Communication method and communication device
By receiving and processing configuration information including frequency band and communication mode support information in the terminal device, the terminal device can determine whether the cell is prohibited and select a matching frequency band, solving the problem of mismatch between the cell and the terminal device in the prior art, and improving the working reliability of the terminal device.
Patent Information
- Application Number
- CN202510222965.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-08-11
- Publication Date
- 2025-05-23
AI Technical Summary
In the prior art, the terminal device does not consider the communication mode capability of the terminal device on different frequencies when selecting a cell, resulting in the mismatch between the cell capability and the terminal device capability, resulting in the terminal device being unable to work.
By receiving configuration information including frequency band and communication mode support information, the terminal device determines whether the cell is prohibited, considers its communication mode capability on the frequency band, and avoids selecting a mismatched frequency band.
Improve the working reliability of the terminal equipment and avoid communication failures caused by mismatch between the capabilities of the cell and the terminal equipment.
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Figure CN120034849A_ABST
Abstract
Description
[0001] This application is a divisional application. The application number of the original application is 202311021314.5, and the original application date is August 11, 2023. The entire contents of the original application are incorporated into this application by reference. Technical Field
[0002] The present application relates to the field of communication technology, and more specifically, to a communication method and a communication device. Background Art
[0003] In order to reduce the cost of terminal equipment, a terminal equipment with reduced capability is currently introduced, such as reduced capability terminal equipment (RedCap UE). The terminal equipment with reduced capability can support half-duplex frequency division duplexing (HD-FDD) mode. In other words, the terminal equipment does not support simultaneous reception and transmission on different frequencies, which reduces the implementation complexity of the terminal equipment and reduces the cost compared to the full-duplex frequency division duplexing (FD-FDD) mode.
[0004] Terminal devices may have different capabilities to support different communication modes at different frequencies. For example, a terminal device may only support HD-FDD at some frequencies, but not only HD-FDD at other frequencies. However, when terminal devices select cells, this situation is not taken into account, resulting in a mismatch between the cell capabilities and the terminal device capabilities, and the terminal device cannot work. Summary of the invention
[0005] The present application provides a communication method and a communication device, which can improve the reliability of terminal equipment operation.
[0006] In a first aspect, a communication method is provided, which can be executed by a terminal device or a chip in the terminal device, the method comprising: receiving first information, the first information including first configuration information and second configuration information, or the first information including the first configuration information but not including the second configuration information, wherein the first configuration information indicates a frequency band to which a first cell belongs, and the second configuration information indicates that the first cell supports a first communication mode; determining whether the first cell is prohibited or not prohibited based on a first condition, and if the first condition is not met, the first cell is prohibited; wherein the first condition comprises: when the first information does not include the second configuration information, the terminal device supports the second communication mode on the first frequency band; or the first information comprises the second configuration information; wherein the frequency band to which the first cell belongs comprises the first frequency band, and the first communication mode and the second communication mode are different.
[0007] Based on the present technical solution, the terminal device takes into account the capability of the communication mode supported by the terminal device on the frequency band in the conditions for determining whether the first cell is prohibited, thereby avoiding the problem of mismatch between the communication mode supported by the first cell and the communication mode supported by the terminal device on the first frequency band, avoiding the problem of inability to communicate due to mismatch between the capabilities of the terminal device and the capabilities of the cell, and improving the reliability of the operation of the terminal device.
[0008] In a second aspect, a communication method is provided, which can be executed by a network device or a chip in the network device, the method comprising: sending first information, the first information including first configuration information and second configuration information, or the first information including the first configuration information but not including the second configuration information, wherein the first configuration information indicates a frequency band to which the first cell belongs, and the second configuration information indicates that the first cell supports a first communication mode; wherein, if a first condition is not met, the first cell is prohibited, the first condition comprising: when the first information does not include the second configuration information, the terminal device supports the second communication mode on the first frequency band; or the first information includes the second configuration information; wherein the frequency band to which the first cell belongs includes the first frequency band, and the first communication mode and the second communication mode are different.
[0009] Regarding the beneficial technical effects of various implementation methods of the second aspect, reference may be made to the description of the relevant implementation methods of the first aspect and will not be elaborated herein.
[0010] In combination with the first aspect or the second aspect, in some implementations, the first communication mode is half-duplex frequency division duplex HD-FDD.
[0011] In combination with the first aspect or the second aspect, in some implementations, the first condition also includes one or more of the following: the first frequency band is a frequency division duplex FDD band; the terminal device supports the transmission requirements of the first frequency band; the terminal device supports a first uplink channel bandwidth, and the maximum transmission bandwidth of the first uplink channel bandwidth is less than or equal to the carrier bandwidth, and greater than or equal to the bandwidth of the initial uplink bandwidth part BWP; the terminal device supports a first downlink channel bandwidth, and the maximum transmission bandwidth of the first downlink channel bandwidth is less than or equal to the carrier bandwidth, and greater than or equal to the bandwidth of the initial downlink BWP; the terminal device is enabled for uplink transmission with frequency offset, and the terminal device supports frequency offset on the first frequency band, or the terminal device is not enabled for uplink transmission with frequency offset.
[0012] Based on this technical solution, the terminal device can judge multiple conditions to determine whether the first cell is prohibited, thereby further improving the reliability of the operation of the terminal device.
[0013] In combination with the first aspect or the second aspect, in some implementations, when the first condition is met, the first frequency band in the frequency band to which the first cell belongs that meets the second condition is selected, and the second condition includes at least one of the following: when the first information does not include the second configuration information, the second communication mode is supported.
[0014] Based on this technical solution, the terminal device selects a bandwidth that meets the second condition, thereby avoiding selecting a bandwidth that does not match the capabilities of the terminal device and the first cell, which can improve the reliability of the terminal device's operation.
[0015] In combination with the first aspect or the second aspect, in some implementations, the second condition further includes one or more of the following: supporting transmission requirements; and supporting frequency offset in the case of uplink transmission with frequency offset enabled.
[0016] In combination with the first aspect or the second aspect, in some implementations, the method also includes: when a third condition is met, determining that the first cell is configured with a supplementary uplink carrier SUL; wherein the third condition includes: when the first information does not include the second configuration information, the terminal device supports a third communication mode on the second frequency band; the first information includes the second configuration information; wherein the frequency band to which the first cell SUL belongs includes the second frequency band, and the first communication mode and the third communication mode are different.
[0017] Based on the embodiments of the present application, when the terminal device determines whether the first cell is configured with SUL, it may also consider the capabilities of the communication mode supported by the frequency band to which the first cell SUL belongs, thereby avoiding the problem of the terminal device not matching the capabilities of the first cell on the frequency band to which the first cell SUL belongs, and further improving the reliability of the terminal device.
[0018] In combination with the first aspect or the second aspect, in some implementations, the third condition also includes one or more of the following: the second frequency band is included in the SUL frequency band list supported by the terminal device; the terminal device supports the transmission requirements of the second frequency band; the terminal device supports the second uplink channel bandwidth, and the maximum transmission bandwidth of the second uplink channel bandwidth is less than or equal to the SUL carrier bandwidth and greater than or equal to the bandwidth of the SUL initial uplink BWP; the terminal device is enabled for frequency-shifted uplink transmission, and the terminal device supports frequency offset on the second frequency band, or the terminal device is not enabled for frequency-shifted uplink transmission.
[0019] In combination with the first aspect or the second aspect, in some implementations, when the third condition is met, the first frequency band in the SUL frequency band to which the first cell belongs that meets the fourth condition is selected, and the fourth condition includes: when the first information does not include the second configuration information, supporting the second communication mode.
[0020] In combination with the first aspect or the second aspect, in some implementations, the fourth condition further includes one or more of the following: supporting transmission requirements; supporting frequency offset in the case of uplink transmission with frequency offset enabled for SUL.
[0021] According to a third aspect, a communication method is provided, which can be executed by a terminal device or a chip in the terminal device, the method comprising: receiving first information, the first information comprising first configuration information and second configuration information, or the first information comprising the first configuration information but excluding the second configuration information, wherein the first configuration information indicates N frequency bands to which the first cell belongs, and the second configuration information indicates that the first cell supports a first communication mode, and N is a positive integer; determining that the first cell is prohibited based on a fifth condition, and when the fifth condition is met, the first cell is prohibited; wherein the fifth condition comprises: when the first information does not include the second configuration information, the terminal device supports the first communication mode on N frequency bands but does not support the second communication mode, and the first communication mode and the second communication mode are different.
[0022] Based on the present technical solution, the terminal device takes into account the ability of the terminal device to support communication modes on N frequency bands in the conditions for determining whether the first cell is prohibited, thereby avoiding the problem of mismatch between the communication mode supported by the first cell and the communication mode supported by the terminal device on the selected frequency band, and improving the reliability of the operation of the terminal device.
[0023] In a fourth aspect, a communication method is provided, which can be executed by a network device or a chip in the network device, the method comprising: sending first information, the first information including first configuration information and second configuration information, or the first information including the first configuration information but not including the second configuration information, wherein the first configuration information indicates N frequency bands to which the first cell belongs, and the second configuration information indicates that the first cell supports a first communication mode, and N is a positive integer; wherein, if a fifth condition is met, the first cell is prohibited, and the fifth condition comprises: if the first information does not include the second configuration information, the terminal device supports the first communication mode on N frequency bands but does not support the second communication mode, and the first communication mode and the second communication mode are different.
[0024] Regarding the beneficial technical effects of various implementation methods of the fourth aspect, reference may be made to the description of the relevant implementation methods of the first aspect and will not be repeated here.
[0025] In combination with the third aspect or the fourth aspect, in certain implementations, the N frequency bands include a normal uplink carrier NUL frequency band and an auxiliary uplink carrier NUL frequency band.
[0026] In a fifth aspect, a communication method is provided, which can be executed by a terminal device or a chip in the terminal device, and the method includes: sending capability information, the capability information is used to indicate whether the terminal device supports or does not support half-duplex frequency division duplex HD-FDD on a first frequency band pair, and the first frequency band pair includes a frequency band for a supplementary uplink carrier and a frequency band for a downlink carrier.
