Communication processing method and apparatus, device, and readable storage medium

By adjusting the transmission power of CG PUSCH in idle or inactive state in the terminal according to the reference signal or resource type, the problem of the inability to adapt to the transmission power in full duplex mode is solved, self-interference is reduced, and the reception performance of downlink transmission is improved.

WO2025108321A1PCT designated stage expired Publication Date: 2025-05-30VIVO MOBILE COMM CO LTD
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Patent Information

Application Number
PCT/CN2024/133272
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-11-22
Filing Date
2024-11-20
Publication Date
2025-05-30

AI Technical Summary

Technical Problem

When the terminal is operating in full duplex mode, the transmission power transmitted by CG PUSCH cannot be effectively adapted in idle or inactive state, resulting in self-interference and side-link interference problems.

Method used

By determining the transmission power of the CG PUSCH in an idle or inactive state in the terminal, it is adjusted according to the reference signal set or resource type corresponding to the first reference signal, or according to the resource type corresponding to the CG PUSCH of the terminal.

Benefits of technology

The adaptation of CG PUSCH transmission transmission power in idle or inactive state is achieved, reducing the impact of self-interference and ensuring the reception performance of downlink transmission.

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Abstract

The present application discloses a communication processing method and apparatus, a device, and a readable storage medium. The method comprises: when a terminal works in a full duplex transmission mode, on the basis of a reference signal set or a resource type corresponding to a first reference signal or on the basis of a resource type corresponding to a CG PUSCH of the terminal, the terminal determines the transmit power of the CG PUSCH when in an idle state or an inactive state.
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Description

Communication processing method, device, equipment and readable storage medium

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS

[0002] This application claims priority to the Chinese patent application filed with the China Patent Office on November 22, 2023, with application number 202311567562.X and invention name “Communication processing method, device, equipment and readable storage medium”, the entire contents of which are incorporated by reference into this application. Technical Field

[0003] The present application belongs to the field of communication technology, and specifically relates to a communication processing method, apparatus, device and readable storage medium. Background Art

[0004] When a terminal (e.g., User Equipment (UE)) operates in full-duplex mode, it may be interfered with by its own uplink transmission signals when receiving downlink transmissions from a base station, and may also cause side-link interference to downlink transmissions of other terminals.

[0005] If a terminal initiates a Configured Grant (CG) Physical Uplink Shared Channel (PUSCH) transmission in the idle or inactive state while receiving a downlink transmission, the impact of self-interference is related to the transmit power of the CG PUSCH transmission in the idle or inactive state sent by the UE. For example, the greater the transmit power, the greater the interference caused. In existing methods, the transmit power of the CG PUSCH transmission in the idle or inactive state initiated by the UE cannot be well adapted to transmission in full-duplex mode. Summary of the Invention

[0006] The embodiments of the present application provide a communication processing method, apparatus, device, and readable storage medium to solve the problem of how to adapt the transmit power of CG PUSCH transmission in an idle state or an inactive state to full-duplex transmission.

[0007] In a first aspect, a communication processing method is provided, comprising:

[0008] When the terminal operates in full-duplex transmission mode, the terminal determines the transmission power of the CG PUSCH in the idle state or inactive state according to the reference signal set or resource type corresponding to the first reference signal, or according to the resource type corresponding to the CGPUSCH of the terminal.

[0009] In a second aspect, a communication processing device is provided, including:

[0010] A determination module is used to determine the transmission power of the CG PUSCH in an idle state or an inactive state according to the reference signal set or resource type corresponding to the first reference signal, or according to the resource type corresponding to the CG PUSCH of the terminal when the terminal operates in full-duplex transmission mode.

[0011] In a third aspect, a terminal is provided, comprising: a processor, a memory, and a program or instruction stored in the memory and executable on the processor, wherein the program or instruction, when executed by the processor, implements the steps of the method described in the first aspect.

[0012] In a fourth aspect, a readable storage medium is provided, on which a program or instruction is stored. When the program or instruction is executed by a processor of a terminal, the steps of the method described in the first aspect are implemented.

[0013] In a fifth aspect, a chip is provided, comprising a processor and a communication interface, wherein the communication interface is coupled to the processor, and the processor is configured to run a program or instruction to implement the steps of the method described in the first aspect.

[0014] In a sixth aspect, a computer program / program product is provided, wherein the computer program / program product is stored in a non-volatile storage medium, and the program / program product is executed by at least one processor to implement the steps of the method described in the first aspect.

[0015] In a seventh aspect, a communication system is provided, comprising a terminal and a network-side device, wherein the terminal is configured to execute the steps of the method described in the first aspect.

[0016] In an embodiment of the present application, when the terminal operates in full-duplex transmission mode, the terminal determines the transmit power of the CG PUSCH in an idle state or an inactive state based on the reference signal set or resource type corresponding to the first reference signal, or based on the resource type corresponding to the CG PUSCH of the terminal, so that the transmit power of the CG PUSCH transmission in the idle state or the inactive state can adapt to full-duplex transmission, allowing the terminal to reduce the impact of self-interference when performing full-duplex transmission, thereby ensuring the reception performance of the downlink transmission. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] FIG1 is a schematic diagram of a flexible duplex mode;

[0018] FIG2 is a schematic diagram of the architecture of a wireless communication system according to an embodiment of the present application;

[0019] FIG3 is a flow chart of a communication processing method provided in an embodiment of the present application;

[0020] FIG4 is a schematic diagram of a communication processing device provided in an embodiment of the present application;

[0021] FIG5 is a schematic diagram of a terminal according to an embodiment of the present application;

[0022] FIG6 is a second schematic diagram of a terminal provided in an embodiment of the present application. DETAILED DESCRIPTION

[0023] The following will be combined with the accompanying drawings in the embodiments of this application to clearly describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field are within the scope of protection of this application.

[0024] The terms "first", "second", etc. in this application are used to distinguish similar objects, and are not used to describe a specific order or sequence. It should be understood that the terms used in this way are interchangeable where appropriate, so that the embodiments of the present application can be implemented in an order other than those illustrated or described herein, and the objects distinguished by "first" and "second" are generally of the same type, and do not limit the number of objects, for example, the first object can be one or more. In addition, "or" in this application represents at least one of the connected objects. For example, "A or B" covers three options, namely, Option 1: including A but not including B; Option 2: including B but not including A; Option 3: including both A and B. The character " / " generally indicates that the objects associated before and after are in an "or" relationship.

[0025] It is worth noting that the technology described in the embodiments of the present application is not limited to the Long Term Evolution (LTE) / LTE-Advanced (LTE-A) system, but can also be used in other wireless communication systems, such as Code Division Multiple Access (CDMA), Time Division Multiple Access (TDMA), Frequency Division Multiple Access (FDMA), Orthogonal Frequency Division Multiple Access (OFDMA), Single-carrier Frequency Division Multiple Access (SC-FDMA) or other systems. The terms "system" and "network" in this application are often used interchangeably, and the technology described can be used for the systems and radio technologies mentioned above, as well as for other systems and radio technologies. The following description describes a New Radio (NR) system for example purposes, and NR terminology is used in most of the following description, but these technologies can also be applied to systems other than NR system applications, such as 6th Generation (6G) communication systems.

