least Two configurations, so that the transmission modes corresponding to at least two time domain locations can be determined. Therefore, the UE can send data to the network side device according to the transmission modes corresponding to at least two time domain locations, so that the network side device can receive the data sent by the UE. data and send feedback information to the UE to establish a new beam connection.
  • the first configuration is determined based on the discontinuous transmission configuration of the network side device, including any of the following: the first configuration is determined based on the second configuration and the third configuration; the first configuration is Determined based on the fourth configuration, which is generated by combining the second configuration and the third configuration.
  • the first configuration is sent by the network side device to the UE through resource control signaling or a downlink channel.
  • the configuration device in the embodiment of the present application may be an electronic device, such as an electronic device with an operating system, or may be a component in the electronic device, such as an integrated circuit or chip.
  • the electronic device may be a terminal or other devices other than the terminal.
  • terminals may include but are not limited to the types of terminals 11 listed above, and other devices may be servers, network attached storage (Network Attached Storage, NAS), etc., which are not specifically limited in the embodiment of this application.
  • NAS Network Attached Storage
  • the configuration device provided by the embodiments of the present application can implement each process implemented by the above method embodiments and achieve the same technical effect. To avoid duplication, details will not be described here.
  • this embodiment of the present application also provides a communication device 800, which includes a processor 801 and a memory 802.
  • the memory 802 stores programs or instructions that can be run on the processor 801, for example.
  • the communication device 800 is a terminal, when the program or instruction is executed by the processor 801, each step of the above configuration method embodiment is implemented, and the same technical effect can be achieved.
  • the communication device 800 is a network-side device, when the program or instruction is executed by the processor 801, each step of the above configuration method embodiment is implemented, and the same technical effect can be achieved. To avoid duplication, the details are not repeated here.
  • An embodiment of the present application also provides a UE 100, which includes a processor and a communication interface.
  • the processor is configured to obtain a first configuration; and determine transmission modes corresponding to at least two time domain locations according to the first configuration.
  • This terminal embodiment corresponds to the above-mentioned terminal-side method embodiment.
  • Each implementation process and implementation manner of the above-mentioned method embodiment can be applied to this terminal embodiment, and can achieve the same technical effect.
  • FIG. 12 is a schematic diagram of the hardware structure of a UE 100 that implements an embodiment of the present application.
  • the UE 100 includes but is not limited to: at least one of the radio frequency unit 101, the network module 102, the audio output unit 103, the input unit 104, the sensor 105, the display unit 106, the user input unit 107, the interface unit 108, the memory 109, the processor 110, etc. Some parts.
  • the terminal 100 may also include a power supply (such as a battery) that supplies power to various components.
  • the power supply may be logically connected to the processor 110 through a power management system, thereby managing charging, discharging, and power consumption through the power management system. Management and other functions.
  • the terminal structure shown in Figure 12 does not constitute a limitation on the terminal.
  • the terminal may include more or fewer components than shown in the figure, or some components may be combined or arranged differently, which will not be described again here.
  • the input unit 104 may include a graphics processing unit (GPU) 1041 and a microphone 1042.
  • the graphics processor 1041 is responsible for the image capture device (GPU) in the video capture mode or the image capture mode. Process the image data of still pictures or videos obtained by cameras (such as cameras).
  • the display unit 106 may include a display panel 1061, which may be configured in the form of a liquid crystal display, an organic light emitting diode, or the like.
  • the user input unit 107 includes a touch panel 1071 and at least one of other input devices 1072 . Touch panel 1071 is also called a touch screen.
  • the touch panel 1071 may include two parts: a touch detection device and a touch controller.
  • Other input devices 1072 may include, but are not limited to, physical keyboards, function keys (such as volume control keys, switch buttons, etc.) keys, etc.), trackball, mouse, and joystick, which will not be described in detail here.
  • the radio frequency unit 101 after receiving downlink data from the network side device, the radio frequency unit 101 can transmit it to the processor 110 for processing; in addition, the radio frequency unit 101 can send uplink data to the network side device.
  • the radio frequency unit 101 includes, but is not limited to, an antenna, an amplifier, a transceiver, a coupler, a low noise amplifier, a duplexer, etc.
  • Memory 109 may be used to store software programs or instructions as well as various data.
  • the memory 109 may mainly include a first storage area for storing programs or instructions and a second storage area for storing data, wherein the first storage area may store an operating system, an application program or instructions required for at least one function (such as a sound playback function, Image playback function, etc.) etc.
  • memory 109 may include volatile memory or nonvolatile memory, or memory 109 may include both volatile and nonvolatile memory.
  • 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), electrically removable memory.
  • Volatile memory can be random access memory (Random Access Memory, RAM), static random access memory (Static RAM, SRAM), 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, DDRSDRAM), enhanced synchronous dynamic random access memory (Enhanced SDRAM, ESDRAM), synchronous link dynamic random access memory (Synch link DRAM) , SLDRAM) and direct memory bus random access memory (Direct Rambus RAM, DRRAM).
  • RAM Random Access Memory
  • SRAM static random access memory
  • DRAM dynamic random access memory
  • DRAM synchronous dynamic random access memory
  • SDRAM double data rate synchronous dynamic random access memory
  • Double Data Rate SDRAM Double Data Rate SDRAM
  • DDRSDRAM double data rate synchronous dynamic random access memory
  • Enhanced SDRAM, ESDRAM synchronous dynamic random access memory
  • Synch link DRAM synchronous link dynamic random access memory
  • SLDRAM direct memory
  • the processor 110 may include one or more processing units; optionally, the processor 110 integrates an application processor and a modem processor, where the application processor mainly handles operations related to the operating system, user interface, application programs, etc., Modem processors mainly process wireless communication signals, such as baseband processors. It can be understood that the above modem processor may not be integrated into the processor 110 .
  • the processor 110 is configured to obtain the first configuration, and determine transmission modes corresponding to at least two time domain positions according to the first configuration.
  • the first configuration is determined based on the discontinuous transmission configuration of the network side device;
  • the discontinuous transmission configuration includes: the second configuration and the third configuration;
  • the second configuration is: the discontinuous transmission configuration that requires the UE to send a wake-up signal to wake up;
  • the third configuration is: a discontinuous transmission configuration that wakes up after a preset time.
