Method and communication device for handling communications with a serving cell
By receiving configurations for symbol sets and special symbols with different frequency regions, the communication device optimizes transmission direction switches, enabling efficient simultaneous downlink and uplink operations.
Patent Information
- Application Number
- JP2024173930
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2024-09-24
- Filing Date
- 2024-10-02
- Publication Date
- 2026-01-20
- Estimated Expiration
- 2044-10-02
AI Technical Summary
Communication devices face challenges in handling operations with different transmission directions due to limitations in switching directions within a time period, preventing simultaneous downlink and uplink operations.
The communication device receives configurations indicating symbol sets and special symbols with different frequency regions, allowing it to determine and prioritize operations to avoid multiple direction switches within a slot, thereby enabling simultaneous downlink and uplink operations.
This approach allows for seamless communication by optimizing transmission direction switches, ensuring efficient communication without multiple direction changes within a slot.
Smart Images

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Abstract
Description
[Technical Field]
[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) This application claims the benefit of U.S. Provisional Application No. 63 / 542,783, filed October 6, 2023, the contents of which are incorporated herein by reference.
[0002] The present disclosure relates to methods and communication devices for use in wireless communication systems, and more particularly to methods and communication devices for handling communications with a serving cell. [Background technology]
[0003] The Long Term Evolution (LTE) system, which supports the Third Generation Partnership Project (3GPP®) Rel-8 and / or 3GPP Rel-9 standards, is being developed by 3GPP as a successor to the Universal Mobile Telecommunications System (UMTS) to further enhance the performance of UMTS to meet the growing needs of users.
[0004] The LTE-Advanced (LTE-A) system, as its name suggests, is an evolution of the LTE system. The LTE-A system targets faster switching between power states, improved performance at the coverage edge of evolved Node Bs (eNBs), increased peak data rates and throughput, and includes advanced technologies such as carrier aggregation (CA) and uplink (UL) multiple-input multiple-output (UL-MIMO).
[0005] The Next Generation Radio Access Network (NG-RAN), which supports 3GPP Rel-15 to 3GPP Rel-19 standards, is being developed to further enhance the LTE-A system. The NG-RAN includes one or more next-generation Node Bs (gNBs) and has characteristics such as wider operating bands, different numerologies for different frequency ranges, massive MIMO, and advanced channel coding.
[0006] As demand for the use of a communication device increases, the amount of signals (e.g., data, messages, and / or packets) communicated between the communication device and a network in a serving cell also increases. To meet the demand, the network may configure the communication device to perform operations having different transmission directions in a certain time period (e.g., slot or symbol). This requires the communication device to switch transmission direction multiple times in a time period. However, the communication device cannot perform more than one direction switch in a time period, and therefore cannot perform operations with the network device. Therefore, how to handle communications between a communication device and a network having a serving cell that involve operations having different transmission directions is an important problem to be solved. Summary of the Invention
[0007] Therefore, the present disclosure provides a method and a communication device for handling communication with a serving cell to solve the above problems.
[0008] A method for processing communication with a serving cell of a communication device includes the steps of receiving a first configuration from a network, the first configuration indicating at least one of a set of downlink (DL) symbols, a set of flexible symbols, and a set of uplink (UL) symbols for a time period; and receiving a second configuration of the serving cell from the network, the second configuration indicating a set of special symbols in at least one of the set of DL symbols and the set of flexible symbols, the set of special symbols including at least one DL subband and at least one UL subband in a different frequency region of the serving cell. receiving at least one instruction for a plurality of operations in a slot from the network; and determining whether to perform at least one operation among the plurality of operations in the slot, the plurality of operations overlapping with at least one special symbol in the set of special symbols, the plurality of operations including at least one DL reception and at least one UL transmission, one of the at least one UL transmission having first power information and second power information configured, the first power information corresponding to a special symbol in the set of special symbols, and the second power information corresponding to a UL symbol in the set of UL symbols.
[0009] A communications device for processing communications with a serving cell includes at least one storage device and at least one processing circuit coupled to the at least one storage device, wherein the at least one storage device is configured to store instructions, the at least one processing circuit including instructions for receiving a first configuration from a network, the first configuration indicating at least one of a set of downlink (DL) symbols, a set of flexible symbols, and a set of uplink (UL) symbols for a time period; and instructions for receiving a second configuration from the network for the serving cell, the second configuration indicating a set of special symbols in at least one of the set of DL symbols and the set of flexible symbols, and the set of special symbols indicating the set of special symbols for the serving cell. instructions for receiving from the network at least one indication of a plurality of operations in a slot; and instructions for determining whether to perform at least one operation among the plurality of operations in the slot, the plurality of operations overlapping with at least one special symbol in the set of special symbols, the plurality of operations including at least one DL reception and at least one UL transmission, one of the at least one UL transmission having first power information and second power information configured, the first power information corresponding to a special symbol in the set of special symbols, and the second power information corresponding to a UL symbol in the set of UL symbols.
[0010] A method for processing communication with a communication device by a network includes the steps of: transmitting a first configuration to the communication device, the first configuration indicating at least one of a set of downlink (DL) symbols, a set of flexible symbols, and a set of uplink (UL) symbols for a certain time period; transmitting a second configuration of a serving cell to the communication device, the second configuration indicating a set of special symbols in at least one of the set of DL symbols and the set of flexible symbols, the set of special symbols including at least one DL subband and at least one UL subband in different frequency regions of the serving cell; and transmitting at least one instruction for a plurality of operations in a slot to the communication device, the plurality of operations overlapping with at least one special symbol in the set of special symbols, the plurality of operations including at least one DL reception and at least one UL transmission, one of the at least one UL transmission configured with first power information and second power information, the first power information corresponding to a special symbol in the set of special symbols, and the second power information corresponding to a UL symbol in the set of UL symbols.
[0011] These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings. [Brief explanation of the drawings]
[0012] [Figure 1] 1 is a schematic diagram of a wireless communication system according to an embodiment of the present disclosure. [Figure 2] 1 is a schematic diagram of a communication device according to an embodiment of the present disclosure. [Figure 3] 1 is a flowchart of a process according to one embodiment of the present disclosure. [Figure 4] 1 is a flowchart of a process according to one embodiment of the present disclosure. [Figure 5] 1 is a flowchart of a process according to one embodiment of the present disclosure. [Figure 6] FIG. 1 is a schematic diagram of a slot according to one embodiment of the present disclosure. [Figure 7] FIG. 1 is a schematic diagram of a slot according to one embodiment of the present disclosure. [Figure 8] 1 is a schematic diagram of communication between a communication device and a network according to an embodiment of the present disclosure. [Figure 9] 1 is a flowchart of a process according to one embodiment of the present disclosure. [Figure 10] 1 is a schematic diagram of communication between a communication device and a network according to an embodiment of the present disclosure. [Figure 11] 1 is a schematic diagram of communication between a communication device and a network according to an embodiment of the present disclosure. [Figure 12] 1 is a flowchart of a process according to one embodiment of the present disclosure. [Figure 13] 1 is a flowchart of a process according to one embodiment of the present disclosure. [Figure 14] 1 is a flowchart of a process according to one embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0013] FIG. 1 is a schematic diagram of a wireless communication system 10 according to one embodiment of the present disclosure. The wireless communication system 10 is simply comprised of a network 12 and multiple communication devices 14. The wireless communication system 10 may support a time division duplex (TDD) mode, a frequency division duplex (FDD) mode, a TDD-FDD interoperation mode, a non-terrestrial network (NTN) mode, or a licensed assisted access (LAA) mode. That is, the network 12 and the communication devices 14 may communicate with each other via an FDD carrier, a TDD carrier, a licensed carrier (licensed serving cell), and / or an unlicensed carrier (unlicensed serving cell). Furthermore, the wireless communication system 10 may support carrier aggregation (CA). That is, the network 12 and the communication devices 14 may communicate with each other via multiple serving cells (e.g., multiple serving carriers), including a primary cell (e.g., a primary component carrier) and one or more secondary cells (e.g., secondary component carriers).
[0014] In FIG. 1 , the network 12 and the communication device 14 are used merely to illustrate the structure of the wireless communication system 10. In practice, the network 12 may be a Universal Terrestrial Radio Access Network (UTRAN) including at least one Node B (NB) in a Universal Mobile Telecommunications System (UMTS). In one embodiment, the network 12 may be an Evolved UTRAN (E-UTRAN) including at least one Evolved NB (eNB) and / or at least one relay node in a Long Term Evolution (LTE) system, an LTE-Advanced (LTE-A) system, an evolved version of the LTE-A system, etc. In one embodiment, the network 12 may be a Next Generation Radio Access Network (NG-RAN) including at least one Next Generation Node B (gNB) and / or at least one Fifth Generation (5G) Base Station (BS). In one embodiment, a gNB or a 5G BS of the network 12 may include an NTN gateway and an NTN payload. In one embodiment, the network 12 may be any BS conforming to a particular communication standard for communicating with the communication device 14.
