Transmission timing determination method and device
The method and apparatus for determining transmission timing in IAB nodes using implicit timing indications address the challenge of aligning uplink and downlink transmissions, enhancing efficiency and reducing protocol complexity in 5G systems.
Patent Information
- Application Number
- JP2024226866
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-12-24
- Publication Date
- 2025-10-07
- Estimated Expiration
- 2041-01-15
AI Technical Summary
Determining transmission timing for Integrated Access and Backhaul (IAB) nodes in 5G mobile communication systems, particularly with large bandwidths and multi-beam systems, is challenging due to half-duplex constraints and complex protocol design.
A method and apparatus for determining transmission timing of IAB nodes by using control information with implicit indications of timing types, such as scrambling information and subcarrier spacing, to align uplink and downlink transmissions without increasing signaling overhead.
Facilitates efficient alignment of uplink and downlink transmissions in IAB nodes, enabling spatial multiplexing and reducing protocol complexity, applicable to 4G, 5G, and future communication systems.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present application relates to the field of communication technology, and in particular to a method and apparatus for determining transmission timing. [Background technology]
[0002] The fifth generation (5G) mobile communication system, new radio (NR) technology, will use large bandwidths, such as millimeter wave bands. Additionally, large-scale antennas and multi-beam systems will be used. Therefore, high system speeds can be provided by 5G. This will facilitate the application of integrated access and backhaul (IAB) nodes in 5G.
[0003] How to determine the transmission timing of IAB nodes is an issue that needs to be considered. Summary of the Invention
[0004] The present application provides a transmission timing determination method and apparatus for determining the transmission timing of an IAB node.
[0005] The present application provides a transmission timing determination method and apparatus for determining the transmission timing of an IAB node.
[0006] According to a first aspect, a transmission timing determination method is provided. The method is performed by a first node, which may be an IAB node, a relay node, or any relay device. The method includes the steps of: receiving control information from a second node, where the control information includes scheduling information for uplink transmissions, and the control signaling includes first scrambling information; determining a first timing type associated with the first scrambling information; and determining transmission timing of the uplink transmissions based on the first timing type. The first node may determine the first timing type based on the first scrambling information carried in the control information, and determine the transmission timing of the uplink transmissions scheduled by the control information based on the first timing type. In this way, the timing type is implicitly indicated in the control information without adding a redundant field indicating the timing type.
[0007] In a possible design, the first node receives a correspondence between the scrambling information and the timing type from the donor node. Optionally, the correspondence between the scrambling information and the timing type may be maintained in an RRC message. The step of the first node determining the first timing type associated with the first scrambling information includes the first node determining the first timing type associated with the first scrambling information based on the correspondence. The donor node further needs to transmit the correspondence to the DU of the upper node of the first node. For example, the donor node transmits the correspondence to the DU of the upper node of the first node through F1-AP signaling. In this way, the DU of the upper node of the first node obtains the correspondence and determines the transmission timing of the downlink transmission based on the correspondence. Therefore, the transmission timing of the downlink transmission of the DU of the upper node of the first node corresponds to the transmission timing of the uplink transmission of the MT of the first node.
[0008] Alternatively, the correspondence may be predetermined in the protocol.
[0009] In a possible design, the first timing type includes any one of: uplink transmission timing is determined based on timing advance TA indication information from the second node; uplink transmission timing of a mobile termination MT of the first node is aligned with downlink transmission timing of a distributed unit DU of the first node; or uplink reception timing of an MT of the first node is aligned with downlink reception timing of a DU of the first node.
[0010] In a possible design, the uplink transmission is a PUSCH transmission, and the first node transmits a physical uplink control channel (PUCCH) and / or an uplink sounding reference signal (SRS), where if the PUCCH and / or the SRS and the PUSCH are located in the same slot, the transmission timing of the PUCCH and / or the SRS is determined based on the first timing type. In other words, the transmission timing of the PUCCH and / or the SRS associated with the PUSCH follows the transmission timing of the PUSCH.
[0011] In a possible design, when there is no PUSCH transmission in a transmission slot of the PUCCH and / or SRS, the transmission timing of the PUCCH and / or SRS is determined based on a default timing type.