[0027] Based on this technical solution, by stipulating that the terminal device reports the situation that the SUL supports HD-FDD specifically in the downlink frequency band, it is possible to indicate the support situation of the SUL for HD-FDD in a more flexible and fine-grained manner.
[0028] In a sixth aspect, a communication method is provided, which can be executed by a network device or a chip in the network device, and the method includes: receiving capability information, the capability information is used to indicate whether the terminal device supports or does not support half-duplex frequency division duplex HD-FDD on a first frequency band pair, and the first frequency band pair includes a frequency band for a supplementary uplink carrier and a frequency band for a downlink carrier.
[0029] Regarding the beneficial technical effects of various implementation methods of the sixth aspect, reference may be made to the description of the relevant implementation methods of the first aspect and no further elaboration will be given.
[0030] In combination with the fifth aspect or the sixth aspect, in some implementations, the supplementary uplink frequency band is a supplementary uplink frequency band supported by the terminal device, and the downlink carrier frequency band is a downlink carrier frequency band supported by the terminal device.
[0031] In the seventh aspect, a communication device is provided, which includes a transceiver unit and a processing unit, wherein the transceiver unit is used to receive first information, the first information includes first configuration information and second configuration information, or the first information includes the first configuration information but does not include the second configuration information, wherein the first configuration information indicates a frequency band to which the first cell belongs, and the second configuration information indicates that the first cell supports a first communication mode; the processing unit is used to determine whether the first cell is prohibited or not prohibited based on a first condition, and when the first condition is not met, the first cell is prohibited; wherein the first condition includes: when the first information does not include the second configuration information, the terminal device supports the second communication mode on the first frequency band; or the first information includes the second configuration information; wherein the frequency band to which the first cell belongs includes the first frequency band, and the first communication mode and the second communication mode are different.
[0032] Regarding the various implementation methods of the seventh aspect and the beneficial technical effects of the various implementation methods, please refer to the description of the relevant implementation methods of the first aspect and will not be repeated here.
[0033] In an eighth aspect, a communication device is provided, the device comprising a transceiver unit and a processing unit, wherein the processing unit is used to generate first information; the transceiver unit is used to send the first information, the first information comprises first configuration information and second configuration information, or the first information comprises the first configuration information but does not comprise the second configuration information, wherein the first configuration information indicates a frequency band to which the first cell belongs, and the second configuration information indicates that the first cell supports a first communication mode; wherein if a first condition is not met, the first cell is prohibited, the first condition comprising: if the first information does not comprise the second configuration information, the terminal device supports the second communication mode on the first frequency band; or the first information comprises the second configuration information; wherein the frequency band to which the first cell belongs comprises the first frequency band, and the first communication mode and the second communication mode are different.
[0034] Regarding the various implementation methods of the eighth aspect and the beneficial technical effects of the various implementation methods, please refer to the description of the relevant implementation methods of the first aspect and will not be repeated here.
[0035] In the ninth aspect, a communication device is provided, which includes a transceiver unit and a processing unit, wherein the transceiver unit is used to receive first information, the first information includes first configuration information and second configuration information, or the first information includes the first configuration information but does not include the second configuration information, wherein the first configuration information indicates N frequency bands to which the first cell belongs, and the second configuration information indicates that the first cell supports a first communication mode, where N is a positive integer; the processing unit is used to determine that the first cell is prohibited based on a fifth condition, and when the fifth condition is met, the first cell is prohibited; wherein the fifth condition includes: when the first information does not include the second configuration information, the terminal device supports the first communication mode on N frequency bands but does not support the second communication mode, and the first communication mode and the second communication mode are different.
[0036] Regarding the various implementation methods of the ninth aspect and the beneficial technical effects of the various implementation methods, please refer to the description of the relevant implementation methods of the third aspect and will not be repeated here.
[0037] In the tenth aspect, a communication device is provided, which includes a transceiver unit and a processing unit, wherein the processing unit is used to generate first information; the transceiver unit is used to send the first information, the first information includes first configuration information and second configuration information, or the first information includes the first configuration information but does not include the second configuration information, wherein the first configuration information indicates N frequency bands to which the first cell belongs, and the second configuration information indicates that the first cell supports a first communication mode, and N is a positive integer; wherein when a fifth condition is met, the first cell is prohibited, and the fifth condition includes: when the first information does not include the second configuration information, the terminal device supports the first communication mode on N frequency bands but does not support the second communication mode, and the first communication mode and the second communication mode are different.
[0038] Regarding the various implementation methods of the tenth aspect and the beneficial technical effects of the various implementation methods, please refer to the description of the relevant implementation methods of the third aspect and will not be repeated here.
[0039] In the eleventh aspect, a communication device is provided, which includes a transceiver unit and a processing unit, wherein the processing unit is used to generate capability information; the transceiver unit is used to send capability information, the capability information is used to indicate whether the terminal device supports or does not support half-duplex frequency division duplex HD-FDD on a first frequency band pair, and the first frequency band pair includes a frequency band for a supplementary uplink carrier and a frequency band for a downlink carrier.
[0040] Regarding the various implementation methods of the eleventh aspect and the beneficial technical effects of the various implementation methods, please refer to the description of the relevant implementation methods of the fifth aspect and will not be repeated here.
[0041] In the twelfth aspect, a communication device is provided, which includes a transceiver unit and a processing unit, wherein the transceiver unit is used to receive capability information, and the capability information is used to indicate whether the terminal device supports or does not support half-duplex frequency division duplex HD-FDD on a first frequency band pair, and the first frequency band pair includes a frequency band for a supplementary uplink carrier and a frequency band for a downlink carrier.
[0042] Regarding the various implementation methods of the twelfth aspect and the beneficial technical effects of the various implementation methods, reference may be made to the description of the relevant implementation methods of the fifth aspect and no further elaboration will be given.
[0043] In a thirteenth aspect, a communication device is provided, wherein the communication device has the function of implementing the method in any one of the first aspect, the third aspect, or the fifth aspect, or any possible implementation of the first aspect, the third aspect, or the fifth aspect. The function can be implemented by hardware, or can be implemented by hardware executing corresponding software. The hardware or software includes one or more units or modules corresponding to the above functions.
[0044] In a fourteenth aspect, a communication device is provided, wherein the communication device has the function of implementing the method in the second aspect, the fourth aspect, or the sixth aspect, or any possible implementation of the second aspect, the fourth aspect, or the sixth aspect. The function can be implemented by hardware, or by hardware executing corresponding software. The hardware or software includes one or more units or modules corresponding to the above functions.
[0045] In a fifteenth aspect, a communication device is provided, comprising a processor and a memory. Optionally, a transceiver may also be included. The memory is used to store a computer program, and the processor is used to call and run the computer program stored in the memory, and control the transceiver to send and receive signals, so that the communication device executes the method in any possible implementation of the first aspect, the third aspect, or the fifth aspect, or any of the first aspect, the third aspect, or the fifth aspect.
[0046] Exemplarily, the communication device is a terminal device or a chip used in a terminal device.
[0047] In a sixteenth aspect, a communication device is provided, comprising a processor and a memory. Optionally, a transceiver may also be included. The memory is used to store a computer program, and the processor is used to call and run the computer program stored in the memory, and control the transceiver to send and receive signals, so that the communication device executes the method in any possible implementation of the second aspect, the fourth aspect, or the sixth aspect, or any of the second aspect, the fourth aspect, or the sixth aspect.
[0048] Exemplarily, the communication device is a network device or a chip used in a network device.
[0049] In the seventeenth aspect, a communication device is provided, comprising a processor and a communication interface, wherein the communication interface is used to receive data and / or information and transmit the received data and / or information to the processor, and the processor processes the data and / or information, and the communication interface is also used to output the data and / or information processed by the processor, so that the method in any possible implementation of the first aspect, the third aspect or the fifth aspect, or any aspect of the first aspect, the third aspect or the fifth aspect is executed.
[0050] Exemplarily, the communication device is a terminal device or a chip used in a terminal device.
[0051] In the eighteenth aspect, a communication device is provided, comprising a processor and a communication interface, wherein the communication interface is used to receive data and / or information and transmit the received data and / or information to the processor, and the processor processes the data and / or information, and the communication interface is also used to output the data and / or information processed by the processor, so that the method in any possible implementation of the second aspect, the fourth aspect or the sixth aspect, or any aspect of the second aspect, the fourth aspect or the sixth aspect is executed.
[0052] Exemplarily, the communication device is a network device or a chip used in a network device.
[0053] In the nineteenth aspect, a computer-readable storage medium is provided, wherein the computer-readable storage medium stores computer instructions, and when the computer instructions are executed on a computer, the method in any aspect from the first aspect to the second aspect, or any possible implementation of any aspect of these aspects, is executed.
[0054] In the twentieth aspect, a computer program product is provided, the computer program product comprising a computer program code, which, when executed on a computer, enables the method in any one of the first to sixth aspects, or any possible implementation of any one of these aspects, to be executed.
[0055] In the twenty-first aspect, a communication system is provided, comprising the communication device as described in the thirteenth aspect and the communication device as described in the fourteenth aspect.
[0056] In aspect 22, a communication system is provided, comprising a communication device as described in any one or more of aspects 13 to 20, or a communication device in any possible implementation of any of these aspects. BRIEF DESCRIPTION OF THE DRAWINGS
[0057] Figure 1 is a schematic architecture diagram of a communication system provided in an embodiment of the present application;
[0058] Figure 2 It is a schematic diagram of HD-FDD working mode;
[0059] Figure 3 A schematic flow chart of a communication method provided in an embodiment of the present application;
[0060] Figure 4 is a schematic flow chart of another communication method provided in an embodiment of the present application;
[0061] Figures 5 to 7 It is a schematic diagram of a possible communication device provided in an embodiment of the present application. DETAILED DESCRIPTION
[0062] The technical solution in this application will be described below in conjunction with the accompanying drawings.
[0063] The technical solutions of the embodiments of the present application can be applied to various communication systems, for example, fifth generation (5G), new radio (NR), long term evolution (LTE), Internet of Things (IoT), wireless-fidelity (WiFi), wireless communications related to the 3rd Generation Partnership Project (3GPP), or other wireless communications that may appear in the future.