[0015] New Radio (NR) is a standard defined for 5G systems (or 5G networks) to provide a unified air interface with better performance. gNBs are deployed to realize 5G systems that support advanced features such as enhanced mobile broadband (eMBB), ultra-reliable low-latency communications (URLLC), and massive machine-type communications (mMTC). eMBB provides broadband services with higher bandwidth and low / medium latency. URLLC provides applications (e.g., end-to-end communications) with higher reliability and low latency characteristics. Example applications include the industrial internet, smart grids, infrastructure protection, remote surgery, and intelligent transportation systems (ITS). mMTC can support the Internet of Things (IoT) in 5G systems, which includes billions of connected devices and / or sensors.
[0016] Furthermore, the network 12 may include at least one of a UTRAN / E-UTRAN / NG-RAN and a core network, and the core network may include network entities such as a mobility management entity (MME), a serving gateway (S-GW), a packet data network (PDN) gateway (P-GW), a self-organizing network (SON) server and / or a radio network controller (RNC), an access and mobility management function (AMF), a session management function (SMF), a user plane function (UPF), and an authentication server function (AUSF). In one embodiment, after the network 12 receives the information transmitted by the communication device 14, the information may be processed only by the UTRAN / E-UTRAN / NG-RAN, and a decision corresponding to the information is made in the UTRAN / E-UTRAN / NG-RAN. In one embodiment, the UTRAN / E-UTRAN / NG-RAN may forward the information to the core network, and a decision corresponding to the information is made in the core network after the core network processes the information. In one embodiment, the information may be processed by both the UTRAN / E-UTRAN / NG-RAN and the core network, and the decision is made after coordination and / or cooperation is performed by the UTRAN / E-UTRAN / NG-RAN and the core network.
[0017] The communication device 14 may be a user equipment (UE), a very small area terminal (VSAT), a low-cost device (e.g., a machine-type communication (MTC) device), a device-to-device (D2D) communication device, a narrowband Internet of Things (IoT) (NB-IoT), a mobile phone, a laptop, a tablet computer, an e-book, a portable computer system, or a combination thereof. Furthermore, the network 12 and the communication device 14 may be viewed as a transmitter or a receiver based on the direction (i.e., the direction of transmission), e.g., in the uplink (UL), the communication device 14 is the transmitter and the network 12 is the receiver, and in the downlink (DL), the network 12 is the transmitter and the communication device 14 is the receiver.
[0018] 2 is a schematic diagram of a communication device 20 according to one embodiment of the present disclosure. The communication device 20 may be, but is not limited to, the communication device 14 or the network 12 shown in FIG. 1. The communication device 20 may include at least one processing circuit 200, such as a microprocessor or an application-specific integrated circuit (ASIC), at least one storage device 210, and at least one communication interface device 220. The at least one storage device 210 may be any data storage device capable of storing program code 214 that can be accessed and executed by the at least one processing circuit 200. Examples of the at least one storage device 210 include, but are not limited to, a subscriber identity module (SIM), read-only memory (ROM), flash memory, random access memory (RAM), compact disc-read-only (CD-ROM), digital versatile disc ROM (DVD-ROM), Blu-ray disc ROM (BD-ROM), magnetic tape, hard disk, optical data storage, non-volatile storage, non-transitory computer-readable medium (e.g., tangible expression medium), etc. The at least one communication interface device 220 is preferably at least one transceiver, and is used to transmit and receive signals (e.g., data, messages and / or packets) based on the processing results of the at least one processing circuit 200.
[0019] 3 is a flowchart of a process 30 according to one embodiment of the present disclosure. The process 30 may be utilized in a communication device (e.g., the communication device 14 of FIG. 1 or the communication device 20 of FIG. 2) to handle communication with a serving cell. The process 30 may be compiled into program code 214 and includes the following steps 300 to 310.
[0020] Step 300 starts.
[0021] In step 302, a first configuration is received from the network, the first configuration indicating at least one of a set of DL symbols, a set of flexible symbols, and a set of UL symbols for a period of time.
[0022] In step 304, a second configuration of the serving cell is received from the network, the second configuration indicating a set of special symbols in at least one of the set of DL symbols and the set of flexible symbols, the set of special symbols including at least one DL subband and at least one UL subband in different frequency regions of the serving cell.
[0023] In step 306, at least one indication for a plurality of actions in the slot is received from the network.
[0024] In step 306, it is determined whether to perform at least one of the actions in the slot.
[0025] In step 310, the process ends.
[0026] Based on process 30, the communication device receives a first configuration (e.g., TDD-UL-DL-ConfigCommon) from the network. The first configuration indicates at least one of a DL symbol set, a flexible symbol set, and a UL symbol set (e.g., at least one symbol or radio frame) for a certain time period. The communication device receives a second configuration for a serving cell from the network. The second configuration indicates a special symbol set in at least one of the DL symbol set and the flexible symbol set, where the special symbol set includes at least one DL subband and at least one UL subband in different frequency regions of the serving cell. The communication device then receives at least one instruction for a plurality of operations in the slot from the network. Then, the communication device determines whether to perform at least one of the plurality of operations in the slot, for example, based on at least one of the first configuration, the second configuration, and the at least one instruction. That is, the communication device does not perform (e.g., drops) some of the plurality of operations to avoid switching the transmission direction multiple times in the slot. Therefore, communication between the communication device and the network is normally performed.
[0027] The implementation of the process 30 is not limited to the above description. To implement the process 30, the following embodiments may be applied.
[0028] In one embodiment, the plurality of operations overlap with at least one special symbol in the set of special symbols. In one embodiment, the plurality of operations includes at least one DL receive and at least one UL transmit. In one embodiment, a slot includes a plurality of symbols. In one embodiment, the plurality of symbols are configured according to at least one of a first configuration and a second configuration. In one embodiment, the communication device transmits information to the network. In one embodiment, the information indicates whether the communication device supports two or more switch points in a slot. In one embodiment, the switch point indicates a direction switch (e.g., a transmit-to-receive (TX-RX) switch or a receive-to-transmit (RX-TX) switch).
[0029] In one embodiment, the transmit power of one of the at least one UL transmission is determined (e.g., by the communication device) based on first power information configured by the network. In one embodiment, one of the at least one UL transmission is configured with first power information and second power information. In one embodiment, the first power information corresponds to a special symbol in a set of special symbols, and the second power information corresponds to a UL symbol in a set of UL symbols. In one embodiment, the first power information includes at least one first parameter (e.g., closedLoopIndex, p0-PUCCH-Id, and / or PathlossReferenceRS-Id). In one embodiment, the second power information includes at least one second parameter (e.g., closedLoopIndex, p0-PUCCH-Id, and / or PathlossReferenceRS-Id).
[0030] In one embodiment, the spatial relationship of one of the at least one UL transmission is determined (e.g., by the communication device) based on first spatial relationship information configured by the network. In one embodiment, one of the at least one UL transmission is configured with first spatial relationship information and second spatial relationship information. In one embodiment, the first spatial relationship information corresponds to a special symbol in a set of special symbols, and the second spatial relationship information corresponds to a UL symbol in a set of UL symbols. In one embodiment, the first spatial relationship information includes a first spatial relationship information identifier (ID). In one embodiment, the second spatial relationship information includes a second spatial relationship information ID. In one embodiment, the first spatial relationship information includes a first reference signal (RS) (e.g., a synchronization signal block (SSB) index, a channel state information RS (CSI-RS) index, or an SRS). In one embodiment, the second spatial relationship information includes a second RS (e.g., an SSB index, a CSI-RS index, or an SRS).
[0031] In one embodiment, the number of physical resource blocks (PRBs) of one of the at least one UL transmission is determined (e.g., by the communication device) based on a first code rate. In one embodiment, one of the at least one UL transmission is configured with a first code rate and a second code rate. In one embodiment, the first code rate corresponds to a special symbol in a set of special symbols, and the second code rate corresponds to a UL symbol in a set of UL symbols. In one embodiment, the communication device is configured with a power offset. In one embodiment, the communication device performs one of the at least one UL transmission on a special symbol in the set of special symbols based on the power offset.
[0032] In one embodiment, the communication device determines UL resources (e.g., in at least one UL subband) based on at least one of a resource configuration and a starting PRB. In one embodiment, the communication device performs (e.g., with a network) one of the at least one UL transmission on UL resources in a special symbol from a set of special symbols. In one embodiment, a first number of PRBs in the UL resources is the same as a second number of PRBs that do not overlap with the at least one special symbol of one of the at least one UL transmission. In one embodiment, the starting PRB is determined based on at least one of an offset, a resource configuration, DL control information (DCI), and a higher layer signal (e.g., a radio resource control (RRC) signal). In one embodiment, the offset indicates a set of frequency domain resources (e.g., the number of at least one PRB). In one embodiment, the offset is selected from a set of candidate offsets configured by the higher layer signal. In one embodiment, the offset is a specific offset value of one of the at least one UL transmission configured by the higher layer signal. In one embodiment, the resource configuration is configured for one of the at least one UL transmission. In one embodiment, the starting PRB is indicated for one of the at least one UL transmission. In one embodiment, the starting PRB is indicated for one of the at least one UL transmission transmitted in at least one special symbol. In one embodiment, the starting PRB is unique to the at least one special symbol. In one embodiment, one of the at least one UL transmission is a physical UL control channel (PUCCH) or a physical UL shared channel (PUSCH).