[0026] To facilitate understanding of the embodiments of this application, the following technical points are first introduced:

[0027] 1. Subband full duplex (SBFD) on the base station side and half duplex on the terminal side.

[0028] When deploying traditional cellular networks, frequency division duplex (FDD) or time division duplex (TDD) can be used, depending on the available spectrum and service characteristics. In FDD, uplink and downlink transmissions occur on different frequencies, preventing interference and allowing simultaneous transmission. In TDD, uplink and downlink transmissions occur on the same frequency, interleaved using time division. Each duplex method has its own advantages and disadvantages.

[0029] In order to more flexibly utilize limited spectrum resources, dynamically match business needs, improve resource utilization efficiency, and improve the uplink coverage, latency and other performance of data transmission, a flexible duplex mode is proposed. A flexible duplex mode (for example, SBFD, non-overlapping SBFD) is: full-duplex on the network side, that is, at the same time, uplink transmission and downlink transmission can be carried out simultaneously at different frequency domain positions. In order to avoid interference between uplink and downlink, a certain guard band (Guard Band) can be reserved between the frequency domain positions corresponding to different transmission directions (corresponding to duplex sub-bands); half-duplex on the terminal side, that is, consistent with TDD, at the same time, only uplink transmission or downlink transmission can be carried out, and the two cannot be carried out at the same time. It can be understood that in this duplex mode, the uplink transmission and downlink transmission on the network side at the same time can only be targeted at different terminals.

[0030] Figure 1 illustrates the flexible duplexing scheme described above. Within a portion of downlink symbols, the network semi-statically divides the frequency domain of a single carrier into three duplex subbands. Downlink subbands are located on either side of the carrier, while the center is an uplink subband. This reduces interference with adjacent carriers. In the third time slot, Terminal 1 (UE1) transmits uplink and Terminal 2 (UE2) receives downlink, respectively. At this point, the terminals operate in half-duplex mode.

[0031] 2. Uplink power control:

[0032] In New Radio (NR) system design, new features are being considered for uplink transmission, such as Orthogonal Frequency Division Multiplexing (OFDM)-based uplink transmission and a single-symbol uplink control channel. Uplink power control is also a key component, encompassing the following key points:

[0033] i. There is no cell-specific reference signal similar to Long Term Evolution (LTE) for path loss estimation;

[0034] ii. Beam-based transmission / reception;

[0035] iii. Analog beamforming at the base station or terminal;

[0036] iv. Multi-beam or multi-stream transmission;

[0037] v. Multiple parameter sets (numerology);

[0038] vi. Information exchange between Transmission and Receiving Points (TRPs);

[0039] 3. Road damage compensation.

[0040] Based on the uplink power control in current LTE systems, two path loss compensation methods are considered: full path loss compensation and partial path loss compensation. In NR systems, it can be considered that the UE uses a specific type of reference signal (RS) to measure the reference signal received power (RSRP). The UE then uses RSRP to derive the path loss between the UE and its associated base station (the next generation Node B, gNB).

[0041] By taking into account the estimated path loss, the uplink transmission power from the UE is fully or partially compensated. First, full path loss compensation maximizes fairness for cell-edge UEs; in other words, the power received by the gNB from a cell-edge UE will be comparable to that received from a cell-center UE. On the other hand, if partial path loss compensation is used, the gNB-side received power from a cell-center UE will be significantly higher than that from a cell-edge UE. Compensating for the path loss of cell-edge UEs can be achieved by adjusting other power parameters or offsets so that the received power from cell-edge UEs can be appropriately controlled, while the power received from cell-center UEs may be redundant due to the already sufficient received power.

[0042] In the case of uplink data channel transmission, this redundant power can be used to improve spectral efficiency by applying a higher modulation and coding scheme (MCS) level (e.g., a cell-center UE can use a smaller number of physical resource blocks (PRBs) for the same transport block (TB) size). On the other hand, in the case of uplink control channel transmission using a fixed amount of resources, it is unclear how redundant power can be used to improve spectral efficiency, since the uplink control information (UCI) size will not depend on the UE location or channel conditions. Therefore, it is best to consider full compensation of uplink control channel power control.

[0043] In addition, in the case of partial path loss compensation for uplink data channel transmission, the value of the partial path loss compensation factor can be used to adjust the received power difference between the cell center UE and the cell edge UE, and this value can be different according to the cell radius and target performance.

[0044] 4. Transmit Power Control (TPC) command

[0045] TPC commands can be used to compensate for channel variations caused by fast fading. With respect to current LTE, the Physical Uplink Control Channel (PUCCH) power can be adjusted by TPC commands signaled in the downlink allocation Downlink Control Information (DCI), while the Physical Uplink Shared Channel (PUSCH) (or Sounding Reference Signal (SRS)) power can be adjusted by TPC commands signaled in the uplink grant DCI. In addition, for uplink transmissions without associated DCI, such as semi-persistent scheduling (SPS), periodic Channel State Information (CSI), or SRS, TPC commands can be signaled to a specific terminal group (UE group) by using DCI format 3 / 3A. There are two types of TPC procedures for updating the uplink transmit power; one is cumulative TPC and the other is absolute TPC. Cumulative TPC is well suited for fine-tuning UE transmit power by using relatively small step sizes of TPC values. On the other hand, absolute TPC can be used to immediately increase UE transmit power by using a relatively large step size of the TPC value.

[0046] 5. Additional functions of power control in NR.

[0047] In NR design, it is necessary to consider deployments based on analog (or hybrid) beamforming, especially for high-frequency bands (e.g., above 6 GHz). With such analog beamforming, gNB transmit (TX) / receive (RX) beam scanning (e.g., time division multiplexing (TDM) between different gNB TX / RX beams) may be required not only to transmit downlink common signals and information, such as synchronization signals (e.g., Primary Synchronization Signal (PSS) / Secondary Synchronization Signal (SSS) in LTE) or broadcast system information (e.g., Physical Broadcast Channel (PBCH) in LTE), but also for uplink and downlink control and data channels to serve UEs located in different areas (or beam directions). In this case, it may be necessary to consider differentiating power control parameters between different beams for a UE, as the power required for UE performance will be different for each beam of the UE.

[0048] Typically, the amount of information transmitted through the uplink data channel will be much larger than that of the uplink control channel. Therefore, the power required for transmission of the uplink data channel will also be greater than that of the uplink control channel. For NR design, TDM is considered for the multiplexing structure between uplink data and control channels to reduce latency, flexible uplink and downlink configurations, and analog beamforming. In the case where uplink data and control channels are multiplexed via TDM, it is necessary to deal with the power imbalance between these two different channels, which may be larger than that of current LTE. In addition, considering the various OFDM numerologies used for NR (for example, different subcarrier spacing or symbol duration), it is also necessary to deal with the power transient periods between the uplink data and control channels for certain numerologies (such as large subcarrier spacing).

[0049] 6. Power control per TRP and per layer.