[0064] Figure 1 1 is a schematic diagram of a communication system provided in an embodiment of the present application. The communication system 100 includes at least one network device, such as Figure 1 The network device 110 shown; the communication system 100 may also include at least one terminal device, such as Figure 1 The terminal device 120 and / or the terminal device 130 are shown. The network device 110 and the terminal device 120 / 130 can communicate with each other via a wireless link to exchange information. It can be understood that the network device and the terminal device can also be referred to as communication devices.
[0065] A network device is a network-side device with wireless transceiver functions. A network device may be a device in a radio access network (RAN) that provides wireless communication functions for terminal devices, and is referred to as a RAN device. For example, the network device may be a base station, an evolved NodeB (eNodeB), a next generation NodeB (gNB) in a 5G mobile communication system, a base station that is subsequently evolved by 3GPP, a transmission reception point (TRP), an access node in a WiFi system, a wireless relay node, a wireless backhaul node, etc. In a communication system using different radio access technologies (RAT), the names of devices with base station functions may be different. For example, an eNB or eNodeB may be referred to in an LTE system, and a gNB may be referred to in a 5G system or an NR system. This application does not limit the specific name of the base station. A network device may include one or more co-sited or non-co-sited transmission and reception points. For another example, a network device may include one or more centralized units (CU), one or more distributed units (DU), or one or more CUs and one or more DUs. Exemplarily, the functions of CU can be implemented by one entity or different entities. For example, the functions of CU are further divided, that is, the control plane and the user plane are separated and implemented through different entities, namely the control plane CU entity (i.e., CU-CP entity) and the user plane CU entity (i.e., CU-UP entity). The CU-CP entity and the CU-UP entity can be coupled with the DU to jointly complete the functions of the access network device. For example, CU is responsible for processing non-real-time protocols and services, and realizing the functions of the radio resource control (RRC) and packet data convergence protocol (PDCP) layers. DU is responsible for processing physical layer protocols and real-time services, and realizing the functions of the radio link control (RLC) layer, the media access control (MAC) layer and the physical (PHY) layer. In this way, some functions of the wireless access network device can be implemented through multiple network function entities. These network function entities can be network elements in hardware devices, or they can be software functions running on dedicated hardware, or virtualized functions instantiated on a platform (e.g., a cloud platform). The network device may also include an active antenna unit (AAU for short).AAU implements some physical layer processing functions, radio frequency processing and related functions of active antennas. Since the information of the RRC layer will eventually become the information of the PHY layer, or be converted from the information of the PHY layer, therefore, under this architecture, high-level signaling, such as RRC layer signaling, can also be considered to be sent by DU, or, sent by DU+AAU. It can be understood that the network device can be a device including one or more of a CU node, a DU node, and an AAU node. In addition, the CU can be divided into a network device in the access network (radio access network, RAN), and the CU can also be divided into a network device in the core network (core network, CN), and this application does not limit this. For example, in the vehicle to everything (V2X) technology, the access network device can be a road side unit (RSU). Multiple access network devices in the communication system can be base stations of the same type or base stations of different types. The base station can communicate with the terminal device, or it can communicate with the terminal device through a relay station. In the embodiment of the present application, the device for realizing the function of the network device can be the network device itself, or a device that can support the network device to realize the function, such as a chip system or a combination device or component that can realize the function of the access network device, and the device can be installed in the network device. In the embodiment of the present application, the chip system can be composed of chips, or it can include chips and other discrete devices.
[0066] Terminal equipment is a user-side device with wireless transceiver functions, which can be a fixed device, mobile device, handheld device (such as a mobile phone), wearable device, vehicle-mounted device, or a wireless device built into the above devices (such as a communication module, modem, or chip system, etc.). Terminal equipment is used to connect people, objects, machines, etc., and can be widely used in various scenarios, such as: cellular communication, device-to-device (D2D) communication, V2X communication, machine-to-machine / machine-type communication (M2M / MTC) communication, Internet of Things, virtual reality (VR), augmented reality (AR), industrial control, self driving, remote medical, smart grid, smart furniture, smart office, smart wearable, smart transportation, smart city, drones, robots and other scenarios. Exemplarily, the terminal device may be a handheld terminal in cellular communication, a communication device in D2D, an IoT device in MTC, a surveillance camera in intelligent transportation and smart city, or a communication device on a drone, etc. The terminal device may sometimes be referred to as user equipment (UE), user terminal, user device, user unit, user station, terminal, access terminal, access station, UE station, remote station, mobile device or wireless communication device, etc. In the embodiment of the present application, the device for realizing the function of the terminal device may be the terminal device, or may be a device that can support the terminal device to realize the function, such as a chip system or a combination device or component that can realize the function of the terminal device, and the device may be installed in the terminal device.
[0067] To facilitate understanding of the embodiments of the present application, the concepts and related processes involved in the present application are first introduced.
[0068] 1. Reduced capability UE (RedCap UE)
[0069] RedCap UE refers to terminals with reduced capabilities, which are lower-end than enhanced mobile broadband (eMBB) and ultra-reliable and low latency communication (URLLC). For example, RedCap UE may reduce the complexity of the following features: reduce the maximum bandwidth capability, reduce the number of transmit and receive antennas / antenna channels (branch), reduce the maximum multiple input multiple output (MIMO) layer capability, reduce the maximum modulation order capability, support half-duplex frequency division (FDD), etc.
[0070] 2. System information (SI)
[0071] System information is a message sent by the base station, which contains information required for UE initialization and related information of some other functions / features. System information is divided into minimum system information (Minimum SI) and other system information (Other SI).
[0072] The minimum system information consists of the master information block (MIB) and system information block 1 (SIB1), which is also called the remaining minimum system information (RMSI). MIB is broadcast periodically on the broadcast channel (BCH). SIB1 is broadcast periodically on the downlink shared channel (DL-SCH) or sent to the RRC_CONNECTED UE through dedicated signaling.
[0073] Other system information consists of other SIBs, such as SIB2 to SIB9, etc. Other SIBs are broadcast on DL-SCH periodically, or on-demand (i.e., when a UE in RRC idle state (RRC_IDLE) or RRC inactive state (RRC_INACTIVE) requests a certain SIB, the network broadcasts the SIB, otherwise the SIB is not sent), or sent to RRC connected UEs by dedicated signaling.
[0074] 3. Cell bar mechanism
[0075] It is an access control mechanism. In NR, the network sends a cell barring indication field (cellBarred) in the master information block MIB, which is used to indicate whether the current cell is barred or not barred. If a cell is barred, UEs in RRC idle state, RRC inactive state, and performing RRC reconstruction procedures cannot camp on the cell, and will no longer use the cell as a candidate cell for cell reselection within a certain period of time. In addition to the cell barring indication field in the MIB, the terminal device can also determine whether the cell status is barred or not barred based on other conditions. For example, the RedCap UE can also determine the barring status of the cell based on the cell barring indication field of the RedCap UE in SIB1.
[0076] 4. Frequency Division Duplex (FDD)
[0077] Different frequencies are used to distinguish uplink data transmission and downlink data transmission. Uplink data and downlink data can be transmitted on two different frequency bands. For the transmitting party, data is received and sent on different frequencies.
[0078] 5. Time Division Duplex
[0079] Use time (e.g., different time slots) to distinguish uplink transmission from downlink transmission. Uplink data and downlink data can be transmitted at different times. For the transmitting party, data is received and sent at different times.
[0080] 6. Communication mode: simplex, half-duplex and full-duplex
[0081] Simplex: refers to a working mode in which data can only be sent in one direction, and data streams can only be sent from one party to another.
[0082] Half-duplex: refers to a transmission mode in which data can be transmitted in both directions, but one party cannot receive and send data at the same time. Half-duplex transmission can be further divided into TDD half-duplex and FDD half-duplex:
[0083] TDD half-duplex: Only one of the upstream and downstream data streams can be transmitted at a given time. That is, one party in communication sends and receives data at the same frequency but at different times.
[0084] FDD Half-Duplex (HD-FDD): Uplink data stream and downlink data stream are transmitted at different frequencies and at different times. That is, one party sends and receives data at different frequencies and at different times.
[0085] For example, see Figure 2 , Figure 2 This is a schematic diagram of the HD-FDD working mode. At time T1, the network device sends a data stream to the terminal device on frequency band 1, and at time T2, the terminal device sends a data stream to the network device on frequency band 2. Time T1 and time T2 are different times, and frequency band 1 and frequency band 2 are different frequency bands.
[0086] Full-duplex: refers to a transmission mode that can transmit data in both directions, and one party can receive and send data at the same time. The full-duplex mode includes the frequency division half-duplex mode.
[0087] FDD full-duplex (FD-FDD): Uplink data and downlink data are transmitted simultaneously on different frequencies, that is, one communicating party sends and transmits data simultaneously on different frequencies.
[0088] In order to facilitate understanding of the embodiments of the present application, the following first briefly describes the process and method for an existing terminal device to determine the barred state of a cell and select a frequency band. At present, the cell broadcasts SIB1. After receiving SIB1, the UE uses the half-duplex support field (halfDuplexRedCap-Allowed) and UE capabilities to determine whether the cell is barred. Among them, if SIB1 contains a half-duplex support field, then the terminal device can determine that the cell supports HD-FDD. Conversely, if SIB1 does not contain a half-duplex support field, then the terminal device can determine that the cell does not support HD-FDD. If the terminal device determines that (1) the half-duplex support field does not appear, and (2) the UE only supports the HD-FDD communication mode. Then the terminal device determines that the cell is barred, and determines whether the intra-frequency cell is barred based on the intra-frequency reselection field (intraFreqReselectionRedCap).
[0089] It can be seen that if the above (1) and (2) are not satisfied, the terminal device may execute the subsequent frequency band selection process, usually selecting the first frequency band in the FDD uplink frequency band list (frequencyBandList) or the TDD downlink frequency band list (frequencyBandList) that the UE supports and the UE supports at least one corresponding transmission requirement. The UE supports the transmission requirement can be understood as the additional frequency transmission requirement (additionalSpectrumEmission) in the maximum power list (NR-NS-PmaxList) corresponding to the frequency band supported by the UE. In addition, if the cell is configured with a supplementary uplink carrier (SUL), the terminal device can also select the frequency band on the SUL. The frequency band selection on the SUL is similar to the frequency band selection conditions on the normal uplink carrier (NUL), which will not be repeated here.
