Method performed by a terminal device, and method performed by a terminal device and a network device - Patents.com
The method addresses the challenge of PUCCH carrier switching in NR Release 17 by configuring a cell set for PUCCH transmission, determining a target cell, and applying power control, reducing HARQ feedback delay and ensuring reliable communication in various telecommunications scenarios.
Patent Information
- Application Number
- JP2023542531
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-01-13
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2041-01-13
AI Technical Summary
In New Radio (NR) Release 17, the delay of HARQ feedback for downlink reconfiguration in unpaired spectrum is reduced through PUCCH carrier switching, but there is a need to determine how to realize PUCCH carrier switching, including configuring PUCCH resources, associating DL carriers with UL carriers, and managing power control for multiple carriers.
A communication method and apparatus that configures a cell set for PUCCH transmission in a cell group, allowing PUCCH carrier switching by determining a target cell based on numerology, available symbols, and applying independent or joint power control for HARQ feedback transmission.
Reduces HARQ feedback delay by enabling flexible PUCCH carrier switching and power control, ensuring reliable communication in scenarios like URLLC and NR systems above 52.6 GHz.
Smart Images

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Abstract
Description
[Technical field]
[0001] FIELD OF THE DISCLOSURE Embodiments of the present disclosure relate generally to the field of telecommunications, and more particularly to communication methods, apparatus, and computer storage media for hybrid automatic repeat request (HARQ). [Background technology]
[0002] In New Radio (NR) Release 16, for a terminal device configured with carrier aggregation (CA), only the uplink (UL) carrier of a component carrier (CC) is configured to transmit a physical uplink control channel (PUCCH) for HARQ feedback within a cell group (e.g., a primary cell).
[0003] In NR Release 17, to reduce the delay of HARQ feedback for downlink (DL) reconfiguration in unpaired spectrum, PUCCH carrier switching for HARQ feedback is proposed, which allows two or more UL carriers with different time division duplexing (TDD) configurations for PUCCH transmission for HARQ feedback. In this case, it is necessary to consider how to realize PUCCH carrier switching. Summary of the Invention [Problem to be solved by the invention]
[0004] In general, the example embodiments of the present disclosure provide a communication method, apparatus, and computer storage medium for HARQ feedback. [Means for solving the problem]
[0005] In a first aspect, a communication method is provided, the method including: determining, in a terminal device, a target cell from a set of cells configured for uplink control transmission for HARQ feedback for downlink data transmissions received in cells in a cell group; and transmitting, in the target cell, to a network device, an uplink control transmission for HARQ feedback for downlink data transmissions received on one of the cells in the cell group.
[0006] In a second aspect, a communication method is provided, the method including receiving, in a network device, from a terminal device, an uplink control transmission for HARQ feedback for a downlink data transmission transmitted on one of cells in a cell group, in a target cell determined from a cell set configured for uplink control transmission for HARQ feedback for a downlink data transmission received in a cell in the cell group.
[0007] In a third aspect, there is provided a terminal device, comprising a processor configured to execute the method according to the first aspect of the present disclosure.
[0008] In a fourth aspect, there is provided a network device, comprising a processor configured to perform a method according to the second aspect of the present disclosure.
[0009] In a fifth aspect, a computer readable medium is provided having instructions stored thereon that, when executed on at least one processor, cause the at least one processor to perform a method according to the first aspect of the present disclosure.
[0010] In a sixth aspect, a computer readable medium is provided having instructions stored thereon that, when executed on at least one processor, cause the at least one processor to perform a method according to the second aspect of the present disclosure.
[0011] Other features of the present disclosure will become readily apparent from the following description. [Brief description of the drawings]
[0012] The above and other objects, features and advantages of the present disclosure will become more apparent from the following detailed description of several embodiments of the present disclosure in the drawings.
[0013] [Figure 1] FIG. 1 illustrates an example communication network in which some embodiments of the present disclosure may be implemented.
[0014] [Figure 2A] FIG. 1 is a schematic diagram illustrating an example scenario for HARQ feedback according to a conventional solution;
[0015] [Figure 2B] FIG. 2 is a schematic diagram illustrating an example scenario of PUCCH carrier switching for HARQ feedback, according to an embodiment of the present disclosure.
[0016] [Diagram 3] 1 is a flowchart illustrating a communication process for HARQ feedback in accordance with an embodiment of the present disclosure.
[0017] [Figure 4A] FIG. 2 is a schematic diagram illustrating an example configuration for PUCCH carriers according to an embodiment of the present disclosure.
[0018] [Figure 4B] FIG. 2 is a schematic diagram illustrating another exemplary configuration of PUCCH carriers according to an embodiment of the present disclosure.
[0019] [Diagram 5] FIG. 2 is a schematic diagram illustrating an example of initiating PUCCH carrier switching according to an embodiment of the present disclosure.
[0020] [Figure 6A] FIG. 1 is a schematic diagram illustrating an example of determining a reference numerology according to an embodiment of the present disclosure.
[0021] [Figure 6B] FIG. 13 is a schematic diagram illustrating another example of determining a reference numerology according to an embodiment of the present disclosure.
[0022] [Figure 6C] FIG. 13 is a schematic diagram illustrating another example of determining a reference numerology according to an embodiment of the present disclosure.
[0023] [Figure 7] FIG. 2 is a schematic diagram illustrating an example of determining a target cell for HARQ feedback according to an embodiment of the present disclosure.
[0024] [Figure 8] FIG. 2 is a schematic diagram illustrating an example of transmitting HARQ feedback in a target cell according to an embodiment of the present disclosure.
[0025] [Figure 9A] FIG. 2 is a schematic diagram illustrating an example of determining a target cell for HARQ feedback based on iteration, according to an embodiment of the present disclosure.
[0026] [Figure 9B] FIG. 13 is a schematic diagram illustrating another example of determining a target cell for HARQ feedback based on iteration, according to an embodiment of the present disclosure.
[0027] [Figure 9C] FIG. 13 is a schematic diagram illustrating another example of determining a target cell for HARQ feedback based on iteration, according to an embodiment of the present disclosure.
[0028] [Figure 9D]FIG. 13 is a schematic diagram illustrating another example of determining a target cell for HARQ feedback based on iteration, according to an embodiment of the present disclosure.
[0029] [Figure 10A] 2 is a schematic diagram illustrating an example of determining a set of transmit power control (TPC) command values for independent power control according to an embodiment of the present disclosure.
[0030] [Figure 10B] FIG. 2 is a schematic diagram illustrating an example of determining a time window for joint power control, according to an embodiment of the present disclosure.
[0031] [Figure 11] FIG. 2 illustrates an exemplary communication method implemented in a terminal device according to some embodiments of the present disclosure.
[0032] [Figure 12] FIG. 2 illustrates an example communication method implemented in a network device, according to some embodiments of the present disclosure.
[0033] [Figure 13] FIG. 1 is a schematic block diagram of an apparatus suitable for implementing embodiments of the present disclosure.
[0034] In the drawings, the same or similar reference numbers represent the same or similar elements. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0035] The principles of the present disclosure will now be described with reference to some embodiments. It should be understood that these embodiments are provided for illustrative purposes only, to assist those skilled in the art in understanding and implementing the present disclosure, and do not imply any limitations on the scope of the present disclosure. The disclosure described herein can be implemented in various ways different from those described below.
[0036] In the following description and claims, unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure pertains.
[0037] As used herein, the term "terminal device" refers to any device having wireless or wired communication capabilities. Examples of terminal devices include, but are not limited to, user equipment (UE), personal computers, desktop computers, mobile phones, cellular phones, smartphones, personal digital assistants (PDAs), portable computers, tablets, wearable devices, Internet of Things (IoT) devices, any Internet of Things (IoE) devices, machine type communication (MTC) devices, in-vehicle devices for V2X communication, etc., where the "X" in V2X represents a pedestrian, vehicle, or infrastructure / network, or an image capture device such as a digital camera, a gaming device, a music storage and playback device, or an Internet appliance that allows wireless or wired Internet access and browsing, etc. The term "terminal device" can be used interchangeably with UE, mobile station, subscriber station, mobile terminal, user terminal, or wireless device. In addition, the term "network device" refers to a device that can provide or host a cell or coverage through which the terminal device can communicate. Examples of network devices include, but are not limited to, low power nodes such as a Node B (NodeB or NB), an evolved Node B (eNodeB or eNB), a next generation Node B (gNB), a transmit / receive point (TRP), a remote radio unit (RRU), a radio head (RH), a remote radio head (RRH), a femto node, and a pico node.
[0038] In one embodiment, the terminal device can connect to a first network device and a second network device. One of the first network device and the second network device may be a master node and the other may be a secondary node. The first network device and the second network device may use different radio access technologies (RATs). In one embodiment, the first network device may be a first RAT device and the second network device may be a second RAT device. In one embodiment, the first RAT device is an eNB and the second RAT device is a gNB. Information about the different RATs may be transmitted from at least one of the first network device or the second network device to the terminal device. In one embodiment, the first information may be transmitted from the first network device to the terminal device, and the second information may be transmitted from the second network device to the terminal device directly or via the first network device. In one embodiment, information about the configuration of the terminal device configured by the second network device may be transmitted from the second network device via the first network device. Information regarding the reconfiguration of the terminal device configured by the second network device may be transmitted from the second network device directly to the terminal device or via the first network device.
[0039] As used herein, the singular forms "a," "an," and "said" include the plural unless the context clearly indicates otherwise. The term "comprises" and variations thereof should be understood as open-ended terms meaning "including, but not limited to." The term "based on" should be understood as "based at least in part on." The terms "one embodiment" and "embodiment" should be understood as "at least one embodiment." The term "another embodiment" should be understood as "at least one other embodiment." Terms such as "first," "second," and the like can refer to different or the same object. The following may include other explicit and implicit definitions.
[0040] In some instances, values, procedures, or devices are referred to as "best," "lowest," "highest," "minimum," "maximum," etc. It will be understood that such descriptions are intended to illustrate that selections can be made from among many functional alternatives used, and that such selections are not necessarily better, smaller, higher, or otherwise more preferred than other selections.
[0041] As mentioned above, in order to reduce the delay of HARQ feedback for DL reconfiguration in unpaired spectrum, NR Release 17 proposes PUCCH carrier switching for HARQ feedback, which allows two or more UL carriers or cells with different TDD configurations for PUCCH transmission for HARQ feedback. However, it is necessary to consider how to realize PUCCH carrier switching, such as how to configure or define PUCCH resources for the one or more switched cells and the association between DL carriers for PDSCH reception and UL carriers for PUCCH transmission, how to indicate to the terminal device when and where to switch PUCCH transmission for HARQ feedback on another cell or UL carrier, or how to operate power control for PUCCH transmission when two or more UL carriers or cells are configured for PUCCH transmission.
