Transmission processing method, device and equipment
The method enables uplink transmissions on SSB symbols in 5G New Radio networks by employing a first duplex mode and specific resource conditions, enhancing transmission flexibility and reducing interference, and enhancing the flexibility of the frame structure configuration of a full-duplex system.
Patent Information
- Application Number
- JP2024538091
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-12-27
- Filing Date
- 2022-12-21
- Publication Date
- 2026-02-20
- Estimated Expiration
- 2042-12-21
AI Technical Summary
The existing cell-level SSB configuration in 5G New Radio networks restricts uplink transmissions in slots where SSBs are located, reducing transmission flexibility in full duplex systems.
A transmission processing method that allows uplink transmissions on symbols where SSBs exist by employing a first duplex mode, such as full duplex or subband non-overlapping duplex, and satisfying specific time and frequency domain resource conditions, including non-overlapping with SSB measurement durations and sufficient frequency domain separation.
Ensures transmission flexibility by enabling uplink transmissions on symbols where SSBs are located, reducing restrictions due to SSB transmission and enhancing frame structure configuration in full-duplex systems.
Smart Images

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Abstract
Description
[Technical Field]
[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) This disclosure is based on and claims priority from a Chinese patent application bearing application number 202111614246.4 and filing date December 27, 2021, the entire contents of which are incorporated herein by reference. The present disclosure relates to the field of communications technology, and more particularly to transmission processing methods, devices and equipment. [Background technology]
[0002] In a 5G New Radio (NR) network, the synchronization signal / physical broadcast channel signal block (SS / PBCH block), also known as the synchronization signal block (SSB), includes the physical broadcast channel (PBCH), primary synchronization signal (PSS), and secondary synchronization signal (SSS). The SSB is also sometimes called an SS-block. The SSB is located in a half frame, and since the time length of one frame is 10 ms, the time length of a half frame is 5 ms. One half frame contains multiple candidate SSBs, and the time domain position of each candidate SSB is specified.
[0003] Currently, a base station indicates cell-level SSB configuration through higher layer parameters, i.e., the base station indicates which time domain resources to transmit SSBs on. However, the existing cell-level SSB configuration requires that uplink transmissions are not possible in slots where SSBs are located, which reduces transmission flexibility in a full duplex system. Summary of the Invention [Problem to be solved by the invention]
[0004] The present disclosure aims to provide a transmission processing method, device, and equipment that enables a terminal to perform uplink transmission on a symbol where an SSB exists, thereby ensuring transmission flexibility. [Means for solving the problem]
[0005] To achieve the above object, an embodiment of the present disclosure provides a transmission processing method performed by a terminal, the method comprising: If the time domain resource in which the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block SSB, employing a first duplex mode configured on the network device; the terminal has a configured first capability; and the time domain and / or frequency domain resources of the uplink channel and / or uplink reference signal satisfy a set first condition, the terminal transmits the uplink channel and / or uplink reference signal when at least one of the following is true.
[0006] Preferably, the first duplex mode includes a duplex mode excluding time division duplex (TDD) and frequency division duplex (FDD).
[0007] Preferably, the first ability is: The terminal supports the first duplex mode, or the terminal supports a network device operating in a network that employs the first duplex mode.
[0008] Preferably, the first condition is: the time domain resources of the upstream channel and / or upstream reference signal do not overlap with the SSB measurement duration; The time domain resources of the upstream channel and / or upstream reference signal do not overlap with the time domain resources of the SSB to be measured; No SSB is transmitted in the time-frequency resource of the uplink channel and / or uplink reference signal; The time-frequency resources of the uplink channel and / or uplink reference signal do not overlap with the time-frequency resources for transmitting SSBs; and the interval between the frequency domain resource of the uplink channel and / or the uplink reference signal and the frequency domain resource of the SSB is equal to or greater than a first threshold.
[0009] Preferably, the time domain resource of the uplink channel not overlapping with the SSB measurement duration includes a slot in which the uplink channel is located not overlapping with the SSB measurement duration; Or, The time domain resource of the upstream reference signal not overlapping with the SSB measurement duration includes the symbol in which the upstream reference signal is located not overlapping with the SSB measurement duration.
[0010] Preferably, the method further comprises: receiving a first signaling; Here, the first signaling indicates time domain resources of the SSB to be measured within an SSB measurement duration.
[0011] Preferably, the first condition further includes: receiving downlink control information DCI; Here, the DCI is used to schedule the uplink channel and / or uplink reference signal, and the DCI includes first information, which indicates that the time-frequency resources of the uplink channel and / or uplink reference signal do not collide with SSB.
[0012] In order to achieve the above object, an embodiment of the present disclosure provides a transmission processing device, the transmission processing device including a sending module, the sending module including: If the time domain resource in which the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block SSB, employing a first duplex mode configured on the network device; The terminal has a configured first capability; and the time domain and / or frequency domain resources of the uplink channel and / or uplink reference signal satisfy a set first condition.
[0013] Preferably, the first duplex mode includes a duplex mode excluding time division duplex (TDD) and frequency division duplex (FDD).
[0014] Preferably, the first ability is: The terminal supports the first duplex mode, or the terminal supports a network device operating in a network that employs the first duplex mode.
[0015] Preferably, the first condition is: the time domain resources of the upstream channel and / or upstream reference signal do not overlap with the SSB measurement duration; The time domain resources of the upstream channel and / or upstream reference signal do not overlap with the time domain resources of the SSB to be measured; No SSB is transmitted in the time-frequency resource of the uplink channel and / or uplink reference signal; The time-frequency resources of the uplink channel and / or uplink reference signal do not overlap with the time-frequency resources for transmitting SSBs; and the interval between the frequency domain resource of the uplink channel and / or the uplink reference signal and the frequency domain resource of the SSB is equal to or greater than a first threshold.
[0016] Preferably, the time domain resource of the uplink channel not overlapping with the SSB measurement duration includes a slot in which the uplink channel is located not overlapping with the SSB measurement duration; Or, The time domain resource of the upstream reference signal not overlapping with the SSB measurement duration includes the symbol in which the upstream reference signal is located not overlapping with the SSB measurement duration.
[0017] Preferably, the apparatus further comprises: a first signaling receiving module configured to receive a first signaling; Here, the first signaling indicates time domain resources of the SSB to be measured within an SSB measurement duration.
[0018] Preferably, the apparatus further comprises: a DCI receiving module configured to receive downlink control information DCI; Here, the DCI is used to schedule the uplink channel and / or uplink reference signal, and the DCI includes first information, which indicates that the time-frequency resources of the uplink channel and / or uplink reference signal do not collide with SSB.
[0019] In order to achieve the above object, an embodiment of the present disclosure provides a terminal including a transceiver, wherein the transceiver: If the time domain resource in which the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block SSB, employing a first duplex mode configured on the network device; the terminal has a configured first capability; and the time domain and / or frequency domain resources of the uplink channel and / or uplink reference signal satisfy a set first condition.