[0033] In one embodiment, the communication device performs (e.g., with a network) one of the at least one UL transmissions on a special symbol in the set of special symbols over a portion of the resources in at least one UL subband in response to resources in the at least one UL subband overlapping with at least one DL subband in the special symbol. That is, the one of the at least one UL transmissions is not performed over a remaining portion of the resources in the at least one DL subband. In one embodiment, when a first PRB of resources for one of the at least one UL transmissions overlaps with the at least one DL subband, the communication device determines a first PRB for performing one of the at least one UL transmission as a first PRB of the at least one UL subband. In one embodiment, when a last PRB of resources for one of the at least one UL transmissions overlaps with the at least one DL subband, the communication device determines a last PRB for performing one of the at least one UL transmission as a last PRB of the at least one UL subband.
[0034] In one embodiment, the communication device receives a first indicator from a network. In one embodiment, the first indicator indicates at least one direction of a slot (e.g., a set of special symbols in the slot), the at least one direction including at least one of DL, UL, and flexible. In one embodiment, the first indicator provides a direction for each special symbol in the set of special symbols in the slot. In one embodiment, the first indicator is included in at least one of a DCI, a medium access control (MAC) control element (CE), and an RRC signal. In one embodiment, the communication device transmits capability information to the network prior to receiving the first indicator to notify the network whether the communication device can receive the first indicator. In one embodiment, the at least one direction of the slot is at least one fixed direction (e.g., UL and / or DL).
[0035] In one embodiment, the communications device performs (e.g., with a network) the first operation during the first portion of the slot in response to a first operation of the plurality of operations being an UL transmission and the first indicator indicating an UL for the first portion of the slot. In one embodiment, the communications device performs (e.g., with a network) the second operation during the second portion of the slot in response to a second operation of the plurality of operations being a DL reception and the first indicator indicating a DL for the second portion of the slot. That is, the communications device performs the operation during the portion of the slot if the direction of the operation of the plurality of operations within the portion of the slot is the same as the direction of the portion of the slot indicated by the first indicator.
[0036] In one embodiment, the communications device refrains from performing (e.g., with a network) a third operation in the third portion of the slot in response to a third operation of the plurality of operations being UL transmission and the first indicator indicating DL for at least one first symbol in the third portion of the slot. In one embodiment, the communications device refrains from performing (e.g., with a network) a fourth operation of the plurality of operations being DL reception and the first indicator indicating UL for at least one second symbol in the fourth portion of the slot. That is, the communications device refrains from performing an operation of the plurality of operations in the portion of the slot if the direction of the operation differs from the direction of the portion of the slot indicated by the first indicator.
[0037] In one embodiment, the communications device performs (e.g., with the network) a fifth action in the fifth portion of the slot in response to the fifth action of the plurality of actions being triggered by the DCI and the first indicator indicating flexibility for the fifth portion of the slot, i.e., the communications device does not perform an action of the plurality of actions in the portion of the slot if the action is triggered by a signal other than the DCI (e.g., a higher layer signal) and the first indicator indicates flexibility for the portion of the slot.
[0038] In one embodiment, the communications device performs (e.g., with a network) a sixth operation in the sixth portion of the slot in response to a sixth operation of the plurality of operations being UL transmission and a first direction in the sixth portion of the slot not being DL. In one embodiment, the first direction is a fixed (or default) direction or is determined based on a higher layer configuration. In one embodiment, the fixed (or default) direction is determined based on a (default) capability of the communications device. In one embodiment, the higher layer configuration may be, but is not limited to, the first configuration or a UE-specific UL-DL configuration. In one embodiment, the communications device performs (e.g., with a network) a seventh operation in the seventh portion of the slot in response to a seventh operation of the plurality of operations being DL reception and a second direction in the seventh portion of the slot not being UL. In one embodiment, the second direction is a fixed (or default) direction or is determined based on a higher layer configuration. That is, the communications device performs an operation of the plurality of operations in a portion of the slot if the direction of the operation is consistent with the direction of the portion of the slot.
[0039] In one embodiment, the communications device is configured to not perform (e.g., with the network) an eighth operation of the plurality of operations in response to the eighth operation being indicated (or triggered) by higher layer configuration. In one embodiment, the communications device does not receive the second indicator from the network (e.g., configured to receive but fails, not expected to receive, unable to receive, or not configured to receive by the network). In one embodiment, the second indicator indicates at least one direction of the slot, the at least one direction including at least one of DL, UL, and flexible. In one embodiment, the higher layer configuration includes (e.g., is) a TDD UL-DL configuration (e.g., the first configuration or a UE-specific UL-DL configuration). In one embodiment, the second indicator is the same as the first indicator. In one embodiment, the second indicator is different from the first indicator.
[0040] In one embodiment, the communication device determines multiple priorities for multiple operations in response to two or more switching points in a slot or in response to multiple operations with different directions overlapping in a time period. In one embodiment, the multiple priorities correspond to the multiple operations, respectively. In one embodiment, the communication device does not have the ability to perform more than one direction switch in a slot. That is, the communication device cannot switch transmission direction multiple times in a slot.
[0041] In one embodiment, the communications device does not receive the third indicator from the network (e.g., configured to receive but fails, not expected to receive, unable to receive, or not configured to receive by the network). In one embodiment, the third indicator indicates at least one direction of the slot, the at least one direction including at least one of DL, UL, and flexible. In one embodiment, the third indicator is the same as the first indicator. In one embodiment, the third indicator is different from the first indicator. In one embodiment, in response to an eleventh operation of the plurality of operations overlapping with a tenth operation of the plurality of operations being a configured grant physical uplink shared channel (CG-PUSCH), the tenth operation is a DL reception other than a semi-persistent scheduling physical DL shared channel (SPS-PDSCH). In one embodiment, in response to a thirteenth operation of the plurality of operations overlapping with a twelfth operation of the plurality of operations being an SPS-PDSCH, the twelfth operation is a UL transmission other than a CG-PUSCH.
[0042] In one embodiment, the communication device determines a plurality of priorities based on a plurality of priority indicators. In one embodiment, the plurality of priority indicators correspond to a plurality of actions, respectively. In one embodiment, a priority indicator having a first value represents a high priority. In one embodiment, a priority indicator having a second value represents a low priority. That is, the first value has a higher priority than the second value. In one embodiment, the first value may be, but is not limited to, "1." In one embodiment, the second value may be, but is not limited to, "0."
[0043] In one embodiment, the communications device determines that a fourteenth operation of the plurality of operations has a lower priority than a fifteenth operation of the plurality of operations in response to the fourteenth operation of the plurality of operations being transmission or reception of an RS. That is, an operation including an RS has a lower priority than other operations that do not include an RS. In one embodiment, the communications device determines that a sixteenth operation of the plurality of operations has a higher priority than a seventeenth operation in response to the sixteenth operation of the plurality of operations being DL reception including a PDSCH and a first priority index of a Physical Uplink Control Channel (PUCCH) that transmits a Hybrid Automatic Repeat Request-Acknowledgement (HARQ-ACK) for the PDSCH being higher than a second priority index corresponding to the seventeenth operation of the plurality of operations.
[0044] In one embodiment, the communications device determines that an eighteenth operation of the plurality of operations has a higher priority than a nineteenth operation in response to the eighteenth operation of the plurality of operations being triggered by a first DCI and the nineteenth operation of the plurality of operations being triggered by a signal other than the first DCI. In one embodiment, the communications device determines that a twentieth operation of the plurality of operations has a higher priority than a twenty-first operation in response to the twentieth operation of the plurality of operations being triggered by a second DCI that ends later than a third DCI that triggers the twenty-first operation of the plurality of operations. In one embodiment, the communications device determines that a twenty-second operation of the plurality of operations has a higher priority than a twenty-third operation in response to a twenty-second operation of the plurality of operations starting earlier than a twenty-third operation of the plurality of operations.
[0045] In one embodiment, the communication device does not perform (e.g., drops) the twenty-fourth operation (e.g., with the network) in response to the twenty-fourth operation of the plurality of operations overlapping with the twenty-fifth operation of the plurality of operations in the time period. In one embodiment, the twenty-fourth operation is a first UL transmission including a first PUCCH of a first HARQ-ACK (or a first scheduling request (SR)), where the first HARQ-ACK (or the first SR) can be deferred to a next slot. In one embodiment, the twenty-fifth operation is a first DL reception including a first PDSCH (e.g., an SPS-PDSCH) that is not triggered by DCI. In one embodiment, the first priority of the first PUCCH and the second priority of the second PUCCH transmitting the second HARQ-ACK of the first PDSCH are the same. In one embodiment, the twenty-fifth operation does not overlap with at least one UL subband.