[0042] In view of this, an embodiment of the present disclosure provides a solution for PUCCH carrier switching, in which for a group of cells provided by a network device to a terminal device, a cell set is configured for PUCCH transmission for HARQ feedback of downlink data transmission on cells in the cell group. The terminal device can perform PUCCH carrier switching within the cell set as needed. Thus, the delay for HARQ feedback can be reduced.
[0043] The embodiments of the present disclosure may be applied to any suitable scenario. For example, the embodiments of the present disclosure may be implemented in ultra-reliable low latency communications (URLLC). Alternatively, the embodiments of the present disclosure may be implemented in one of reduced capability NR devices, NR multiple input multiple output (MIMO), NR sidelink enhancements, NR systems at frequencies higher than 52.6 GHz, enhanced NR operation up to 71 GHz, narrowband Internet of Things (NB-IOT) / enhanced machine type communications (eMTC) over non-terrestrial based networks (NTN), NTN, UE power saving enhancements, NR coverage enhancements, NB-IOT and LTE-MTC, integrated access and backhaul (IAB), NR multicast and broadcast services, or enhanced multi-radio dual connectivity.
[0044] The principles and embodiments of the present disclosure will now be described in detail with reference to the accompanying drawings.
[0045] Communication Network Example 1 is a schematic diagram illustrating an example communication network 100 in which embodiments of the present disclosure may be implemented. As shown in FIG. 1, communication network 100 may include terminal devices 110 and network devices 120. In some embodiments, terminal devices 110 may be served by network devices 120. It should be understood that the number of devices in FIG. 1 is provided for illustrative purposes and does not imply any limitations to the present disclosure. Communication network 100 may include any suitable number of network devices and / or terminal devices suitable for implementing embodiments of the present disclosure.
[0046] As shown in FIG. 1, terminal device 110 may communicate with network device 120 via a channel, such as a wireless communication channel. Communications in communication network 100 may conform to any suitable standard, including, but not limited to, Global System for Mobile Communications (GSM), Long Term Evolution (LTE), LTE-Evolution, LTE-Advanced (LTE-A), Wideband Code Division Multiple Access (WCDMA), Code Division Multiple Access (CDMA), GSM EDGE Radio Access Network (GERAN), Machine Type Communications (MTC), and the like. Furthermore, communications may be performed according to any generation of communications protocols now known or developed in the future. Examples of communications protocols include, but are not limited to, first generation (1G), second generation (2G), 2.5G, 2.75G, third generation (3G), fourth generation (4G), 4.5G, and fifth generation (5G) communications protocols.
[0047] In some embodiments, the terminal device 110 may transmit uplink data information to the network device 120 via an uplink data channel transmission. For example, the uplink data channel transmission may be a Physical Uplink Shared Channel (PUSCH) transmission. Of course, any other suitable format is also possible.
[0048] In some embodiments, the terminal device 110 may transmit UCI, e.g., HARQ feedback information, to the network device 120 via an uplink control channel transmission. For example, the uplink control channel transmission may be a PUCCH transmission. Of course, any other suitable format is also possible.
[0049] In some embodiments, network device 120 may support multiple services with different priorities for terminal device 110, eMBB with a lower priority and URLLC with a higher priority, for example. Thus, terminal device 110 may perform respective uplink data and / or control channel transmissions for the different services. The uplink control channel transmissions may carry HARQ feedback for the different services, and the HARQ feedback may have different priorities corresponding to the different services.
[0050] In some embodiments, the network device 120 may provide the terminal device 110 with multiple serving cells (not shown herein), such as a primary cell (Pcell), a primary secondary cell (PScell), a secondary cell (Sell), a special cell (sPCell), etc. Each of the serving cells may correspond to a CC. The terminal device 110 may transmit with the network device 120 via a CC. Of course, the terminal device 110 may transmit with the network device 120 via multiple CCs, for example in the case of CA.
[0051] In some scenarios, a cell group is provided by the network device 120 to the terminal device 110. According to the conventional solution, only one cell in the cell group is configured to have a UL carrier for PUCCH transmission for HARQ-ACK of PDSCH reception on all cells in the cell group. Figure 2A is a schematic diagram 200A showing an example scenario for HARQ feedback according to the conventional solution. In this example, the cell group provided by the network device to the terminal device includes CC#1 and CC#2, and CC#1 as a Pcell is configured for PUCCH transmission for HARQ feedback for the cell group.
[0052] As shown in FIG. 2A, DCI 201 may indicate that HARQ feedback for PDSCH 202 is transmitted on CC#1 by PUCCH 205, e.g., with HARQ-ACK timing value K1=2. DCI 203 may indicate that HARQ feedback for PDSCH 204 is also transmitted on PUCCH 205, e.g., with HARQ-ACK timing value K1=1. DCI 206 may indicate that HARQ feedback for PDSCH 207 is transmitted on PUCCH 208 on CC#1, e.g., with HARQ-ACK timing value K1=4. However, there is a UL slot on CC#2 that can be used for PUCCH 209 before PUCCH 208 on CC#1. According to the conventional solution, HARQ feedback for PDSCH 207 cannot be scheduled to be transmitted on PUCCH 209, since only CC#1 is configured for PUCCH transmission for the cell group.
[0053] According to an embodiment of the present disclosure, the PUCCH for HARQ feedback can be transmitted in a cell in a cell group that has an early available UL symbol. Figure 2B is a schematic diagram 200B illustrating an example scenario of PUCCH carrier switching for HARQ feedback according to an embodiment of the present disclosure. In this example, the cell group provided by the network device 120 to the terminal device 110 may include CC#1 and CC#2, and CC#1 as a Pcell is configured for HARQ feedback for the cell group. It should be understood that this is just one example and any other suitable number of CCs is also possible.
[0054] As shown in FIG. 2B, DCI 211 may indicate that HARQ feedback for PDSCH 212 is transmitted on an available early PUCCH 215 on CC#1, e.g., with HARQ-ACK timing value K1=2. DCI 213 may indicate that HARQ feedback for PDSCH 214 is also transmitted on an early PUCCH 215 available for PDSCH 214, e.g., with HARQ-ACK timing value K1=1. DCI 216 may indicate that HARQ feedback for PDSCH 217 is transmitted on an early PUCCH 218 on CC#2, e.g., with HARQ-ACK timing value K1=1. In this way, a lower HARQ feedback delay can be achieved, as will be described in detail below with reference to FIG. 3.
[0055] Implementation example of HARQ feedback with PUCCH carrier switching 3 is a flow chart illustrating a communication process 300 for HARQ feedback according to an embodiment of the present disclosure. For illustrative purposes, the process 300 will be described with reference to FIG 1. The process 300 may involve a terminal device 110 and a network device 120 as shown in FIG 1.
[0056] As shown in FIG. 3, the network device 120 transmits to the terminal device 110 a configuration for a cell set for uplink control transmission (e.g., PUCCH transmission) for HARQ feedback for downlink data transmission (e.g., PDSCH transmission) on cells in a cell group (310). In some embodiments, the cell set includes a plurality of cells provided by the network device 120 to the terminal device 110. In some embodiments, the cell set is selected from a plurality of cells in the cell group. In some embodiments, a cell different from the cells in the cell group may be configured in the cell set.
[0057] In some embodiments, the network device 120 may send an indication indicating a PUCCH carrier switch (320). The terminal device 110 may then determine a target cell based on the indication. The target cell is configured for PUCCH transmission for HARQ feedback for PDSCH transmission on cells in the cell group. Some exemplary embodiments of the configuration and indication are described in relation to embodiment 1 and embodiment 2. In the following description, a PUCCH cell refers to a cell configured for PUCCH transmission. EMBODIMENT 1
[0058] In this embodiment, a cell set may include multiple cells associated with the same cell group, which will be described in relation to FIG. 4A. FIG. 4A is a schematic diagram 400A illustrating an example configuration of PUCCH carriers according to an embodiment of the present disclosure. As shown in FIG. 4A, a terminal device 110 is provided with a cell group 401 including CC#1, CC#2, CC#3, and CC#4, and a cell set 402 including CC#1 and CC#4 is configured for HARQ feedback for the cell group 401. Note that the number of cells in a cell group is not limiting and is merely for illustrative purposes.
[0059] In some embodiments, the network device 120 may send to the terminal device 110 a configuration for each cell in the cell set 402. For example, the network device 120 may configure PUCCH-Config parameters for UL carriers in the cell set 402 individually.
[0060] In some alternative embodiments, the network device 120 may send to the terminal device 110 a configuration including a first part common to all cells in the cell set 402 and a second part dedicated to each cell in the cell set 402. For example, the network device 120 may configure some common PUCCH related parameters, such as PUCCH resource set, PUCCH format configuration, dl-DataToUL-ACK, etc., in the PUCCH-Config parameters for the UL carriers in the cell set 402. Additionally, the network device 120 may configure some individual PUCCH related parameters, such as PUCCH-PowerControl, in the PUCCH-Config parameters for the UL carriers in the cell set 402.
[0061] In some embodiments, the network device 120 may transmit an indication indicating a cell in the cell set as a target cell for PUCCH transmission. In other words, the indication may indicate a PUCCH carrier switch. For example, the network device 120 may transmit the indication via RRC signaling or DCI indication. As another example, the network device 120 may transmit the indication via a medium access control control element (MAC CE). Of course, any other suitable manner is also possible.
[0062] This allows for configuration flexibility and less Radio Resource Control (RRC) overhead. EMBODIMENT 2
[0063] In this embodiment, the cell group may include a first subgroup of cells and a second subgroup of cells, and the cell set may include a first PUCCH cell associated with the first subgroup of cells and a second PUCCH cell associated with the second subgroup of cells. In some embodiments, the network device 120 may transmit an indication to the terminal device 110 indicating that a third cell in the first subgroup of cells is switched to be associated with the second PUCCH cell. For example, the network device 120 may transmit this indication via a DCI indication. As another example, the network device 120 may transmit this indication via a MAC CE. Of course, any other suitable manner is also possible. In this case, the terminal device 110 may determine the second PUCCH cell as a target cell for PUCCH transmission for HARQ feedback for downlink data transmission received from the third cell.
[0064] In other words, in this embodiment, a cell set may include multiple PUCCH cells associated with multiple cell groups, and each of the multiple cell groups may be switched among the multiple cells. This will be described in relation to FIG. 4B. FIG. 4B is a schematic diagram 400B illustrating an example configuration of PUCCH carriers according to an embodiment of the present disclosure. As shown in FIG. 4B, the terminal device 110 is provided with a cell group 403 including CC#1, CC#2, and CC#3, and a cell group 404 including CC#4, CC#5, and CC#6. In this embodiment, only one PUCCH cell is configured for each of the cell groups 403 and 404. For example, as shown in FIG. 4B, CC#1 is associated with the cell group 403, and CC#4 is associated with the cell group 404. Note that the number of cells in a cell group and the number of cell groups are not limiting and are merely for illustrative purposes.