[0012] In a possible design, the control information is used to activate pre-configured granted PUSCH transmissions.
[0013] According to a second aspect, a transmission timing determination method is provided. The method is performed by a first node, which may be an IAB node, a relay node, or any relay device. The method includes the steps of: receiving configuration information from a second node, where the configuration information includes a correspondence between a time unit index and a timing type; determining a first timing type associated with the first time unit based on the correspondence; and determining a transmission timing for performing an uplink transmission in the first time unit based on the first timing type. In this manner, the first node may determine a timing type corresponding to a time unit occupied by a current uplink transmission and determine a transmission timing in the time unit by using the timing type. The timing type may be indicated in an implicit indication manner. Additionally, signaling overhead is not increased.
[0014] In a possible design, the time unit index is an index determined in a reference subcarrier spacing; and determining, by the first node based on the correspondence, a first timing type associated with the first time unit includes determining, by the first node, the first timing type associated with the first time unit based on the reference subcarrier spacing, a subcarrier spacing corresponding to the first time unit, and the correspondence. In this way, the timing type can be determined when the terminal device operates in any subcarrier spacing.
[0015] In a possible design, the first node determining a first timing type associated with the first time unit based on a reference subcarrier spacing, a subcarrier spacing corresponding to the first time unit, and the correspondence includes the first node determining a first time unit index in the reference subcarrier spacing corresponding to the first time unit based on the subcarrier spacing corresponding to the first time unit; and the first node determining a first timing type associated with the first time unit index based on the correspondence.
[0016] In possible designs, the reference subcarrier spacing is the subcarrier spacing of the serving carrier of the first node; the reference subcarrier spacing is the subcarrier spacing of the active bandwidth portion BWP of the first node; or the reference subcarrier spacing is the subcarrier spacing indicated by an instruction from the second node.
[0017] In a possible design, the first timing type includes any one of: uplink transmission timing is determined based on timing advance TA indication information from the second node; uplink transmission timing of a mobile termination MT of the first node is aligned with downlink transmission timing of a distributed unit DU of the first node; or uplink reception timing of an MT of the first node is aligned with downlink reception timing of a DU of the first node.
[0018] In a possible design, the correspondence between the time unit index and the timing type is associated with an uplink transmission type, where the uplink transmission type includes one or more of a physical uplink shared channel (PUSCH), a physical uplink control channel (PUCCH), or a sounding reference signal (SRS).
[0019] According to a third aspect, a transmission timing determination method is provided. The method is performed by a first node, which may be an IAB node, a relay node, or any relay device. The method includes the steps of: receiving control information from a second node, where the control information includes scheduling information for a sounding reference signal (SRS) transmission, and the control signaling includes first information, the first information indicating an SRS transmission configuration; determining a first timing type associated with the first information; and determining transmission timing of an uplink transmission based on the first timing type. In this manner, the control information indicating the SRS transmission can be reused, thereby avoiding complex protocol design and modification to indicate the timing type.
[0020] In a possible design, the first information further indicates the first timing type.
[0021] In a possible design, the correspondence between the first information and the first timing type is specified in a protocol.
[0022] According to a fourth aspect, a transmission timing determination method is provided. The method is performed by a first node, which may be an IAB node, a relay node, or any relay device. The first node determines a timing type and further determines transmission timing of uplink transmissions based on the following rules. The rules include: timing type 1 is used by default for periodic PUCCH and / or SRS transmissions. Common terminal devices served by an upper node of the first node also determine transmission timing by using timing type 1. This facilitates uplink multiplexing of IAB nodes and common terminal devices. The rules may further include that the timing type of periodic PUCCH and / or SRS transmissions is related to a TDD resource transmission direction. In a possible design, if one or more time domain resources occupied by PUCCH and / or SRS in the current time period overlap with an UL slot in the second configuration, the first node uses timing type 2 or timing type 3.
[0023] If in the current period one or more time domain resources occupied by PUCCH and / or SRS overlap with a UL slot in the first configuration, the first node uses timing type 1.