[0050] For high frequency bands in NR, the number of primary rays per TRP or single panel may be limited, and in order to achieve high single-user (SU) multiple-input multiple-output (MIMO) spectrum efficiency, coordinated transmission schemes across multiple TRPs need to be thoroughly studied in NR, including coordinated multiple points (CoMP) dynamic point selection (DPS) and independent layer joint transmission (JT). When the downlink-related DCI indicates the transmission rank and the coordination scheme applied, the DCI decoding latency on the UE side may be a major issue whenever simulated beamforming is applied in a given time instance. This is because the DCI transmission can be performed by the serving TRP, but as an example, the actual data transmission can be performed by another TRP.

[0051] In the case of independent layer JT, where specific layers can be transmitted from different TRPs, the uplink transmit power corresponding to each layer group may need to be configured and controlled by the gNB, as at least the path loss from different TRPs may be different. In addition, separate uplink power control procedures for different TRPs require further study in the context of uplink CoMP.

[0052] 7. Configured Grant (CG) PUSCH transmission in idle or inactive state.

[0053] Currently, NR supports configuring PUSCH resources scheduled by configured grant in the Radio Resource Control (RRC) inactive state for small data transmission.

[0054] The configured CG PUSCH resources need to be mapped to the synchronization signal block (Synchronization signal and Physical downlink broadcast channel block, SSB). The terminal selects an SSB that meets a certain RSRP quality based on the measurement of the SSB, and determines the CG PUSCH resources for small data transmission based on the selected SSB.

[0055] FIG2 shows a block diagram of a wireless communication system applicable to embodiments of the present application. The wireless communication system includes a terminal 21 and a network-side device 22 .

[0056] The terminal 21 may be a mobile phone, tablet computer, laptop computer, notebook computer, personal digital assistant (PDA), handheld computer, netbook, ultra-mobile personal computer (UMPC), mobile internet device (MID), augmented reality (AR) / virtual reality (VR) device, robot, wearable device, flight vehicle, vehicle user equipment (VUE), shipborne equipment, pedestrian user equipment (PUE), smart home (home appliances with wireless communication capabilities, such as refrigerators, televisions, washing machines, or furniture), game console, personal computer (PC), ATM or self-service machine, etc. 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. Among them, the vehicle-mounted device can also be called a vehicle-mounted terminal, a vehicle-mounted controller, a vehicle-mounted module, a vehicle-mounted component, a vehicle-mounted chip, or a vehicle-mounted unit, etc. In addition to the above-mentioned terminal devices, the terminal involved in this application can also be a chip within the terminal, such as a modem chip or a system-on-chip (SoC). It should be noted that the specific type of the terminal 21 is not limited in the embodiments of this application.

[0057] The network-side device 22 may include an access network device or a core network device, wherein the access network device may also be referred to as a radio access network device, a radio access network (RAN), a radio access network function, or a radio access network unit. The access network device may include a base station, a wireless local area network (WLAN) access point (AS), or a wireless fidelity (WiFi) node. A base station may be referred to as a Node B (NB), an evolved Node B (eNB), the next generation Node B (gNB), a New Radio Node B (NR Node B), an access point, a Relay Base Station (RBS), a Serving Base Station (SBS), a Base Transceiver Station (BTS), a radio base station, a radio transceiver, a Basic Service Set (BSS), an Extended Service Set (ESS), a Home Node B (HNB), a Home Evolved Node B, a Transmission Reception Point (TRP), or other appropriate terms in the art. As long as the same technical effect is achieved, the base station is not limited to a specific technical vocabulary. It should be noted that in the embodiment of the present application, only the base station in the NR system is used as an example for introduction, and the specific type of the base station is not limited.

[0058] The core network equipment may include but is not limited to at least one of the following: core network node, core network function, mobility management entity (MME), access and mobility management function (AMF), session management function (SMF), user plane function (UPF), policy control function (PCF), policy and charging rules function unit (PCRF), edge application service discovery function (EASDF), unified data management (UDM), unified data storage (UDR), home user server (HSS), centralized network configuration (CNC), network storage function (NRF), network exposure function (NEF), local NEF (L-NEF), binding support function (BSF), application function ( Function, AF), etc. It should be noted that in the embodiments of the present application, only the core network device in the NR system is introduced as an example, and the specific type of the core network device is not limited.

[0059] The communication processing method, apparatus, communication device, and readable storage medium provided in the embodiments of the present application are described in detail below with reference to some embodiments and their application scenarios in conjunction with the accompanying drawings.

[0060] 3 , an embodiment of the present application provides a communication processing method, which is executed by a terminal, and the specific steps include: step 301 .

[0061] Step 301: When the terminal operates in full-duplex transmission mode, the terminal determines the transmission power of the CG PUSCH in an idle state or an inactive state according to a reference signal set or resource type corresponding to a first reference signal, or according to a resource type corresponding to the CG PUSCH of the terminal.

[0062] In this embodiment, full-duplex may be referred to as enhanced duplex, enhanced duplex mode, Cross Division Duplex (XDD), enhanced full-duplex, enhanced full-duplex mode, sub-band full-duplex, etc.

[0063] In this embodiment, the CG PUSCH may also be a CG-Small Data Transmission (SDT) PUSCH.

[0064] In one embodiment of the present application, the first reference signal includes at least one reference signal associated with the CG PUSCH.

[0065] Optionally, the first reference signal may be a reference signal associated with the CG PUSCH within an association period. Optionally, the size of the association period is preset or network configured.

[0066] Optionally, the above-mentioned CG PUSCH may include a repeatedly transmitted CG PUSCH.

[0067] Optionally, the above-mentioned reference signals may include but are not limited to at least one of the following: synchronization signal block (Synchronization Signal and PBCH block, SSB), channel state information reference signal (Channel State Information Reference Signal, CSI-RS), tracking reference signal (Tracking Reference Signal, TRS), phase tracking reference signal (Phase-Tracking Reference Signals, PTRS), etc.

[0068] For example, in the case where the reference signal is SSB, the reference signal set corresponding to the first reference signal may include an SSB set corresponding to the SSB, and the resource type corresponding to the first reference signal may be a resource type corresponding to the SSB.

[0069] For example, when the reference signal is CSI-RS, the reference signal set corresponding to the first reference signal may include a CSI-RS set corresponding to the CSI-RS, and the resource type corresponding to the first reference signal may be a resource type corresponding to the CSI-RS.

[0070] In one embodiment of the present application, the resource type corresponding to the first reference signal includes at least one of the following:

[0071] (1) Type 1, which is used to indicate a time domain resource whose time domain format is downlink, that is, all frequency domain resources on this time domain resource unit are used for downlink (DL) transmission;

[0072] Optionally, the time domain resources may include one or more time slots, symbols, or subframes.

[0073] (2) The second type, which is used to represent time domain resources whose time domain format is a first format, where the first format is a time domain format for full-duplex transmission, and the frequency domain resources corresponding to the time domain resources of the first format include an uplink subband (DL subband) and a downlink subband (UL subband), that is, the entire bandwidth on the second type of time domain resources includes a downlink subband and an uplink subband.

[0074] Optionally, the second type may include at least one of the following:

[0075] (1) A third type, where the third type is used to indicate that the time domain format is a time domain resource of the first format, and the interval between the downlink subband and the uplink subband is greater than or equal to a first preset value;

[0076] (2) A fourth type, which is used to indicate that the time domain format is a time domain resource of the first format, and the interval between the downlink subband and the uplink subband is less than or equal to a second preset value.