[0020] Preferably, the first duplex mode includes a duplex mode excluding time division duplex (TDD) and frequency division duplex (FDD).
[0021] Preferably, the first ability is: The terminal supports the first duplex mode, or the terminal supports a network device operating in a network that employs the first duplex mode.
[0022] Preferably, the first condition is: the time domain resources of the upstream channel and / or upstream reference signal do not overlap with the SSB measurement duration; The time domain resources of the upstream channel and / or upstream reference signal do not overlap with the time domain resources of the SSB to be measured; No SSB is transmitted in the time-frequency resource of the uplink channel and / or uplink reference signal; The time-frequency resources of the uplink channel and / or uplink reference signal do not overlap with the time-frequency resources for transmitting SSBs; and the interval between the frequency domain resource of the uplink channel and / or the uplink reference signal and the frequency domain resource of the SSB is equal to or greater than a first threshold.
[0023] Preferably, the time domain resource of the uplink channel not overlapping with the SSB measurement duration includes a slot in which the uplink channel is located not overlapping with the SSB measurement duration; Or, The time domain resource of the upstream reference signal not overlapping with the SSB measurement duration includes the symbol in which the upstream reference signal is located not overlapping with the SSB measurement duration.
[0024] Preferably, the transceiver further comprises: configured to receive the first signaling; Here, the first signaling indicates time domain resources of the SSB to be measured within an SSB measurement duration.
[0025] Preferably, the transceiver further comprises: configured to receive downlink control information DCI; Here, the DCI is used to schedule the uplink channel and / or uplink reference signal, and the DCI includes first information, which indicates that the time-frequency resources of the uplink channel and / or uplink reference signal do not collide with SSB.
[0026] In order to achieve the above object, an embodiment of the present disclosure provides a transmission processing method performed by a network device, the method comprising: If the time domain resource in which the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block SSB, the network device employing a configured first duplex mode; The terminal has a configured first capability; and the time domain and / or frequency domain resources of the uplink channel and / or uplink reference signal satisfy a set first condition, the network device receives the uplink channel and / or uplink reference signal.
[0027] Preferably, the first duplex mode includes a duplex mode excluding time division duplex (TDD) and frequency division duplex (FDD).
[0028] Preferably, the first ability is: The terminal supports the first duplex mode, or the terminal supports a network device operating in a network that employs the first duplex mode.
[0029] Preferably, the first condition is: the time domain resources of the upstream channel and / or upstream reference signal do not overlap with the SSB measurement duration; The time domain resources of the upstream channel and / or upstream reference signal do not overlap with the time domain resources of the SSB to be measured; No SSB is transmitted in the time-frequency resource of the uplink channel and / or uplink reference signal; The time-frequency resources of the uplink channel and / or uplink reference signal do not overlap with the time-frequency resources for transmitting SSBs; and the interval between the frequency domain resource of the uplink channel and / or the uplink reference signal and the frequency domain resource of the SSB is equal to or greater than a first threshold.
[0030] Preferably, the time domain resource of the uplink channel not overlapping with the SSB measurement duration includes a slot in which the uplink channel is located not overlapping with the SSB measurement duration; Or, The time domain resource of the upstream reference signal not overlapping with the SSB measurement duration includes the symbol in which the upstream reference signal is located not overlapping with the SSB measurement duration.
[0031] Preferably, the method further comprises: transmitting a first signaling; Here, the first signaling indicates time domain resources of the SSB to be measured within an SSB measurement duration.
[0032] Preferably, the method further comprises: transmitting downlink control information DCI; Here, the DCI is used to schedule the uplink channel and / or uplink reference signal, and the DCI includes first information, which indicates that the time-frequency resources of the uplink channel and / or uplink reference signal do not collide with SSB.
[0033] In order to achieve the above object, an embodiment of the present disclosure provides a transmission processing device, the transmission processing device including a receiving module, the receiving module comprising: If the time domain resource in which the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block SSB, employing a first duplex mode configured on the network device; The terminal has a configured first capability; and the time domain and / or frequency domain resources of the uplink channel and / or uplink reference signal satisfy a set first condition.
[0034] Preferably, the first duplex mode includes a duplex mode excluding time division duplex (TDD) and frequency division duplex (FDD).
[0035] Preferably, the first ability is: The terminal supports the first duplex mode, or the terminal supports a network device operating in a network that employs the first duplex mode.
[0036] Preferably, the first condition is: the time domain resources of the upstream channel and / or upstream reference signal do not overlap with the SSB measurement duration; The time domain resources of the upstream channel and / or upstream reference signal do not overlap with the time domain resources of the SSB to be measured; No SSB is transmitted in the time-frequency resource of the uplink channel and / or uplink reference signal; The time-frequency resources of the uplink channel and / or uplink reference signal do not overlap with the time-frequency resources for transmitting SSBs; and the interval between the frequency domain resource of the uplink channel and / or the uplink reference signal and the frequency domain resource of the SSB is equal to or greater than a first threshold.
[0037] Preferably, the time domain resource of the uplink channel not overlapping with the SSB measurement duration includes a slot in which the uplink channel is located not overlapping with the SSB measurement duration; Or, The time domain resource of the upstream reference signal not overlapping with the SSB measurement duration includes the symbol in which the upstream reference signal is located not overlapping with the SSB measurement duration.
[0038] Preferably, the apparatus further comprises: a first signaling transmitting module configured to transmit first signaling; Here, the first signaling indicates time domain resources of the SSB to be measured within an SSB measurement duration.
[0039] Preferably, the apparatus further comprises: a DCI transmission module configured to transmit downlink control information (DCI), Here, the DCI is used to schedule the uplink channel and / or uplink reference signal, and the DCI includes first information, which indicates that the time-frequency resources of the uplink channel and / or uplink reference signal do not collide with SSB.
[0040] In order to achieve the above object, an embodiment of the present disclosure provides a network device including a transceiver, wherein the transceiver: If the time domain resource in which the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block SSB, employing a first duplex mode configured on the network device; The terminal has a configured first capability; and the time domain and / or frequency domain resources of the uplink channel and / or uplink reference signal satisfy a set first condition.
[0041] Preferably, the first duplex mode includes a duplex mode excluding time division duplex (TDD) and frequency division duplex (FDD).
[0042] Preferably, the first ability is: The terminal supports the first duplex mode, or the terminal supports a network device operating in a network that employs the first duplex mode.