  • This embodiment of the present application provides a UE
  • the processor 110 is also configured to determine the transmission information of the first beam failure recovery request according to the first configuration when a beam failure event occurs.
  • the transmission information includes: the maximum number of transmissions of the first beam failure recovery request, Alternatively, the target time domain position of the first beam failure recovery request is sent, and based on the transmission information, the first beam failure recovery request is sent to the network side device.
  • the processor 110 is specifically configured to directly determine the maximum number of transmissions of the first beam failure recovery request according to the first configuration, or to send the target time domain position of the first beam failure recovery request; or, according to the first configuration and the period duration corresponding to the discontinuous transmission configuration to determine the maximum number of times the first beam failure recovery request is sent, or the target time domain position for sending the first beam failure recovery request.
  • the processor 110 is also configured to, after sending the first beam failure recovery request to the network side device based on the transmission information, when the number of sending times of the first beam failure recovery request sent by the UE reaches the maximum number of sending times, Alternatively, if the UE does not receive the first feedback information fed back by the network side device at the first time domain position, the UE sends a second beam failure recovery request to the network side device.
  • An embodiment of the present application also provides a network side device, including a processor and a communication interface.
  • the processor is configured to configure a first configuration and send the first configuration.
  • This network-side device embodiment corresponds to the above-mentioned network-side device method embodiment.
  • Each implementation process and implementation manner of the above-mentioned method embodiment can be applied to this network-side device embodiment, and can achieve the same technical effect.
  • the embodiment of the present application also provides a network side device.
  • the network side device 900 includes: an antenna 91 , a radio frequency device 92 , a baseband device 93 , a processor 94 and a memory 95 .
  • the antenna 91 is connected to the radio frequency device 92 .
  • the radio frequency device 92 receives information through the antenna 91 and sends the received information to the baseband device 93 for processing.
  • the baseband device 93 processes the information to be sent and sends it to the radio frequency device 92.
  • the radio frequency device 92 processes the received information and then sends it out through the antenna 91.
  • the method performed by the network side device in the above embodiment can be implemented in the baseband device 93, which includes a baseband processor.
  • the baseband device 93 may include, for example, at least one baseband board on which multiple chips are disposed, as shown in FIG. Program to perform the network device operations shown in the above method embodiments.
  • the network side device may also include a network interface 96, which is, for example, a common public radio interface (CPRI).
  • a network interface 96 which is, for example, a common public radio interface (CPRI).
  • CPRI common public radio interface
  • the network side device 900 in this embodiment of the present invention also includes: instructions or programs stored in the memory 95 and executable on the processor 94.
  • the processor 94 calls the instructions or programs in the memory 95 to execute the above contents. The method of module execution and achieving the same technical effect will not be described in detail here to avoid duplication.
  • the processor 94 is used to configure the first configuration.
  • Processor 94 configured to send the first configuration.
  • the first configuration is determined based on the discontinuous transmission configuration of the network side device;
  • the discontinuous transmission configuration includes: the second configuration and the third configuration;
  • the second configuration is: discontinuous transmission that requires the user equipment UE to send a wake-up signal to wake up Configuration;
  • the third configuration is: discontinuous transmission configuration that wakes up after a preset time.
  • Embodiments of the present application provide a network side device.
  • the network side device can configure a first configuration and send the first configuration to the UE. Since the first configuration is determined by the network side device based on the second configuration and the third configuration, That is, the network side device can configure a first configuration including at least two sets of configurations, and send the first configuration to the UE, so that the UE can obtain the first configuration determined according to the second configuration and the third configuration, that is, the UE can obtain There are at least two configurations, so that the transmission modes corresponding to at least two time domain locations can be determined. Therefore, the UE can send data to the network side device according to the transmission modes corresponding to at least two time domain locations, so that the network side device can receive the UE The data sent is sent and feedback information is sent to the UE to establish a new beam connection.
  • Embodiments of the present application also provide a readable storage medium.
  • Programs or instructions are stored on the readable storage medium.
  • the program or instructions are executed by a processor, each process of the above configuration method embodiment is implemented and the same can be achieved. To avoid repetition, the technical effects will not be repeated here.
  • the processor is the processor in the terminal described in the above embodiment.
  • the readable storage medium includes computer readable storage media, such as computer read-only memory ROM, random access memory RAM, magnetic disk or optical disk wait.
  • An embodiment of the present application further provides a chip.
  • the chip includes a processor and a communication interface.
  • the communication interface is coupled to the processor.
  • the processor is used to run programs or instructions to implement each of the above configuration method embodiments. The process can achieve the same technical effect. To avoid repetition, it will not be described again here.
  • chips mentioned in the embodiments of this application may also be called system-on-chip, system-on-a-chip, system-on-chip or system-on-chip, etc.
  • Embodiments of the present application further provide a computer program/program product.
  • the computer program/program product is stored in a storage medium.
  • the computer program/program product is executed by at least one processor to implement the above configuration method embodiment.
  • Each process can achieve the same technical effect. To avoid duplication, it will not be described again here.
  • Embodiments of the present application also provide a configuration system, including: a UE and a network side device.
  • the UE can be used to perform the steps of the configuration method as described above.
  • the network side device can be used to perform the steps of the configuration method as described above. step.
  • the methods of the above embodiments can be implemented by means of software plus the necessary general hardware platform. Of course, it can also be implemented by hardware, but in many cases the former is better. implementation.
  • the technical solution of the present application can be embodied in the form of a computer software product that is essentially or contributes to the existing technology.
  • the computer software product is stored in a storage medium (such as ROM/RAM, disk , CD), including several instructions to cause a terminal (which can be a mobile phone, computer, server, air conditioner, or network device, etc.) to execute the methods described in various embodiments of this application.