[0065] In some embodiments, the network device 120 may transmit a configuration for each cell group to the terminal device 110. For example, the network device 120 may configure the PUCCH-Config parameters for each cell group separately.
[0066] In some embodiments, as shown by the dashed line in Figure 4B, the network device 120 may transmit an indication indicating that a cell (e.g., CC#1) in the cell group 403 is switched to be associated with CC#4. In this case, the terminal device 110 may determine CC#4 as a target cell for HARQ feedback for downlink data received from CC#1. Note that the number of cells in a cell group and the number of cell groups are not limiting and are merely for illustration purposes.
[0067] This may reduce the impact on 3GPP specifications, but may increase RRC overhead.
[0068] Returning to FIG. 3, upon receiving an indication of a PUCCH carrier switch, terminal device 110 may perform a PUCCH carrier switch based on the indication (330). In some embodiments, terminal device 110 may determine slot k+N, where k (see Pcell numerology) represents an index of a slot for a PUCCH transmission for HARQ feedback of a PDSCH transmission that includes the indication, and N represents a processing time for HARQ feedback in network device 120. Terminal device 110 may then transmit a PUCCH transmission for HARQ feedback for a PDSCH transmission that begins after slot k+N in the target cell.
[0069] TIFF0007679882000001.tif53168
[0070] 5 is a schematic diagram 500 illustrating an example of initiating a PUCCH carrier switching according to an embodiment of the present disclosure. As shown in FIG. 5, a cell group includes CC#1 and CC#2. DCI 501 may indicate that HARQ feedback for PDSCH 502 is transmitted by PUCCH 503 on CC#1, e.g., with HARQ-ACK timing value K1=2. Assume that PDSCH 502 in slot k-2 includes a MAC CE indicating the PDCCH carrier to switch from CC#1 to CC#2.
[0071] In this case, the terminal device 110 may determine slot k+N and transmit a PUCCH transmission in CC#2 for HARQ feedback for a PDSCH transmission starting after slot k+N. For example, DCI 504 may indicate that HARQ feedback for PDSCH 505 is transmitted by PUCCH 506 on CC#2, e.g., with HARQ-ACK timing value K1=1. It should be noted that this is just one example and any other suitable occasion for PUCCH carrier switching is also possible.
[0072] In this way, communication is reliable and it can be ensured that the terminal device 110 and the network device 120 have the same understanding of when or which carrier the terminal device 110 uses to transmit a PUCCH for HARQ feedback, especially when using more than two cells or carriers for PUCCH transmission, and that the network device 120 does not need to perform blind decoding for PDCCH miss detection.
[0073] So far, the determination of a target cell based on an instruction from the network side has been described. Hereinafter, the determination of a target cell for PUCCH transmission from a cell set based on a predefined rule will be described.
[0074] Referring to FIG. 3, the terminal device 110 may determine a reference numerology from a numerology corresponding to a cell group for PUCCH transmission (340). Based on a timing value (also referred to herein as a HARQ-ACK timing value) indicated by the DCI or configured by the RRC and the reference numerology, the terminal device 110 may determine a reference slot for transmitting HARQ feedback (350). Then, the terminal device 110 may determine a target cell from a cell set within the reference slot (360). This will be described below in relation to the third to fifth embodiments. EMBODIMENT 3
[0075] In this embodiment, the reference numerology is determined from the numerology corresponding to the cell set. Thus, the reference slot may be determined accordingly. In some embodiments, the terminal device 110 may determine one of the numerologies associated with the largest subcarrier spacing (SCS) as the reference numerology. FIG. 6A is a schematic diagram 600A illustrating an example of determining a reference numerology according to an embodiment of the present disclosure.
[0076] As shown in FIG. 6A, the cell group includes CC#0, CC#1, CC#2, and CC#3 with priority from high to low. For CC#0, μ=1, SCS=30KHz, where μ represents the index of the numerology, also called subcarrier spacing setting. For CC#1, μ=0, SCS=15KHz. For CC#2, μ=1, SCS=30KHz. For CC#3, μ=2, SCS=60KHz. In this case, the numerology of CC#3 with the largest SCS may be determined as the reference numerology. For example, DCI 601 schedules PDSCH 602 and indicates HARQ-ACK timing value K1=3. According to the reference numerology of CC#3, the HARQ feedback for PDSCH 602 will be transmitted in the reference slot 603.
[0077] In some alternative embodiments, the terminal device 110 may determine one of the numerologies associated with the reference cell having the highest priority in the cell set. Figure 6B is a schematic diagram 600B illustrating another example of determining a reference numerology according to an embodiment of the present disclosure.
[0078] As shown in FIG. 6B, the cell group includes CC#0, CC#1, CC#2, and CC#3 with priority from high to low. For CC#0, μ=1, SCS=30KHz, where μ represents the index of the numerology. For CC#1, μ=0, SCS=15KHz. For CC#2, μ=1, SCS=30KHz. For CC#3, μ=2, SCS=60KHz. In this case, the numerology of CC#0 with the highest priority may be determined as the reference numerology. For example, DCI 611 schedules PDSCH 612 and indicates HARQ-ACK timing value K1=2. According to the reference numerology of CC#0, the HARQ feedback for PDSCH 612 will be transmitted in the reference slot 613.
[0079] In some alternative embodiments, a set of cells is configured to have the same numerology. In these embodiments, the terminal device 110 may determine the numerology configured for the cells in the set of cells. FIG. 6C is a schematic diagram 600C illustrating another example of determining a reference numerology according to an embodiment of the present disclosure.
[0080] As shown in FIG. 6C, the cell group includes CC#0 and CC#1 with priority from high to low. For CC#0, μ=1, SCS=30KHz, where μ represents the index of the numerology. For CC#1, μ=1, SCS=30KHz. In this case, the numerology of CC#0 with the highest priority may be determined as the reference numerology. For example, DCI 621 schedules PDSCH 622 and indicates HARQ-ACK timing value K1=2. According to the reference numerology of CC#0, the HARQ feedback for PDSCH 622 will be transmitted in the reference slot 623.
[0081] Upon determining the reference slot, the terminal device 110 may determine a target cell from a cell set for PUCCH transmission in the reference slot. In some embodiments, the terminal device 110 may determine a cell with the highest priority among available cells to transmit a PUCCH for HARQ feedback. An available cell may refer to a cell that has enough valid symbols (UL symbols or flexible symbols not configured for DL reception) in the reference slot to accommodate a PUCCH resource for HARQ feedback transmission. Some exemplary embodiments for determining a target cell are described in relation to embodiment 4 and embodiment 5. EMBODIMENT 4
[0082] In this embodiment, the reference numerology is associated with a reference cell with the highest priority in the cell set. One or more of the reference cells may have a different numerology setting than the reference cell. In some embodiments, the terminal device 110 may determine one or more available cells from the cell set based on the TDD settings and PUCCH resource allocations of the cells in the cell set.
[0083] In some embodiments, if the numerology index (μ) of a candidate cell in the PUCCH cell set is greater than the reference numerology index (μ_ref) of the reference cell, the candidate cell has a number of slots corresponding to the reference slot. In this case, the terminal device 110 may determine whether a first slot of the number of slots has enough valid symbols to accommodate an uplink control transmission. If the first slot has enough valid symbols to accommodate an uplink control transmission, the terminal device 110 may determine the candidate cell as an available cell. An example is described with reference to FIG. 7.
[0084] FIG. 7 is a schematic diagram 700 illustrating an example of determining a target cell for PUCCH transmission for HARQ feedback according to an embodiment of the present disclosure. As shown in FIG. 7, a cell group includes CC#0, CC#1, and CC#2 with priorities from high to low. For CC#0, μ=1, SCS=30KHz, where μ represents the index of the numerology. For CC#1, μ=1, SCS=30KHz. For CC#2, μ=2, SCS=60KHz. In this example, the numerology of CC#0 with the highest priority is determined as the reference numerology. For example, DCI 701 schedules PDSCH 702 and indicates HARQ-ACK timing value K1=2. According to the reference numerology of CC#0, the HARQ feedback for PDSCH 702 will be transmitted in the reference slot 703.
[0085] The reference slot 703 corresponds to slot 704 on CC#1 and corresponds to two slots 705, 706 on CC#2. Assuming that slot 703 of CC#0 and slot 704 of CC#1 are DL slots, the candidate cells CC#0 and CC#1 are determined to be unavailable cells for PUCCH transmission. In some embodiments, if slot 705 of CC#2 has enough available symbols to accommodate a PUCCH for PDSCH 702, terminal device 110 may determine CC#2 as an available cell. In some embodiments, if slot 705 is an UL slot with enough available symbols to accommodate a PUCCH for PDSCH 702, as indicated by TDD configuration 710 for slots 705 and 706, terminal device 110 may determine CC#2 is available as a target cell. If slot 705 is a DL slot, terminal device 110 may determine CC#2 as an unavailable cell. Of course, the TDD configuration 710 is not limiting and is merely for illustration purposes.
[0086] TIFF0007679882000002.tif194168
[0087] In some alternative embodiments, if the numerology index (μ) of a candidate cell in the cell set is greater than the reference numerology index (μ_ref) and the candidate cell has multiple slots corresponding to the reference slot, the terminal device 110 may determine whether there is a slot among the multiple slots that is configured to have enough valid symbols to accommodate an uplink control transmission. If there is a slot among the multiple slots that accommodates an uplink control transmission, the terminal device 110 may determine the candidate cell as an available cell. For example, if an available cell having multiple slots with valid symbols for PUCCH transmission is determined as the target cell, the terminal device 110 may transmit PUCCH on the earliest slot of the multiple slots.
[0088] 7, if any one of slots 705 and 706 has enough valid symbols to accommodate a PUCCH for PDSCH 702, terminal device 110 may determine CC#2 as an available cell. For example, as shown by TDD configuration 720 for slots 705 and 706, if any one of slots 705 and 706 is a UL slot that has enough valid symbols to accommodate a PUCCH for PDSCH 702, terminal device 110 may determine CC#2 is available for PUCCH transmission. If slots 705 and 706 are DL slots, terminal device 110 may determine CC#2 is unavailable for PUCCH transmission. Of course, TDD configuration 720 is not limiting and is for illustrative purposes only.
[0089] TIFF0007679882000003.tif254168
[0090] In some embodiments, if the index (μ) of the numerology of the target cell is smaller than the index (μ_ref) of the reference numerology, only a part of the slots in the target cell corresponds to the reference slots in the reference cell. In this case, the terminal device 110 does not expect the PUCCH resource for HARQ feedback for a first downlink data transmission on the target cell to overlap with another PUCCH resource for HARQ feedback for a second downlink data transmission on the reference cell that is scheduled after the first downlink data transmission; in other words, the terminal device 110 can consider this situation as an error.