[0043] Preferably, the first condition is: the time domain resources of the upstream channel and / or upstream reference signal do not overlap with the SSB measurement duration; The time domain resources of the upstream channel and / or upstream reference signal do not overlap with the time domain resources of the SSB to be measured; No SSB is transmitted in the time-frequency resource of the uplink channel and / or uplink reference signal; The time-frequency resources of the uplink channel and / or uplink reference signal do not overlap with the time-frequency resources for transmitting SSBs; and the interval between the frequency domain resource of the uplink channel and / or the uplink reference signal and the frequency domain resource of the SSB is equal to or greater than a first threshold.
[0044] Preferably, the time domain resource of the uplink channel not overlapping with the SSB measurement duration includes a slot in which the uplink channel is located not overlapping with the SSB measurement duration; Or, The time domain resource of the upstream reference signal not overlapping with the SSB measurement duration includes the symbol in which the upstream reference signal is located not overlapping with the SSB measurement duration.
[0045] Preferably, the transceiver further comprises: configured to transmit the first signaling; Here, the first signaling indicates time domain resources of the SSB to be measured within an SSB measurement duration.
[0046] Preferably, the transceiver further comprises: configured to transmit downlink control information DCI, Here, the DCI is used to schedule the uplink channel and / or uplink reference signal, and the DCI includes first information, which indicates that the time-frequency resources of the uplink channel and / or uplink reference signal do not collide with SSB.
[0047] To achieve the above object, an embodiment of the present disclosure provides a terminal including a transceiver, the terminal including a processor, a memory, and a program or instruction stored in the memory and executable by the processor, and realizing a transmission processing method performed by the terminal or a transmission processing method performed by the network equipment when the processor executes the program or instruction.
[0048] To achieve the above object, an embodiment of the present disclosure provides a readable storage medium on which a program or instruction is stored, and when the program or instruction is executed by a processor, the program or instruction realizes steps of a transmission processing method performed by the terminal or steps of a transmission processing method performed by the network equipment. [Effects of the Invention]
[0049] The above technical solutions of the present disclosure have the following beneficial effects: According to the method of the embodiment of the present disclosure, when the time domain resource where the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving SSB, if at least one of the following conditions is met: the network device adopts a configured first duplex mode, the terminal has a configured first capability, and the time domain and / or frequency domain resource of the uplink channel and / or the uplink reference signal meets a configured first condition, the terminal transmits the uplink channel and / or the uplink reference signal. In this way, the terminal is allowed to perform uplink transmission on the symbol where the SSB is located, and transmission flexibility can be ensured. [Brief explanation of the drawings]
[0050] [Figure 1] 1 is a flowchart of a transmission processing method according to an embodiment of the present disclosure (part 1); [Figure 2] FIG. 1 is a schematic diagram of time-frequency resources for uplink and time-frequency resources for downlink (part 1); [Figure 3] FIG. 2 is a schematic diagram of time-frequency resources for uplink and time-frequency resources for downlink (part 2). [Figure 4] FIG. 10 is a schematic diagram of time-frequency resources for uplink and time-frequency resources for downlink (part 3). [Figure 5] FIG. 4 is a schematic diagram of time-frequency resources for uplink and time-frequency resources for downlink (part 4). [Figure 6]FIG. 5 is a schematic diagram of time-frequency resources for uplink and time-frequency resources for downlink (part 5). [Figure 7] 10 is a flowchart (part 2) of an authentication method applied to a mobile terminal according to an embodiment of the present disclosure. [Figure 8] FIG. 2 is a diagram showing the configuration of the device corresponding to FIG. 1. [Figure 9] FIG. 8 is a diagram showing the configuration of the device corresponding to FIG. 7. [Figure 10] FIG. 1 is a structural diagram of a terminal according to an embodiment of the present disclosure. [Figure 11] FIG. 10 is a structural diagram of a terminal according to another embodiment of the present disclosure. [Figure 12] FIG. 1 is a structural diagram of a network device according to an embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0051] To make the technical problem, technical means, and advantages that the present disclosure aims to solve clearer, the following detailed description will be given with reference to the drawings and specific embodiments.
[0052] It should be noted that throughout the specification, the term "one embodiment" or "an embodiment" means that a particular feature, structure, or characteristic associated with the embodiment is included in at least one embodiment of the present invention. Thus, the appearances of "in one embodiment" or "in one embodiment" in various places in the specification do not necessarily refer to the same embodiment. Furthermore, the particular feature, structure, or characteristic may be incorporated into one or more embodiments in any suitable manner.
[0053] In each embodiment of the present disclosure, the magnitude of the numbers of the above processes does not mean the order of execution, but the order of execution of each process is determined by its function and inherent logic, and it should be understood that this does not constitute any limitation on the implementation process of the embodiments of the present disclosure.
[0054] Also, in this specification, the terms "system" and "network" can always be used interchangeably.
[0055] In the embodiments of the present disclosure, "B corresponding to A" indicates that B and A are associated with each other and B can be determined based on A. Note that determining B based on A does not mean determining B based only on A, but B may also be determined based on A and / or other information.
[0056] As shown in FIG. 1, an embodiment of the present disclosure provides a transmission processing method performed by a terminal, which includes the following step 101:
[0057] In step 101, if the time domain resource where the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block SSB, employing a first duplex mode configured on the network device; the terminal has a configured first capability; When at least one of the following conditions is met, the terminal transmits the uplink channel and / or uplink reference signal: the time domain and / or frequency domain resources of the uplink channel and / or uplink reference signal satisfy a set first condition.
[0058] In this way, when at least one of the following conditions is met: the terminal has the configured first capability; the network device employs the configured first duplex mode; and the time domain and / or frequency domain resources of the uplink channel and / or the uplink reference signal satisfy the configured first condition, the terminal can transmit the uplink channel and / or the uplink reference signal to the network device such that the time domain resources in which the uplink channel and / or the uplink reference signal are located overlap with any one symbol in a set of symbols for receiving SSB. In this way, the limitations on uplink channel and / or uplink reference signal transmission due to SSB transmission can be reduced, and transmission flexibility can be ensured.
[0059] Here, the terminal determines whether the time domain resource in which the uplink channel and / or the uplink reference signal is located overlaps with any one of the set of symbols for receiving the SSB by determining the set of symbols for receiving the SSB based on higher layer parameters, where the higher layer parameters include at least one of ssb-PositionsInBurst and periodicityServingCell, where ssb-PositionsInBurst indicates the time domain position for transmitting the SSB in the half frame including the SSB, and periodicityServingCell indicates the period of the half frame for receiving the SSB from the serving cell.
[0060] In addition, in step 101 of this embodiment, "if at least one of the following is true, the terminal transmits the uplink channel and / or the uplink reference signal" can be understood as "unless at least one of the following is true, the terminal does not transmit the uplink channel and / or the uplink reference signal."