[0077] It should be noted that the first preset value and the second preset value may be the same or different, and in this embodiment, there is no specific limitation on the first preset value and the second preset value.

[0078] In one embodiment of the present application, the reference signal set corresponding to the first reference signal includes at least one of the following:

[0079] (1) a first reference signal set, the first reference signal set including reference signals located in time domain resources whose time domain format is downlink;

[0080] For example, the first reference signal set includes reference signals located on a first type of time domain resources.

[0081] (2) a second reference signal set, the second reference signal set including reference signals located in time domain resources having a time domain format of a second format;

[0082] For example, the second reference signal set includes reference signals located on the second type of time domain resources.

[0083] (3) a third reference signal set, the third reference signal set including reference signals located in time domain resources having a time domain format of the second format, and an interval between a downlink subband and an uplink subband being greater than or equal to a third preset value;

[0084] For example, the third reference signal set includes reference signals located on a third type of time domain resources.

[0085] (4) a fourth reference signal set, the fourth reference signal set including reference signals located in time domain resources whose time domain format is the second format, and an interval between a downlink subband and an uplink subband is less than or equal to a fourth preset value;

[0086] The second format is a time-domain format for full-duplex transmission. The frequency-domain resources corresponding to the time-domain resources of the second format include uplink subbands and downlink subbands. The concept of the second format refers to the "time domain." The second format can be expressed as full-duplex, sub-band full-duplex, flexible full-duplex, or enhanced duplex.

[0087] For example, the fourth reference signal set includes reference signals located on a fourth type of time domain resources.

[0088] It should be noted that the third preset value and the fourth preset value may be the same as or different from each other, and in this embodiment, no specific limitation is imposed on the third preset value and the fourth preset value.

[0089] In one embodiment of the present application, the resource type corresponding to the CG PUSCH includes at least one of the following:

[0090] (1) The fifth type is used to indicate a time domain resource whose time domain format is uplink (UL);

[0091] (1) Type 6, which indicates that the time domain format is the third format and does not include time domain resources of downlink common or broadcast signals;

[0092] The downlink common or broadcast signal includes but is not limited to one of the following: SSB, System Information Block (SIB), Master Information Block (MIB), and paging signal.

[0093] (1) Type 7, which indicates that the time domain format is the third format and contains time domain resources of downlink common or broadcast signals;

[0094] (1) an eighth type, where the eighth type is used to indicate a time domain resource whose time domain format is UL or the third format, and the interval between the time domain resource and the time domain resource of the reference signal exceeds a fifth preset value;

[0095] The third format is a time-domain format for full-duplex transmission. The frequency-domain resources corresponding to the time-domain resources of the third format include uplink subbands and downlink subbands. The concept of the third format refers to the "time domain." The third format can be expressed as full-duplex, sub-band full-duplex, flexible full-duplex, or enhanced duplex.

[0096] The CG PUSCH in this embodiment may be located at a valid CG PUSCH occasion, that is, the time domain resources must meet any of the fifth, sixth, seventh, and eighth types. If not, it is an invalid CG PUSCH occasion.

[0097] In one embodiment of the present application, the terminal determines the transmit power of the CG PUSCH in the idle state or the inactive state according to the reference signal set or resource type corresponding to the first reference signal, including:

[0098] Acquiring, by the terminal, a first target power parameter according to a reference signal set or a resource type corresponding to the first reference signal;

[0099] The terminal determines the transmit power of the CG PUSCH in an idle state or an inactive state according to the first target power parameter.

[0100] In one embodiment of the present application, the method further includes:

[0101] The terminal receives power configuration information related to the first reference signal, where the power configuration information includes: a first target power parameter of a CG PUSCH corresponding to a reference signal set or a resource type corresponding to the first reference signal.

[0102] In one embodiment of the present application, the terminal determines, according to a resource type corresponding to the CG PUSCH of the terminal, the transmit power of the CG PUSCH in an idle state or an inactive state, including:

[0103] The terminal obtains, according to a resource type corresponding to the CG PUSCH of the terminal, a second target power parameter;

[0104] The terminal determines the transmit power of the CG PUSCH in an idle state or an inactive state according to the second target power parameter.

[0105] In one embodiment of the present application, the method further includes:

[0106] The terminal receives power configuration information related to the CG PUSCH, where the power configuration information includes a second target power parameter corresponding to a resource type corresponding to the CG PUSCH.

[0107] In one embodiment of the present application, the first target power parameter or the second target power parameter includes at least one of the following:

[0108] (1) Target received power;

[0109] (2) Power offset value;

[0110] It is understandable that the power offset value can be a positive value or a negative value.

[0111] (3) Path loss compensation factor

[0112] (4) Transmit Power Control (TPC) command;

[0113] (5) Power compensation factor;

[0114] (6) Power ramping parameters;

[0115] Optionally, the power boost parameter may include at least one of the following: a power boost step size, a power boost counter, and a maximum number of power boosts.

[0116] (7) Maximum transmit power

[0117] (8) Path loss parameters.

[0118] Optionally, the path loss parameter may include at least one of the following: a path loss estimation value, and a reference signal corresponding to the path loss estimation.

[0119] In an embodiment of the present application, when the terminal operates in full-duplex transmission mode, the terminal determines the transmit power of the CG PUSCH in the idle state or inactive state according to the reference signal set or resource type corresponding to the first reference signal, or according to the resource type corresponding to the CG PUSCH of the terminal, so that the transmit power of the CG PUSCH transmission in the idle state or inactive state can adapt to full-duplex transmission, allowing the terminal to reduce the impact of self-interference when performing full-duplex transmission, thereby ensuring the reception performance of the downlink transmission.

[0120] The following describes the implementation of the present application in conjunction with Example 1, Example 2 and Example 3.

[0121] Example 1:

[0122] The implementation manner of the present application is introduced by taking the first reference signal resource as SSB and the reference signal set corresponding to the first reference signal resource including the SSB set as an example.

[0123] When the UE operates in full-duplex transmission mode, the UE initiates a Small Data Transmission (SDT) process and determines the transmit power of the CG PUSCH according to the SSB set.

[0124] Optionally, the SSB set includes at least one of the following:

[0125] (1) SSB set 1, where SSB set 1 includes SSBs located on time domain resources of the first type;

[0126] (2) SSB set 2, SSB set 2 includes SSBs located on the second type of time domain resources.

[0127] Optionally, the network side device configures different power offsets for the CG PUSCH corresponding to SSB set 1 and SSB set 2, respectively.

[0128] For example, the network side device configures power offset 1 for the CG PUSCH corresponding to SSB set 1, and configures power offset 2 for the CG PUSCH corresponding to SSB set 2, where power offset 1 = X and power offset 2 = Y.

[0129] When the UE chooses to send a CG PUSCH, the SSB associated with the CG PUSCH is included in SSB set 1. The transmit power of the CG PUSCH is determined according to the following formula:

[0130] P CG-PUSCH =min{P CMAX ,P UL_PC,PUSCH +power offset1}[dBm], where P UL_PC,PUSCH The transmit power determined by uplink power control, P CMAX Indicates the maximum transmit power allowed for UEs within the cell.