[0091] In some alternative embodiments, when μ<μ_ref and only a portion of the slots in the target cell correspond to the reference slots in the reference cell, the terminal device 110 may determine whether a first uplink control transmission on the target cell overlaps with a second uplink control transmission on the reference cell. If the first uplink control transmission overlaps with the second uplink control transmission, the terminal device 110 may cancel the first uplink control transmission. Alternatively, the terminal device 110 may determine multiplexed HARQ feedback information by multiplexing the first HARQ feedback information in the first uplink control transmission with the second HARQ feedback information in the second uplink control transmission, and transmit the multiplexed HARQ feedback information in the reference cell. An example is described below with reference to FIG. 8.
[0092] FIG. 8 is a schematic diagram 800 illustrating an example of transmitting HARQ feedback in a target cell according to an embodiment of the present disclosure. As shown in FIG. 8, a cell group includes CC#0 and CC#1 with priorities from high to low. For CC#0, μ=1, SCS=30KHz. For CC#1, μ=0, SCS=15KHz. In this example, the numerology of CC#0 with the highest priority is determined as the reference numerology. For example, assume that for PDSCH 801, HARQ-ACK timing value K1=2 is indicated by DCI. According to the reference numerology of CC#0, the reference slot is determined as slot 802. Because slot 802 is a DL slot and is unavailable for transmitting PUCCH for PDSCH 801, the terminal device 110 may switch the PUCCH carrier for PDSCH 801 to CC#1. In this case, PUCCH 805 for PDSCH 801 may be transmitted in UL slot 820 on CC#1. However, there is a PDSCH 803 after PDSCH 801, and the HARQ feedback for PDSCH 803 is scheduled to be transmitted by PUCCH 804 in UL slot 810 on CC#0. UL slot 810 corresponds to a portion of UL slot 820. In this case, PUCCH 804 and PUCCH 805 will overlap each other in the time domain.
[0093] In some embodiments, if the PUCCH 805 for HARQ feedback for PDSCH 801 on the target cell (CC#1) overlaps with the PUCCH 804 for HARQ feedback for PDSCH 803 on the reference cell (CC#0) scheduled after PDSCH 801, the terminal device 110 may determine that an error has occurred. In some alternative embodiments, the terminal device 110 may cancel the PUCCH 805. Alternatively, the terminal device 110 may multiplex the HARQ feedback information in the PUCCH 805 onto the PUCCH 804, cancel the PUCCH 805, and transmit the PUCCH 804 on CC#0. It should be understood that this example is merely for illustration and not for limitation. EMBODIMENT 5
[0094] In this embodiment, the terminal device 110 may determine a target cell from a cell set for uplink control transmission configured to have repetition based on the number of repetitions. In some embodiments, the terminal device 110 may determine one or more available cells (also referred to herein as an available cell set) from a cell set for uplink control transmission configured to have repetition based on the number of repetitions. The terminal device 110 may then determine an available cell with the highest priority as a target cell for PUCCH transmission. In some embodiments, the reference numerology is also associated with a reference cell with the highest priority in the cell set. In some embodiments, the reference numerology is a numerology associated with the largest SCS among the SCS settings of cells in the cell set.
[0095] In some embodiments, the terminal device 110 may determine as the target cell the cell with the highest priority in the available cell set that accommodates all repetitions of an uplink control transmission (e.g., a PUCCH transmission for HARQ feedback). Figure 9A is a schematic diagram 900A illustrating an example of determining a target cell for HARQ feedback based on repetitions, according to an embodiment of the present disclosure. In this example, the number of repetitions for a PUCCH transmission is 4.
[0096] As shown in FIG. 9A, DCI 901 schedules HARQ feedback for PDSCH 902 with HARQ-ACK timing value K1=2. According to the reference numerology of CC#1, the reference slot is determined as slot 903. Since slot 903 is a DL slot and is unavailable for PUCCH repetition transmission, the terminal device 110 may determine whether CC#2 with the second highest priority is available. In this example, CC#2 is determined as the target cell because it has consecutive UL slots 904 to 907 that accommodate all repetitions of PUCCH transmission. It should be understood that this example is merely for illustration and not for limitation. In this way, repetitions of PUCCH transmission for HARQ feedback can be guaranteed.
[0097] In some embodiments, the terminal device 110 may determine as the target cell a cell with the highest priority in the available cell set that accommodates an early repetition of an uplink control transmission (e.g., a PUCCH transmission for HARQ feedback). Figure 9B is a schematic diagram 900B illustrating an example of determining a target cell for HARQ feedback based on repetition, according to an embodiment of the present disclosure. In this example, the number of repetitions for PUCCH transmission is 4.
[0098] As shown in FIG. 9B, DCI 911 schedules HARQ feedback for PDSCH 912 with HARQ-ACK timing value K1=2. According to the reference numerology of CC#1, the reference slot is determined as slot 913. In slot 913, CC#1 and CC#2 are set as DL slots, and CC#3 is set as UL slot. That is, the earliest UL slot 914 is included on CC#3. Therefore, the terminal device 110 may determine CC#3 as the target cell and transmit repetitions for PUCCH transmission on available slots 914 and 916, and may not transmit repetitions on unavailable slots 915 and 917. It should be understood that this example is merely for illustration and not for limitation. In this way, low delay for HARQ feedback can be promoted.
[0099] In some embodiments, the terminal device 110 may determine as the target cell a cell with the highest priority in the available cell set that accommodates the maximum number of repetitions of uplink control transmission (e.g., PUCCH transmission for HARQ feedback) among the number of repetitions of uplink control transmission in the cell set. Figure 9C is a schematic diagram 900C illustrating an example of determining a target cell for HARQ feedback based on repetitions according to an embodiment of the present disclosure. In this example, the number of repetitions for PUCCH transmission is 4.
[0100] As shown in FIG. 9C, DCI 921 schedules HARQ feedback for PDSCH 922 with HARQ-ACK timing value K1=2. According to the reference numerology of CC#1, the reference slot is determined as slot 923. With respect to the reference slot, CC#1 provides one UL slot 924 available for repetition, CC#2 provides three UL slots 925-927 available for repetition, and CC#3 provides two UL slots 928 and 929 available for repetition. Thus, the terminal device 110 may determine CC#2 with the maximum number of repetitions as the target cell and transmit repetitions for PUCCH transmission on the available slots 925-927. It should be understood that this example is merely for illustration and not for limitation. This can ensure the reliability of HARQ feedback.
[0101] In some embodiments, the terminal device 110 may determine as the target cell a cell with the highest priority in the available cell set that accommodates at least one repetition of an uplink control transmission (e.g., a PUCCH transmission for HARQ feedback). Figure 9D is a schematic diagram 900D illustrating an example of determining a target cell for HARQ feedback based on repetition, according to an embodiment of the present disclosure. In this example, the number of repetitions for PUCCH transmission is 4.
[0102] As shown in FIG. 9D, DCI 931 schedules HARQ feedback for PDSCH 932 with HARQ-ACK timing value K1=2. According to the reference numerology of CC#1, the reference slot is determined as slot 933. With respect to the reference slot, CC#1 provides one UL slot 934 available for repetition. Thus, the terminal device 110 may determine CC#1 as the target cell. It should be understood that this example is merely for illustration and not for limitation. In this way, the impact on the 3GPP specification can be reduced.
[0103] Returning to FIG. 3, after determining the target cell, the terminal device 110 may transmit PUCCH transmission for HARQ feedback to the network device 120 in the cell set with independent power control or joint power control (370). In some embodiments, which PUCCH power control scheme to apply to the PUCCH transmission opportunity may be configured by RRC signaling. Of course, the PUCCH power control scheme may be predefined. Some exemplary embodiments of the PUCCH power control scheme are described below in conjunction with embodiment 6 and embodiment 7. EMBODIMENT 6
[0104] In some embodiments, if dedicated power control is configured for PUCCH transmissions on the set of cells, the terminal device 110 may determine a set of TPC command values received for PUCCH transmissions on the target cell within a time window. In some embodiments, the time window may be determined based on a current PUCCH transmission opportunity and a previous PUCCH transmission opportunity on the target cell. The terminal device 110 may then determine a transmit power for PUCCH transmissions on the target cell by accumulating a set of TPC command values received within the time window based on the transmit power of the previous PUCCH transmission opportunity. In this way, the PUCCH transmission may be transmitted based on the determined transmit power, thereby ensuring the reliability of the PUCCH transmission. This will be described in more detail with reference to FIG. 10A.
[0105] FIG. 10A is a schematic diagram 1000A illustrating an example of determining a set of TPC command values for independent power control according to an embodiment of the present disclosure. In this example of FIG. 10A, for a cell group including CC#1 and CC#2, CC#1 as a Pcell with a higher priority is configured for PUCCH transmission for HARQ feedback. That is, CC#1 is a target cell (i.e., PUCCH cell) for PUCCH transmission 1007 and PUCCH transmission 1014, and CC#2 is a target cell for PUCCH transmission 1004 and PUCCH transmission 1011.
[0106] 10A, PUCCH transmission for HARQ feedback for PDSCH 1002 scheduled by DCI 1001 is switched from unavailable PUCCH opportunity 1003 on CC#1 to available PUCCH opportunity 1004 on CC#2 based on DCI 1001. HARQ feedback for PDSCH 1006 scheduled by DCI 1005 is transmitted by PUCCH 1007 on CC#1. PUCCH transmission for HARQ feedback for PDSCH 1009 scheduled by DCI 1008 is switched from unavailable PUCCH opportunity 1010 on CC#1 to available PUCCH opportunity 1011 on CC#2 based on DCI 1008. HARQ feedback for PDSCH 1013 scheduled by DCI 1012 is transmitted by PUCCH 1014 on CC#1.
[0107] Assume that PUCCH 1011 is the current PUCCH transmission. In this case, the PUCCH cell is switched to CC#2, and PUCCH 1004 is the previous PUCCH transmission opportunity on the switched PUCCH cell (i.e., CC#2). In this example, the terminal device 110 may determine a time window (i.e., time window 1 shown in FIG. 10A) based on the end of DCI 1008 associated with the current PUCCH transmission (i.e., PUCCH 1011) and the end of DCI 1001 associated with the previous uplink control transmission (i.e., PUCCH 1004). DCI 1001 precedes DCI 1008.
[0108] As another example, assume that PUCCH 1014 is the current PUCCH transmission. In this case, the PUCCH cell is CC#1, and PUCCH 1007 is the previous PUCCH transmission opportunity on the PUCCH cell (i.e., CC#1). In this example, the terminal device 110 may determine a time window (i.e., time window 2 shown in FIG. 10A) based on the end of DCI 1012 associated with the current PUCCH transmission (i.e., PUCCH 1014) and the end of DCI 1005 associated with the previous uplink control transmission (i.e., PUCCH 1007). DCI 1005 precedes DCI 1012.