[0061] In this embodiment, the uplink channel includes at least one of a Physical Uplink Shared Channel (PUSCH), a Physical Uplink Control Channel (PUCCH), and a Physical Random Access Channel (PRACH). The uplink reference signal includes at least one of a channel Sounding Reference Signal (SRS), a Demodulation Reference Signal (DM-RS) for PUSCH, a DM-RS for PUCCH, and a Phase-tracking reference signal (PT-RS) for PUSCH. The time domain resource includes at least one of a symbol, a slot, a mini-slot, and a subframe.
[0062] For example, if a time domain resource in which a PUSCH, a PUCCH, or a PRACH is located overlaps with any one symbol of a set of symbols for receiving an SSB, and at least one of the above conditions is met, the terminal transmits the PUSCH, the PUCCH, or the PRACH (or the terminal does not transmit the PUSCH, the PUCCH, or the PRACH unless at least one of the above conditions is met).If the uplink reference signal is an SRS and a time domain resource in which the SRS is located overlaps with any one symbol of a set of symbols for receiving an SSB, and at least one of the above conditions is met, the terminal transmits the SRS (or the terminal does not transmit the SRS unless at least one of the above conditions is met).
[0063] In this embodiment, the terminal can know that the network device adopts the first duplex mode through an instruction from the network device, where the instruction from the network device can be instructed by the network device to instruct the duplex mode of the base station (or cell), or the network device can instruct the duplex mode between the terminal and the base station (or cell).
[0064] In some embodiments, the first duplex mode includes a duplex mode other than time division duplex (TDD) and frequency division duplex (FDD).
[0065] For example, the first duplex mode includes any one of full duplex, full overlapping full duplex, subband non-overlapping full duplex, and subband partially overlapping full duplex. Note that full overlapping full duplex may be abbreviated as full overlapping duplex, subband non-overlapping full duplex may be abbreviated as subband non-overlapping duplex, and subband partially overlapping full duplex may be abbreviated as subband partially overlapping duplex.
[0066] Here, full duplex means that a transceiver simultaneously transmits and receives signals within the same carrier frequency band. The transceiver may be a base station or a terminal.
[0067] Here, full overlapping full duplex means that a transmitter and a receiver transmit and receive signals on the same time-frequency resource. For example, as shown in Figure 2, for a base station, the downlink (DL) and uplink (UL) are on the same time-frequency resource. Full overlapping full duplex is also known as in-band full duplex (IBFD), same-frequency full duplex (SFFD), or simultaneous transmit and receive (STAR).
[0068] Here, subband non-overlapping full duplexing means that a transmitter and a receiver transmit and receive signals in non-overlapping frequency domain resources on the same time domain resource within the same carrier bandwidth (band), and the non-overlapping frequency domain resources are within the same carrier band. For example, as shown in Figures 3 to 6, for a base station, Figure 3 shows that both DL and UL exist within the same bandwidth (band), but only DL or UL exists on the same frequency domain resource (e.g., resource block (RB) or resource element (RE)). Figures 4, 5, and 6 are schematic diagrams of specific frame structures, and Figure 4 can be equivalent to subband frequency division duplexing (FDD). Figure 5 shows only UL slots or symbols, and each slot or symbol in Figure 6 has uplink and downlink subbands.
[0069] Here, subband partially overlapping full duplex means that a transceiver transmits and receives signals in frequency domain resources that partially overlap on the same time domain resource within the same carrier bandwidth (band).
[0070] Meanwhile, a terminal can employ any of TDD, FDD, full duplex, fully overlapping full duplex, sub-band non-overlapping full duplex, and sub-band partially overlapping full duplex.
[0071] In some embodiments, the first capability is: The terminal supports the first duplex mode, or the terminal supports a network device operating in a network that employs the first duplex mode.
[0072] Wherein, the terminal supports the first duplex mode when at least: The terminal includes a network device supporting operation in a network employing the first duplex mode.
[0073] In the above content, the network equipment indicates the duplex mode of the network equipment (base station / cell), or the network equipment indicates the duplex mode of the network equipment (base station / cell) and the terminal, where the base station / cell adopts the first duplex mode, and the UE can adopt the half duplex mode (TDD / FDD) or the first duplex mode.
[0074] Furthermore, with respect to the time domain and / or frequency domain resources of the uplink channel and / or the uplink reference signal satisfying a first condition, in some embodiments, the first condition is: the time domain resources of the upstream channel and / or upstream reference signal do not overlap with the SSB measurement duration; The time domain resources of the upstream channel and / or upstream reference signal do not overlap with the time domain resources of the SSB to be measured; No SSB is transmitted in the time-frequency resource of the uplink channel and / or uplink reference signal; The time-frequency resources of the uplink channel and / or uplink reference signal do not overlap with the time-frequency resources for transmitting SSBs; and the interval between the frequency domain resource of the uplink channel and / or the uplink reference signal and the frequency domain resource of the SSB is equal to or greater than a first threshold.
[0075] In this embodiment, the network device configures the timing occasion of SSB measurement by the terminal through higher layer parameters, i.e., based on an SSB-based Measurement Timing Configuration (SMTC), so that the terminal listens to the SSB during the SSB measurement duration of the SMTC. Here, the SMTC configuration belongs to a configuration specific to the terminal. For a semi-duplex (e.g., TDD) terminal, since transmission and reception cannot be performed simultaneously, the terminal cannot transmit an UL signal during the SSB measurement duration. Therefore, the first condition includes that the time domain resource of the uplink channel does not overlap with the SSB measurement duration. Here, the SSB measurement duration can also be understood as the SMTC measurement duration.
[0076] In some embodiments, the time domain resource of the uplink channel not overlapping with the SSB measurement duration includes a slot in which the uplink channel is located not overlapping with the SSB measurement duration, or The time domain resource of the upstream reference signal not overlapping with the SSB measurement duration includes the symbol in which the upstream reference signal is located not overlapping with the SSB measurement duration.
[0077] Specifically, if the time domain resource in which the PUSCH, PUCCH, or PRACH is located overlaps with any one symbol of a set of symbols for receiving an SSB, and if the slot in which the PUSCH, PUCCH, or PRACH is located does not overlap with the SSB measurement duration, the terminal transmits the PUSCH, PUCCH, or PRACH. If the uplink reference signal is an SRS and the time domain resource in which the SRS is located overlaps with any one symbol of a set of symbols for receiving an SSB, and if the symbol in which the SRS is located does not overlap with the SSB measurement duration, the terminal transmits the SRS.
[0078] Also, in this embodiment, the first condition is that the time domain resources of the uplink channel and / or uplink reference signal do not overlap with the time domain resources of the SSB to be measured, and the time domain resources of the SSB to be measured are within the SSB measurement duration, i.e., in this case, the first condition is that the time domain resources of the uplink channel and / or uplink reference signal do not overlap with the time domain resources of the SSB to be measured within the SSB measurement duration.
[0079] In some embodiments, for the time domain resources of the SSB to be measured, the network equipment can send a first signaling to indicate the time domain resources of the SSB to be measured within the SSB measurement duration. receiving a first signaling; Here, the first signaling indicates time domain resources of the SSB to be measured within an SSB measurement duration.