[0131] Among them, P UL_PC,PUSCH It can be calculated by the following formula: UL_PC,PUSCH =min[P CMAX ,{p0(j)+α(k)*PL(q)}+{f(l)}+{10lgM+Δ}]

[0132] Among them, P CMAXis the UE maximum transmit power;

[0133] p0(j) is the open-loop receiving end power target value, which is related to the target interference signal-to-interference plus noise ratio (SINR) and interference intensity expected by the network side. The larger this target value is, the higher the uplink transmission power is, and the higher the receiving end SINR is.

[0134] PL(q) is the path loss estimate, where q is the index, selecting one from a set of path loss estimates maintained by the UE. For the same UE, different reference signals in the same serving cell may experience different path losses. For example, a wider SSB beamwidth results in lower beamforming gain, resulting in a larger path loss estimate; whereas a narrower CSI-RS beam results in higher beamforming gain, resulting in a smaller path loss estimate. Therefore, the same UE needs to maintain multiple path loss estimates and calculate the transmit power by selecting a path loss estimate based on an index configured or indicated by the network. α(k) is the path loss compensation factor, which can be configured by the network, for example, if it is less than or equal to 1.

[0135] f(l) is the lth power control offset (adjustment) state value.

[0136] M represents the bandwidth of the UE's PUSCH resources, and its size is the number of PUSCH resource blocks.

[0137] Δ represents a parameter related to the Modulation and Coding Scheme (MCS).

[0138] When the UE chooses to send CG PUSCH, the SSB associated with the CG PUSCH is included in SSB set 2, and the transmit power of the CG PUSCH is determined according to the following formula: CG-PUSCH =min{P CMAX ,P UL_PC,PUSCH +power offset2}[dBm].

[0139] Example 2:

[0140] When the UE operates in full-duplex transmission mode, the UE initiates an SDT process and determines the transmit power of the CG PUSCH according to the resource type of the CG PUSCH of the UE.

[0141] Optionally, the CG PUSCH type includes at least one of the following:

[0142] (1) The fifth type: time domain resources in the UL time domain format;

[0143] Optionally, the time domain resources include at least one of the following: one or more time slots, one or more symbols, one or more subframes, etc.

[0144] (2) Type 6: Time domain resources whose time domain format is the third format and do not contain downlink public or broadcast signals;

[0145] The downlink public or broadcast signal includes at least one of the following: SSB, SIB, MIB, Paging signal, etc.

[0146] (3) Type 7: Located on time domain resources whose time domain format is the third format and contains downlink public or broadcast signals;

[0147] (4) Type 8: The time domain resource is located in the UL time domain format or the third time domain format, and the interval between the time domain resource and the SSB time domain resource exceeds a specific preset value;

[0148] Optionally, the network side device configures different corresponding power offset values ​​(power offset) for the fifth type, sixth type, seventh type, and eighth type of CG PUSCH, respectively.

[0149] For example, the network side device configures power offset 1, power offset 2, power offset 3, and power offset 4 for the fifth, sixth, seventh, and eighth types of CG PUSCH, respectively, where power offset 1 = 0, power offset 2 = X, power offset 3 = Y, and power offset 4 = Z.

[0150] When the UE selects a CG PUSCH transmission opportunity (the seventh type) on a time domain resource with a time domain format of UL to initiate a CG PUSCH, the transmit power of the CG PUSCH is determined according to the following formula:

[0151] P CG-PUSCH =min{P CMAX ,P UL_PC,PUSCH}[dBm],P UL_PC,PUSCH The transmit power determined by uplink power control, P CMAX Indicates the maximum transmit power allowed for UEs within the cell.

[0152] When the UE selects a CG PUSCH transmission opportunity (i.e., the sixth type) located on a time domain resource with a time domain format of the third format and no downlink common or broadcast signal, the transmit power of the CG PUSCH is determined according to the following formula: CG-PUSCH =min{PCMAX ,P UL_PC,PUSCH +power offset2}[dBm]

[0153] When the UE selects a CG PUSCH transmission opportunity (i.e., the seventh type) located on a time domain resource with the third format and containing a downlink common or broadcast signal to initiate a CG PUSCH, the transmit power of the CG PUSCH is determined according to the following formula: CG-PUSCH =min{P CMAX ,P UL_PC,PUSCH +power offset3}[dBm].

[0154] Example 3

[0155] The implementation manner of the present application is introduced by taking the first reference signal resource as SSB and the reference signal set corresponding to the first reference signal resource including the SSB set as an example.

[0156] When the UE operates in full-duplex transmission mode, the UE initiates the SDT process and determines the transmit power of the CG PUSCH according to the SSB set and the resource type of the UE's CGPUSCH.

[0157] Optionally, the SSB set includes at least one of the following:

[0158] (1) SSB set 1, where SSB set 1 includes SSBs located on time domain resources of the first type;

[0159] (2) SSB set 2, SSB set 2 includes SSBs located on the second type of time domain resources.

[0160] Optionally, the network side device configures different power offsets for the CG PUSCH corresponding to SSB set 1 and SSB set 2, respectively.

[0161] For example, the network side device configures power offset 1 for the CG PUSCH corresponding to SSB set 1, and configures power offset 2 for the CG PUSCH corresponding to SSB set 2, where power offset 1 = X1 and power offset 2 = Y1.

[0162] Optionally, the CG PUSCH type includes at least one of the following:

[0163] (1) The fifth type: time domain resources in the UL time domain format;

[0164] Optionally, the time domain resources include at least one of the following: one or more time slots, one or more symbols, one or more subframes, etc.

[0165] (2) Type 6: Time domain resources whose time domain format is the third format and do not contain downlink public or broadcast signals;

[0166] The downlink public or broadcast signal includes at least one of the following: SSB, SIB, MIB, Paging signal, etc.

[0167] (3) Type 7: Located on time domain resources whose time domain format is the third format and contains downlink public or broadcast signals;

[0168] (4) Type 8: The time domain resource is located in the UL time domain format or the third time domain format, and the interval between the time domain resource and the SSB time domain resource exceeds a specific preset value;

[0169] Optionally, the network side device configures different corresponding power offset values ​​(power offset) for the fifth type, sixth type, seventh type, and eighth type of CG PUSCH, respectively.

[0170] For example, the network side device configures power offset 3, power offset 4, power offset 5, and power offset 6 for the fifth, sixth, seventh, and eighth types of CG PUSCH, respectively, where power offset 3 = 0, power offset 4 = X2, power offset 5 = Y2, and power offset 6 = Z.

[0171] When the UE selects a CG PUSCH transmission opportunity (type 7) on a time domain resource with a time domain format of UL to initiate a CG PUSCH, and the SSB associated with the CG PUSCH is included in SSB set 1, the transmit power of the CG PUSCH is determined according to the following formula:

[0172] P CG-PUSCH =min{P CMAX ,P UL_PC,PUSCH +poweroffest1}[dBm],P UL_{C,PUSCH The transmit power determined by uplink power control, P CMAX Indicates the maximum transmit power allowed for UEs within the cell.

[0173] When the UE selects a CG PUSCH transmission opportunity (i.e., the sixth type) on a time domain resource with a time domain format of the third format and no downlink common or broadcast signal, the SSB associated with the CG PUSCH is included in SSB set 1, and the transmit power of the CG PUSCH is determined according to the following formula: P CG-PUSCH =min{P CMAX ,P UL_PC,PUSCH +power offset}[dBm]

[0174] The “power offset” in the above formula may be a power offset determined based on poweroffest 1 and poweroffest 4, for example, “power offset”=poweroffest 1+poweroffest 4 in the formula.