[0090] However, the UE may have different capabilities to support communication modes on different frequency bands. For example, the UE only supports HD-FDD on frequency band #1, and supports more than HD-FDD on frequency band #2 (for example, the UE supports FD-FDD on frequency band #2). In this case, even if the half-duplex support field does not appear, that is, the cell does not support HD-FDD, since the above condition (2) is not met, the terminal device may not determine that the cell is prohibited, and subsequently selects frequency band #1. It can be seen that the terminal device and the cell do not support HD-FDD on frequency band #1, and one only supports HD-FDD, resulting in the terminal device being unable to work. For example, the following problem scenarios may occur:
[0091] Problem scenario 1:
[0092] As shown in Table 1, the cell does not support HD-FDD, and the UE only supports FD-FDD on the band that the cell does not support (even if it only supports HD-FDD on the band that the cell supports), resulting in the "UE only supports HD-FDD operation" condition not being met. The UE does not consider the cell barred and performs subsequent operations. Finally, a band is selected according to the subsequent process, but because the cell does not support HD-FDD, the UE cannot perform HD-FDD on the band and cannot work. The band supported by the cell can also be understood as the band to which the cell belongs, that is, the band that appears in the frequency band list of the cell.
[0093] Table 1:
[0094]
[0095] Problem scenario 2:
[0096] As shown in Table 2, the cell does not support HD-FDD. The UE supports HD-FDD on some supported bands but not on some supported bands, which results in the "UE only supports HD-FDD operation" condition not being met. The UE does not consider the cell barred and performs subsequent operations. Finally, a band is selected according to the subsequent process, but because the cell does not support HD-FDD, the UE cannot perform HD-FDD on the band and cannot work.
[0097] Table 2:
[0098]
[0099] Problem scenario 3:
[0100] As shown in Table 3, the cell is configured with NUL and SUL. The UE supports FD-FDD on the NUL band and only supports HD-FDD on the SUL band, which results in the "UE only supports HD-FDD operation" condition not being met. The UE does not consider the cell barred and performs subsequent operations. Finally, a SUL band is selected according to the subsequent process, but because the cell does not support HD-FDD, the UE cannot perform HD-FDD on the band and cannot work.
[0101]
[0102] The embodiments of the present application provide a communication method and a communication device, wherein the terminal device considers the capability of the communication mode supported on the frequency band when determining whether a cell is prohibited, thereby improving the reliability of the operation of the terminal device. Figure 2 First, the communication method will be described.
[0103] Figure 3 It is a schematic flow chart of a communication method provided in an embodiment of the present application.
[0104] S310, the terminal device receives first information from the network device. Correspondingly, the network device sends the first information to the terminal device.
[0105] The first information includes first configuration information and second configuration information, or the first information includes the first configuration information but does not include the second configuration information, wherein the first configuration information indicates a frequency band to which the first cell belongs, and the second configuration information indicates that the first cell supports a first communication mode.
[0106] That is, the first information can be used to determine whether the first cell supports the first communication mode. If the first information includes the second configuration information, the first cell supports the first communication mode; if the first information does not include the second configuration information, the first cell does not support the first communication mode.
[0107] In some implementations, the communication mode is a duplex mode, and the first communication mode is half-duplex frequency division duplex HD-FDD.
[0108] Exemplarily, the first information may be SI, such as SIB1 in SI. The first configuration information may be a frequency band list (frequencyBandList) in the first information. The frequency band to which the first cell belongs may be understood as a frequency band supported by the first cell, or may be understood as a frequency band included in a frequency band list of the first cell. The second configuration information may be a half-duplex support field. When the first information includes a half-duplex support field, the terminal device may consider that the first cell supports HD-FDD; when the first information does not include a half-duplex support field, the terminal device may consider that the first cell does not support HD-FDD.
[0109] It is understandable that the indication method of the second configuration information may also be other indication methods. For example, if the second configuration information indicates a first value, it indicates that the first cell supports the first communication mode; if the second configuration information indicates a second value, it indicates that the first cell does not support the first communication mode. In this case, if the first information includes the second configuration information, it can be replaced by the second configuration information indicating the first value; if the first information does not include the second configuration information, it can be replaced by the second configuration information indicating the second value.
[0110] In some implementations, the network device may broadcast the first information, so that the terminal device receiving the first information may determine whether the first cell supports HD-FDD based on the first information. The first cell supporting HD-FDD may mean that the frequency band to which the first cell belongs supports HD-FDD.
[0111] It is understandable that when the first information does not include the second configuration information, the first cell does not support the first communication mode, and the first cell may support other communication modes, such as the second communication mode. The second communication mode is a communication mode different from the first communication mode, for example, the second communication mode may be FD-FDD. For example, if SIB1 does not include a half-duplex support field, the terminal device may assume that the first cell does not support HD-FDD but supports FD-FDD. This application does not specifically limit this.
[0112] Optionally, the terminal device may be a RedCap UE.
[0113] S320: The terminal device determines whether the first cell is prohibited or not prohibited based on the first condition.
[0114] The following describes the situation where the first cell is prohibited:
[0115] In case the first condition is not met, the first cell is prohibited.
[0116] The first condition includes: when the first information does not include the second configuration information, the terminal device supports the second communication mode on the first frequency band (hereinafter referred to as the first condition #1), and / or the first information includes the second configuration information (hereinafter referred to as the first condition #2). The frequency band to which the first cell belongs includes the first frequency band. This condition can be recorded as the first sub-condition 1 later.
[0117] The terminal device supports the second communication mode on the first frequency band, which can be understood as the terminal device supporting not only the first communication mode on the first frequency band. For example, the terminal device supports other communication modes other than the first communication mode on the first frequency band. For example, the terminal device supports FD-FDD on the first frequency band, or the terminal device supports not only HD-FDD on the first frequency band.
[0118] Exemplarily, the first condition #1 includes: when the half-duplex support field is not included in SIB1, the terminal device supports FD-FDD on the frequency band of the first cell. In other words, when the half-duplex support field is not included in SIB1, the terminal device supports not only HD-FDD (for example, supports FD-FDD and HD-FDD) on the frequency band of the first cell.
[0119] Exemplarily, the first condition #2 includes: including a half-duplex support field in SIB1.
[0120] Failure to meet the first condition (or first sub-condition 1) can be understood as not meeting either the first condition #1 or the first condition #2. That is, the situation where the first condition is not met includes: when the first information does not include the second configuration information, the terminal device only supports the first communication mode on the first frequency band. In this case, the terminal device should consider that the first cell is prohibited. For example, when the first information does not include the half-duplex support field, the terminal device only supports HD-FDD on the first frequency band.
[0121] Satisfying the first condition (or the first sub-condition 1) can be understood as satisfying the first condition #1 or satisfying the first condition #2, that is, satisfying any one of the first condition #1 and the first condition #2. The situations where the first condition is satisfied include: Scenario 1) The first information includes the second configuration information. Scenario 2) When the first information does not include the second configuration information, the terminal device supports the second communication mode on the first frequency band.
[0122] Exemplarily, the first condition (or the first sub-condition 1) is satisfied in the following situations: 1) SIB1 contains a half-duplex support field. 2) When SIB1 does not contain a half-duplex support field, the terminal device supports FD-FDD on the first frequency band. In this case, the terminal device should not consider that the first cell is prohibited. Further, the terminal device can perform subsequent conditional judgment and frequency band selection.
[0123] That is to say, if the first condition (or the first sub-condition 1) is not met, for example, when the first cell does not support HD-FDD, the terminal device only supports HD-FDD on the first frequency band (or the terminal device does not support FD-HDD on the first frequency band), the terminal device can determine that the first cell and the terminal device do not support the same communication mode on the first frequency band, and thus determine to prohibit the first cell to prevent the terminal device from selecting the first frequency band. The first cell does not support HD-FDD on the first frequency band, and the terminal device only supports the HD-FDD band on the first frequency band, causing the terminal device to be unable to work.
[0124] The first frequency band is one or more frequency bands to which the first cell belongs. It can be understood that if the first condition is not satisfied, it can be understood that none of the frequency bands to which the first cell belongs meets the first condition, and at this time, the terminal device considers that the first cell is in a prohibited state; if the first condition is satisfied, it can be understood that at least one frequency point to which the first cell belongs meets the first condition.
[0125] The first cell is barred, which can be understood as the terminal device considering the first cell to be in a barred state (barred), or the terminal device excluding the first cell from candidate cells in a cell selection or cell reselection process.
[0126] Optionally, when the first condition is not met, the terminal device also considers the cell on the same frequency as the first cell to be in a prohibited state. Alternatively, when the first condition is not met, the terminal device considers the first cell to be in a prohibited state and uses the same-frequency reselection field (intraFreqReselectionRedCap or intraFreqReselection) to determine the state of the cell on the same frequency as the first cell.
[0127] It is understandable that the first condition may also include other conditions, for example, the first condition may also include one or more of the following:
[0128] First sub-condition 2: the first frequency band is a frequency division duplex FDD frequency band.
[0129] Exemplarily, the terminal device supports one or more frequency bands in the TDD downlink frequency band list. Or the terminal device supports one or more frequency bands in the FDD uplink frequency band list. And the one or more frequency bands are not frequency bands used only for downlink transmission, that is, the one or more frequency bands include frequency bands that can be used for uplink transmission, and the first frequency band may be one or more of them.
[0130] First sub-condition 3: The terminal device supports the transmission requirements of the first frequency band.
[0131] Exemplarily, the terminal device supports at least one transmission requirement for a downlink frequency band supporting TDD or an uplink frequency band supporting FDD.
[0132] First sub-condition 4: the terminal device supports the first uplink channel bandwidth, the maximum transmission bandwidth of the first uplink channel bandwidth is less than or equal to the carrier bandwidth, and greater than or equal to the bandwidth of the initial uplink bandwidth part BWP.
[0133] Exemplarily, the terminal device supports an uplink channel bandwidth whose maximum transmission bandwidth is less than or equal to the carrier bandwidth of the first cell and greater than or equal to the bandwidth of the initial uplink BWP of the first cell. In some implementations, if the terminal device is configured with a RedCap-specific initial uplink BWP, the initial uplink BWP is a RedCap-specific initial uplink BWP.