[0080] That is, the time domain resource of the upstream channel and / or the upstream reference signal not overlapping with the time domain resource of the SSB to be measured means that the time domain resource of the upstream channel and / or the upstream reference signal does not overlap with any symbol of the symbol set in which the SSB to be measured is located, as indicated within the SSB measurement duration. Here, the time frequency resource may be an RE or a set including at least one RE.
[0081] Specifically, the first signaling is in a bitmap format, where the first / leftmost bit corresponds to SSB index 0, the second bit corresponds to SSB index 1, and so on. In the bitmap, a value of 0 indicates whether the corresponding SSB is measured or not.
[0082] In this embodiment, the first condition is that no SSB is transmitted in the time-frequency resource of the uplink channel and / or the uplink reference signal, and the network device indicates by DCI whether to transmit an SSB on the time-frequency resource of the uplink channel and / or the uplink reference signal. receiving downlink control information DCI; Here, the DCI is used to schedule the uplink channel and / or uplink reference signal, and the DCI includes first information, which indicates that there is no collision with SSB in the time-frequency resources of the uplink channel and / or uplink reference signal.
[0083] Therefore, when the terminal receives a DCI including the first information, it can determine based on the indication of the DCI that the time-frequency resources of the uplink channel and / or uplink reference signal do not collide with an SSB, and one possibility is that no SSB is transmitted in the time-domain and / or frequency-domain resources that overlap with the time-domain resources of the uplink channel and / or uplink reference signal, in which case the first condition is met.
[0084] Here, the first information is located in a first indication domain of the DCI, and if the first indication domain is set to 0 (or 1), the terminal confirms that it has received the first information and determines that there is no collision with an SSB in the time-frequency resource of the uplink channel and / or uplink reference signal, and therefore transmits the uplink channel and / or uplink reference signal. Conversely, if the first indication domain is set to (or 0), and the time-domain resource in which the uplink channel and / or uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block SSB, the terminal does not transmit the uplink channel and / or uplink reference signal.
[0085] In this embodiment, the first condition may be that the interval between the frequency domain resource of the uplink channel and / or uplink reference signal and the frequency domain resource of an SSB is equal to or greater than a first threshold, and may be (lower boundary of the frequency domain resource of the uplink channel and / or uplink reference signal - upper boundary of the frequency domain resource of an SSB) ≧ the first threshold, or (lower boundary of the frequency domain resource of an SSB - upper boundary of the frequency domain resource of the uplink channel and / or uplink reference signal) ≧ the first threshold.
[0086] Here, if the lower boundary of the frequency domain resource of the uplink channel and / or uplink reference signal minus the upper boundary of the frequency domain resource of the SSB is equal to or greater than the first threshold, i.e., the frequency domain resource position of the uplink channel and / or uplink reference signal is above the frequency domain resource of the SSB, and the frequency domain resources of both do not overlap. In this case, the first threshold is the bandwidth of the frequency domain separation band of the uplink channel and / or uplink reference signal and the SSB, and is used to suppress interference caused by DL transmission (i.e., SSB transmission) on the base station side to the base station side receiving UL signals from terminals.
[0087] Here, if the lower boundary of the frequency domain resource of the SSB minus the upper boundary of the frequency domain resource of the uplink channel and / or uplink reference signal is equal to or greater than the first threshold, i.e., the frequency domain resource position of the uplink channel and / or uplink reference signal is below the frequency domain resource of the SSB, and the frequency domain resources of both do not overlap. In this case, the first threshold is also the bandwidth of the frequency domain separation band of the uplink channel and / or uplink reference signal and the SSB, and is used to suppress interference caused by DL transmission (i.e., SSB transmission) on the base station side to the base station side receiving UL signals from terminals.
[0088] As described above, the embodiments of the present disclosure address the problem that the existing SSB structure limits the flexibility of a full-duplex system (i.e., the slots where SSBs are located cannot be used for uplink transmission). When the time domain resource where an uplink channel and / or an uplink reference signal is located overlaps with any one symbol in a set of symbols for receiving SSBs, if at least one of the following conditions is met: the network device employs a first duplex mode; the terminal has a first capability; and the time domain and / or frequency domain resource of the uplink channel and / or the uplink reference signal satisfies a first condition, the terminal is allowed to perform uplink transmission on the symbol where SSBs are located, thereby ensuring the flexibility of the frame structure configuration of a full-duplex system.
[0089] As shown in FIG. 7, an embodiment of the present disclosure provides a transmission processing method performed by a network device, and the method includes the following step 701.
[0090] In step 701, if the time domain resource where the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block SSB, the network device employing a configured first duplex mode; The terminal has a configured first capability; When at least one of the following conditions is met, the network device receives the uplink channel and / or uplink reference signal: the time domain and / or frequency domain resources of the uplink channel and / or uplink reference signal satisfy a set first condition.
[0091] That is, when the time domain resource where the uplink channel and / or uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving SSB, if at least one of the following conditions is met: the network device adopts a configured first duplex mode, the terminal has a configured first capability, and the time domain and / or frequency domain resource of the uplink channel and / or uplink reference signal meets a configured first condition, the network device receives the uplink channel and / or uplink reference signal transmitted by the terminal. In this way, the terminal is allowed to perform uplink transmission on the symbol where the SSB is located, which reduces the restriction on uplink channel and / or uplink reference signal transmission due to SSB transmission and ensures transmission flexibility.
[0092] In some embodiments, the first duplex mode includes a duplex mode other than time division duplex (TDD) and frequency division duplex (FDD).
[0093] In some embodiments, the first capability is: The terminal supports the first duplex mode, or the terminal supports a network device operating in a network that employs the first duplex mode.
[0094] In some embodiments, the first condition is: the time domain resources of the upstream channel and / or upstream reference signal do not overlap with the SSB measurement duration; The time domain resources of the upstream channel and / or upstream reference signal do not overlap with the time domain resources of the SSB to be measured; No SSB is transmitted in the time-frequency resource of the uplink channel and / or uplink reference signal; The time-frequency resources of the uplink channel and / or uplink reference signal do not overlap with the time-frequency resources for transmitting SSBs; and the interval between the frequency domain resource of the uplink channel and / or the uplink reference signal and the frequency domain resource of the SSB is equal to or greater than a first threshold.
[0095] In some embodiments, the time domain resource of the uplink channel not overlapping with the SSB measurement duration includes a slot in which the uplink channel is located not overlapping with the SSB measurement duration; Or, The time domain resource of the upstream reference signal not overlapping with the SSB measurement duration includes the symbol in which the upstream reference signal is located not overlapping with the SSB measurement duration.