[0175] When the UE selects a CG PUSCH transmission opportunity (i.e., the seventh type) on a time domain resource with a time domain format of the third format and containing a downlink common or broadcast signal to initiate a CG PUSCH, the SSB associated with the CG PUSCH is included in SSB set 2, and the transmit power of the CG PUSCH is determined according to the following formula: P CG-PUSCH =min{P CMAX ,P UL_PC,PUSCH +power offset}[dBm].

[0176] The “power offset” in the above formula may be a power offset determined based on poweroffest 2 and poweroffest 5, for example, “power offset”=poweroffest 2+poweroffest 5 in the formula.

[0177] 4 , an embodiment of the present application provides a communication processing device, which is applied to a terminal. The device 400 includes:

[0178] Determination module 401 is used to determine the transmission power of the CG PUSCH in idle state (idle) or inactive state (inactive) according to the reference signal set or resource type corresponding to the first reference signal, or according to the resource type corresponding to the CG PUSCH of the terminal when the terminal operates in full-duplex transmission mode.

[0179] In this embodiment, full-duplex may also be referred to as enhanced duplex, enhanced duplex mode, XDD, enhanced full-duplex, enhanced full-duplex mode, sub-band full-duplex, etc.

[0180] In one embodiment of the present application, the first reference signal includes at least one reference signal associated with the CG PUSCH.

[0181] In one embodiment of the present application, the resource type corresponding to the first reference signal includes at least one of the following:

[0182] (1) Type 1, which is used to indicate that the time domain format is downlink time domain resources, that is, all frequency domain resources are DL;

[0183] (2) The second type is used to represent time domain resources whose time domain format is a first format, where the first format is a time domain format for full-duplex transmission, and the frequency domain resources corresponding to the time domain resources of the first format include an uplink subband and a downlink subband.

[0184] Optionally, the second type includes at least one of the following:

[0185] (1) A third type, where the third type is used to indicate that the time domain format is a time domain resource of the first format, and the interval between the downlink subband and the uplink subband is greater than or equal to a first preset value;

[0186] (2) A fourth type, which is used to indicate that the time domain format is a time domain resource of the first format, and the interval between the downlink subband and the uplink subband is less than or equal to a second preset value.

[0187] It should be noted that the first preset value and the second preset value may be the same or different, and in this embodiment, there is no specific limitation on the first preset value and the second preset value.

[0188] In one embodiment of the present application, the reference signal set corresponding to the first reference signal includes at least one of the following:

[0189] (1) a first reference signal set, the first reference signal set including reference signals located in time domain resources whose time domain format is downlink;

[0190] (2) a second reference signal set, the second reference signal set including reference signals located in time domain resources having a time domain format of a second format;

[0191] (3) a third reference signal set, the third reference signal set including reference signals located in time domain resources having a time domain format of the second format, and an interval between a downlink subband and an uplink subband being greater than or equal to a third preset value;

[0192] (4) a fourth reference signal set, the fourth reference signal set including reference signals located in time domain resources whose time domain format is the second format, and an interval between a downlink subband and an uplink subband is less than or equal to a fourth preset value;

[0193] The second format is a time domain format for full-duplex transmission, and the frequency domain resources corresponding to the time domain resources of the second format include an uplink sub-band and a downlink sub-band.

[0194] In one embodiment of the present application, the resource type corresponding to the CG PUSCH includes at least one of the following:

[0195] (1) The fifth type is used to indicate that the time domain format is a time domain resource of uplink (UL);

[0196] (1) Type 6, which indicates that the time domain format is the third format and does not include time domain resources of downlink common or broadcast signals;

[0197] (1) Type 7, which indicates that the time domain format is the third format and contains time domain resources of downlink common or broadcast signals;

[0198] (1) an eighth type, where the eighth type is used to indicate a time domain resource whose time domain format is UL or the third format, and the interval between the time domain resource and the time domain resource of the reference signal exceeds a fifth preset value;

[0199] The third format is a time domain format for full-duplex transmission, and the frequency domain resources corresponding to the time domain resources of the third format include an uplink sub-band and a downlink sub-band.

[0200] In one embodiment of the present application, the determination module 401 is further used to obtain a first target power parameter based on the reference signal set or resource type corresponding to the first reference signal; and determine the transmission power of the CG PUSCH in the idle state or inactive state based on the first target power parameter.

[0201] In one embodiment of the present application, the device further comprises:

[0202] The first receiving module is configured to receive power configuration information related to the first reference signal, where the power configuration information includes: a first target power parameter of a reference signal set or a CG PUSCH corresponding to a resource type corresponding to the first reference signal.

[0203] In one embodiment of the present application, the determination module 401 is further used to: obtain a second target power parameter according to the resource type corresponding to the CG PUSCH of the terminal; and determine the transmission power of the CG PUSCH in the idle state or inactive state according to the second target power parameter.

[0204] In one embodiment of the present application, the device further comprises:

[0205] The second receiving module is used to receive power configuration information related to the CG PUSCH, where the power configuration information includes a second target power parameter corresponding to the resource type corresponding to the CG PUSCH.

[0206] In one embodiment of the present application, the first target power parameter or the second target power parameter includes at least one of the following:

[0207] (1) Target received power;

[0208] (2) Power offset value;

[0209] (3) Path loss compensation factor

[0210] (4) Transmit power control command;

[0211] (5) Power compensation factor;

[0212] (6) Power boost parameters;

[0213] (7) Maximum transmit power

[0214] (8) Path loss parameters.

[0215] The device provided in the embodiment of the present application can implement each process implemented in the method embodiment of Figure 3 and achieve the same technical effect. To avoid repetition, it will not be repeated here.

[0216] FIG5 is a schematic diagram of the hardware structure of a terminal implementing an embodiment of the present application. The terminal 500 includes, but is not limited to, at least some of the components including a radio frequency unit 501, a network module 502, an audio output unit 503, an input unit 504, a sensor 505, a display unit 506, a user input unit 507, an interface unit 508, a memory 509, and a processor 510.

[0217] Those skilled in the art will appreciate that the terminal 500 may further include a power source (e.g., a battery) for powering various components. The power source may be logically connected to the processor 510 via a power management system, thereby enabling the power management system to manage charging, discharging, and power consumption. The terminal structure shown in FIG5 does not limit the terminal. The terminal may include more or fewer components than shown, or may combine certain components, or have different component arrangements, which will not be described in detail here.

[0218] It should be understood that in an embodiment of the present application, the input unit 504 may include a graphics processing unit (GPU) 5041 and a microphone 5042, and the graphics processor 5041 processes the image data of a static picture or video obtained by an image capture device (such as a camera) in a video capture mode or an image capture mode. The display unit 506 may include a display panel 5061, and the display panel 5061 may be configured in the form of a liquid crystal display, an organic light emitting diode, etc. The user input unit 507 includes a touch panel 5071 and at least one of other input devices 5072. The touch panel 5071 is also called a touch screen. The touch panel 5071 may include two parts: a touch detection device and a touch controller. Other input devices 5072 may include, but are not limited to, a physical keyboard, function keys (such as volume control keys, switch keys, etc.), a trackball, a mouse, and a joystick, which will not be repeated here.