[0046] In one embodiment, the communications device determines that a twenty-fifth action of the plurality of actions is the lowest priority one of the plurality of actions in response to the twenty-fifth action being the first or last action of the plurality of actions. In one embodiment, the plurality of actions are triggered by a signal other than a DCI and correspond to a plurality of priority indicators having the same value. In one embodiment, the communications device determines that a twenty-fifth action of the plurality of actions is the lowest priority one of the plurality of actions in response to the twenty-fifth action of the plurality of actions being triggered by a DCI that ends earlier than other DCIs that trigger other actions of the plurality of actions. In one embodiment, the plurality of actions are triggered by a DCI and correspond to a plurality of priority indicators having the same value. In one embodiment, the communications device determines that a twenty-fifth action of the plurality of actions is the lowest priority one of the plurality of actions in response to the twenty-fifth action of the plurality of actions including an RS. In one embodiment, the plurality of actions are triggered by a DCI or a signal other than a DCI. In one embodiment, the plurality of actions do not overlap with one another. In one embodiment, the plurality of actions correspond to a plurality of priority indicators having the same value.
[0047] In one embodiment, the communications device performs (e.g., with the network) a twenty-sixth operation on the eighth portion of the slot in response to, for example, not receiving the second indicator or the third indicator from the network, the twenty-sixth operation of the plurality of operations being UL transmission and the eighth portion of the slot being configured as at least one flexible symbol in the set of flexible symbols based on the first configuration. In one embodiment, the communications device performs (e.g., with the network) a twenty-seventh operation on the ninth portion of the slot in response to, for example, not receiving the second indicator or the third indicator from the network, the twenty-seventh operation of the plurality of operations being DL reception and the ninth portion of the slot being configured as at least one DL symbol in the set of DL symbols based on the first configuration.
[0048] In one embodiment, the communication device determines a set of directions for the set of special symbols based on a fourth indicator (e.g., a TDD UL-DL pattern or a UL-specific TDD UL-DL configuration) configured by higher layer signaling, e.g., when the communication device does not receive the second indicator or the third indicator from the network. In one embodiment, the set of directions includes at least one of DL and UL. In one embodiment, the fourth indicator provides a direction for each special symbol in the set of special symbols in the slot. In one embodiment, the communication device reconfigures the set of special symbols based on the first configuration, e.g., when the communication device does not receive the second indicator or the third indicator from the network.
[0049] In one embodiment, if the communication device does not receive the second indicator or the third indicator from the network and does not receive DCI instructing the communication device to perform UL transmission in the special symbol, the communication device determines a special symbol that overlaps with a control resource set (CORESET) for physical DL control channel (PDCCH) monitoring as the DL symbol. In one embodiment, the UL transmission includes at least one of a sounding reference signal (SRS), a PUSCH, a PUCCH, and a physical random access channel (PRACH). In one embodiment, the CORESET fully or partially overlaps with at least one DL subband in the special symbol. In one embodiment, the communication device monitors the PDCCH in the special symbol based on the CORESET. In one embodiment, the special symbol is one of a set of special symbols.
[0050] In one embodiment, the communication device determines that the UL transmission of the plurality of operations and the DL reception of the plurality of operations have a higher priority than the DL reception in response to the UL transmission of the plurality of operations and the DL reception of the plurality of operations being at the same special symbol in a set of special symbols (e.g., configured based on a third configuration). In one embodiment, the communication device determines that the DL reception has a higher priority than the UL transmission in response to the UL transmission of the plurality of operations and the DL reception of the plurality of operations being at the same special symbol in a set of special symbols (e.g., configured based on a third configuration). In one embodiment, the third configuration includes (e.g., is) a Node B (NB) configuration.
[0051] In one embodiment, the communication device does not perform (e.g., with the network) (e.g., drops) the twenty-eighth operation of the plurality of operations in response to the twenty-eighth operation of the plurality of operations overlapping with the twenty-ninth operation of the plurality of operations in the time period. In one embodiment, the twenty-eighth operation is a second DL reception including a second PDSCH (e.g., an SPS-PDSCH) not triggered by DCI. In one embodiment, the twenty-ninth operation is a second UL transmission including a third PUCCH of a third HARQ-ACK (or a second SR), where the third HARQ-ACK (or the second SR) can be deferred to a next slot. In one embodiment, the third priority of the third PUCCH and the fourth priority of the fourth PUCCH transmitting the fourth HARQ-ACK of the second PDSCH are the same. In one embodiment, the twenty-eighth operation overlaps with at least one UL subband.
[0052] In one embodiment, the communications device does not perform (e.g., with the network) (e.g., drops) the thirty-first operation of the plurality of operations in response to the thirty-first operation of the plurality of operations overlapping with the thirty-first operation of the plurality of operations in the time period. In one embodiment, the thirty-first operation is a third UL transmission including a first CG-PUSCH, where the first CG-PUSCH is configured with Type A repetition. Type A repetition indicates that repetitions of the first CG-PUSCH are transmitted in different slots / symbols. In one embodiment, the thirty-first operation is a third DL reception including a third PDSCH (e.g., SPS-PDSCH) not triggered by DCI. In one embodiment, the fifth priority of the first CG-PUSCH and the sixth priority of the fifth PUCCH transmitting the fifth HARQ-ACK of the third PDSCH are the same. In one embodiment, the thirty-first operation does not overlap with at least one UL subband.
[0053] In one embodiment, the communications device does not perform (e.g., drops) the thirty-second operation (e.g., with the network) in response to the thirty-second operation of the plurality of operations overlapping with the thirty-third operation of the plurality of operations in the time period. In one embodiment, the thirty-second operation is a fourth DL reception including a fourth PDSCH (e.g., an SPS-PDSCH) not triggered by DCI. In one embodiment, the thirty-third operation is a fourth UL transmission including a second CG-PUSCH, where the second CG-PUSCH is configured with Type B repetition. Type B repetition indicates that at least two repetitions of the second CG-PUSCH are transmitted in the same slot, with no gap between the at least two repetitions. In one embodiment, the seventh priority of the second CG-PUSCH and the eighth priority of the sixth PUCCH transmitting the sixth HARQ-ACK of the fourth PDSCH are the same.
[0054] In one embodiment, the communications device does not perform (e.g., with the network) a portion of the thirty-fourth operation in response to the thirty-fourth operation of the plurality of operations overlapping with a thirty-fifth operation of the plurality of operations in a time period. In one embodiment, the thirty-fourth operation is a fifth UL transmission including a third CG-PUSCH, where the third CG-PUSCH is configured with Type B repetitions. In one embodiment, the thirty-fifth operation is a fifth DL reception including a fifth PDSCH (e.g., an SPS-PDSCH) not triggered by DCI. In one embodiment, the ninth priority of the third CG-PUSCH and the tenth priority of the seventh PUCCH transmitting a seventh HARQ-ACK of the fifth PDSCH are the same. In one embodiment, the portion of the thirty-fourth operation includes at least one first repetition of the third CG-PUSCH overlapping with the thirty-fifth operation. In one embodiment, the portion of the thirty-fourth operation further includes at least one second repetition of the third CG-PUSCH after the at least one first repetition.
[0055] In one embodiment, two of the multiple operations in different directions (e.g., DL reception and UL transmission) are not configured (or scheduled) by the network in the same slot, symbol, or time period, i.e., the communication device does not expect two operations in different directions to occur in the same slot, symbol, or time period, for example, if these two operations are triggered / scheduled by a DCI or a signal other than a DCI, respectively.
[0056] In one embodiment, two of the first to thirty-fifth operations in the different embodiments described above may be the same operation. For example, the first operation may be the same as the sixth operation, but is not limited to this. In one embodiment, one of the first to thirty-fifth operations may be the same as one of the at least one UL transmission described in the different embodiments described above. For example, but not limited to this, when the first operation is the same as one of the at least one UL transmission, the communication device performs the operation (e.g., with the network) in a part of the slot via a part of the resources in at least one UL subband in response to the first indicator indicating a UL for a part of the slot and the resources in the at least one UL subband overlapping with at least one DL subband in a special symbol in the set of special symbols. In one embodiment, one of the at least one UL transmission described in the different embodiments described above may be the same UL transmission. For example, but not limited to, one of the at least one UL transmission is configured with first spatial relationship information and second spatial relationship information, and the communication device performs one of the at least one UL transmission in a special symbol in the set of special symbols via a portion of the resources in the at least one UL subband in response to the resources in the at least one UL subband overlapping with at least one DL subband in the special symbol.
[0057] 4 is a flowchart of a process 40 according to one embodiment of the present disclosure. The process 40 may be used in a communication device (e.g., the communication device 14 of FIG. 1 or the communication device 20 of FIG. 2) to determine priorities of actions (e.g., the actions in the process 30). The process 40 may be compiled into the program code 214 and includes the following steps 400 to 410.
[0058] Step 400 starts.
[0059] Step 402 involves decreasing the priority of at least one first action in the plurality of actions in response to the at least one first action corresponding to a low priority index.
[0060] In step 404, if the number of at least one first action among the plurality of actions is two or more, is at least one first action triggered (or scheduled) by the same trigger signal type? If yes, execute step 406. If no, execute step 408.
[0061] In step 406, in response to at least one second action of the at least one first action including an RS, or in response to the at least one second action being the first or last action of the at least one first action, or in response to the at least one second action being triggered (or scheduled) by a DCI that ends earlier than other DCIs that trigger other actions of the at least one first action, the priority of the at least one second action is lowered.
[0062] At step 408, in response to the at least one third action of the at least one first action not being triggered (or scheduled) by the DCI, the priority of the at least one third action is reduced.
[0063] In step 410, the process ends.