[0096] In some embodiments, the method further comprises: transmitting a first signaling; Here, the first signaling indicates time domain resources of the SSB to be measured within an SSB measurement duration.
[0097] In some embodiments, the method further comprises: transmitting downlink control information DCI; Here, the DCI is used to schedule the uplink channel and / or uplink reference signal, and the DCI includes first information, which indicates that there is no collision with SSB in the time-frequency resources of the uplink channel and / or uplink reference signal.
[0098] Of course, correspondingly, the first condition further includes receiving said DCI.
[0099] It should be noted that this method is implemented in combination with the method executed by the terminal, and the implementation manner of the above method embodiment can be applied to this method to achieve the same technical effect.
[0100] As shown in FIG. 8, the transmission processing device of the embodiment of the present disclosure includes a transmitting module 810, which includes: If the time domain resource in which the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block SSB, employing a first duplex mode configured on the network device; The terminal has a configured first capability; and the time domain and / or frequency domain resources of the uplink channel and / or uplink reference signal satisfy a set first condition.
[0101] In some embodiments, the first duplex mode includes a duplex mode other than time division duplex (TDD) and frequency division duplex (FDD).
[0102] In some embodiments, the first capability is: The terminal supports the first duplex mode, or the terminal supports a network device operating in a network that employs the first duplex mode.
[0103] In some embodiments, the first condition is: the time domain resources of the upstream channel and / or upstream reference signal do not overlap with the SSB measurement duration; The time domain resources of the upstream channel and / or upstream reference signal do not overlap with the time domain resources of the SSB to be measured; No SSB is transmitted in the time-frequency resource of the uplink channel and / or uplink reference signal; The time-frequency resources of the uplink channel and / or uplink reference signal do not overlap with the time-frequency resources for transmitting SSBs; and the interval between the frequency domain resource of the uplink channel and / or the uplink reference signal and the frequency domain resource of the SSB is equal to or greater than a first threshold.
[0104] In some embodiments, the time domain resource of the uplink channel not overlapping with the SSB measurement duration includes a slot in which the uplink channel is located not overlapping with the SSB measurement duration; Or, The time domain resource of the upstream reference signal not overlapping with the SSB measurement duration includes the symbol in which the upstream reference signal is located not overlapping with the SSB measurement duration.
[0105] In some embodiments, the device further comprises: a first signaling receiving module configured to receive a first signaling; Here, the first signaling indicates time domain resources of the SSB to be measured within an SSB measurement duration.
[0106] In some embodiments, the first condition further comprises: receiving downlink control information DCI; Here, the DCI is used to schedule the uplink channel and / or uplink reference signal, and the DCI includes first information, which indicates that the time-frequency resources of the uplink channel and / or uplink reference signal do not collide with SSB.
[0107] When the time domain resource in which the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving an SSB, the device transmits the uplink channel and / or the uplink reference signal if at least one of the following conditions is met: the network equipment adopts a first duplex mode, the terminal has a first capability, and the time domain and / or frequency domain resource of the uplink channel and / or the uplink reference signal meets a first condition. In this way, the terminal is allowed to perform uplink transmission on the symbol in which the SSB is located, and transmission flexibility can be ensured.
[0108] It should be noted that the device applies the method executed by the terminal, and the implementation manner of the method embodiment can be applied to the device to achieve the same technical effect.
[0109] As shown in FIG. 9, the transmission processing device of the embodiment of the present disclosure includes a receiving module 910, which includes: If the time domain resource in which the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block SSB, employing a first duplex mode configured on the network device; The terminal has a configured first capability; and the time domain and / or frequency domain resources of the uplink channel and / or uplink reference signal satisfy a set first condition.
[0110] In some embodiments, the first duplex mode includes a duplex mode other than time division duplex (TDD) and frequency division duplex (FDD).
[0111] In some embodiments, the first capability is: The terminal supports the first duplex mode, or the terminal supports a network device operating in a network that employs the first duplex mode.
[0112] In some embodiments, the first condition is: the time domain resources of the upstream channel and / or upstream reference signal do not overlap with the SSB measurement duration; The time domain resources of the upstream channel and / or upstream reference signal do not overlap with the time domain resources of the SSB to be measured; No SSB is transmitted in the time-frequency resource of the uplink channel and / or uplink reference signal; The time-frequency resources of the uplink channel and / or uplink reference signal do not overlap with the time-frequency resources for transmitting SSBs; and the interval between the frequency domain resource of the uplink channel and / or the uplink reference signal and the frequency domain resource of the SSB is equal to or greater than a first threshold.
[0113] In some embodiments, the time domain resource of the uplink channel not overlapping with the SSB measurement duration includes a slot in which the uplink channel is located not overlapping with the SSB measurement duration; Or, The time domain resource of the upstream reference signal not overlapping with the SSB measurement duration includes the symbol in which the upstream reference signal is located not overlapping with the SSB measurement duration.
[0114] In some embodiments, the device further comprises: a first signaling transmitting module configured to transmit first signaling; Here, the first signaling indicates time domain resources of the SSB to be measured within an SSB measurement duration.
[0115] In some embodiments, the device further comprises: a DCI transmission module configured to transmit downlink control information (DCI), Here, the DCI is used to schedule the uplink channel and / or uplink reference signal, and the DCI includes first information, which indicates that the time-frequency resources of the uplink channel and / or uplink reference signal do not collide with SSB.
[0116] When the time domain resource where the uplink channel and / or uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving SSB, if at least one of the following conditions is met: the network equipment adopts a configured first duplex mode, the terminal has a configured first capability, and the time domain and / or frequency domain resource of the uplink channel and / or uplink reference signal meets a configured first condition, the device receives the uplink channel and / or uplink reference signal transmitted by the terminal. In this way, the terminal is allowed to perform uplink transmission on the symbol where the SSB is located, which reduces the restriction on uplink channel and / or uplink reference signal transmission due to SSB transmission and ensures transmission flexibility.
[0117] It should be noted that the device applies the method executed by the terminal, and the implementation manner of the method embodiment can be applied to the device to achieve the same technical effect.
[0118] As shown in FIG. 10 , the terminal 1000 of the embodiment of the present disclosure includes a transceiver 1020, If the time domain resource in which the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block SSB, employing a first duplex mode configured on the network device; the terminal has a configured first capability; and the time domain and / or frequency domain resources of the uplink channel and / or uplink reference signal satisfy a set first condition.
[0119] In some embodiments, the first duplex mode includes a duplex mode other than time division duplex (TDD) and frequency division duplex (FDD).
[0120] In some embodiments, the first capability is: The terminal supports the first duplex mode, or the terminal supports a network device operating in a network that employs the first duplex mode.