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  • Engineering & Computer Science (AREA)
  • Signal Processing (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Mobile Radio Communication Systems (AREA)

Abstract

La présente demande, qui relève du domaine des communications, concerne un procédé et un appareil de configuration, un équipement d'utilisateur et un dispositif côté réseau. Le procédé de configuration dans les modes de réalisation de la présente demande comprend les étapes suivantes : l'équipement d'utilisateur (UE) acquiert une première configuration ; et l'UE détermine, selon la première configuration, des modes de transmission correspondant à au moins deux positions de domaine temporel. La première configuration est déterminée sur la base de configurations de transmission discontinue du dispositif côté réseau ; les configurations de transmission discontinue comprennent une deuxième configuration et une troisième configuration, la deuxième configuration est une configuration de transmission discontinue dans laquelle un réveil demande à l'UE d'envoyer un signal de réveil, et la troisième configuration est une configuration de transmission discontinue dans laquelle un réveil survient après un temps prédéfini.
PCT/CN2023/112031 2022-08-10 2023-08-09 Procédé et appareil de configuration, équipement d'utilisateur et dispositif côté réseau WO2024032665A1 (fr)

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CN202210959407.1A CN117676932A (zh) 2022-08-10 2022-08-10 配置方法、装置、用户设备以及网络侧设备
CN202210959407.1 2022-08-10

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Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN110809331A (zh) * 2018-08-06 2020-02-18 华为技术有限公司 接收参考信号的方法和通信设备
CN113038634A (zh) * 2019-12-24 2021-06-25 维沃移动通信有限公司 唤醒信号配置方法、唤醒信号处理方法及相关设备

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN110809331A (zh) * 2018-08-06 2020-02-18 华为技术有限公司 接收参考信号的方法和通信设备
CN113038634A (zh) * 2019-12-24 2021-06-25 维沃移动通信有限公司 唤醒信号配置方法、唤醒信号处理方法及相关设备

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