[0064] The following embodiments may be applied to implement process 40. In one embodiment, the low priority index may be, but is not limited to, a priority index having a second value (e.g., priority index "0") in the embodiment of process 30. In one embodiment, the trigger signal type may be a DCI or a non-DCI signal. The non-DCI signal may be, but is not limited to, a signal other than a DCI, for example, a higher layer signal (e.g., an RRC signal). In one embodiment, the communication device determines that, if the number of the at least one first action is one, the at least one first action has the lowest priority among the multiple actions. In one embodiment, if multiple priority indicators corresponding to multiple actions have the same value, step 402 may be skipped.
[0065] 5 is a flowchart of a process 50 according to one embodiment of the present disclosure. The process 50 may be used in a communication device (e.g., the communication device 14 of FIG. 1 or the communication device 20 of FIG. 2) to determine priorities of actions (e.g., the actions in the process 30). The process 50 may be compiled into the program code 214 and includes the following steps 500-510.
[0066] Step 500 starts.
[0067] Step 502 includes reducing the priority of at least one first action of the plurality of actions in response to the at least one first action being triggered (or scheduled) by at least one non-DCI signal.
[0068] In step 504, if the number of the at least one first action is two or more, do at least one priority indicator corresponding to the at least one first action have the same value? If yes, execute step 506. If no, execute step 508.
[0069] In step 506, in response to at least one second action of the at least one first action including an RS or in response to the at least one second action being triggered (or scheduled) later than other actions of the at least one first action, lower the priority of the at least one second action.
[0070] Step 508 includes decreasing the priority of the at least one third action in response to the at least one third action of the at least one first action corresponding to a low priority index.
[0071] In step 510, the process ends.
[0072] The following embodiments may be applied to implement process 50. In one embodiment, the low priority index may be, but is not limited to, a priority index having a second value (e.g., priority index "0") in the embodiment of process 30. In one embodiment, the communication device determines that, if the number of the at least one first action is one, the at least one first action has the lowest priority among the multiple actions. In one embodiment, if multiple actions are triggered (or scheduled) by the same trigger signal type, step 502 may be skipped. In one embodiment, the trigger signal type may be a DCI or a non-DCI signal. The non-DCI signal may be, but is not limited to, a signal other than DCI, for example, a higher layer signal (e.g., an RRC signal).
[0073] FIG. 6 is a schematic diagram of a slot 60 according to one embodiment of the present disclosure. In FIG. 6, slot 60 includes DL sub-bands 600 and 610 and a UL sub-band 620. Three operations (i.e., DL receive DL0, UL transmit UL0, and UL transmit UL1) are configured to be performed in slot 60 and do not overlap with each other in time. That is, slot 60 has two switching points. One switching point is between UL transmit UL0 and DL receive DL0, and the other switching point is between DL receive DL0 and UL transmit UL1.
[0074] In FIG. 6, Table 62 shows information about three operations in Cases 1 to 8. The information in Table 62 includes trigger signals (e.g., trigger signal types) for the three operations and data for the three operations. In Table 62, "DCI" indicates that the operation is triggered by DCI. "Non-DCI" indicates that the operation is triggered by a non-DCI (e.g., RRC) signal. "HARQ" indicates that the operation includes HARQ-ACK. "SR" indicates that the operation includes a scheduling request. "SRS" indicates that the operation includes a sounding RS. "SPS-PDSCH" indicates that the operation includes an SPS-PDSCH. "PDSCH" indicates that the operation includes a PDSCH. "P-CSI-RS" indicates that the operation includes a periodic channel state information (CSI) RS. "A-CSI-RS" indicates that the operation includes an aperiodic CSI RS.
[0075] 6, it is assumed that the priority indicators corresponding to the three operations have the same value, and the trigger order of the three operations is UL transmit UL0, DL receive DL0, and UL transmit UL1. In cases 1 to 8, the communication device determines the operation with the lowest priority among the three operations based on, for example, process 40 or 50, and drops the operation with the lowest priority among the three operations to reduce the number of switching points in slot 60. The shaded blocks in table 62 are the operations with the lowest priority that are determined and dropped by the communication device. Then, the communication device executes the remaining operations (e.g., at least one operation in process 30) in slot 60.
[0076] In case 1, the communication device determines that UL transmission UL1 has the lowest priority in response to UL transmission UL1 being triggered later than UL transmission UL0 and DL reception DL0. In case 2, the communication device determines that DL reception DL0 has the lowest priority in response to DL reception DL0 being triggered by a non-DCI signal and including an RS. In case 3, the communication device determines that UL transmission UL1 has the lowest priority in response to UL transmission UL1 being triggered by a non-DCI signal and being triggered later than UL transmission UL0. In case 4, the communication device determines that UL transmission UL0 has the lowest priority in response to UL transmission UL0 being triggered by a non-DCI signal.
[0077] In case 5, the communication device determines that UL transmission UL1 has the lowest priority in response to UL transmission UL1 being triggered by a non-DCI signal and being triggered later than DL reception DL0. In case 6, the communication device determines that DL reception DL0 has the lowest priority in response to DL reception DL0 being triggered by a non-DCI signal. In case 7, the communication device determines that UL transmission UL1 has the lowest priority in response to UL transmission UL1 being triggered by a non-DCI signal. In case 8, the communication device determines that UL transmission UL1 has the lowest priority in response to UL transmission UL1 being triggered later than UL transmission UL0 and DL reception DL0.
[0078] FIG. 7 is a schematic diagram of a slot 70 according to one embodiment of the present disclosure. In FIG. 7, slot 70 includes DL sub-bands 700 and 710 and an UL sub-band 720. Three operations (i.e., DL receive DL0, DL receive DL1, and UL transmit UL0) are configured to be performed in slot 70 and do not overlap with each other in time. That is, slot 70 has two switching points: one switching point is between DL receive DL0 and UL transmit UL0, and the other switching point is between UL transmit UL0 and DL receive DL1.
[0079] In FIG. 7, table 72 shows information on three operations in cases 1 to 6. The information in table 72 includes priority indexes for the three operations. A priority index of "1" has a higher priority than a priority index of "0." In cases 1 to 6, the communication device determines the operation with the lowest priority among the three operations based on, for example, process 40 or 50, and drops the operation with the lowest priority among the three operations to reduce the number of switching points in slot 70. The shaded blocks in table 72 are the operations with the lowest priority that are determined and dropped by the communication device. Then, the communication device executes the remaining operations in slot 70 (e.g., at least one operation in process 30).
[0080] In one example of FIG. 7 , it is assumed that three actions are triggered by the same trigger signal type (e.g., DCI), and that the order of termination of the DCIs corresponds to DL receive DL1, UL receive UL0, and DL receive DL0. The DCIs each trigger three actions. In Case 1, the communication device determines that UL transmit UL0 has the lowest priority in response to UL transmit UL0 having a priority index of "0" being triggered by a DCI that terminates earlier than the DCI that triggers DL receive DL0. In Case 2, the communication device determines that DL receive DL1 has the lowest priority in response to DL receive DL1 having a priority index of "0" being triggered by a DCI that terminates earlier than the DCI that triggers DL receive DL0. In Case 3, the communication device determines that DL receive DL1 has the lowest priority in response to DL receive DL1 having a priority index of "0" being triggered by a DCI that terminates earlier than the DCI that triggers UL transmit UL0. In case 4, the communication device determines that DL reception DL0 has the lowest priority in response to DL reception DL0 having a priority index of "0". In case 5, the communication device determines that UL transmission UL0 has the lowest priority in response to UL transmission UL0 having a priority index of "0". In case 6, the communication device determines that DL reception DL1 has the lowest priority in response to DL reception DL1 having a priority index of "0".
[0081] In one example of FIG. 7 , it is assumed that two of the three operations having a priority index of “0” are triggered by different trigger signal types (e.g., DCI and non-DCI signals). In case 1, DL reception DL0 is triggered by a DCI, and UL transmission UL0 is triggered by a non-DCI signal. In response to UL transmission UL0 having a priority index of “0” being triggered by a non-DCI signal, the communication device determines that UL transmission UL0 has the lowest priority. In case 2, DL reception DL0 is triggered by a DCI, and DL reception DL1 is triggered by a non-DCI signal. In response to DL reception DL1 having a priority index of “0” being triggered by a non-DCI signal, the communication device determines that DL reception DL1 has the lowest priority. In case 3, UL transmission UL0 is triggered by a DCI, and DL reception DL1 is triggered by a non-DCI signal. In response to DL reception DL1 having a priority index of “0” being triggered by a non-DCI signal, the communication device determines that DL reception DL1 has the lowest priority. In case 4, the communication device determines that DL reception DL0 has the lowest priority in response to DL reception DL0 having a priority index of "0". In case 5, the communication device determines that UL transmission UL0 has the lowest priority in response to UL transmission UL0 having a priority index of "0". In case 6, the communication device determines that DL reception DL1 has the lowest priority in response to DL reception DL1 having a priority index of "0".