[0121] In some embodiments, the first condition is: the time domain resources of the upstream channel and / or upstream reference signal do not overlap with the SSB measurement duration; The time domain resources of the upstream channel and / or upstream reference signal do not overlap with the time domain resources of the SSB to be measured; No SSB is transmitted in the time-frequency resource of the uplink channel and / or uplink reference signal; The time-frequency resources of the uplink channel and / or uplink reference signal do not overlap with the time-frequency resources for transmitting SSBs; and the interval between the frequency domain resource of the uplink channel and / or the uplink reference signal and the frequency domain resource of the SSB is equal to or greater than a first threshold.
[0122] In some embodiments, the time domain resource of the uplink channel not overlapping with the SSB measurement duration includes a slot in which the uplink channel is located not overlapping with the SSB measurement duration; Or, The time domain resource of the upstream reference signal not overlapping with the SSB measurement duration includes the symbol in which the upstream reference signal is located not overlapping with the SSB measurement duration.
[0123] In some embodiments, the transceiver further comprises: configured to receive the first signaling; Here, the first signaling indicates time domain resources of the SSB to be measured within an SSB measurement duration.
[0124] In some embodiments, the transceiver further comprises: configured to receive downlink control information DCI; Here, the DCI is used to schedule the uplink channel and / or uplink reference signal, and the DCI includes first information, which indicates that the time-frequency resources of the uplink channel and / or uplink reference signal do not collide with SSB.
[0125] The terminal further includes a processor 1010 configured to control transmission and reception of the transceiver 1020 and related processing.
[0126] According to the terminal of this embodiment, when the time domain resource where the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving SSB, if at least one of the following conditions is met: the network device adopts a configured first duplex mode; the terminal has a configured first capability; and the time domain and / or frequency domain resource of the uplink channel and / or the uplink reference signal meets a configured first condition, the terminal transmits the uplink channel and / or the uplink reference signal. In this way, the terminal is allowed to perform uplink transmission on the symbol where the SSB is located, and transmission flexibility can be ensured.
[0127] A network device according to an embodiment of the present disclosure includes a transceiver, the transceiver comprising: If the time domain resource in which the uplink channel and / or the uplink reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block SSB, employing a first duplex mode configured on the network device; The terminal has a configured first capability; and the time domain and / or frequency domain resources of the uplink channel and / or uplink reference signal satisfy a set first condition.
[0128] In some embodiments, the first duplex mode includes a duplex mode other than time division duplex (TDD) and frequency division duplex (FDD).
[0129] In some embodiments, the first capability is: The terminal supports the first duplex mode, or the terminal supports a network device operating in a network that employs the first duplex mode. In some embodiments, the first condition is: the time domain resources of the upstream channel and / or upstream reference signal do not overlap with the SSB measurement duration; The time domain resources of the upstream channel and / or upstream reference signal do not overlap with the time domain resources of the SSB to be measured; No SSB is transmitted in the time-frequency resource of the uplink channel and / or uplink reference signal; The time-frequency resources of the uplink channel and / or uplink reference signal do not overlap with the time-frequency resources for transmitting SSBs; and the interval between the frequency domain resource of the uplink channel and / or the uplink reference signal and the frequency domain resource of the SSB is equal to or greater than a first threshold.
[0130] In some embodiments, the time domain resource of the uplink channel not overlapping with the SSB measurement duration includes a slot in which the uplink channel is located not overlapping with the SSB measurement duration; Or, The time domain resource of the upstream reference signal not overlapping with the SSB measurement duration includes the symbol in which the upstream reference signal is located not overlapping with the SSB measurement duration.
[0131] In some embodiments, the transceiver further comprises: configured to transmit the first signaling; Here, the first signaling indicates time domain resources of the SSB to be measured within an SSB measurement duration.
[0132] In some embodiments, the transceiver further comprises: configured to transmit downlink control information DCI, Here, the DCI is used to schedule the uplink channel and / or uplink reference signal, and the DCI includes first information, which indicates that the time-frequency resources of the uplink channel and / or uplink reference signal do not collide with SSB.
[0133] As shown in FIG. 11, a terminal according to another embodiment of the present disclosure includes a transceiver 1110, a processor 1100, a memory 1120, and a program or instruction stored in the memory 1120 and executable by the processor 1100, and the processor 1100 realizes a transmission processing method performed by the terminal when executing the program or instruction.
[0134] The transceiver 1110 is configured to transmit and receive data under the control of the processor 1100 .
[0135] 11, the bus architecture may include any number of interconnected buses and bridges, specifically connecting various circuits, such as one or more processors, represented by processor 1100, and memory, represented by memory 1120. The bus architecture may also connect various other circuits, such as peripheral devices, regulators, and power management circuits, all of which are well known to those skilled in the art and therefore will not be further described here. The bus interface provides an interface. The transceiver 1110 may comprise multiple components, such as a transmitter and receiver, that provide a means for communicating with various other devices via transmission media, such as wireless channels, wired channels, optical cables, etc. For different user devices, the user interface 1130 may further interface with required devices, including, but not limited to, a keypad, a display, a speaker, a microphone, a joystick, etc.
[0136] The processor 1100 is responsible for managing the bus architecture and general processing, and the memory 1120 may store data used by the processor 1100 when performing operations.
[0137] As shown in FIG. 12, a network device according to another embodiment of the present disclosure includes a transceiver 1210, a processor 1200, a memory 1220, and a program or instruction stored in the memory 1220 and executable by the processor 1200, and the processor 1200, when executing the program or instruction, realizes a transmission processing method performed by the network device.
[0138] The transceiver 1210 is configured to transmit and receive data under the control of the processor 1200 .
[0139] 12, the bus architecture may include any number of interconnected buses and bridges, specifically connecting various circuits, such as one or more processors, represented by processor 1200, and memory, represented by memory 1220. The bus architecture may also couple various other circuits, such as peripherals, regulators, and power management circuits, all of which are well known to those skilled in the art and therefore will not be further described here. The bus interface provides an interface. The transceiver 1210 is comprised of multiple components, such as a transmitter and receiver, that provide a means for communicating with various other devices over a transmission medium. The processor 1200 is responsible for the bus architecture and general processing, and the memory 1220 may store data used by the processor 1200 when performing operations.
[0140] The readable storage medium of the embodiments of the present disclosure stores a program or instruction, and when the program or instruction is executed by a processor, it realizes the steps of the transmission processing method performed by the terminal or the steps of the transmission processing method performed by the network equipment, and achieves the same technical effect. In order to avoid duplication, the description will be omitted here.
[0141] The processor may be the processor described in the above embodiment, and the readable storage medium may include a computer readable storage medium such as a computer read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk.
[0142] It should be further noted that the terminals described herein include, but are not limited to, smartphones, tablets, etc., and that many of the functional components described are referred to as modules to more specifically emphasize their implementation independence.