[0219] In the embodiment of the present application, after receiving downlink data from a network-side device, the radio frequency unit 501 may transmit the data to the processor 510 for processing. Furthermore, the radio frequency unit 501 may send uplink data to the network-side device. Typically, the radio frequency unit 501 includes, but is not limited to, an antenna, an amplifier, a transceiver, a coupler, a low-noise amplifier, a duplexer, and the like.

[0220] The memory 509 can be used to store software programs or instructions and various data. The memory 509 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 instruction required for at least one function (such as a sound playback function, an image playback function, etc.), etc. In addition, the memory 509 may include a volatile memory or a non-volatile memory, or the memory 509 may include a non-transient memory. Among them, the non-volatile memory or non-transient memory may be a read-only memory (ROM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), or a flash memory. The volatile memory may be a random access memory (RAM), a static random access memory (SRAM), a dynamic random access memory (DRAM), a synchronous dynamic random access memory (SDRAM), a double data rate synchronous dynamic random access memory (DDRSDRAM), an enhanced synchronous dynamic random access memory (ESDRAM), a synchronous link dynamic random access memory (SLDRAM), and a direct memory bus random access memory (DRRAM). The memory 509 in the embodiment of the present application includes but is not limited to these and any other suitable types of memory.

[0221] Processor 510 may include one or more processing units. Optionally, processor 510 integrates an application processor and a modem processor. The application processor primarily handles operations related to the operating system, user interface, and application programs, while the modem processor primarily processes wireless communication signals, such as a baseband processor. It is understood that the modem processor may not be integrated into processor 510.

[0222] In this embodiment, the processor 510 is used to determine the transmission power of the CG PUSCH in an idle state or an inactive state according to the reference signal set or resource type corresponding to the first reference signal, or according to the resource type corresponding to the CG PUSCH of the terminal when the terminal operates in full-duplex transmission mode.

[0223] Optionally, the radio frequency unit 501 is used to receive power configuration information related to the first reference signal, where the power configuration information includes: a power parameter of a reference signal set corresponding to at least one reference signal or a CG PUSCH corresponding to a resource type.

[0224] Optionally, the radio frequency unit 501 is further used to receive power configuration information related to the CG PUSCH, where the power configuration information includes at least one power parameter corresponding to a resource type corresponding to the CG PUSCH.

[0225] The terminal provided in the embodiment of the present application can implement each process implemented in the method embodiment of Figure 3 and achieve the same technical effect. To avoid repetition, it will not be repeated here.

[0226] As shown in Figure 6, an embodiment of the present application also provides a terminal 600, including a processor 601 and a memory 602, and the memory 602 stores a program or instruction that can be run on the processor 601. When the program or instruction is executed by the processor 601, the various steps of the method embodiment of Figure 3 above are implemented and the same technical effect can be achieved. To avoid repetition, it will not be repeated here.

[0227] An embodiment of the present application also provides a readable storage medium, on which a program or instruction is stored. When the program or instruction is executed by a processor, the method of Figure 3 and the various processes of the above-mentioned embodiments are implemented, and the same technical effect can be achieved. To avoid repetition, it will not be repeated here.

[0228] The processor is the processor in the terminal or network-side device described in the above embodiments. The readable storage medium includes a computer-readable storage medium, such as a computer read-only memory (ROM), random access memory (RAM), a magnetic disk, or an optical disk. In some examples, the readable storage medium may be a non-transitory readable storage medium.

[0229] An embodiment of the present application further provides a chip, which includes a processor and a communication interface, wherein the communication interface is coupled to the processor, and the processor is used to run programs or instructions to implement the various processes shown in Figure 3 and the above-mentioned method embodiments, and can achieve the same technical effects. To avoid repetition, they will not be repeated here.

[0230] It should be understood that the chip mentioned in the embodiments of the present application can also be called a system-level chip, a system chip, a chip system or a system-on-chip chip, etc.

[0231] An embodiment of the present application further provides a computer program / program product, which is stored in a storage medium. The computer program / program product is executed by at least one processor to implement the various processes shown in Figure 3 and the various method embodiments described above, and can achieve the same technical effects. To avoid repetition, they are not described here.

[0232] An embodiment of the present application also provides a communication system, which includes a terminal and a network-side device. The terminal is used to execute the various processes shown in Figure 3 and the above-mentioned method embodiments, and can achieve the same technical effects. To avoid repetition, they will not be described here.

[0233] It should be noted that, in this article, the terms "comprise", "include" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device. In the absence of further restrictions, an element defined by the statement "comprises a ..." does not exclude the presence of other identical elements in the process, method, article or device comprising the element. In addition, it should be noted that the scope of the methods and devices in the embodiments of the present application is not limited to performing functions in the order shown or discussed, and may also include performing functions in a substantially simultaneous manner or in the opposite order according to the functions involved. For example, the described method may be performed in an order different from that described, and various steps may also be added, omitted, or combined. In addition, the features described with reference to certain examples may be combined in other examples.

[0234] Through the description of the above embodiments, those skilled in the art can clearly understand that the above-mentioned embodiment methods can be implemented by means of a computer software product plus a necessary general-purpose hardware platform, or of course, by hardware. The computer software product is stored in a storage medium (such as ROM, RAM, magnetic disk, optical disk, etc.) and includes a number of instructions for enabling a terminal or network-side device to execute the methods described in each embodiment of the present application.

[0235] The embodiments of the present application are described above in conjunction with the accompanying drawings, but the present application is not limited to the above-mentioned specific implementation methods. The above-mentioned specific implementation methods are merely illustrative and not restrictive. Under the guidance of this application, ordinary technicians in this field can also make many forms of implementation methods without departing from the purpose of this application and the scope of protection of the claims. These implementation methods are all within the protection of this application.

Claims

1. A communication processing method, wherein: include: When the terminal operates in full-duplex transmission mode, the terminal determines the transmission power of the CG PUSCH in an idle state or an inactive state according to the reference signal set or resource type corresponding to the first reference signal, or according to the resource type corresponding to the CG physical uplink shared channel PUSCH authorized by the configuration of the terminal.

2. The method according to claim 1, wherein: The first reference signal includes at least one reference signal associated with the CG PUSCH.

3. The method according to claim 1, wherein: The resource type corresponding to the first reference signal includes at least one of the following: A first type, where the first type is used to indicate that the time domain format is a downlink time domain resource; The second type is used to represent time domain resources whose time domain format is a first format, the first format is a time domain format for full-duplex transmission, and the frequency domain resources corresponding to the time domain resources in the first format include an uplink subband and a downlink subband.

4. The method according to claim 3, wherein: The second type includes at least one of the following: A third type, where the third type is used to indicate that a time domain format is a time domain resource of the first format, and an interval between a downlink subband and an uplink subband is greater than or equal to a first preset value; The fourth type is used to indicate that the time domain format is the time domain resources of the first format, and the interval between the downlink subband and the uplink subband is less than or equal to the second preset value.