[0082] FIG. 8 is a schematic diagram of communication 80 between a communication device and a network according to one embodiment of the present disclosure. The communication device receives a UL-DL configuration and a special resource configuration from the network (not shown in FIG. 8). The UL-DL configuration and the special resource configuration may be the first configuration and the second configuration, respectively, in process 30. The UL-DL configuration and the special resource configuration are used to indicate the type (e.g., direction) of slots 0-9 in a frame (e.g., frame 82 or frame 84). The UL-DL configuration indicates that slots 0-3 are DL slots, slots 4-5 are flexible slots, and slots 6-9 are UL slots. The special resource configuration indicates that slots 2-5 are special slots. The UL slots, DL slots, flexible slots, and special slots are represented as "U," "D," "F," and "S," respectively.
[0083] In FIG. 8, the communication device determines the type of slots 0 to 9 of a frame based on the UL-DL configuration. The determined frame is represented as frame 82. Then, the communication device redetermines slots 2 to 5 as special slots based on the special resource configuration. The redetermined frame is represented as frame 84. Slots 0 to 1 of frame 84 each include resource DL_R including DL subband 800. Slots 2 to 5 of frame 84 each include resource S_R including DL subbands 810 and 820 and UL subband 830. Slots 6 to 9 of frame 84 each include resource UL_R including UL subband 840. In resource DL_R, resource S_R, and resource UL_R, DL subbands are represented as shaded blocks, and UL subbands are represented as blank blocks.
[0084] In one embodiment of FIG. 8 , the communication device further receives an indicator from the network (not shown in FIG. 8 ). The indicator may be the first indicator in the embodiment of process 30, indicating that the direction of slot 2 of frame 84 is DL and the direction of slots 3-5 of frame 84 is UL. Because slots 0-1 of frame 84 are DL slots, the communication device may perform DL reception in DL subband 800 in slots 0-1 of frame 84. In slot 2 of frame 84, the communication device may perform DL reception in DL subbands 810 and / or 820 in response to the indicator indicating that the direction of the slot is DL. In slots 3-5 of frame 84, the communication device may perform UL transmission in UL subband 830 in response to the indicator indicating that the direction of slots 3-5 is UL. Because slots 6-9 of frame 84 are UL slots, the communication device may perform UL transmission in UL subband 840 in slots 6-9 of frame 84.
[0085] In one embodiment of FIG. 8 , the communication device does not receive an indicator from the network (not shown in FIG. 8 ). The indicator may be the second indicator or the third indicator in the embodiment of process 30 and indicates the direction of slots 2-5 of frame 84. Because slots 0-1 of frame 84 are DL slots, the communication device may perform DL reception in DL subband 800 in slots 0-1 of frame 84. In response to determining slots 2-3 as DL slots (i.e., slots 2-3 in frame 82) based on the UL-DL configuration, the communication device may perform DL reception in DL subbands 810 and / or 820 in slots 2-3 of frame 84. In response to determining slots 4-5 as flexible slots (i.e., slots 4-5 in frame 82) based on the UL-DL configuration, the communication device may perform UL transmission in UL subband 830 in slots 4-5 of frame 84. Since slots 6 to 9 of frame 84 are UL slots, the communication device may perform UL transmission in UL subband 840 in slots 6 to 9 of frame 84.
[0086] In one embodiment of FIG. 8 , the communication device does not receive an indicator from the network (not shown in FIG. 8 ). The indicator may be the second indicator or the third indicator in the embodiment of process 30, and indicates the direction of slots 2 to 5 of frame 84. The communication device obtains a UL-DL pattern [DUUU] (not shown in FIG. 8 ) indicating the direction of slots 2 to 5 of frame 84. The UL-DL pattern [DUUU] may be the fourth indicator in the embodiment of process 30. "D" indicates that the direction of the corresponding slot is DL, and "U" indicates that the direction of the corresponding slot is UL. The UL-DL pattern [DUUU] indicates that the direction of slot 2 of frame 84 is DL, and the direction of slots 3 to 5 of frame 84 are UL. Because slots 0 to 1 of frame 84 are DL slots, the communication device may perform DL reception in the DL subband 800 in slots 0 to 1 of frame 84. In slot 2 of frame 84, the communication device may perform DL reception on DL subbands 810 and / or 820 in response to the UL-DL pattern indicating that the direction of the slot is DL. In slots 3-5 of frame 84, the communication device may perform UL transmission on UL subband 830 in response to the UL-DL pattern indicating that the direction of slots 3-5 is UL. Because slots 6-9 of frame 84 are UL slots, the communication device may perform UL transmission on UL subband 840 in slots 6-9 of frame 84.
[0087] In one embodiment of FIG. 8, the communication device does not receive an indicator from the network (not shown in FIG. 8). The indicator may be the second indicator or the third indicator in the embodiment of process 30, indicating the direction of slots 2-5 of frame 84. The communication device re-determines the frame, e.g., frame 82, based on the UL-DL configuration and communicates with the network in frame 82 based on the conventional communication specification. For example, the communication device determines the direction of slots 4-5 of frame 82 based on the DCI (e.g., DCI format 2_0).
[0088] 9 is a flowchart of a process 90 according to one embodiment of the present disclosure. The process 90 may be utilized in a communication device (e.g., the communication device 14 of FIG. 1 or the communication device 20 of FIG. 2) to determine at least one direction of a set of special symbols over a time period. The process 90 may be compiled into the program code 214 and includes the following steps 900-912.
[0089] Step 900 starts.
[0090] In step 902, a time period is set based on the first setting and the second setting.
[0091] In step 904, is the communication device configured by the network to determine at least one direction of the set of special symbols in a time period based on the first indicator? If yes, execute step 906. If no, execute step 910.
[0092] In step 906, does the communication device receive the first indicator? If yes, execute step 908. If no, execute step 910.
[0093] In step 908, a direction of at least one of the set of special symbols in a time period is determined based on the first indicator, and step 912 is performed.
[0094] In step 910, a direction of at least one of the set of special symbols over a time period is determined based on at least one of a plurality of priority indicators corresponding to a plurality of actions in the set of special symbols, a plurality of trigger types of the plurality of actions, a first setting, a second setting, a second indicator, and a DCI.
[0095] In step 912, the process ends.
[0096] The following embodiments may be applied to implement process 90. In one embodiment, the time period includes a plurality of symbols. In one embodiment, the first configuration and the second configuration may be the first configuration and the second configuration in process 30. In one embodiment, the first indicator may be the first indicator in the embodiment of process 30 and indicate at least one direction of the set of special symbols in the time period. In one embodiment, the second indicator may be the fourth indicator (e.g., a TDD UL-DL pattern or a UE-specific UL-DL configuration) in the embodiment of process 30 and indicate at least one direction of the set of special symbols in the time period. In one embodiment, the DCI indicates the direction of at least one symbol in the set of special symbols. At least one symbol is configured as at least one flexible symbol based on the first configuration. In one embodiment, step 910 may be replaced by the step of "not performing at least one action configured / scheduled by a higher layer configuration in the set of special symbols in the time period."
[0097] FIG. 10 is a schematic diagram of communication 100 between a communication device and a network according to one embodiment of the present disclosure. A UL symbol 102 and a special symbol 104 are shown in FIG. 10. The special symbol 104 includes DL subbands 1000 and 1010 and a UL subband 1020. The communication device receives an offset in a DCI or higher layer signal from the network (not shown in FIG. 10). The offset indicates the number of PRBs by which to shift the UL transmission UL0. The communication device may transmit the UL transmission UL0 in the UL symbol 102 with the network and / or may transmit the UL transmission UL0 in the special symbol 104 with the network by shifting the UL transmission UL0 based on the offset to avoid overlapping the UL transmission UL0 with the DL subband 1010 in the special symbol 104. In one embodiment, the terms "UL symbol 102" and "special symbol 104" may be replaced with "UL slot 102" and "special slot 104," respectively. In one embodiment, the special slot consists of a set (eg, 14) of special symbols.
[0098] FIG. 11 is a schematic diagram of communication 110 between a communication device and a network according to one embodiment of the present disclosure. Three UL symbols 112, 114, and 116 and three special symbols 113, 115, and 117 are shown. The special symbols 113, 115, and 117 include DL subbands 1100 and 1110 and UL subband 1120, respectively. In one embodiment, the communication device may perform UL transmission UL0 with the network in UL symbol 112 and / or may perform UL transmission UL0_P with the network in special symbol 113. UL transmission UL0_P is the portion of UL transmission UL0 that does not overlap with DL subbands 1100 and 1110 in special symbol 113. In one embodiment, the communication device may perform UL transmission UL1 with the network in UL symbol 114 and / or may perform UL transmission UL1_P with the network in special symbol 115. UL transmission UL1_P is the portion of UL transmission UL1 that does not overlap with DL subbands 1100, 1110 in special symbol 115. In one embodiment, the communication device may perform UL transmission UL2 with the network in UL symbol 116 and / or may perform UL transmission UL2_P with the network in special symbol 117. UL transmission UL2_P is the portion of UL transmission UL2 that does not overlap with DL subbands 1100, 1110 in special symbol 117. That is, the communication device drops the portion of the UL transmission that overlaps with DL subbands in the special symbol. In one embodiment, the terms "UL symbols 112, 114, and 116" and "special symbols 113, 115, and 117" can be replaced with "UL slots 112, 114, and 116" and "special slots 113, 115, and 117," respectively.