[0109] In some embodiments, upon determining the time window, the terminal device 110 may incorporate TPC command values in the DCI for PUCCH transmissions on the target cell within the time window into a TPC command value set. In some embodiments, the DCI may be a DCI specific to the terminal device 110 (also referred to herein as a UE-specific DCI), e.g., having DCI format 1_0 or 1_1. In some embodiments, the DCI may be a DCI common to a group of UEs (also referred to herein as a group-common DCI), e.g., having DCI format 2_2.
[0110] In some embodiments where the DCI is a terminal device 110-specific DCI (also referred to herein as a UE-specific DCI), the terminal device 110 may incorporate the TPC command values in the UE-specific DCI that schedules the PUCCH on the target cell into the set of TPC command values. For example, in time window 1 of FIG. 10A, DCI 1008 is a UE-specific DCI for PUCCH transmission 1011 on switched-to PUCCH cell CC#2, and DCI 1012 is a UE-specific DCI for PUCCH transmission 1014 on CC#1, such that the TPC command values in DCI 1008 are incorporated into the set of TPC command values for PUCCH 1011. As another example, in time window 2 of FIG. 10A, DCI 1012 is a UE-specific DCI for PUCCH transmission 1014 on PUCCH cell CC#1, such that the TPC command values in DCI 1012 are incorporated into the set of TPC command values for PUCCH 1014.
[0111] As can be seen from FIG. 10A, the group-common DCI 1015 is included in both time window 1 and time window 2. In this case, it is necessary to consider how to apply the TPC command values to the group-common DCI 1015. According to an embodiment of the present disclosure, a solution is proposed for applying the TPC command values to the group-common DCI. In some embodiments, the group-common DCI may be used for PUCCH transmission on the cell with the highest priority in the cell set. For example, in the example of FIG. 10A, the DCI 1015 is a group-common DCI received on CC#2 and can be used for PUCCH 1014 on CC#1 with the highest priority. Therefore, the TPC command values in the DCI 1015 are taken into the set of TPC command values for the PUCCH 1014.
[0112] In some alternative embodiments, the group-common DCI may be used for the PUCCH transmission opportunity that is closest to the group-common DCI. For example, in the example of Figure 10A, DCI 1015 is the group-common DCI received on CC#2, and PUCCH 1011 is closest to DCI 1015. Thus, the TPC command values in DCI 1015 are incorporated into the set of TPC command values for PUCCH 1011.
[0113] In some alternative embodiments, the mapping relationship between the group-common DCI and the cell set for PUCCH transmission may be configured in the terminal device 110 by the network device 120, for example, via RRC signaling or any other suitable method. As an example, the group-common DCI received on the Pcell may be used for PUCCH transmission on the Pcell. As another example, the group-common DCI received on the Scell may be used for PUCCH transmission on the switched Scell. For example, in the example of FIG. 10A, DCI 1015 is a group-common DCI received on CC#2. Thus, the TPC command values in DCI 1015 are incorporated into the set of TPC command values for PUCCH 1011 on CC#2. It should be understood that this is just an example and any other suitable method is also possible.
[0114] In some alternative embodiments, the TPC command bit field in the group-common DCI may be extended to be used for power control of PUCCH transmission on a set of cells. In other words, a set of common DCIs carries multiple TPC command values for PUCCH transmission on multiple cells. For example, if two cells, namely PCell and SCell, are configured for PUCCH transmission, the first two bits in the TPC command bit field may be used for PUCCH transmission on the PCell and the second two bits may be used for PUCCH transmission on the switched SCell. For example, in the example of FIG. 10A, DCI 1015 is a group-common DCI received on CC#2, the first two bits in the TPC command bit field of DCI 1015 are used for PUCCH transmission on CC#1, and the second two bits in the TPC command bit field of DCI 1015 are used for PUCCH transmission on CC#2. Thus, the first two bits in the TPC command bit field of DCI 1015 are taken into the TPC command value set for PUCCH 1015, and the second two bits in the TPC command bit field of DCI 1015 are taken into the TPC command value set for PUCCH 1011. It should be understood that this is just one example and that any other suitable manner is also possible.
[0115] So far, separate power control has been described for PUCCH transmission for HARQ feedback. The embodiments of the present disclosure also provide a joint power control solution for PUCCH transmission for HARQ feedback, which will be described in relation to embodiment 7. EMBODIMENT 7
[0116] In some embodiments, when joint power control is configured for PUCCH transmissions on the set of cells, the terminal device 110 may determine the time window based on the end of a first downlink control information associated with a current uplink control transmission and the end of a second downlink control information associated with a previous uplink control transmission, which is an uplink control transmission earlier than the current uplink control transmission. In other words, the time window for TPC command accumulation must satisfy the time interval between the end of PDCCH reception k associated with the current PUCCH transmission opportunity i and the end symbol of PDCCH reception k′ associated with the last PUCCH transmission opportunity i′ earlier than the PUCCH transmission opportunity i, and at the same time, PDCCH reception k′ is earlier than PDCCH reception k. In some embodiments, the PUCCH transmission opportunity i and the PUCCH transmission opportunity i′ correspond to the same cell. In some alternative embodiments, the PUCCH transmission opportunity i and the PUCCH transmission opportunity i′ correspond to different cells.
[0117] This will be described in detail with reference to Figure 10B. Figure 10B is a schematic diagram 1000B illustrating an example of determining a set of TPC command values for joint power control according to an embodiment of the present disclosure. In this example of Figure 10B, for a cell group including CC#1 and CC#2, CC#1 as a Pcell with higher priority is configured for PUCCH transmission for HARQ feedback. That is, CC#1 is the target cell.
[0118] 10B, HARQ feedback for PDSCH 1022 scheduled by DCI 1021 is transmitted by PUCCH 1023 on CC#1. In this example, PUCCH transmission for HARQ feedback for PDSCH 1025 scheduled by DCI 1024 is switched from unavailable PUCCH opportunity 1026 on CC#1 to available PUCCH opportunity 1027 on CC#2 based on DCI 1024. HARQ feedback for PDSCH 1030 scheduled by DCI 1029 is transmitted by PUCCH 1031 on CC#1.
[0119] In one example, assume that PUCCH 1031 scheduled by DCI 1029 is the current PUCCH transmission. In this case, PUCCH 1027 scheduled by DCI 1024 is the previous PUCCH transmission in the cell group. Thus, the terminal device 110 may determine a time window (i.e., time window #2 shown in FIG. 10B) based on the end of DCI 1029 associated with the current PUCCH transmission (i.e., PUCCH 1031) and the end of DCI 1024 associated with the previous uplink control transmission (i.e., PUCCH 1027).
[0120] In another example, assume that PUCCH 1027 scheduled by DCI 1024 is the current PUCCH transmission. In this case, PUCCH 1023 scheduled by DCI 1021 is the previous PUCCH transmission in the cell group. Thus, the terminal device 110 may determine a time window (i.e., time window #1 shown in FIG. 10B) based on the end of DCI 1024 associated with the current PUCCH transmission (i.e., PUCCH 1027) and the end of DCI 1021 associated with the previous uplink control transmission (i.e., PUCCH 1023).
[0121] Upon determining the time window, the terminal device 110 may determine a set of TPC command values for cells in the cell set within the time window. In this case, all TPC command values in the DCI received on the cell set within the window are accumulated. In some embodiments where the DCI is a UE-specific DCI, the terminal device 110 may incorporate the TPC command values in the UE-specific DCI into the set of TPC command values. For example, in the example of FIG. 10A for time window #2, DCI 1029 is a UE-specific DCI for PUCCH transmission on the target cell and is incorporated into the set of TPC command values.
[0122] In some embodiments where the DCI is a group-common DCI, the terminal device 110 may incorporate the TPC command values in the group-common DCI into the set of TPC command values. In this embodiment, the solution of applying TPC commands to the group-common DCI described in embodiment 6 may be applied. For example, in the example of FIG. 10B for time window #2, DCI 1028 is a group-common DCI received on CC#2. Assume that the group-common DCI is predefined or configured to be used for PUCCH transmission on the cell with the highest priority. In this case, the TPC command values in DCI 1028 are also incorporated into the set of TPC command values for time window #2.
[0123] Then, the terminal device 110 may determine a transmit power for PUCCH transmission on the target cell by accumulating a set of TPC command values within a time window, and may transmit the PUCCH transmission based on the determined transmit power, thereby ensuring the reliability of the PUCCH transmission.
[0124] Example of the method The embodiments of the present disclosure provide communication methods implemented in a terminal device and a network device, which will be described below with reference to Figs.
[0125] 11 illustrates an example communication method 1100 implemented in a terminal device, according to some embodiments of the present disclosure. For example, method 1100 may be performed in a terminal device 110 as shown in FIG. For purposes of explanation, method 1100 will be described below with reference to FIG. It should be understood that method 1100 may include additional blocks not shown and / or omit some blocks that are shown, and that the scope of the present disclosure is not limited in this respect.
[0126] In block 1110, the terminal device 110 determines a target cell from a set of cells configured for uplink control transmission for HARQ feedback for a downlink data transmission received at a cell in a cell group that is provided to the terminal device 110 by the network device 120 and serves the terminal device 110.
[0127] In some embodiments, terminal device 110 may receive a configuration for each cell in the cell set from network device 120. In some embodiments, terminal device 110 may receive a configuration from network device 120 that includes a first portion that is common to all cells in the cell set and a second portion that is dedicated to each cell in the cell set.
[0128] In some embodiments, the terminal device 110 may receive a MAC CE from the network device 120 indicating a cell in the cell set as a target cell, and determine the target cell based on the MAC CE.
[0129] In some embodiments, the cell group may include a first subgroup of cells and a second subgroup of cells, and the cell set may include a first cell associated with the first subgroup of cells and a second cell associated with the second subgroup of cells. In these embodiments, the terminal device 110 may receive an indication from the network device 120 that a third cell in the first subgroup of cells is switched to be associated with the second cell, and determine the second cell as a target cell for HARQ feedback for downlink data transmissions received from the third cell.
[0130] In some embodiments, the terminal device 110 may determine a reference numerology from a numerology corresponding to a cell set, determine a reference slot based on the timing value of the HARQ feedback and the reference numerology, and determine a target cell from the cell set within the reference slot.
[0131] In some embodiments, the terminal device 110 may determine one of the numerologies associated with the largest subcarrier spacing as the reference numerology. In some embodiments, the terminal device 110 may determine one of the numerologies associated with a reference cell with the highest priority in the cell set as the reference numerology. In some embodiments, the terminal device 110 may determine a numerology configured for cells in the cell set that are configured to have the same numerology as the reference numerology.