[0143] In embodiments of the present invention, modules may be implemented in software to be executed by various types of processors. For example, an identified executable code module may include one or more physical or logical blocks of computer instructions, which may be organized, for example, as an object, a process, or a function. Nevertheless, the executable code of an identified module need not be physically located together and may include different instructions stored in different bits that, when logically combined, constitute the module and achieve the module's intended purpose.
[0144] In practice, an executable code module may be a single instruction or multiple instructions, and may be distributed across multiple different code segments, different programs, and multiple memory devices. Similarly, operational data may be identified in modules and implemented according to any suitable format and organized within any suitable type of data structure. The operational data may be collected as a single data set, or may be distributed across different locations (including on different storage devices), or may exist at least partially only as electronic signals across a system or network.
[0145] If a module can be realized in software, it can be realized in software because it takes into account the level of existing hardware processes. If cost is not a consideration, a person skilled in the art can build a corresponding hardware circuit including conventional very large scale integrated (VLSI) circuits or gate arrays, and existing semiconductors such as logic chips, transistors, or other discrete components to achieve the corresponding function. A module can also be implemented with programmable hardware devices such as field programmable gate arrays, programmable array logic, programmable logic devices, etc.
[0146] The above exemplary embodiments are described with reference to these drawings, and the disclosure should not be construed as a limitation of the exemplary embodiments proposed herein, as many different configurations and embodiments are possible without departing from the spirit and teachings of the present disclosure. More specifically, these exemplary embodiments are provided so that this disclosure will be thorough and complete, and will convey the scope of the disclosure to those skilled in the art. In the drawings, dimensions and relative dimensions of components may be exaggerated for clarity. The terminology used herein is for the purpose of describing particular exemplary embodiments and is not limiting. As used herein, the singular forms "a," "one," and "the" are intended to incorporate these plural forms unless the context clearly dictates otherwise. It will be further understood that the terms "comprise" and / or "comprising," when used herein, imply the presence of features, integers, steps, operations, parts, and / or components, but do not exclude the presence or multiplication of one or more other features, integers, steps, operations, parts, components, and / or families thereof. Unless otherwise indicated, a range of values when described includes the upper and lower limits of the range and any subranges therebetween.
[0147] It should be pointed out that the above is a preferred embodiment of the present invention, and for those skilled in the art, some improvements and refinements can be made without departing from the principle of the present invention, and these improvements and refinements should also be regarded as within the protection scope of the present invention.
Claims
1. A transmission processing method performed by a terminal, comprising: If the time domain resource in which the upstream channel and / or the upstream reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block (SSB), employing a first configured duplex mode in the network device; the terminal has a configured first capability; and a time domain and / or frequency domain resource of the uplink channel and / or the uplink reference signal satisfies a set first condition, the terminal transmitting the uplink channel and / or the uplink reference signal; The first condition is the time domain resources of the upstream channel and / or upstream reference signal do not overlap with the SSB measurement duration; The time domain resources of the upstream channel and / or upstream reference signal do not overlap with the time domain resources of the SSB to be measured; The interval between the frequency domain resource of the uplink channel and / or the uplink reference signal and the frequency domain resource of the SSB is equal to or greater than a first threshold; receiving downlink control information (DCI), the DCI being used to schedule the uplink channel and / or uplink reference signal, the DCI including first information, the first information indicating that time-frequency resources of the uplink channel and / or uplink reference signal do not collide with SSB.
2. The first duplex mode includes any duplex mode other than time division duplex (TDD) and frequency division duplex (FDD). The method of claim 1.
3. The first ability is The terminal supports the first duplex mode, or the terminal supports a network device operating in a network that employs the first duplex mode. The method of claim 1.
4. The first condition further includes: No SSB is transmitted in the time-frequency resources of the uplink channel and / or uplink reference signal; and the time-frequency resources of the upstream channel and / or the upstream reference signal do not overlap with the time-frequency resources for transmitting SSB. The method of claim 1.
5. The time domain resource of the uplink channel not overlapping with the SSB measurement duration includes that the slot in which the uplink channel is located does not overlap with the SSB measurement duration; Or, The time domain resource of the upstream reference signal not overlapping with the SSB measurement duration includes the symbol in which the upstream reference signal exists not overlapping with the SSB measurement duration. The method of claim 4.
6. The method further comprises: receiving a first signaling; wherein the first signaling indicates a time domain resource of the SSB to be measured within an SSB measurement duration. The method of claim 1.
7. A transmission processing method executed by a network device, comprising: If the time domain resource in which the upstream channel and / or the upstream reference signal is located overlaps with any one symbol of a set of symbols for receiving a synchronization signal block (SSB), the network device adopting a configured first duplex mode; The terminal has a configured first capability; and a time domain and / or frequency domain resource of the uplink channel and / or the uplink reference signal satisfies a set first condition, the network device receiving the uplink channel and / or the uplink reference signal; The first condition is the time domain resources of the upstream channel and / or upstream reference signal do not overlap with the SSB measurement duration; The time domain resources of the upstream channel and / or upstream reference signal do not overlap with the time domain resources of the SSB to be measured; The interval between the frequency domain resource of the uplink channel and / or the uplink reference signal and the frequency domain resource of the SSB is equal to or greater than a first threshold; a transmission processing method including at least one of: transmitting downlink control information (DCI) to the terminal, the DCI being used to schedule the uplink channel and / or uplink reference signal, the DCI including first information, the first information indicating that time-frequency resources of the uplink channel and / or uplink reference signal do not collide with SSB.
8. The first duplex mode includes any duplex mode other than time division duplex (TDD) and frequency division duplex (FDD). The method of claim 7.
9. The first ability is The terminal supports the first duplex mode, or the terminal supports a network device operating in a network that employs the first duplex mode. The method of claim 7.
10. The first condition further includes: No SSB is transmitted in the time-frequency resources of the uplink channel and / or uplink reference signal; and the time-frequency resources of the upstream channel and / or the upstream reference signal do not overlap with the time-frequency resources for transmitting SSB. The method of claim 7.
11. The time domain resource of the uplink channel not overlapping with the SSB measurement duration includes that the slot in which the uplink channel is located does not overlap with the SSB measurement duration; Or, The time domain resource of the upstream reference signal not overlapping with the SSB measurement duration includes the symbol in which the upstream reference signal exists not overlapping with the SSB measurement duration. The method of claim 10.
12. The method further comprises: transmitting a first signaling; wherein the first signaling indicates a time domain resource of the SSB to be measured within an SSB measurement duration. The method of claim 7.
13. A communication device, A communication device comprising a transceiver, a processor, a memory, and a program or instruction stored in the memory and executable by the processor, which realizes the transmission processing method according to any one of claims 1 to 6 when the processor executes the program or instruction.
14. A communication device, A communication device comprising a transceiver, a processor, a memory, and a program or instruction stored in the memory and executable by the processor, which realizes the transmission processing method according to any one of claims 7 to 12 when the processor executes the program or instruction.
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