[0099] 12 is a flowchart of a process 120 according to an embodiment of the present disclosure. The process 120 may be used in a communication device (e.g., the communication device 14 of FIG. 1 or the communication device 20 of FIG. 2) to determine an UL resource (e.g., at least one UL subband) in a special symbol for performing an UL transmission. The process 120 may be compiled into a program code 214 and includes the following steps 1200 to 1212.
[0100] Step 1200 starts.
[0101] In step 1202, is the UL transmission triggered by the DCI? If yes, execute step 1204. If no, execute step 1206.
[0102] In step 1204, the UL resource in the special symbol is determined based on the DCI, and step 1212 is performed.
[0103] In step 1206, does the UL transmission contain multiple UL Control Information (UCI) types? If yes, execute step 1208. If no, execute step 1210.
[0104] In step 1208, the UL resource in the special symbol is determined based on the payload size of the UL transmission, and step 1212 is performed.
[0105] In step 1210, the UL resource in the special symbol is determined based on the upper layer configuration.
[0106] Step 1212 ends the process.
[0107] The following embodiments may be applied to implement process 120. In one embodiment, the UL transmission may be one of the at least one UL transmission in the embodiment of process 30. In one embodiment, the higher layer configuration (e.g., RRC configuration) includes at least one of first spatial relationship information, second spatial relationship information, first power information, second power information, a first code rate, and a second code rate. In one embodiment, the plurality of UCI types include, but are not limited to, at least one of HARQ-ACK, CSI, RS, SRS, Layer 1 Reference Signal Received Power (L1-RSRP), Layer 1 Signal-to-Interference and Noise Ratio (L1-SINR), a Channel Quality Indicator (CQI), a Precoding Matrix Indicator (PMI), and a Rank Indication (RI).
[0108] 13 is a flowchart of a process 130 according to an embodiment of the present disclosure. The process 130 may be used in a communication device (e.g., the communication device 14 of FIG. 1 or the communication device 20 of FIG. 2) to determine an UL resource (e.g., at least one UL subband) in a special symbol for performing an UL transmission. The process 130 may be compiled into the program code 214 and includes the following steps 1300 to 1308.
[0109] Step 1300 starts.
[0110] In step 1302, is the UL transmission triggered by the DCI? If yes, execute step 1304. If no, execute step 1306.
[0111] In step 1304, the UL resource in the special symbol is determined based on the DCI, and step 1308 is performed.
[0112] In step 1306, the UL resource in the special symbol is determined based on the payload size of the UL transmission.
[0113] Step 1308 ends the process.
[0114] The following embodiments may be applied to implement the process 130: In one embodiment, the UL transmission may be one of the at least one UL transmission in the process 30 embodiment.
[0115] 14 is a flowchart of a process 140 according to an embodiment of the present disclosure. The process 140 may be utilized in a network (e.g., the network 12 of FIG. 1 or the communication device 20 of FIG. 2) to handle communications with a serving cell. The process 140 may be compiled into the program code 214 and includes the following steps 1400 to 1408.
[0116] Step 1400 starts.
[0117] Step 1402 transmits a first configuration to the communication device, the first configuration indicating at least one of a set of DL symbols, a set of flexible symbols, and a set of UL symbols for a period of time.
[0118] In step 1404, a second configuration of the serving cell is sent to the communication device, the second configuration indicating a set of special symbols in at least one of the set of DL symbols and the set of flexible symbols, the set of special symbols including at least one DL subband and at least one UL subband in different frequency regions of the serving cell.
[0119] Step 1406 transmits at least one instruction for a plurality of actions in the slot to the communication device.
[0120] In step 1408, the process ends.
[0121] Based on process 140, the network transmits a first configuration (e.g., TDD-UL-DL-ConfigCommon) to the communication device. The first configuration indicates at least one of a DL symbol set, a flexible symbol set, and a UL symbol set (e.g., at least one symbol or radio frame) for a certain time period. The network transmits a second configuration of the serving cell to the communication device. The second configuration indicates a special symbol set in at least one of the DL symbol set and the flexible symbol set, where the special symbol set includes at least one DL subband and at least one UL subband in different frequency regions of the serving cell. The network transmits at least one instruction for multiple operations in the slot to the communication device. That is, the network provides information (e.g., the first configuration, the second configuration, and the at least one instruction) to the communication device. The communication device determines whether to perform at least one operation among the multiple operations in the slot based on the information to avoid switching the transmission direction multiple times in the slot. Therefore, communication between the network and the communication device is normally performed.
[0122] The implementation of the process 140 is not limited to the above description. To implement the process 140, the following embodiments may be applied.
[0123] In one embodiment, the plurality of operations overlap with at least one special symbol in the set of special symbols. In one embodiment, the plurality of operations includes at least one DL receive and at least one UL transmit. In one embodiment, the slot includes a plurality of symbols. In one embodiment, the plurality of symbols is configured according to at least one of a first configuration and a second configuration. In one embodiment, the network receives information from the communication device. In one embodiment, the information indicates whether the communication device supports two or more switch points in a slot. In one embodiment, the switch point indicates a direction switch (e.g., a TX-RX switch or an RX-TX switch).
[0124] In one embodiment, the network receives capability information from the communication device regarding whether the communication device is capable of receiving the first indicator. In one embodiment, the network transmits the first indicator to the communication device, e.g., in response to the capability information. In one embodiment, the first indicator indicates at least one direction of a slot (e.g., a set of special symbols in the slot), the at least one direction including at least one of DL, UL, and flexible. In one embodiment, the first indicator provides a direction for each special symbol in the set of special symbols in the slot. In one embodiment, the first indicator is included in at least one of DCI, MAC CE, and RRC signaling.
[0125] An embodiment of process 30 may also be applied to process 140, and will not be described here for the sake of brevity.
[0126] The operation "determining" above can be replaced with the operations "calculating," "calculating," "obtaining," "generating," "outputting," "using," "selecting / selecting," "judging," or "configured to." The phrase "based on" above can be replaced with "responsive to." The term "via" above can be replaced with "on," "in," or "at." The term "when" or "when" above can be replaced with "responsive to." The term "special symbol" can be replaced with "subband non-overlapping full duplex (SBFD) symbol." The terms "set of DL symbols," "set of flexible symbols," "set of special symbols," and "set of UL symbols" can be replaced with "set of DL slots," "set of flexible slots," "set of special slots," and "set of UL slots," respectively. The terms "DL symbol," "flexible symbol," "special symbol," and "UL symbol" can be replaced with "DL slot," "flexible slot," "special slot," and "UL slot," respectively. The term "DCI" can be replaced with "DCI format" or "PDCCH."
[0127] Those skilled in the art will easily make combinations, modifications, and / or alterations to the above-described descriptions and examples. The above-described descriptions, steps, and / or processes, including the suggested steps, can be realized by means that may be hardware, software, firmware (also known as a combination of a hardware device and computer instructions and data residing as read-only software on a hardware device), an electronic system, or a combination thereof. An example of the means may be a communication device.
[0128] Examples of hardware may include analog circuitry, digital circuitry, and / or mixed circuitry. For example, the hardware may include an ASIC, a field programmable gate array (FPGA), a programmable logic device, combined hardware components, or a combination thereof. In another example, the hardware may include a general-purpose processor, a microprocessor, a controller, a digital signal processor (DSP), or a combination thereof.
[0129] Examples of software may include a set of code, a set of instructions, and / or a set of functions that are retained (e.g., stored) on a storage unit, e.g., a computer-readable medium. The computer-readable medium may include a SIM, a ROM, a flash memory, a RAM, a CD-ROM / DVD-ROM / BD-ROM, a magnetic tape, a hard disk, an optical data storage device, a non-volatile storage unit, or a combination thereof. The computer-readable medium (e.g., a storage unit) may be internally (e.g., integrated) or externally (e.g., separate) coupled to at least one processor. At least one processor, which may include one or more modules, may execute (e.g., be configured to execute) the software in the computer-readable medium. The set of code, the set of instructions, and / or the set of functions may cause at least one processor, module, hardware, and / or electronic system to perform associated steps.
[0130] Examples of electronic systems may include a system on a chip (SoC), a system in a package (SiP), a computer on a module (CoM), a computer program product, a device, a mobile phone, a laptop, a tablet computer, an e-book or a portable computer system and a communication device 20.
[0131] In summary, the embodiments of the present disclosure provide a method and a communication device for processing communication with a serving cell. According to the embodiments of the present disclosure, the number of switching points in a certain time period is reduced. The communication device does not need to switch the transmission direction multiple times in a time period. Therefore, the problem of processing communication between the communication device and the network can be solved.