[0132] In some embodiments where the reference numerology is associated with a reference cell with the highest priority in a cell set, if the index of the numerology of a candidate cell in the cell set is greater than the index of the reference numerology and the candidate cell has a plurality of slots corresponding to the reference slot, the terminal device 110 may determine whether a first slot of the plurality of slots has enough valid symbols to accommodate an uplink control transmission. If the first slot has enough valid symbols to accommodate an uplink control transmission, the terminal device 110 may determine the candidate cell as a target cell. Alternatively, the terminal device 110 may determine whether there is a slot in the plurality of slots that is configured to have enough valid symbols to accommodate an uplink control transmission. If there is a slot in the plurality of slots that accommodates an uplink control transmission, the terminal device 110 may determine the candidate cell as a target cell.
[0133] In some embodiments, the terminal device 110 may determine a target cell for an uplink control transmission configured to have repetitions based on the number of repetitions. In some embodiments, the terminal device 110 may determine as the target cell a cell with the highest priority in a cell set that accommodates all repetitions of the uplink control transmission. In some embodiments, the terminal device 110 may determine as the target cell a cell with the highest priority in a cell set that accommodates early repetitions of the uplink control transmission. In some embodiments, the terminal device 110 may determine as the target cell a cell with the highest priority in a cell set that accommodates a maximum number of repetitions of the uplink control transmission among the number of repetitions of the uplink control transmission in the cell set. In some embodiments, the terminal device 110 may determine as the target cell a cell with the highest priority in a cell set that accommodates at least one repetition of the uplink control transmission.
[0134] In block 1120, the terminal device 110 transmits, in the target cell, to the network device 120, an uplink control transmission for HARQ feedback for a downlink data transmission received on one of the cells in the cell group.
[0135] In some embodiments, the terminal device 110 may send an uplink control transmission for HARQ feedback for a downlink data transmission starting after slot k+N in the target cell, where k represents an index of a slot for the uplink control transmission for HARQ feedback of the downlink data transmission including the indication, and N represents a processing time for the HARQ feedback in the network device 120.
[0136] In some embodiments where the reference numerology is associated with a reference cell having the highest priority in a cell set, if the index of the numerology of the target cell is less than the index of the reference numerology, the terminal device 110 may determine whether a first uplink control transmission on the target cell overlaps with a second uplink control transmission on the reference cell. If the first uplink control transmission overlaps with the second uplink control transmission, the terminal device 110 may determine that an error has occurred.
[0137] In some embodiments, if the index of the numerology of the target cell is smaller than the index of the reference numerology associated with the reference cell having the highest priority in the cell set, the terminal device 110 may determine whether a first uplink control transmission on the target cell overlaps with a second uplink control transmission on the reference cell. If the first uplink control transmission overlaps with the second uplink control transmission, the terminal device 110 may cancel the first uplink control transmission. Alternatively, if the first uplink control transmission overlaps with the second uplink control transmission, the terminal device 110 may determine multiplexed HARQ feedback information by multiplexing the first HARQ feedback information in the first uplink control transmission with the second HARQ feedback information in the second uplink control transmission, and transmit the multiplexed HARQ feedback information in the reference cell.
[0138] In some embodiments, if dedicated power control is configured for uplink control transmissions on the set of cells, the terminal device 110 may determine a set of TPC command values for uplink control transmissions on the target cell within a time window, determine a transmit power for the uplink control transmissions on the target cell by accumulating the set of TPC command values, and transmit the uplink control transmissions at the transmit power.
[0139] In some embodiments, if a terminal device 110-specific DCI for scheduling an uplink control transmission on a target cell is received within the time window, the terminal device 110 may incorporate the TPC command values in the terminal device-specific DCI into the set of TPC command values. In some embodiments, if a group-common DCI is received within the time window and the target cell has the highest priority in the cell set, the terminal device 110 may incorporate the TPC command values in the group-common DCI into the set of TPC command values. In some embodiments, if a group-common DCI is received within the time window and the closest uplink control transmission to the group-common DCI is on the target cell, the terminal device 110 may incorporate the TPC command values in the group-common DCI into the set of TPC command values. In some embodiments, if a group-common DCI is received within the time window in a cell associated with the target cell, the terminal device 110 may incorporate the TPC command values in the group-common DCI into the set of TPC command values. In some embodiments, if a group-common DCI is received within the time window, the terminal device 110 may include a first TPC command value in a first set of bits of the group-common DCI, the first set of bits being associated with the target cell, in the set of TPC command values.
[0140] In some embodiments, if joint power control is configured for uplink control transmissions on the set of cells, terminal device 110 may determine the time window based on an end of first downlink control information associated with a current uplink control transmission and an end of second downlink control information associated with a previous uplink control transmission, the previous uplink control transmission being an uplink control transmission that precedes the current uplink control transmission. Terminal device 110 may determine a set of TPC command values for cells in the cell group within the time window, determine a transmit power for the uplink control transmission on the target cell by accumulating the set of TPC command values, and transmit the uplink control transmission at the transmit power.
[0141] In this way, PUCCH carrier switching can be realized and the delay for HARQ feedback can be reduced.
[0142] 12 illustrates an exemplary communication method 1200 implemented in a network device according to some embodiments of the present disclosure. For example, method 1200 may be implemented in network device 120 as shown in FIG. 1. For purposes of explanation, method 1200 will be described below with reference to FIG. 1. It should be understood that method 1200 may include additional blocks not shown and / or omit some of the blocks shown, and that the scope of the present disclosure is not limited in this respect.
[0143] As shown in FIG. 12, in block 1210, the network device 120 receives from the terminal device an uplink control transmission for HARQ feedback for a downlink data transmission transmitted on one of the cells in a cell group at a target cell determined from a cell set configured for uplink control transmission for HARQ feedback for a downlink data transmission received at a cell in the cell group.
[0144] In some embodiments, the network device 120 may transmit a configuration for each cell in the cell set. In some embodiments, the network device 120 may transmit a configuration including a first portion common to all cells in the cell set and a second portion dedicated to each cell in the cell set. In some embodiments, the network device 120 may transmit a MAC CE to the terminal device 110 indicating a cell in the cell set as a target cell.
[0145] In some embodiments, the cell group may include a first subgroup of cells and a second subgroup of cells, and the cell set may include a first cell associated with the first subgroup of cells and a second cell associated with the second subgroup of cells. In these embodiments, the network device 120 may transmit an indication to the terminal device 110 indicating that a third cell in the first subgroup of cells is to be switched to be associated with the second cell.
[0146] In some embodiments, network device 120 may receive HARQ feedback for a downlink data transmission starting after slot k+N in the target cell, where k represents an index of a slot for an uplink control transmission for HARQ feedback of the downlink data transmission including the indication, and N represents a processing time for the HARQ feedback in network device 120.
[0147] In some embodiments, the network device 120 may determine a reference numerology from a numerology corresponding to a set of cells, determine a reference slot based on the timing value of the HARQ feedback and the reference numerology, and determine a target cell from the set of cells within the reference slot.
[0148] In some embodiments, the network device 120 may determine as the reference numerology one of the numerologies associated with the largest subcarrier spacing. In some embodiments, the network device 120 may determine as the reference numerology one of the numerologies associated with the reference cell with the highest priority in the cell set. In some embodiments, the network device 120 may determine as the reference numerology a numerology configured for cells in the cell set that are configured to have the same numerology.
[0149] In some embodiments where the reference numerology is associated with a reference cell with the highest priority in a cell set, if the index of the numerology of a candidate cell in the cell set is greater than the index of the reference numerology and the candidate cell has a number of slots corresponding to the reference slot, the network device 120 may determine whether a first slot of the number of slots has enough valid symbols to accommodate an uplink control transmission. If the first slot has enough valid symbols to accommodate an uplink control transmission, the network device 120 may determine the candidate cell as a target cell.
[0150] Alternatively, the network device 120 may determine whether there is a slot in the plurality of slots that is configured to have enough valid symbols to accommodate an uplink control transmission, and if there is a slot in the plurality of slots that accommodates an uplink control transmission, the network device 120 may determine the candidate cell as the target cell.
[0151] In some embodiments where the reference numerology is associated with a reference cell having the highest priority in a cell set, if the index of the numerology of the target cell is less than the index of the reference numerology, the network device 120 may determine whether a first uplink control transmission on the target cell overlaps with a second uplink control transmission on the reference cell. If the first uplink control transmission overlaps with the second uplink control transmission, the network device 120 may determine that an error has occurred.
[0152] In some embodiments, the network device 120 may determine a target cell for an uplink control transmission configured to have repetitions based on the number of repetitions. In some embodiments, the network device 120 may determine as the target cell a cell with the highest priority in a cell set that accommodates all repetitions of the uplink control transmission. In some embodiments, the network device 120 may determine as the target cell a cell with the highest priority in a cell set that accommodates early repetitions of the uplink control transmission. In some embodiments, the network device 120 may determine as the target cell a cell with the highest priority in a cell set that accommodates a maximum number of repetitions of the uplink control transmission among the number of repetitions of the uplink control transmission in the cell set. In some embodiments, the network device 120 may determine as the target cell a cell with the highest priority in a cell set that accommodates at least one repetition of the uplink control transmission.
[0153] In some embodiments, the network device 120 may receive an uplink control transmission for the HARQ feedback transmitted at a transmit power determined for the uplink control transmission on the target cell by accumulating a set of TPC command values determined for the uplink control transmission on the target cell within a time window according to a determination that dedicated power control is set for uplink control transmissions on a set of cells.
[0154] In some embodiments, the network device 120 may transmit a terminal device specific DCI for scheduling an uplink control transmission on the target cell within the time window. In some embodiments, the network device 120 may transmit a group-common DCI used for a cell with the highest priority in the cell set. In some embodiments, the network device 120 may transmit the group-common DCI used for an uplink control transmission that is closest to the group-common DCI. In some embodiments, the network device 120 may transmit a mapping between the group-common DCI and cells in the cell set. In some embodiments, the network device 120 may transmit a group-common DCI including a first TPC command value in a first set of bits and a second TPC command value in a second set of bits associated with a different cell in the cell set.
[0155] In some embodiments, the network device 120 may receive an uplink control transmission for HARQ feedback transmitted at a transmit power determined for the uplink control transmission on the target cell by accumulating a set of TPC command values, the set of TPC command values determined for cells in a cell set within a time window, the time window determined based on an end of a first downlink control information associated with a current uplink control transmission and an end of a second downlink control information associated with a previous uplink control transmission, the previous uplink control transmission being an uplink control transmission earlier than the current uplink control transmission.
[0156] Thus, PUCCH carrier switching can be supported and the delay for HARQ feedback can be reduced. Device implementation examples
[0157] Fig. 13 is a schematic block diagram of an apparatus 1300 suitable for implementing embodiments of the present disclosure. The apparatus 1300 may be considered as another exemplary implementation of the terminal device 110 or the network device 120 shown in Fig. 1. Thus, the apparatus 1300 may be implemented in the terminal device 110 or the network device 120, or as at least a part thereof.