[0024] If a UL slot in the first configuration and a UL slot in the second configuration overlap and one or more time domain resources occupied by PUCCH and / or SRS in the current period overlap with a UL slot in the first configuration and a UL slot in the second configuration, the first node uses a default timing type, for example, timing type 1.
[0025] Timing type 1 includes: the uplink transmission timing is determined based on timing advance TA indication information from the second node; Timing type 2 includes: the uplink transmission timing of the mobile termination MT of the first node is aligned with the downlink transmission timing of the distributed unit DU of the first node; Timing type 3 includes: the uplink reception timing of the MT of the first node is aligned with the downlink reception timing of the DU of the first node.
[0026] According to a fifth aspect, there is provided a communications apparatus. The communications apparatus may be a first node, a device located in the first node, or a device that can be used in the first node. In one design, the communications apparatus may include modules in a one-to-one correspondence with the methods / operations / steps / actions described in the first aspect. The modules may be hardware circuits, software, or may be implemented using a combination of hardware circuits and software. In one design, the apparatus may include a processing module and a communications module. The processing module is configured to invoke the communications module to perform receiving and / or transmitting functions. An example is as follows:
[0027] The communication module is configured to receive control information from a second node, the control information including scheduling information for an uplink transmission, and the control signaling including first scrambling information. The processing module is configured to determine a first timing type associated with the first scrambling information and determine a transmission timing of the uplink transmission based on the first timing type.
[0028] In a possible design, the communications module is further configured to receive, from the donor node, a correspondence between the scrambling information and the timing type; and when determining the first timing type associated with the first scrambling information, the processing module is configured to determine the first timing type associated with the first scrambling information based on the correspondence.
[0029] In a possible design, the first timing type includes any one of: uplink transmission timing is determined based on timing advance TA indication information from the second node; uplink transmission timing of a mobile termination MT of the first node is aligned with downlink transmission timing of a distributed unit DU of the first node; or uplink reception timing of an MT of the first node is aligned with downlink reception timing of a DU of the first node.
[0030] In a possible design, the uplink transmission is a PUSCH transmission; and the communication module is further configured to transmit a physical uplink control channel (PUCCH) and / or an uplink sounding reference signal (SRS), where if the PUCCH and / or SRS and the PUSCH are located in the same slot, the transmission timing of the PUCCH and / or SRS is determined based on the first timing type.
[0031] In a possible design, the processing module is further configured to determine transmission timing of the PUCCH and / or SRS based on a default timing type when there is no PUSCH transmission in the transmission slot of the PUCCH and / or SRS.
[0032] In a possible design, the control information is used to activate pre-configured granted PUSCH transmissions.
[0033] According to a sixth aspect, a communications apparatus is provided. The communications apparatus may be a first node, a device located in the first node, or a device that can be used within the first node. In one design, the communications apparatus may include modules in a one-to-one correspondence with the methods / operations / steps / actions described in the first aspect. The modules may be hardware circuits, software, or a combination of hardware circuits and software. In one design, the apparatus may include a processing module and a communications module. The processing module is configured to invoke the communications module to perform receiving and / or transmitting functions. For example, the communications module is configured to receive configuration information from a second node, where the configuration information includes a correspondence between a time unit index and a timing type. The processing module is configured to determine a first timing type associated with the first time unit based on the correspondence, and determine transmission timing for performing uplink transmission in the first time unit based on the first timing type.
[0034] In a possible design, the time unit index is an index determined in a reference subcarrier spacing; and when determining the first timing type associated with the first time unit based on the correspondence, the processing module is specifically configured to determine the first timing type associated with the first time unit based on the reference subcarrier spacing, the subcarrier spacing corresponding to the first time unit, and the correspondence.
[0035] In a possible design, when determining a first timing type associated with the first time unit based on a reference subcarrier spacing, a subcarrier spacing corresponding to the first time unit, and the correspondence, the processing module is specifically configured to: determine a first time unit index corresponding to the first time unit in the reference subcarrier spacing based on the subcarrier spacing corresponding to the first time unit; and determine a first timing type associated with the first time unit index based on the correspondence.