[0134] Optionally, the carrier bandwidth of the first cell is the carrier bandwidth corresponding to NUL, and the initial uplink BWP bandwidth of the first cell is the initial uplink BWP bandwidth corresponding to NUL.
[0135] First sub-condition 5: The terminal device supports the first downlink channel bandwidth, the maximum transmission bandwidth of the first downlink channel bandwidth is less than or equal to the carrier bandwidth, and greater than or equal to the bandwidth of the initial downlink BWP.
[0136] Exemplarily, the terminal device supports a downlink channel bandwidth whose maximum transmission bandwidth is less than or equal to the carrier bandwidth of the first cell and greater than or equal to the bandwidth of the initial downlink BWP of the first cell. In some implementations, if the terminal device is configured with a RedCap-specific initial downlink BWP, the initial downlink BWP is a RedCap-specific initial downlink BWP.
[0137] Optionally, the carrier bandwidth of the first cell is the carrier bandwidth corresponding to the downlink, and the initial downlink BWP bandwidth of the first cell is the initial downlink BWP bandwidth corresponding to NUL.
[0138] First sub-condition 6: the terminal device is enabled for uplink transmission with frequency shift, and the terminal device supports frequency shift on the first frequency band, or the terminal device is not enabled for uplink transmission with frequency shift.
[0139] Exemplarily, the terminal device may receive information #1, which is used to enable uplink transmission of frequency shift. For example, information #1 may be a 7.5kHz frequency shift indication (frequencyShift7p5khz). If the network device is configured with a 7.5kHz frequency shift indication, and the terminal device supports a corresponding 7.5kHz frequency shift on the first frequency band, then the first sub-condition 6 is satisfied. Or if the terminal is not configured with frequencyShift7p5khz, the first sub-condition 6 is satisfied.
[0140] It can be understood that the first condition not being satisfied may mean that any one or more of the sub-conditions included in the first condition are not satisfied. The first condition being satisfied may mean that all the sub-conditions included in the first condition are satisfied.
[0141] Exemplarily, if no first frequency band satisfies the first sub-condition 1 to the first sub-condition 6, the terminal device regards the first cell as being in a prohibited state. If at least one first frequency band satisfies the first sub-condition 1 to the first sub-condition 6, the terminal device should not regard the first cell as being prohibited. Further, the terminal device may perform subsequent condition judgment and frequency band selection.
[0142] It should be noted that when the first condition is met, the terminal device can determine that the first cell is prohibited. However, when the first condition is not met, the terminal device can determine that the first cell is not prohibited, or the terminal device can execute other conditions to further determine whether the first cell is prohibited.
[0143] Exemplarily, when the first condition is met, the terminal device determines whether the first cell is configured with a tracking area code (trackingAreaCode) or a tracking area list (trackingAreaList) of a public land mobile network (PLMN) or an equivalent PLMN registered by the terminal device. For example, if the network device does not provide a tracking area code or a tracking area list of a selected PLMN or an equivalent PLMN, the terminal device determines that the first cell is prohibited. If the network device provides any one or more of the above parameters, the terminal device can determine that the first cell is not prohibited.
[0144] In some implementations, the terminal device determines whether the cell is prohibited before determining whether the first condition is met. Exemplarily, when the first information does not include the second configuration information (i.e., the first cell does not support HD-FDD), and each of the multiple frequency bands in the frequency bandwidth list configured by the first cell obtained by the terminal device only supports HD-FDD, then the terminal device determines that the first cell is prohibited. Otherwise, the terminal device can perform the judgment of the first condition as described above to further determine whether the first cell is prohibited.
[0145] The above describes a judgment mechanism for the terminal device to determine whether the first cell is prohibited. For example, when the terminal device determines that the first condition is not satisfied, it determines that the cell is prohibited. When the first condition is satisfied, if the terminal device does not determine that the first cell is prohibited, the terminal device can select a frequency band. That is, the following step S330 is executed.
[0146] Optionally, S330, the terminal device selects a first frequency band that satisfies the second condition among the frequency bands to which the first cell belongs.
[0147] The second condition includes: when the first information does not include the second configuration information, supporting the second communication mode (hereinafter represented by the second sub-condition 1).
[0148] Exemplarily, the second condition includes: when the half-duplex support field is not included in SIB1, FD-FDD is supported. In other words, when the half-duplex support field is not included in SIB1, not only HD-FDD is supported (for example, FD-FDD and HD-FDD are supported).
[0149] It can be understood that: S330 can also be understood as, when the first information does not include the second configuration information, the terminal device selects the first frequency band that meets the second condition, and the second condition includes that the frequency band supports the second communication mode.
[0150] That is to say, when the first cell does not support HD-FDD, the terminal device can select the first frequency band in the frequency band to which the first cell belongs that not only supports HD-FDD (or supports FD-FDD). The first frequency band may refer to the first frequency band in the frequency band list of the first cell, or the frequency band with the smallest frequency band index, or the first frequency band arranged according to a specific rule, and this application does not specifically limit this. For example, in the frequency band list to which the first cell belongs, band 1, band 5, and band 7 satisfy the requirements of not only supporting HD-FDD (or supporting FD-FDD), then the terminal device can select band 1.
[0151] It is understandable that the second condition may also include other conditions, for example, the second condition may also include one or more of the following:
[0152] Second sub-condition 2: Support the launch requirement.
[0153] Exemplarily, for a downlink frequency band of TDD or an uplink frequency band of FDD, at least one transmission requirement is supported.
[0154] Second sub-condition 3: In case of uplink transmission with frequency shift enabled, frequency shift is supported.
[0155] Exemplarily, the terminal device may receive information #1, which is used to enable uplink transmission of frequency offset. For example, information #1 may be a 7.5 kHz frequency offset indication.
[0156] It can be understood that the second sub-condition 3 is that in the case of uplink transmission with frequency shift enabled, the second condition includes that the terminal device supports frequency shift on the frequency band.
[0157] Exemplarily, the terminal device can select the first frequency band in the FDD uplink frequency band list, or the TDD downlink frequency band list, which is supported by the terminal device and for which the terminal device supports at least one transmission requirement, and if the half-duplex support field does not appear, not only supports the first frequency band in the frequency band of HD-FDD (or supports FD-FDD).
[0158] It should be noted that the first condition above can be used to determine whether the first cell is prohibited, and the terminal device can determine whether the cell is prohibited by determining whether it has one or more first frequency bands that meet some of the first sub-conditions (sub-conditions related to the frequency band) in the first condition. The second condition can be used to select a frequency band, that is, select one of the frequency bands that meet the second condition.
[0159] In some implementations, the frequency band selected above is a frequency band in NUL, and after the terminal device selects the NUL frequency band, it may also select the SUL frequency band based on the configuration of SUL. In this case, the terminal device and the network device may also perform the following step S340.
[0160] Optionally, S340, when the third condition is met, determine that the first cell is configured with a supplementary uplink carrier SUL.
[0161] The third condition includes: when the first information does not include the second configuration information, the terminal device supports the third communication mode on the second frequency band (hereinafter referred to as the third condition #1), or the first information includes the second configuration information (hereinafter referred to as the third condition #2). This condition can be recorded as the third sub-condition 1 later.
[0162] The frequency band to which the first cell SUL belongs includes the second frequency band, the first communication mode is different from the third communication mode, and the third communication mode may be the same as or different from the second communication mode.
[0163] The terminal device supports the third communication mode on the second frequency band, which can be understood as the terminal device supporting not only the first communication mode on the second frequency band. For example, the terminal device supports other communication modes besides the first communication mode on the second frequency band. For example, the terminal device supports FD-FDD on the second frequency band, or the terminal device supports not only HD-FDD on the second frequency band. In some implementations, the third communication mode is FD-FDD.
[0164] Exemplarily, the third condition #1 includes: when the half-duplex support field is not included in SIB1, the terminal device supports FD-FDD. In other words, when the half-duplex support field is not included in SIB1, the terminal device supports not only HD-FDD (for example, supports FD-FDD and HD-FDD) on the second frequency band.
[0165] Exemplarily, the third condition #2 includes: including a half-duplex support field in SIB1.
[0166] Satisfying the third condition (or third sub-condition 1) can be understood as satisfying the third condition #1 or satisfying the third condition #2, that is, satisfying any one of the third condition #1 and the third condition #2. The situations where the third condition is satisfied include: Scenario 1) The first information includes the second configuration information. Scenario 2) When the first information does not include the second configuration information, the terminal device supports the third communication mode on the second frequency band.
[0167] Exemplarily, the third condition is satisfied in the following cases: 1) SIB1 includes a half-duplex support field. 2) When SIB1 does not include a half-duplex support field, the terminal device supports FD-FDD on the SUL frequency band.
[0168] Failure to meet the third condition (or third sub-condition 1) can be understood as not meeting either the third condition #1 or the third condition #2. That is, the situation where the third condition is not met includes: when the first information does not include the second configuration information, the terminal device only supports the third communication mode on the second frequency band. In this case, the terminal device should consider that the first cell is not configured with SUL. For example, when the first information does not include the half-duplex support field, the terminal device only supports HD-FDD on the second frequency band.
[0169] That is to say, if the third condition is not met, for example, when the first cell does not support HD-FDD, the terminal device does not support FD-HDD on the SUL band (or the terminal device only supports HD-FDD on the first band), the terminal device can determine that the first cell is not configured with SUL, thereby avoiding the terminal device selecting the SUL band, causing the terminal device to fail to work.
[0170] The third frequency band is one or more frequency bands to which the SUL of the first cell belongs, or a cell included in the frequency band list of the SUL of the first cell. It can be understood that if the third condition is satisfied, it can be understood that at least one frequency point to which the SUL of the first cell belongs satisfies the third condition; if the third condition is not satisfied, it can be understood that all frequency bands to which the SUL of the first cell belongs do not satisfy the third condition, and at this time, the terminal device believes that the first cell is not configured with the SUL.
[0171] Determining that the first cell is configured with a supplementary uplink carrier SUL may be understood as the terminal device believing that the first cell is configured with SUL, or the terminal device believing that the SUL of the first cell is available.