[0158] As shown, the apparatus 1300 comprises a processor 1310, a memory 1320 coupled to the processor 1310, a suitable transmitter (TX) and receiver (RX) 1340 coupled to the processor 1310, and a communication interface coupled to the TX / RX 1340. The memory 1310 stores at least a portion of a program 1330. The TX / RX 1340 is used for bidirectional communication. The TX / RX 1340 has at least one antenna to facilitate communication, although the access nodes referred to herein may in practice have multiple antennas. The communication interface may represent any interface required for communication with other network elements, such as an X2 / Xn interface for bidirectional communication between eNBs / gNBs, an S1 / NG interface for communication between a Mobility Management Entity (MME) / Access and Mobility Management Function (AMF) / SGW / UPF and an eNB / gNB, an Un interface for communication between an eNB / gNB and a relay node (RN), or a Uu interface for communication between an eNB / gNB and a terminal device.
[0159] It is assumed that the program 1330 includes program instructions that, when executed by an associated processor 1310, enable the device 1300 to operate according to embodiments of the present disclosure, as described herein with reference to Figures 3-12. The embodiments herein may be implemented by computer software executable by the processor 1310 of the device 1300, or by hardware, or by a combination of software and hardware. The processor 1310 may be configured to implement various embodiments of the present disclosure. Furthermore, the combination of the processor 1310 and the memory 1320 may form a processing means 1350 suitable for implementing various embodiments of the present disclosure.
[0160] The memory 1320 may be of any type suitable for a local technology network and may be implemented using any suitable data storage technology, such as, by way of non-limiting example, non-transitory computer-readable storage media, semiconductor-based memory devices, magnetic memory devices and systems, optical memory devices and systems, fixed memory and removable memory. Although only one memory 1320 is shown in the device 1300, there may be several physically different memory modules in the device 1300. The processor 1310 may be of any type suitable for a local technology network and may include, by way of non-limiting example, one or more of a general purpose computer, a special purpose computer, a microprocessor, a digital signal processor (DSP), and a processor based on a multi-core processor architecture. The device 1300 may have multiple processors, for example application specific integrated circuit chips time-slaved to a clock that synchronizes the main processor.
[0161] In some embodiments, a terminal device comprises a circuit configured to determine a target cell from a set of cells configured for uplink control transmissions for HARQ feedback for downlink data transmissions received in a cell in a cell group, and to transmit, in the target cell, to a network device, an uplink control transmission for HARQ feedback for downlink data transmissions received on one of the cells in the cell group.
[0162] In some embodiments, the circuitry is further configured to at least one of: receive from the network device a configuration for each cell in the set of cells; or receive from the network device a configuration including a first portion common to all cells in the set of cells and a second portion dedicated to each cell in the set of cells.
[0163] In some embodiments, the cell group includes a first subgroup of cells and a second subgroup of cells, and the cell set includes a first cell associated with the first subgroup of cells and a second cell associated with the second subgroup of cells. In these embodiments, the circuitry is configured to receive an indication from the network device indicating that a third cell in the first subgroup of cells is switched to be associated with the second cell, and determine the target cell by determining the second cell as the target cell for HARQ feedback for downlink data transmissions received from the third cell.
[0164] In some embodiments, the circuitry is configured to determine the target cell by receiving a MAC CE from the network device indicating a cell in the cell set as the target cell, and determining the target cell based on the MAC CE.
[0165] In some embodiments, the circuitry is configured to transmit the uplink control transmission by transmitting the uplink control transmission for HARQ feedback for a downlink data transmission starting after slot k+N in the target cell, where k represents a slot index for the uplink control transmission for HARQ feedback of a downlink data transmission including the indication, and N represents a processing time for the HARQ feedback in the network device.
[0166] In some embodiments, the circuitry is configured to determine the target cell by determining a reference numerology from a numerology corresponding to the set of cells, determining a reference slot based on a timing value of the HARQ feedback and the reference numerology, and determining the target cell from the set of cells within the reference slot.
[0167] In some embodiments, the circuitry is configured to determine the reference numerology by at least one of determining one of the numerologies associated with a maximum subcarrier spacing as the reference numerology, determining one of the numerologies associated with a reference cell having a highest priority in the cell set as the reference numerology, or determining a numerology configured for a cell in the cell set that is configured to have the same numerology as the reference numerology.
[0168] In some embodiments, where the reference numerology is associated with a reference cell having a highest priority in the cell set, the circuitry may be configured to determine the target cell from the cell set by: determining whether a first slot of the plurality of slots has sufficient valid symbols to accommodate the uplink control transmission in accordance with a determination that a numerology index of a candidate cell in the cell set is greater than the reference numerology index and the candidate cell has a plurality of slots corresponding to the reference slots; and determining the candidate cell as the target cell in accordance with a determination that the first slot has sufficient valid symbols to accommodate the uplink control transmission.
[0169] In some embodiments in which the reference numerology is associated with a reference cell having the highest priority in the cell set, the circuitry may be configured to determine the target cell from the cell set by: determining whether a slot exists among the plurality of slots configured to have sufficient valid symbols to accommodate the uplink control transmission in accordance with a determination that a numerology index of a candidate cell in the cell set is greater than the reference numerology index and the candidate cell has a plurality of slots corresponding to the reference slots; and determining the candidate cell as the target cell in accordance with a determination that a slot exists among the plurality of slots that accommodates the uplink control transmission.
[0170] In some embodiments, the circuitry may be further configured to determine whether a first uplink control transmission on the target cell overlaps with a second uplink control transmission on the reference cell according to a determination that an index of the numerology of the target cell is smaller than an index of the reference numerology, and to determine that an error has occurred if the first uplink control transmission overlaps with the second uplink control transmission, the reference numerology being associated with a reference cell having a highest priority in the cell set.
[0171] In some embodiments, the circuitry may be further configured to determine whether a first uplink control transmission on the target cell overlaps with a second uplink control transmission on the reference cell in accordance with a determination that a numerology index of the target cell is smaller than an index of the reference numerology associated with a reference cell having a highest priority in the cell set, and to cancel the first uplink control transmission in accordance with a determination that the first uplink control transmission overlaps with the second uplink control transmission.
[0172] In some embodiments, the circuitry may be further configured to: determine whether a first uplink control transmission on the target cell overlaps with a second uplink control transmission on the reference cell in accordance with a determination that a numerology index of the target cell is smaller than an index of the reference numerology associated with a reference cell having a highest priority in the cell set; determine multiplexed HARQ feedback information by multiplexing first HARQ feedback information in the first uplink control transmission with second HARQ feedback information in the second uplink control transmission in accordance with a determination that the first uplink control transmission overlaps with the second uplink control transmission; and transmit the multiplexed HARQ feedback information in the reference cell.
[0173] In some embodiments, the circuitry may be configured to determine the target cell from the cell set by determining the target cell for the uplink control transmission, which is configured to have repetitions, based on a number of repetitions.
[0174] In some embodiments, the circuitry may be configured to determine the target cell based on the number of repetitions by at least one of: determining as the target cell a cell with a highest priority in the cell set that accommodates all repetitions of the uplink control transmission; determining as the target cell a cell with a highest priority in the cell set that accommodates early ones of the repetitions of the uplink control transmission; determining as the target cell a cell with a highest priority in the cell set that accommodates a maximum number of repetitions of the uplink control transmission among the number of repetitions of the uplink control transmission in the cell set; or determining as the target cell a cell with a highest priority in the cell set that accommodates at least one of the repetitions of the uplink control transmission.
[0175] In some embodiments, the circuitry may be configured to: transmit the uplink control transmissions on the set of cells by determining, in accordance with a determination that dedicated power control is configured for the uplink control transmissions on the set of cells, a set of TPC command values for the uplink control transmissions on the target cell within a time window, determining a transmit power for the uplink control transmissions on the target cell by accumulating the set of TPC command values, and transmitting the uplink control transmissions at the transmit power.
[0176] In some embodiments, the circuitry includes: pursuant to a determination that the terminal device specific DCI is received within the time window, incorporating a TPC command value in the terminal device specific DCI into the set of TPC command values for scheduling the uplink control transmission on the target cell; pursuant to a determination that a group-common DCI is received within the time window and the target cell has the highest priority in the cell set, incorporating a TPC command value in the group-common DCI into the set of TPC command values; pursuant to a determination that a group-common DCI is received within the time window and the closest uplink control transmission to the group-common DCI is on the target cell. and determining the set of TPC command values by at least one of: incorporating a TPC command value in the group-common DCI into the set of TPC command values in accordance with a determination that a group-common DCI has been received within the time window in a cell associated with the target cell; or incorporating a TPC command value in the group-common DCI into the set of TPC command values in accordance with a determination that a group-common DCI has been received within the time window in a cell associated with the target cell; or incorporating a first TPC command value in a first set of bits of the group-common DCI, the first set of bits being associated with the target cell, into the set of TPC command values in accordance with a determination that a group-common DCI has been received within the time window.
[0177] In some embodiments, the circuitry may be configured to, when joint power control is configured for the uplink control transmissions on the set of cells, determine the time window based on an end of first downlink control information associated with a current uplink control transmission and an end of second downlink control information associated with a previous uplink control transmission, the previous uplink control transmission being an uplink control transmission earlier than the current uplink control transmission, determine a set of TPC command values for cells in the set of cells within the time window, determine a transmit power for the uplink control transmission on the target cell by accumulating the set of TPC command values, and transmit the uplink control transmission at the transmit power.
[0178] In some embodiments, a network device comprises a circuit configured in the network device to receive, from a terminal device, an uplink control transmission for HARQ feedback for a downlink data transmission transmitted on one of the cells in a cell group at a target cell determined from a cell set configured for uplink control transmission for HARQ feedback for a downlink data transmission received at a cell in the cell group.
[0179] In some embodiments, the circuitry may be further configured to at least one of: transmit a configuration for each cell in the set of cells, or transmit a configuration including a first portion common to all cells in the set of cells and a second portion dedicated to each cell in the set of cells. In some embodiments, the circuitry may be further configured to transmit to the terminal device a MAC CE indicating a cell in the set of cells as the target cell.
[0180] In some embodiments, the cell group includes a first subgroup of cells and a second subgroup of cells, and the cell set includes a first cell associated with the first subgroup of cells and a second cell associated with the second subgroup of cells. In these embodiments, the circuitry may be further configured to transmit an indication to the terminal device indicating that a third cell in the first subgroup of cells is switched to be associated with the second cell.
[0181] In some embodiments, the circuitry may be configured to receive the uplink control transmission by receiving the uplink control transmission for HARQ feedback for a downlink data transmission starting after slot k+N in the target cell, where k represents a slot index for the uplink control transmission for HARQ feedback of a downlink data transmission including the indication, and N represents a processing time for the HARQ feedback in the network device.