[0036] In possible designs, the reference subcarrier spacing is the subcarrier spacing of the serving carrier of the first node; the reference subcarrier spacing is the subcarrier spacing of the active bandwidth portion BWP of the first node; or the reference subcarrier spacing is the subcarrier spacing indicated by an instruction from the second node.
[0037] In a possible design, the first timing type includes any one of: uplink transmission timing is determined based on timing advance TA indication information from the second node; uplink transmission timing of a mobile termination MT of the first node is aligned with downlink transmission timing of a distributed unit DU of the first node; or uplink reception timing of an MT of the first node is aligned with downlink reception timing of a DU of the first node.
[0038] In a possible design, the correspondence between the time unit index and the timing type is associated with an uplink transmission type, where the uplink transmission type includes one or more of a physical uplink shared channel (PUSCH), a physical uplink control channel (PUCCH), or a sounding reference signal (SRS).
[0039] According to a seventh aspect, there is provided a communications device. The communications device may be a first node, may be a device located in the first node, or may be a device that can be used within the first node. In one design, the communications device may include modules in a one-to-one correspondence with the methods / operations / steps / actions described in the first aspect. The modules may be hardware circuits, software, or may be implemented using a combination of hardware circuits and software. In one design, the device may include a processing module and a communications module. The processing module is configured to invoke the communications module to perform receiving and / or transmitting functions. An example is as follows:
[0040] The communication module is configured to receive control information from the second node, the control information including scheduling information for Sounding Reference Signal (SRS) transmission, the control signaling including first information, the first information indicating an SRS transmission configuration, and the processing module is configured to determine a first timing type associated with the first information and determine a transmission timing of the uplink transmission based on the first timing type.
[0041] In a possible design, the first information further indicates the first timing type.
[0042] In a possible design, the correspondence between the first information and the first timing type is specified in a protocol.
[0043] According to an eighth aspect, a communications apparatus is provided. The communications apparatus may be a first node, a device located in the first node, or a device that can be used within the first node. In one design, the communications apparatus may include modules having a one-to-one correspondence with the methods / operations / steps / actions described in the first aspect. The modules may be hardware circuits, software, or a combination of hardware circuits and software. In one design, the apparatus may include a processing module and a communications module. The processing module is configured to invoke the communications module to perform receiving and / or transmitting functions. For example, the processing module is configured to determine a timing type and further determine transmission timing of uplink transmissions based on the following rules: Timing type 1 is used by default for periodic PUCCH and / or SRS transmissions; and common terminal devices served by an upper node of the first node also determine their transmission timing by using timing type 1. This facilitates uplink multiplexing of IAB nodes and common terminal devices. The rules may further include that the timing type of the periodic PUCCH and / or SRS transmission is related to the TDD resource transmission direction. In a possible design, if one or more time domain resources occupied by the PUCCH and / or SRS in the current time period overlap with an UL slot in the second configuration, the first node uses timing type 2 or timing type 3.
[0044] If one or more time domain resources occupied by PUCCH and / or SRS in the current period overlap with a UL slot in the first configuration, the first node uses timing type 1.
[0045] If a UL slot in the first configuration and a UL slot in the second configuration overlap and one or more time domain resources occupied by PUCCH and / or SRS in the current period overlap with a UL slot in the first configuration and a UL slot in the second configuration, the first node uses a default timing type, for example, timing type 1.
[0046] Timing type 1 includes: the uplink transmission timing is determined based on timing advance TA indication information from the second node; Timing type 2 includes: the uplink transmission timing of the mobile termination MT of the first node is aligned with the downlink transmission timing of the distributed unit DU of the first node; Timing type 3 includes: the uplink reception timing of the MT of the first node is aligned with the downlink reception timing of the DU of the first node.
[0047] According to a fifth aspect, an embodiment of the present application provides a communication device. The communication device includes a communication interface and a processor, and the communication interface is used by the communication device to communicate with another device, for example, to receive or transmit data or signals. For example, the communication interface may be a transceiver, a circuit, a bus, a module, or another type of communication interface, and the other device may be a second node or a donor node. The processor is configured to call a set of programs, instructions, or data to perform a method described in any one of the first to fourth aspects. The device may further include a memory configured to store the programs, instructions, or data called by the processor. The memory is coupled to the processor, and the processor may implement a method described in any one of the first to fourth aspects when executing the instructions or data stored in the memory.