[0172] It is understandable that the third condition may also include other conditions, for example, the third condition may also include one or more of the following:
[0173] Third sub-condition 2: the terminal device includes the second frequency band in the frequency band list supported by SUL;
[0174] Exemplarily, the terminal device supports one or more frequency bands in the frequency band list of the SUL.
[0175] Third sub-condition 3: The terminal device supports the emission requirements of the second frequency band;
[0176] Exemplarily, the terminal device supports at least one transmission requirement for the SUL uplink frequency band.
[0177] Third sub-condition 4: The terminal device supports a second uplink channel bandwidth, the maximum transmission bandwidth of the second uplink channel bandwidth is less than or equal to the SUL carrier bandwidth, and greater than or equal to the bandwidth of the SUL initial uplink BWP;
[0178] Exemplarily, the terminal device supports an uplink channel bandwidth, the maximum transmission bandwidth of which is less than or equal to the carrier bandwidth of the first cell SUL, and greater than or equal to the bandwidth of the initial uplink BWP of the first cell SUL.
[0179] Third sub-condition 5: The terminal device is enabled for uplink transmission with frequency shift, and the terminal device supports frequency shift on the second frequency band, or the terminal device is not enabled for uplink transmission with frequency shift.
[0180] The description about the second frequency band (SUL frequency band) in the third condition is similar to the description about the first frequency band (NUL frequency band) in the first condition, and is not repeated here.
[0181] Exemplarily, if the first cell is configured with SUL configuration information (e.g., supplementaryUplink), and the terminal device supports one or more frequency bands in the frequency band list of SUL, and the terminal device supports at least one transmission requirement corresponding to a supported SUL band, and the terminal device supports an uplink channel bandwidth that is less than or equal to the uplink carrier bandwidth and greater than or equal to the bandwidth of the initial BWP of SUL, and the terminal device supports not only HD-FDD on the frequency band (or the terminal device supports FD-FDD on the frequency band) when the half-duplex support field does not appear, the terminal device can consider that the first cell is configured with SUL.
[0182] The above describes the judgment mechanism of the terminal device to determine whether the first cell is configured with SUL. For example, when the terminal device determines that the third condition is satisfied, it determines that the first cell is configured with SUL. Thus, the terminal device can select a SUL frequency band. Then, the following step S350 can be executed.
[0183] Optionally, S350, when the third condition is met, the terminal device selects a first frequency band in the SUL frequency band to which the first cell belongs that meets the fourth condition.
[0184] The fourth condition includes: when the first information does not include the second configuration information, supporting the second communication mode (hereinafter represented by the fourth sub-condition 1).
[0185] Exemplarily, the fourth condition includes: when the half-duplex support field is not included in SIB1, FD-FDD is supported. In other words, when the half-duplex support field is not included in SIB1, not only HD-FDD is supported (for example, FD-FDD and HD-FDD are supported). It can be understood that: S350 can also be understood as, when the first information does not include the second configuration information, the terminal device selects the first frequency band that meets the fourth condition, and the fourth condition includes that the frequency band supports the third communication mode.
[0186] That is to say, when the first cell does not support HD-FDD, the terminal device can select the first frequency band in the SUL frequency band to which the first cell belongs that not only supports HD-FDD (or supports FD-FDD). The first frequency band may refer to the first frequency band in the frequency band list of the first cell SUL, or the frequency band with the smallest frequency band index, or the first frequency band arranged according to a specific rule, which is not particularly limited in this application. For example, in the SUL frequency band list to which the first cell belongs, SUL frequency band 1, SUL frequency band 5 and SUL frequency band 7 satisfy the requirements of not only supporting HD-FDD (or supporting FD-FDD), then the terminal device can select SUL frequency band 1.
[0187] It is understandable that the fourth condition may also include other conditions, for example, the fourth condition may also include one or more of the following:
[0188] Fourth sub-condition 2: Support launch requirements;
[0189] Exemplarily, the terminal device supports at least one transmission requirement for the SUL uplink frequency band.
[0190] Fourth sub-condition 3: In case of uplink transmission with frequency shift enabled for SUL, frequency shift is supported.
[0191] The description of the fourth condition is similar to that of the second condition and will not be repeated here.
[0192] Exemplarily, the terminal device can select the first frequency band as the second frequency band that is supported by the terminal device and that the terminal device supports at least one transmission requirement in the frequency band list of SUL, and when the half-duplex support field does not appear, it not only supports HD-FDD (or supports FD-FDD).
[0193] Based on the present technical solution, the terminal device takes into account the ability of the terminal device to support a communication mode on the first frequency band in the conditions for determining whether the first cell is prohibited, thereby avoiding the problem of mismatch between the communication mode supported by the first cell and the communication mode supported by the terminal device on the first frequency band on the first frequency band, and improving the reliability of the operation of the terminal device.
[0194] above Figure 3 In the communication method described in , when the terminal device determines whether the first cell is prohibited, even if the first cell does not support HD-FDD, the terminal device supports not only HD-FDD on one or some frequency bands, and the terminal device can consider that the first cell is not prohibited. The embodiment of the present application also provides a method, with Figure 3 The difference of the communication method described is that when the first cell does not support HD-FDD, the terminal device can determine that the first cell is prohibited as long as it only supports HD-FDD on one frequency band among all frequency bands. Figure 4 This implementation method is described.
[0195] Figure 4 It is a schematic flow chart of another communication method provided in an embodiment of the present application.
[0196] S410: The terminal device receives first information from the network device. Correspondingly, the network device sends the first information to the terminal device.
[0197] The first information includes first configuration information and second configuration information, or the first information includes the first configuration information but does not include the second configuration information, wherein the first configuration information indicates the N frequency bands to which the first cell belongs, and the second configuration information indicates that the first cell supports a first communication mode, and N is a positive integer.
[0198] In some implementations, the N frequency bands include a normal uplink carrier NUL frequency band and an auxiliary uplink carrier NUL frequency band. For example, the N frequency bands include a frequency band to which a normal uplink carrier belongs and a frequency band to which a supplementary uplink carrier belongs. That is, if the network device is configured with SUL, the frequency band list includes a frequency band list of NUL and SUL.
[0199] For a more detailed description of the first information, please refer to the above Figure 3 The description of step S310 is not repeated here.
[0200] S420: When the fifth condition is met, the terminal device determines that the first cell is prohibited.
[0201] The fifth condition includes: when the first information does not include the second configuration information, the terminal device supports the first communication mode on at least one frequency band among the N frequency bands and does not support the second communication mode, and the first communication mode and the second communication mode are different.
[0202] In other words, the fifth condition includes: when the first information does not include the second configuration information, the terminal device only supports the first communication mode on at least one frequency band among the N frequency bands.
[0203] Exemplarily, the fifth condition includes: when the half-duplex support field is not included in SIB1, the terminal device only supports HD-FDD on at least one frequency band among the N frequency bands.
[0204] When the first cell does not support HD-FDD, the terminal device only supports HD-FDD on one frequency band among all frequency bands, and the terminal device may determine that the first cell is prohibited.
[0205] Based on the present technical solution, the terminal device takes into account the ability of the terminal device to support communication modes on N frequency bands in the conditions for determining whether the first cell is prohibited, thereby avoiding the problem of mismatch between the communication mode supported by the first cell and the communication mode supported by the terminal device on the selected frequency band, and improving the reliability of the operation of the terminal device.
[0206] In some implementations, an embodiment of the present application provides a method for reporting capabilities.
[0207] Exemplarily, the terminal device sends capability information to the network device, and correspondingly, the network device receives the capability information of the terminal device.
[0208] The capability information indicates that the terminal device supports or does not support half-duplex frequency division duplex HD-FDD on a first frequency band pair, where the first frequency band pair includes a frequency band of a supplementary uplink carrier and a frequency band of a downlink carrier.
[0209] Optionally, the supplementary uplink frequency band is a supplementary uplink frequency band supported by the terminal device, and the downlink carrier frequency band is a downlink carrier frequency band supported by the terminal device.
[0210] That is, when reporting the support status of SUL for HD-FDD, the terminal device may report specifically for the downlink frequency band. For example, the terminal device reports whether it supports HD-FDD in combination with SUL for one or more supported downlink frequency bands.
[0211] When selecting a frequency band, if the terminal device selects SUL, it can determine whether to use SUL based on the HD-FDD capability of its own SUL-DL frequency band pair and the capability of the optional cell to support HD-FDD.
[0212] The network determines whether the terminal device supports HD-FDD based on the HD-FDD capability corresponding to the SUL-DL frequency band pair reported by the terminal device.
[0213] In the current prior art, terminal devices and network devices can only assume that the UE supports HD-FDD on all downlink frequency bands for SUL, or does not support HD-FDD at all. Based on this technical solution, by stipulating that the terminal device reports the situation that SUL supports HD-FDD specifically for the downlink frequency band, it is possible to indicate the support of SUL for HD-FDD in a more flexible and fine-grained manner.
[0214] It is understandable that the above application embodiments provide Figure 2 , Figure 3 The method for reporting capability can be implemented separately or in combination. Figure 2 The provided method can be implemented in conjunction with the method for reporting capabilities, such as in Figure 2 In step S340, the terminal device may use the method of reporting capability to determine whether HD-FDD is supported on the frequency band of SUL. Figure 3 The provided method can be implemented in combination with the method for reporting capabilities. For example, the terminal device can use Figure 3 The method of determining whether the cell is prohibited is used, and in the subsequent process, the method of reporting capability is used to determine whether the terminal device supports HD-FDD on the SUL frequency band. This application does not make any special limitation on this.
[0215] The term "at least one of..." or "at least one of..." herein refers to all or any combination of the listed items. For example, "at least one of A, B, and C" may refer to the following six situations: A exists alone, B exists alone, C exists alone, A and B exist at the same time, B and C exist at the same time, and A, B, and C exist at the same time. "At least one" herein refers to one or more. "More than one" refers to two or more.
[0216] It is understood that in each embodiment of the present application, "B corresponding to A" means that B is associated with A, and B can be determined according to A. However, it should also be understood that determining B according to A does not mean determining B only according to A, but B can also be determined according to A and / or other information. The terms "include", "comprises", "has" and their variations all mean "including but not limited to", unless otherwise specifically emphasized.