[0182] In some embodiments, the circuitry may be configured to determine the target cell by determining a reference numerology from a numerology corresponding to the set of cells, determining a reference slot based on a timing value of the HARQ feedback and the reference numerology, and determining the target cell from the set of cells within the reference slot.
[0183] In some embodiments, the circuitry may be configured to determine the reference numerology by at least one of determining one of the numerologies associated with a maximum subcarrier spacing as the reference numerology, determining one of the numerologies associated with a reference cell having a highest priority in the cell set as the reference numerology, or determining a numerology configured for a cell in the cell set that is configured to have the same numerology as the reference numerology.
[0184] In some embodiments, where the reference numerology is associated with a reference cell having a highest priority in the cell set, the circuitry may be configured to determine the target cell from the cell set by: determining whether a first slot of the plurality of slots has sufficient valid symbols to accommodate the uplink control transmission in accordance with a determination that a numerology index of a candidate cell in the cell set is greater than the reference numerology index and the candidate cell has a plurality of slots corresponding to the reference slots; and determining the candidate cell as the target cell in accordance with a determination that the first slot has sufficient valid symbols to accommodate the uplink control transmission.
[0185] In some embodiments in which the reference numerology is associated with a reference cell having a highest priority in the cell set, the circuitry may be configured to determine the target cell from the cell set in accordance with a determination that a candidate cell in the cell set has a plurality of slots corresponding to the reference slot, by determining whether there is a slot among the plurality of slots configured to have sufficient valid symbols to accommodate the uplink control transmission, and in accordance with a determination that there is a slot among the plurality of slots that accommodates the uplink control transmission, by determining the candidate cell as the target cell.
[0186] In some embodiments, the circuitry may be further configured to determine whether a first uplink control transmission on the target cell overlaps with a second uplink control transmission on the reference cell according to a determination that the numerology index of the target cell is less than the reference numerology index associated with a reference cell having a highest priority in the cell set, and to determine that an error has occurred if the first uplink control transmission overlaps with the second uplink control transmission.
[0187] In some embodiments, the circuitry may be configured to determine the target cell from the set of cells by determining the target cell for the uplink control transmission configured to have repetitions based on a number of repetitions. In some embodiments, the circuitry may be configured to determine the target cell based on a number of repetitions by at least one of: determining as the target cell a cell with a highest priority in the set of cells that accommodates all repetitions of the uplink control transmission, determining as the target cell a cell with a highest priority in the set of cells that accommodates an early one of the repetitions of the uplink control transmission, determining as the target cell a cell with a highest priority in the set of cells that accommodates a maximum number of repetitions of the uplink control transmission of the number of repetitions of the uplink control transmission in the set of cells, or determining as the target cell a cell with a highest priority in the set of cells that accommodates at least one of the repetitions of the uplink control transmission.
[0188] In some embodiments, the circuitry may be configured to receive the uplink control transmission by receiving the uplink control transmission for the HARQ feedback transmitted at a transmit power determined by accumulating a set of transmit power control (TPC) command values, the set of TPC command values being determined for the uplink control transmission on the target cell within a time window in accordance with a determination that a dedicated power control is set for the uplink control transmissions on the set of cells.
[0189] In some embodiments, the circuitry may be further configured to perform at least one of the following within the time window: transmitting a terminal device specific DCI for scheduling the uplink control transmission on the target cell; transmitting a group-common DCI used for a cell with the highest priority in the cell set; transmitting the group-common DCI used for an uplink control transmission closest to a group-common DCI; transmitting a mapping between a group-common DCI and a cell in the cell set; or transmitting a group-common DCI including a first TPC command value in a first set of bits and a second TPC command value in a second set of bits associated with a different cell in the cell set.
[0190] In some embodiments, the circuitry may be configured to receive the uplink control transmission for the HARQ feedback by receiving the uplink control transmission for the HARQ feedback transmitted at a transmit power, where the transmit power is determined for the uplink control transmission on the target cell by accumulating a set of TPC command values, where the set of TPC command values is determined for cells in the cell set within a time window, where the time window is determined based on an end of first downlink control information associated with a current uplink control transmission and an end of second downlink control information associated with a previous uplink control transmission, the previous uplink control transmission being an uplink control transmission earlier than the current uplink control transmission.
[0191] The term "circuitry" as used herein can refer to hardware circuits and / or a combination of hardware circuits and software. For example, a circuit may be a combination of analog and / or digital hardware circuits and software / firmware. As yet another example, a circuit may be any portion of a hardware processor having software, including a digital signal processor, software, and one or more memories, that cooperate to cause a device, such as a terminal device or a network device, to perform various functions. In yet another example, a circuit may be a hardware circuit and / or a processor, such as a microprocessor or a portion thereof, that requires software / firmware for operation, but the software may not be present if not required for operation. As used herein, the term "circuitry" also includes implementations of only a hardware circuit or one or more processors, or a portion of a hardware circuit or one or more processors, and its (or their) associated software and / or firmware.
[0192] Overall, various embodiments of the present disclosure can be realized in hardware or special purpose circuits, software, logic, or any combination thereof. Some aspects may be realized in hardware, while other aspects may be realized in firmware or software that can be executed by a controller, microprocessor, or other computing device. Although various aspects of the embodiments of the present disclosure have been illustrated and described using block diagrams, flow charts, or some other pictorial representations, it should be understood that the blocks, devices, systems, techniques, or methods described herein can be implemented, by way of non-limiting examples, in hardware, software, firmware, special purpose circuits or logic, general purpose hardware or controller or other computing device, or any combination thereof.
[0193] The present disclosure also provides at least one computer program product tangibly stored on a non-transitory computer-readable storage medium. The computer program product includes computer-executable instructions, such as instructions included in a program module, that execute in a device on a target real or virtual processor to perform the process or method described above with reference to Figures 3-12. Generally, program modules include routines, programs, libraries, objects, classes, components, data structures, etc. that perform particular tasks or implement particular abstract data types. In various embodiments, the functionality of the program modules may be combined or split between program modules as desired. The machine-executable instructions of the program modules may be executed in local or distributed devices. In a distributed device, the program modules may be located in both local and remote storage media.
[0194] Program codes for carrying out the methods of the present disclosure may be written in any combination of one or more programming languages. These program codes may be provided to a processor or controller of a general purpose computer, a special purpose computer, or other programmable data processing device, and when executed by the processor or controller, the program code causes the functions / acts specified in the flowcharts and / or block diagrams to be implemented. The program code may run entirely on the machine, partially on the machine, as a separate software package, partially on the machine and partially on a remote machine, or entirely on a remote machine or server.
[0195] The above program code may be implemented on a machine-readable medium, which may be any tangible medium that can contain or store a program used by or associated with an instruction execution system, device, or apparatus. The machine-readable medium may be a machine-readable signal medium or a machine-readable storage medium. The machine-readable medium may include, but is not limited to, an electronic, magnetic, optical, electromagnetic, infrared, or semiconductor system, device, or apparatus, or any suitable combination of the aforementioned media. More specific examples of machine-readable storage media may include an electrical connection having one or more wires, a portable computer disk, a hard disk, a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or flash memory), an optical fiber, a portable optical disk read-only memory (CD-ROM), an optical storage device, a magnetic storage device, or any suitable combination of the above.
[0196] It should be understood that although operations have been described in a particular order, it is not required that such operations be performed in the particular order shown, or in any sequential order, or that all of the operations described be performed, in order to achieve desired results. In some cases, multitasking or parallel processing may be advantageous. Similarly, although some specific implementation details are included in the above discussion, these should not be construed as limitations on the scope of the disclosure, but rather as descriptions of features that may be specific to certain embodiments. Some features described in the context of individual embodiments may be realized in combination in a single embodiment. Conversely, various features described in the context of a single embodiment may be implemented in multiple embodiments separately or in any suitable subcombination.
[0197] Although the present disclosure has been described in language specific to structural features and / or methodological acts, it should be understood that the present disclosure, as defined in the appended claims, is not necessarily limited to the specific features or acts described above. Rather, the specific features and acts described above are disclosed as example forms of implementing the claims.
Claims
1. A method performed by a terminal device, comprising: receiving, from a network device, a first physical uplink control channel (PUCCH) power control configuration of a primary cell included in a cell group and a second PUCCH power control configuration of a secondary cell configured for PUCCH cell switching and included in the cell group; receiving an indication from the network device indicating that the secondary cell is to be used for PUCCH transmission; receiving first downlink control information (DCI) from the network device, the DCI including a transmit power control (TPC) command value corresponding to the primary cell and a TPC command value corresponding to the secondary cell; determining a PUCCH transmit power based on the second PUCCH power control setting of the secondary cell, the TPC command value corresponding to the secondary cell, and a TPC command value indicated in a second DIC; transmitting a hybrid automatic repeat request (HARQ) feedback to the network device, the feedback being transmitted at the PUCCH transmit power in the secondary cell; The method includes:
2. The indication is based on at least one of the second DCI and a higher layer configuration. The method of claim 1.
3. means for receiving from a network device a first physical uplink control channel (PUCCH) power control configuration of a primary cell included in a cell group and a second PUCCH power control configuration of a secondary cell configured for PUCCH cell switching and included in the cell group; means for receiving an indication from the network device indicating that the secondary cell is to be used for PUCCH transmission; means for receiving from the network device first Downlink Control Information (DCI) including a transmit power control (TPC) command value corresponding to the primary cell and a TPC command value corresponding to the secondary cell; means for determining a PUCCH transmit power based on the second PUCCH power control setting of the secondary cell, the TPC command value corresponding to the secondary cell, and a TPC command value indicated in a second DIC; means for transmitting, to the network device, a Hybrid Automatic Repeat Request (HARQ) feedback to be transmitted at the PUCCH transmit power in the secondary cell; A terminal device including:
4. The indication is based on at least one of the second DCI and a higher layer configuration. The terminal device according to claim 3.
5. 1. A method performed by a network device, comprising: Transmitting to a terminal device a first physical uplink control channel (PUCCH) power control configuration of a primary cell included in a cell group and a second PUCCH power control configuration of a secondary cell configured for PUCCH cell switching and included in the cell group; transmitting an indication to the terminal device indicating that the secondary cell is used for PUCCH transmission; transmitting, to the terminal device, first downlink control information (DCI) including a transmit power control (TPC) command value corresponding to the primary cell and a TPC command value corresponding to the secondary cell; receiving, from the terminal device, a hybrid automatic repeat request (HARQ) feedback transmitted at a PUCCH transmit power in the secondary cell; Including, The PUCCH transmit power is determined based on the second PUCCH power control setting of the secondary cell, the TPC command value corresponding to the secondary cell, and a TPC command value indicated in a second DIC. method.
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