[0048] According to a sixth aspect, an embodiment of the present application further provides a computer-readable storage medium comprising a computer program or instructions, which, when executed on a computer, implements the method of any one of the first to fourth aspects.
[0049] According to a seventh aspect, an embodiment of the present application provides a chip system, the chip system including a processor, the processor executing a computer program or instructions stored in a memory to implement the method of any one of the first to fourth aspects, the chip system may include a chip, or may include a chip and another discrete component.
[0050] In one possible design, the processor comprises the memory and is coupled to the memory.
[0051] According to an eighth aspect, an embodiment of the present application further provides a computer program product comprising a computer program or instructions, which, when run on a computer, implements the method of any one of the first to fourth aspects.
[0052] According to a ninth aspect, an embodiment of the present application provides a communication system, comprising a first node and a second node, the first node configured to perform the method of any one of the first to fourth aspects. [Brief explanation of the drawings]
[0053] [Figure 1] 1 is a schematic diagram of the structure of a communication system according to an embodiment of the present application;
[0054] [Figure 2] FIG. 2 is a schematic diagram of the structure of an IAB node according to an embodiment of the present application;
[0055] [Figure 3]1 is a schematic diagram of a TDD uplink-downlink common configuration according to an embodiment of the present application; FIG.
[0056] [Figure 4a] FIG. 1 is a first schematic diagram of spatial multiplexing on MT and DU according to an embodiment of the present application;
[0057] [Figure 4b] FIG. 2 is a second schematic diagram of spatial multiplexing on MT and DU according to an embodiment of the present application;
[0058] [Figure 5a] FIG. 2 is a first schematic diagram of a transmission resource configuration in a first scheme according to an embodiment of the present application;
[0059] [Figure 5b] FIG. 2 is a second schematic diagram of a transmission resource configuration in the first scheme according to an embodiment of the present application;
[0060] [Figure 6] 2 is a schematic flowchart of a first transmission timing determination method according to an embodiment of the present application;
[0061] [Figure 7] 4 is a schematic flowchart of a second transmission timing determination method according to an embodiment of the present application;
[0062] [Figure 8] 10 is a schematic flowchart of a third transmission timing determination method according to an embodiment of the present application;
[0063] [Figure 9] 1 is a schematic diagram of the correspondence between slot sequence numbers contained in 60 kHz and 120 kHz system frames according to one embodiment of the present application;
[0064] [Figure 10] 1 is a first schematic diagram of the structure of a communication device according to an embodiment of the present application;
[0065] [Figure 11] FIG. 2 is a second schematic diagram of the structure of a communication device according to an embodiment of the present application; DETAILED DESCRIPTION OF THE INVENTION
[0066] The embodiments of the present application provide a transmission timing determination method and an apparatus for determining the transmission timing of an IAB node. The method and the apparatus are based on the same technical concept. Since the problem-solving principle of the method is similar to that of the apparatus, cross-reference may be made to the implementation of the apparatus and the method. The repeated parts will not be described in detail.
[0067] In the description of the embodiments of the present application, the term "and / or" describes a correspondence relationship between associated objects and indicates that three relationships may exist. For example, A and / or B may indicate the following three cases: only A is present, both A and B are present, and only B is present. In this application, plural means two or more. In addition, it should be understood that in the description of the present application, terms such as "first" and "second" are used for distinction and explanation only, and should not be understood as indicating or suggesting relative importance, or indicating or suggesting an order.
[0068] The communication method provided in the embodiments of the present application may be applied to a fourth generation (4G) communication system, such as a long term evolution (LTE) system; a fifth generation (5G) communication system, such as a new radio (NR) system; or various future communication systems, such as a sixth generation (6G) communication system or a seventh generation (7G) communication system.
[0069] Hereinafter, embodiments of the present application will be described in detail with reference to the accompanying drawings.