[0217] It is to be understood that in various embodiments of the present application, the first, second and various digital numbers are only used for the convenience of description and are not used to limit the scope of the embodiments of the present application. For example, to distinguish different information.
[0218] It can be understood that in various embodiments of the present application, "indication" may include direct indication and indirect indication, and may also include explicit indication and implicit indication. The information indicated by a certain information (such as the first information described above) is called information to be indicated. In the specific implementation process, there are many ways to indicate the information to be indicated, such as but not limited to, the information to be indicated can be directly indicated, such as the information to be indicated itself or the index of the information to be indicated. The information to be indicated can also be indirectly indicated by indicating other information, wherein there is an association relationship between the other information and the information to be indicated. It is also possible to indicate only a part of the information to be indicated, while the other parts of the information to be indicated are known or agreed in advance. For example, the indication of specific information can also be achieved by means of the arrangement order of each information agreed in advance (such as specified by the protocol), thereby reducing the indication overhead to a certain extent.
[0219] It can be understood that in various embodiments of the present application, "pre-configuration" can be achieved by pre-saving corresponding codes, tables or other methods that can be used to indicate relevant information in a device (for example, a first terminal device), and the present application does not limit its specific implementation method.
[0220] It is understood that in some of the above embodiments, "transmission" is mentioned. If no special explanation is given, transmission includes receiving and / or sending. For example, transmitting a signal may include receiving a signal and / or sending a signal.
[0221] It can be understood that, in each embodiment of the present application, "receiving" can also be replaced by "detecting" or "monitoring".
[0222] It is understandable that in each embodiment of the present application, the interaction between a terminal device and a network device is mainly used as an example for illustrative description, and the present application is not limited thereto. The terminal device can be replaced by a receiving device, which can be a terminal device or a network device; the network device can be replaced by a sending device, which can be a terminal device or a network device. For example, "terminal device" can be replaced by "first terminal device" and "network device" can be replaced by "second terminal device".
[0223] It is understood that the formulas involved in the various embodiments of the present application are only exemplary and do not limit the protection scope of the embodiments of the present application. In the process of calculating the above-mentioned parameters, the calculation can also be performed according to the above formula, or based on the deformation of the above formula, or according to other methods to satisfy the result of the formula calculation.
[0224] It can be understood that some optional features in the embodiments of the present application may not depend on other features in some scenarios, and may also be combined with other features in some scenarios, without limitation.
[0225] It is understandable that the solutions in the various embodiments of the present application can be used in reasonable combination, and the explanations or descriptions of the various terms appearing in the embodiments can be mutually referenced or explained in the various embodiments, without limitation.
[0226] It can also be understood that in the above-mentioned method embodiments, the methods and operations implemented by the terminal device can also be implemented by components that can be formed by the terminal device (such as chips or circuits); in addition, the methods and operations implemented by the network device can also be implemented by components that can be formed by the network device (such as chips or circuits), without limitation.
[0227] Corresponding to the methods given in the above-mentioned method embodiments, the embodiments of the present application also provide corresponding devices, which include modules for executing the corresponding methods in the above-mentioned method embodiments. The module can be software, hardware, or a combination of software and hardware. It can be understood that the technical features described in the above-mentioned method embodiments are also applicable to the following device embodiments.
[0228] See also Figure 5 , as an example, Figure 5 1 is a schematic diagram of a communication device 10 provided in an embodiment of the present application. The device 10 includes a transceiver unit 11 and a processing unit 12. The transceiver unit 11 can be used to implement corresponding communication functions. The transceiver unit 11 can also be called a communication interface or a communication unit. The processing unit 12 can be used to process data or information.
[0229] Optionally, the device 10 further includes a storage unit, which can be used to store instructions and / or data, and the processing unit 12 can read the instructions and / or data in the storage unit so that the device implements the aforementioned various method embodiments.
[0230] In a possible design, the device 10 can be used to execute the actions performed by the terminal device in the above method embodiments. In this case, the device 10 can be a terminal device or a component of a terminal device, the transceiver unit 11 is used to execute the transceiver-related operations on the terminal device side in the above method embodiments, and the processing unit 12 is used to execute the processing-related operations on the terminal device side in the above method embodiments.
[0231] A first possible implementation method is that the transceiver unit 11 is used to receive first information, the first information includes first configuration information and second configuration information, or the first information includes the first configuration information but does not include the second configuration information, wherein the first configuration information indicates a frequency band to which the first cell belongs, and the second configuration information indicates that the first cell supports a first communication mode; the processing unit 12 is used to determine whether the first cell is prohibited or not prohibited based on a first condition, and when the first condition is not satisfied, the first cell is prohibited; wherein the first condition includes: when the first information does not include the second configuration information, the terminal device supports the second communication mode on the first frequency band, wherein the frequency band to which the first cell belongs includes the first frequency band, and the first communication mode and the second communication mode are different.
[0232] The device 10 can implement the steps or processes executed by the terminal device in the method embodiment according to the embodiment of the present application, and the device 10 may include a unit for executing the method executed by the terminal device in the method embodiment of the present application. The specific process of each unit executing the above corresponding steps has been described in detail in the above method embodiments, and for the sake of brevity, it will not be repeated here.
[0233] Another possible design is that the device 10 can be used to execute the actions performed by the network device in the above method embodiments. In this case, the device 10 can be a network device or a component of a network device, the transceiver unit 11 is used to execute the transceiver related operations on the network device side in the above method embodiments, and the processing unit 12 is used to execute the processing related operations on the network device side in the above method embodiments.
[0234] In a first possible implementation, a processing unit 12 is used to generate first information; a transceiver unit 11 is used to send the first information, wherein the first information includes first configuration information and second configuration information, or the first information includes the first configuration information but does not include the second configuration information, wherein the first configuration information indicates a frequency band to which the first cell belongs, and the second configuration information indicates that the first cell supports a first communication mode; wherein, if a first condition is not met, the first cell is prohibited, and the first condition includes: if the first information does not include the second configuration information, the terminal device supports the second communication mode on the first frequency band, wherein the frequency band to which the first cell belongs includes the first frequency band, and the first communication mode and the second communication mode are different.
[0235] The device 10 can implement the steps or processes executed by the network device in the method embodiment according to the embodiment of the present application, and the device 10 may include a unit for executing the method executed by the network device in the method embodiment of the present application. The specific process of each unit executing the above corresponding steps has been described in detail in the above method embodiments, and for the sake of brevity, it will not be repeated here.
[0236] It should be understood that the device 10 here is embodied in the form of a functional unit. The term "unit" here may refer to an application specific integrated circuit (ASIC), an electronic circuit, a processor (such as a shared processor, a dedicated processor or a group processor, etc.) and a memory for executing at least one software or firmware program, a merged logic circuit and / or other suitable components that support the described functions. In an optional example, those skilled in the art can understand that the device 10 can be specifically a terminal device in the above-mentioned embodiment, and can be used to execute the various processes and / or steps corresponding to the terminal device in the above-mentioned method embodiments; or, the device 10 can be specifically a network device in the above-mentioned embodiment, and can be used to execute the various processes and / or steps corresponding to the network device in the above-mentioned method embodiments. To avoid repetition, it will not be repeated here.
[0237] The device 10 of each of the above schemes has the function of implementing the corresponding steps performed by the communication device (such as a terminal device, and also such as a network device) in the above method. The function can be implemented by hardware, or by hardware executing the corresponding software implementation. The hardware or software includes at least one module corresponding to the above function; for example, the transceiver unit can be replaced by a transceiver (for example, the sending unit in the transceiver unit can be replaced by a transmitter, and the receiving unit in the transceiver unit can be replaced by a receiver), and other units, such as the processing unit, can be replaced by a processor to respectively perform the sending and receiving operations and related processing operations in each method embodiment.
[0238] In addition, the transceiver unit 11 may also be a transceiver circuit (for example, may include a receiving circuit and a sending circuit), and the processing unit may be a processing circuit.
[0239] It should be pointed out that Figure 5 The device in the above-mentioned embodiment may be a device, or a chip or a chip system, such as a system on chip (SoC). The transceiver unit may be an input / output circuit or a communication interface; the processing unit may be a processor or a microprocessor or an integrated circuit integrated on the chip. This is not limited here.
[0240] See also Figure 6 , as an example, Figure 62 is a schematic diagram of another communication device 20 provided in an embodiment of the present application. The device 20 includes a processor 21, and the processor 21 is coupled to a memory 22. Optionally, the device 20 also includes a memory 22. The memory 22 is used to store computer programs or instructions and / or data, and the processor 21 is used to execute the computer programs or instructions stored in the memory 22, or read the data stored in the memory 22, so as to execute the methods in the above method embodiments.
[0241] Optionally, there is at least one processor 21.
[0242] Optionally, there is at least one memory 22.
[0243] Optionally, the memory 22 is integrated with the processor 21, or is separately provided.
[0244] Alternatively, if Figure 6 As shown, the device 20 further includes a transceiver 23, and the transceiver 23 is used for receiving and / or sending signals. For example, the processor 21 is used to control the transceiver 23 to receive and / or send signals.
[0245] As a solution, the device 20 is used to implement the operations performed by the terminal device in the above various method embodiments.
[0246] For example, the processor 21 is used to execute the computer program or instructions stored in the memory 22 to implement the relevant operations of the terminal device in the above various method embodiments. Figure 3 The method executed by the terminal device in the illustrated embodiment.
[0247] As another solution, the device 20 is used to implement the operations performed by the network device in the above various method embodiments.
[0248] For example, the processor 21 is used to execute the computer program or instructions stored in the memory 22 to implement the relevant operations of the network device in each method embodiment above. Figure 3 The method is performed by the network device in the illustrated embodiment.
[0249] It should be understood that the processor mentioned in the embodiments of the present application may be a central processing unit (CPU), or other general-purpose processors, digital signal processors (DSP), application specific integrated circuits (ASIC), field programmable gate arrays (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. A general-purpose processor may be a microprocessor or the processor may also be any conventional processor, etc.