[0132] Those skilled in the art will readily appreciate that numerous modifications and variations of the apparatus and method may be made while retaining the teachings of the present invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Claims
1. 1. A method for handling communications with a serving cell of a communication device, comprising: receiving a first configuration from a network, the first configuration indicating at least one of a set of downlink (DL) symbols, a set of flexible symbols, and a set of uplink (UL) symbols for a time period; receiving a second configuration of the serving cell from the network, the second configuration indicating a set of special symbols in at least one of the set of DL symbols and the set of flexible symbols, the set of special symbols including at least one DL subband and at least one UL subband in different frequency regions of the serving cell; receiving at least one indication from the network for a plurality of actions in a slot; determining whether to perform at least one of the plurality of actions in the slot; determining UL resources based on at least one of a resource configuration and a starting physical resource block (PRB); Including, the plurality of actions overlap with at least one special symbol in the set of special symbols; the plurality of operations includes at least one DL reception and at least one UL transmission; one of the at least one UL transmissions is configured with first power information and second power information; the first power information corresponds to a special symbol in the set of special symbols, and the second power information corresponds to a UL symbol in the set of UL symbols; The method of claim 1, wherein the starting PRB is determined based on at least one of an offset, the resource configuration, DL control information (DCI), and higher layer signaling, the offset indicating a set of frequency domain resources.
2. performing said one of said at least one UL transmission on said UL resource in a special symbol in said set of special symbols. and the starting PRB is specific to the at least one special symbol; 2. The method of claim 1, wherein a first number of PRBs of the UL resource is the same as a second number of PRBs that do not overlap with the at least one special symbol of the one of the at least one UL transmission.
3. transmitting information to said network; Further comprising: The method of claim 1 , wherein the information indicates whether the communication device supports more than one switching point in a slot.
4. The method of claim 1 , wherein the transmit power of the one of the at least one UL transmission is determined based on the first power information set by the network.
5. 2. The method of claim 1, wherein the spatial relationship of the one of the at least one UL transmission is determined based on first spatial relationship information configured by the network, or the one of the at least one UL transmission is configured with the first spatial relationship information and second spatial relationship information.
6. 6. The method of claim 5, wherein the first spatial relationship information corresponds to the special symbol in the set of special symbols, and the second spatial relationship information corresponds to the UL symbol in the set of UL symbols.
7. receiving a first indicator from the network; Further comprising: The method of claim 1 , wherein the first indicator indicates at least one orientation of the slot, the at least one orientation including at least one of DL, UL, and flexible.
8. The method of claim 7 , wherein the first indicator is included in at least one of a DCI, a Medium Access Control (MAC) Control Element (CE), and a Radio Resource Control (RRC) signal.
9. a first operation of the plurality of operations is an UL transmission, and in response to the first indicator indicating UL for a first portion of the slot, performing the first operation during the first portion of the slot; a second operation of the plurality of operations is DL reception, and in response to the first indicator indicating DL for a second portion of the slot, performing the second operation during the second portion of the slot; a third operation of the plurality of operations is an UL transmission, and in response to the first indicator indicating DL for at least one first symbol in a third portion of the slot, not performing the third operation in the third portion of the slot; a fourth operation of the plurality of operations is DL reception, and in response to the first indicator indicating UL for at least one second symbol in a fourth portion of the slot, not performing the fourth operation in the fourth portion of the slot; performing a fifth operation of the plurality of operations during the fifth portion of the slot in response to the fifth operation being triggered by a DCI and the first indicator indicating flexibility for the fifth portion of the slot; The method of claim 7 , further comprising at least one of:
10. performing a sixth operation of the plurality of operations in the sixth portion of the slot in response to the sixth operation being an UL transmission and the first direction in the sixth portion of the slot not being DL; Further comprising: The method of claim 1 , wherein the first direction is a fixed direction or is determined based on a higher layer setting.
11. performing a seventh operation of the plurality of operations in the seventh portion of the slot in response to the seventh operation being DL reception and the second direction in the seventh portion of the slot not being UL; Further comprising: The method of claim 1 , wherein the second direction is a fixed direction or is determined based on a higher layer setting.
12. In response to an eighth operation of the plurality of operations being indicated by the upper layer setting, not performing the eighth operation. The method of claim 1 further comprising:
13. not receiving a second indicator from the network. Further comprising: The method of claim 12 , wherein the second indicator indicates at least one orientation of the slot, the at least one orientation including at least one of DL, UL, and flexible.
14. determining a plurality of priorities for the plurality of operations in response to two or more switching points in the slot or in response to the plurality of operations having different directions overlapping in a time period; The method of claim 1 further comprising:
15. 15. The method of claim 14, wherein, in response to an eleventh operation of the plurality of operations that overlaps with a tenth operation of the plurality of operations being a configured grant physical uplink shared channel (CG-PUSCH), the tenth operation is DL reception other than a semi-persistent scheduling physical downlink shared channel (SPS-PDSCH), or, in response to a thirteenth operation of the plurality of operations that overlaps with a twelfth operation of the plurality of operations being an SPS-PDSCH, the twelfth operation is UL transmission other than a CG-PUSCH.
16. not receiving a third indicator from the network, the third indicator indicating at least one direction of the slot, the at least one direction including at least one of DL, UL, and flexible; determining the plurality of priorities based on a plurality of priority indicators respectively corresponding to the plurality of actions; determining, in response to a fourteenth operation of the plurality of operations being transmitting or receiving a reference signal (RS), that the fourteenth operation has a lower priority than a fifteenth operation of the plurality of operations; determining that a sixteenth operation of the plurality of operations has a higher priority than a seventeenth operation in response to a sixteenth operation of the plurality of operations being DL reception including a PDSCH and a first priority index of a Physical Uplink Control Channel (PUCCH) transmitting a Hybrid Automatic Repeat Request-Acknowledgement (HARQ-ACK) of the PDSCH being higher than a second priority index corresponding to the seventeenth operation of the plurality of operations; determining, in response to an eighteenth operation of the plurality of operations being triggered by a first DCI and a nineteenth operation of the plurality of operations being triggered by a signal other than the first DCI, that the eighteenth operation has a higher priority than the nineteenth operation; determining that a twentieth action of the plurality of actions has a higher priority than a twenty-first action in response to the twentieth action being triggered by a second DCI that ends earlier than a third DCI that triggers a twenty-first action of the plurality of actions; determining, in response to a twenty-second operation of the plurality of operations starting earlier than a twenty-third operation of the plurality of operations, that the twenty-second operation has a higher priority than the twenty-third operation; The method of claim 14 , further comprising at least one of:
17. not performing a twenty-fourth operation of the plurality of operations in response to the twenty-fifth operation of the plurality of operations overlapping with a twenty-fifth operation of the plurality of operations in the time period. Further comprising: the twenty-fourth operation is an UL transmission including a first PUCCH of a first HARQ-ACK, the first HARQ-ACK being deferred to a next slot; The method of claim 1 , wherein the twenty-fifth operation is DL reception including a PDSCH not triggered by a DCI.
18. The method according to claim 17, wherein a first priority of the first PUCCH and a second priority of a second PUCCH that transmits a second HARQ-ACK of the PDSCH are the same.
19. 1. A communication device for handling communication with a serving cell, comprising: at least one storage device; at least one processing circuit coupled to said at least one memory device; wherein the at least one storage device is configured to store instructions, and the at least one processing circuit is configured to: instructions for receiving a first configuration from a network, the first configuration indicating at least one of a set of downlink (DL) symbols, a set of flexible symbols, and a set of uplink (UL) symbols for a time period; instructions for receiving from the network a second configuration of the serving cell, the second configuration indicating a set of special symbols in at least one of the DL symbol set and the flexible symbol set, the set of special symbols including at least one DL subband and at least one UL subband in different frequency regions of the serving cell; instructions for receiving from the network at least one indication for a plurality of actions in a slot; instructions for determining whether to perform at least one operation of the plurality of operations in the slot; instructions for determining UL resources based on at least one of a resource configuration and a starting physical resource block (PRB); configured to run the plurality of actions overlap with at least one special symbol in the set of special symbols; the plurality of operations includes at least one DL reception and at least one UL transmission; one of the at least one UL transmissions is configured with first power information and second power information; the first power information corresponds to a special symbol in the set of special symbols, and the second power information corresponds to a UL symbol in the set of UL symbols; The communications device, wherein the starting PRB is determined based on at least one of an offset, the resource configuration, DL control information (DCI), and higher layer signaling, the offset indicating a set of frequency domain resources.
20. 1. A method for processing communications with a communication device over a network, comprising: transmitting a first configuration to the communication device, the first configuration indicating at least one of a set of downlink (DL) symbols, a set of flexible symbols, and a set of uplink (UL) symbols for a time period; sending a second configuration of a serving cell to the communication device, the second configuration indicating a set of special symbols in at least one of the set of DL symbols and the set of flexible symbols, the set of special symbols including at least one DL subband and at least one UL subband in different frequency regions of the serving cell; transmitting at least one instruction for a plurality of actions in the slot to the communication device; Including, the plurality of actions overlap with at least one special symbol in the set of special symbols; the plurality of operations includes at least one DL reception and at least one UL transmission; one of the at least one UL transmissions is configured with first power information and second power information; the first power information corresponds to a special symbol in the set of special symbols, and the second power information corresponds to a UL symbol in the set of UL symbols; the UL resource is determined based on at least one of a resource configuration and a starting physical resource block (PRB); The method of claim 1, wherein the starting PRB is determined based on at least one of an offset, the resource configuration, DL control information (DCI), and higher layer signaling, the offset indicating a set of frequency domain resources.
Citation Information
Patent Citations
Method and communication device for handling communication with serving cell
JP2025065048A