5. The method according to any one of claims 1 to 4, wherein: The reference signal set corresponding to the first reference signal includes at least one of the following: A first reference signal set, wherein the first reference signal set includes reference signals located in time domain resources whose time domain format is downlink; a second reference signal set, the second reference signal set comprising reference signals located in time domain resources having a time domain format of a second format; a third reference signal set, wherein the third reference signal set includes reference signals located in time domain resources whose time domain format is the second format, and an interval between a downlink subband and an uplink subband is greater than or equal to a third preset value; A fourth reference signal set, wherein the fourth reference signal set includes reference signals located in time domain resources whose time domain format is the second format, and an interval between a downlink subband and an uplink subband is less than or equal to a fourth preset value; The second format is a time domain format for full-duplex transmission, and the frequency domain resources corresponding to the time domain resources of the second format include an uplink sub-band and a downlink sub-band.

6. The method according to claim 1, wherein: The resource type corresponding to the CG PUSCH includes at least one of the following: A fifth type, where the fifth type is used to indicate that the time domain format is a time domain resource of an uplink UL; The sixth type is used to indicate that the time domain format is the third format and does not include time domain resources of downlink common or broadcast signals; The seventh type is used to indicate that the time domain format is the third format and contains a downlink public or broadcast signal Time domain resources; An eighth type, where the eighth type is used to indicate that the time domain format is a time domain resource of UL or the third format, and the interval between the time domain resource and the time domain resource of the reference signal exceeds a fifth preset value; The third format is a time domain format for full-duplex transmission, and the frequency domain resources corresponding to the time domain resources of the third format include an uplink sub-band and a downlink sub-band.

7. The method according to claim 1, wherein: The terminal determines, according to a reference signal set or a resource type corresponding to the first reference signal, a transmit power of a CG PUSCH in an idle state or an inactive state, including: Acquiring, by the terminal, a first target power parameter according to a reference signal set or a resource type corresponding to the first reference signal; The terminal determines the transmit power of the CG PUSCH in an idle state or an inactive state according to the first target power parameter.

8. The method according to claim 7, wherein: The method further comprises: The terminal receives power configuration information related to the first reference signal, where the power configuration information includes: the first target power parameter of the CG PUSCH corresponding to the reference signal set or resource type corresponding to the first reference signal.

9. The method according to claim 1, wherein: The terminal determines, according to a resource type corresponding to a CG PUSCH of the terminal, a transmit power of a CG PUSCH in an idle state or an inactive state, including: Acquiring, by the terminal, a second target power parameter according to a resource type corresponding to a CG PUSCH of the terminal; The terminal determines the transmit power of the CG PUSCH in an idle state or an inactive state according to the second target power parameter.

10. The method according to claim 9, wherein: The method further comprises: The terminal receives power configuration information related to the CG PUSCH, where the power configuration information includes a second target power parameter corresponding to a resource type corresponding to the CG PUSCH.

11. The method according to claim 7, 8, 9 or 10, wherein: The first target power parameter or the second target power parameter includes at least one of the following: Target received power; Power offset value; Path loss compensation factor Transmit power control TPC command; Power compensation factor; Power boost parameters; Maximum transmit power Path loss parameter.

12. A communication processing device, wherein: include: A determination module is used to determine the idle state or the resource type according to the reference signal set or the resource type corresponding to the first reference signal, or according to the resource type corresponding to the CG PUSCH of the terminal when the terminal works in the full-duplex transmission mode. The transmit power of the CG PUSCH in the inactive state.

13. The device according to claim 12, wherein: The first reference signal includes at least one reference signal associated with the CG PUSCH.

14. The device according to claim 12, wherein: The resource type corresponding to the first reference signal includes at least one of the following: A first type, where the first type is used to indicate that the time domain format is a downlink time domain resource; The second type is used to represent time domain resources whose time domain format is a first format, the first format is a time domain format for full-duplex transmission, and the frequency domain resources corresponding to the time domain resources in the first format include an uplink subband and a downlink subband.

15. The device according to claim 14, wherein: The second type includes at least one of the following: A third type, where the third type is used to indicate that a time domain format is a time domain resource of the first format, and an interval between a downlink subband and an uplink subband is greater than or equal to a first preset value; The fourth type is used to indicate that the time domain format is the time domain resources of the first format, and the interval between the downlink subband and the uplink subband is less than or equal to the second preset value.

16. The device according to claim 12, wherein: The reference signal set corresponding to the first reference signal includes at least one of the following: A first reference signal set, wherein the first reference signal set includes reference signals located in time domain resources whose time domain format is downlink; a second reference signal set, the second reference signal set comprising reference signals located in time domain resources having a time domain format of a second format; a third reference signal set, wherein the third reference signal set includes reference signals located in time domain resources whose time domain format is the second format, and an interval between a downlink subband and an uplink subband is greater than or equal to a third preset value; A fourth reference signal set, wherein the fourth reference signal set includes reference signals located in time domain resources whose time domain format is the second format, and an interval between a downlink subband and an uplink subband is less than or equal to a fourth preset value; The second format is a time domain format for full-duplex transmission, and the frequency domain resources corresponding to the time domain resources of the second format include an uplink sub-band and a downlink sub-band.

17. The device according to claim 12, wherein: The resource type corresponding to the CG PUSCH includes at least one of the following: A fifth type, where the fifth type is used to indicate that the time domain format is a time domain resource of an uplink UL; The sixth type is used to indicate that the time domain format is the third format and does not include time domain resources of downlink common or broadcast signals; A seventh type, where the seventh type is used to indicate that the time domain format is the third format and includes time domain resources of a downlink common or broadcast signal; An eighth type, where the eighth type is used to indicate that the time domain format is a time domain resource of UL or the third format, and the interval between the time domain resource and the time domain resource of the reference signal exceeds a fifth preset value; The third format is a time domain format for full-duplex transmission, and the time domain resources of the third format correspond to The frequency domain resources include uplink sub-bands and downlink sub-bands.

18. The device according to claim 12, wherein: The determination module is further used to: obtain a first target power parameter according to a reference signal set or a resource type corresponding to the first reference signal; and determine the transmit power of the CG PUSCH in an idle state or an inactive state according to the first target power parameter.

19. The device according to claim 18, wherein: The device also includes: The first receiving module is used to receive power configuration information related to the first reference signal, where the power configuration information includes: the first target power parameter of the CG PUSCH corresponding to the reference signal set or resource type corresponding to the first reference signal.

20. The device according to claim 12, wherein: The determination module is further used to: acquire a second target power parameter according to a resource type corresponding to the CG PUSCH of the terminal; and determine the transmit power of the CG PUSCH in an idle state or an inactive state according to the second target power parameter.

21. The device according to claim 20, wherein: The device also includes: The second receiving module is used to receive power configuration information related to CG PUSCH, where the power configuration information includes a second target power parameter corresponding to a resource type corresponding to the CG PUSCH.

22. A terminal, wherein: The method comprises a processor, a memory, and a program or instruction stored in the memory and executable on the processor, wherein the program or instruction implements the steps of the method according to any one of claims 1 to 12 when executed by the processor.

23. A readable storage medium, wherein: The readable storage medium stores a program or instruction, and when the program or instruction is executed by a processor of the terminal, the steps of the method according to any one of claims 1 to 12 are implemented.

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