[0250] It should also be understood that the memory mentioned in the embodiments of the present application may be a volatile memory and / or a non-volatile memory. Among them, the non-volatile 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). For example, RAM can be used as an external cache. By way of example and not limitation, RAM includes the following forms: static random access memory (SRAM), dynamic random access memory (DRAM), synchronous dynamic random access memory (SDRAM), double data rate synchronous dynamic random access memory (DDR SDRAM), enhanced synchronous dynamic random access memory (ESDRAM), synchronous link dynamic random access memory (SLDRAM), and direct rambus RAM (DR RAM).
[0251] It should be noted that when the processor is a general-purpose processor, DSP, ASIC, FPGA or other programmable logic device, discrete gate or transistor logic device, discrete hardware component, the memory (storage module) can be integrated into the processor.
[0252] It should also be noted that the memory described herein is intended to include, but is not limited to, these and any other suitable types of memory.
[0253] See also Figure 7 , as an example, Figure 7 Schematic diagram of a chip system 30 provided in an embodiment of the present application. The chip system 30 (or also referred to as a processing system) includes a logic circuit 31 and an input / output interface 32 .
[0254] Among them, the logic circuit 31 can be a processing circuit in the chip system 30. The logic circuit 31 can be coupled to the storage unit and call the instructions in the storage unit so that the chip system 30 can implement the methods and functions of each embodiment of the present application. The input / output interface 32 can be an input / output circuit in the chip system 30, outputting information processed by the chip system 30, or inputting data or signaling information to be processed into the chip system 30 for processing.
[0255] Specifically, for example, if the terminal device is installed with the chip system 30, the logic circuit 31 is coupled to the input / output interface 32, and the input / output interface 32 can input the wake-up signal to the logic circuit 31 for processing.
[0256] As a solution, the chip system 30 is used to implement the operations performed by the terminal device in the above method embodiments.
[0257] For example, the logic circuit 31 is used to implement the processing-related operations performed by the terminal device in the above method embodiment, such as: Figure 3 The processing-related operations performed by the terminal device in the illustrated embodiment; the input / output interface 32 is used to implement the sending and / or receiving-related operations performed by the terminal device in the above method embodiment, such as, Figure 3 The terminal device in the illustrated embodiment performs operations related to sending and / or receiving.
[0258] As another solution, the chip system 30 is used to implement the operations performed by the network device in the above method embodiments.
[0259] For example, the logic circuit 31 is used to implement the processing-related operations performed by the network device in the above method embodiment, such as: Figure 3 The network device in the embodiment shown performs processing-related operations; the input / output interface 32 is used to implement the sending and / or receiving-related operations performed by the network device in the above method embodiment, such as, Figure 3 The network devices in the illustrated embodiment perform operations related to sending and / or receiving.
[0260] An embodiment of the present application also provides a computer-readable storage medium on which computer instructions for implementing the methods executed by the device in the above-mentioned method embodiments are stored.
[0261] For example, when the computer program is executed by a computer, the computer can implement the method executed by the terminal device in each embodiment of the above method.
[0262] For another example, when the computer program is executed by a computer, the computer can implement the method performed by the network device in each embodiment of the above method.
[0263] An embodiment of the present application also provides a computer program product, comprising instructions, which, when executed by a computer, implement the methods performed by a terminal device or a network device in the above-mentioned method embodiments.
[0264] An embodiment of the present application also provides a communication system, which includes the terminal device and the network device in the above embodiments.
[0265] The explanation of the relevant contents and beneficial effects of any of the above-mentioned devices can be referred to the corresponding method embodiments provided above, which will not be repeated here.
[0266] In the several embodiments provided in the present application, it should be understood that the disclosed devices and methods can be implemented in other ways. For example, the device embodiments described above are only schematic. For example, the division of the units is only a logical function division. There may be other division methods in actual implementation, such as at least two units or components can be combined or integrated into another system, or some features can be ignored or not executed. In addition, the mutual coupling or direct coupling or communication connection shown or discussed can be through some interfaces, indirect coupling or communication connection of devices or units, which can be electrical, mechanical or other forms.
[0267] In the above embodiments, it can be implemented in whole or in part by software, hardware, firmware or any combination thereof. When implemented using software, it can be implemented in whole or in part in the form of a computer program product. The computer program product includes at least one computer instruction. When the computer program instruction is loaded and executed on a computer, the process or function described in the embodiment of the present application is generated in whole or in part. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable devices. For example, the computer can be a personal computer, a server, or a network device, etc. The computer instruction can be stored in a computer-readable storage medium, or transmitted from one computer-readable storage medium to another computer-readable storage medium, for example, the computer instruction can be transmitted from a website site, computer, server or data center by wired (e.g., coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) mode to another website site, computer, server or data center. The computer-readable storage medium can be any available medium that a computer can access or a data storage device such as a server or data center that contains at least one available medium integrated. The available medium may be a magnetic medium (e.g., a floppy disk, a hard disk, a magnetic tape), an optical medium (e.g., a DVD), or a semiconductor medium (e.g., a solid state disk (SSD), etc. For example, the aforementioned available medium includes, but is not limited to, various media that can store program codes, such as a USB flash drive, a mobile hard disk, a read-only memory (ROM), a random access memory (RAM), a magnetic disk or an optical disk.
[0268] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited thereto. Any person skilled in the art who is familiar with the present technical field can easily think of changes or substitutions within the technical scope disclosed in the present application, which should be included in the protection scope of the present application. Therefore, the protection scope of the present application should be based on the protection scope of the claims.
Claims
1. A communication method, It is characterized in that The method is applicable to a terminal device or a chip of the terminal device, and the method includes: receiving first information, where the first information includes first configuration information, where the first configuration information indicates that a frequency band to which the first cell belongs includes a first frequency band; When the first information also includes second configuration information, or when the terminal device supports full-duplex frequency division duplex FD-FDD on the first frequency band, it is determined that the first cell is not prohibited, wherein the second configuration information indicates that the first cell supports half-duplex frequency division duplex HD-FDD.
2. The method according to claim 1, It is characterized in that The first information is system information block 1 SIB1, and the first configuration information is a frequency band list frequencyBandList.
3. The method according to claim 1 or 2, It is characterized in that The terminal device is a reduced capability terminal device redcap UE.
4. The method according to any one of claims 1 to 3, It is characterized in that The first frequency band is a frequency division duplex FDD frequency band; The terminal device supports the transmission requirement of the first frequency band; The terminal device supports a first uplink channel bandwidth, the maximum transmission bandwidth of the first uplink channel bandwidth is less than or equal to the carrier bandwidth, and is greater than or equal to the bandwidth of the initial uplink bandwidth part BWP; The terminal device supports a first downlink channel bandwidth, the maximum transmission bandwidth of the first downlink channel bandwidth is less than or equal to the carrier bandwidth, and is greater than or equal to the bandwidth of the initial downlink BWP; and / or, The terminal device is enabled for uplink transmission with frequency shift, and the terminal device supports frequency shift on the first frequency band, or the terminal device is not enabled for uplink transmission with frequency shift.
5. The method according to any one of claims 1 to 4, It is characterized in that The method further includes: selecting a first frequency band in the frequency band to which the first cell belongs that satisfies a second condition, wherein the second condition includes: In a case where the first information does not include the second configuration information, the second communication mode is supported.
6. The method according to claim 5, It is characterized in that The second condition also includes one or more of the following: Support launch requirements; In case of uplink transmission with frequency shift enabled, frequency shift is supported.
7. The method according to any one of claims 1 to 6, It is characterized in that The method further comprises: When the third condition is met, it is determined that the first cell is configured with a supplementary uplink carrier SUL; wherein, The third condition includes: when the first information does not include the second configuration information, the terminal device supports the third communication mode on the second frequency band; or the first information includes the second configuration information; The frequency band to which the first cell SUL belongs includes the second frequency band, and the first communication mode and the third communication mode are different.
8. The method according to claim 7, It is characterized in that The third condition also includes one or more of the following: The SUL frequency band list supported by the terminal device includes the second frequency band; The terminal device supports the transmission requirement of the second frequency band; The terminal device supports a second uplink channel bandwidth, the maximum transmission bandwidth of the second uplink channel bandwidth is less than or equal to the SUL carrier bandwidth, and is greater than or equal to the bandwidth of the SUL initial uplink BWP; The terminal device is enabled for uplink transmission with frequency shift, and the terminal device supports frequency shift on the second frequency band, or the terminal device is not enabled for uplink transmission with frequency shift.
9. The method according to claim 7 or 8, It is characterized in that When the third condition is met, selecting a first frequency band in the SUL frequency band to which the first cell belongs that meets a fourth condition, where the fourth condition includes: In a case where the first information does not include the second configuration information, the second communication mode is supported.
10. The method according to claim 9, It is characterized in that The fourth condition also includes one or more of the following: Support launch requirements; In case of uplink transmission with frequency offset enabled for SUL, frequency offset is supported.
11. A communication system, It is characterized in that Including network equipment and terminal equipment: The network device sends first information to the terminal device, where the first information includes first configuration information, and the first configuration information indicates that the frequency band to which the first cell belongs includes the first frequency band; In the case where the first information also includes second configuration information, or in the case where the terminal device supports full-duplex frequency division duplex FD-FDD on the first frequency band, the terminal device determines that the first cell is not prohibited, wherein the second configuration information indicates that the first cell supports half-duplex frequency division duplex HD-FDD.
12. A communication device, It is characterized in that The communication device includes a transceiver unit and a processing unit, wherein: The transceiver unit is configured to receive first information, where the first information includes first configuration information, where the first configuration information indicates that the frequency band to which the first cell belongs includes the first frequency band; The processing unit is used to determine that the first cell is not prohibited when the first information also includes second configuration information, or when the communication device supports full-duplex frequency division duplex FD-FDD on the first frequency band, wherein the second configuration information indicates that the first cell supports half-duplex frequency division duplex HD-FDD.
13. A computer-readable storage medium, It is characterized in that The computer-readable storage medium stores a computer program, and when the computer program is executed on a computer, the computer is caused to execute the method according to any one of claims 1 to 10.
14. A computer program product, It is characterized in that The method comprises a computer program code, which, when executed on a computer, causes the computer to execute the method according to any one of claims 1 to 10.
15. A communication device, It is characterized in that include: A processor, configured to execute a computer program stored in a memory, so that the computer executes the method according to any one of claims 1 to 10.
16. The communication device according to claim 15, It is characterized in that The communication device further comprises the memory.