[0070] 1 is a schematic diagram of the structure of a communication system to which an embodiment of the present application is applicable. In the communication system shown in FIG. 1, an IAB system is provided. The IAB system includes at least one base station 100, one or more terminals 101 served by the base station 100, one or more relay nodes (RNs), and one or more terminals served by the relay nodes. In this embodiment of the present application, the relay nodes may also be referred to as relay devices or relay transmission and reception points (rTRPs).
[0071] For example, in the IAB system shown in FIG. 1 , the relay nodes include rTRP 110, rTRP 120, rTRP 130, one or more terminals 111 served by the rTRP 110, one or more terminals 121 served by the rTRP 120, and one or more terminals 131 served by the rTRP 130. In general, the base station 100 is referred to as a donor base station (donor next generation NodeB, DgNB). The rTRP 110 is connected to the base station 100 through a wireless backhaul link 113. The rTRP 120 is connected to the relay node rTRP 110 through a wireless backhaul link 123 to access the network, and the rTRP 130 is connected to the relay node rTRP 110 through a wireless backhaul link 133 to access the network. The rTRP 120 serves one or more terminals 121, and the rTRP 130 serves one or more terminals 131. In FIG. 1 , both relay nodes rTRP 110 and rTRP 120 are connected to the network through wireless backhaul links. In this application, the wireless backhaul links are viewed from the perspective of the relay nodes. For example, wireless backhaul link 113 is the backhaul link of relay node rTRP 110, and wireless backhaul link 123 is the backhaul link of relay node rTRP 120. As shown in FIG. 1 , a relay node (e.g., relay node 120) may be connected to another relay node 110 through a wireless backhaul link (e.g., wireless backhaul link 123) to access the network. In addition, a relay node may access the network through multiple levels of wireless relay nodes.
[0072] In this embodiment of the present application, the donor base station may be referred to as a donor node or an IAB donor. The base station includes, but is not limited to, an evolved NodeB (eNB), a radio network controller (RNC), a NodeB (NB), a base station controller (BSC), a base transceiver station (BTS), a home base station (e.g., a home evolved NodeB or home NodeB, HNB), a baseband unit (BBU), or a new radio base station (e.g., gNB).
[0073] It will be appreciated that an IAB system may further include more or fewer relay nodes.
[0074] Generally, a node providing wireless backhaul link resources, for example, the relay node 110, is referred to as the upstream node of the relay node 120, and the relay node 120 is referred to as the downstream node of the relay node 110. A downstream node may generally be considered a terminal of the upstream node. It should be understood that in the IAB system shown in FIG. 1, one relay node is connected to one upstream node. However, in future relay systems, multiple upstream nodes may simultaneously serve one relay node (e.g., the relay node 120) to improve the reliability of the wireless backhaul link. The rTRP 130 in FIG. 1 may be further connected to the relay node rTRP 120 through a backhaul link 134. That is, both the rTRP 110 and the rTRP 120 are upstream nodes of the rTRP 130. In the present application, the terminals 101, 111, 121, and 131 may each be static or mobile devices. For example, a mobile device may be a mobile phone, an intelligent terminal, a tablet computer, a notebook computer, a video game console, or a multimedia player, or even a mobile relay node. A static device is usually located at a fixed location, for example, a computer or an access point (which accesses the network through a wireless link, for example, a static relay node). The names of the relay nodes rTRP110, 120, and 130 are not limited in the scenario or network in which the relay nodes rTRP110, 120, and 130 are deployed, and may be any other names, such as relay or RN. In this application, rTRP is used only for ease of explanation.
[0075] In FIG. 1 , wireless links 102, 112, 122, 132, 113, 123, 133, and 134 may be bidirectional links including uplink and downlink transmission links. In particular, wireless backhaul links 113, 123, 133, and 134 may be used by upper nodes to provide services to lower nodes. For example, upper node 100 provides wireless backhaul services to lower node 110. It should be understood that the uplink and downlink of the backhaul links may be separate. Specifically, the uplink and downlink are not transmitted through the same node. Downlink transmission means that an upper node transmits information or data to a lower node. For example, node 100 transmits information or data to node 110. Uplink transmission means that a lower node transmits information or data to an upper node. For example, node 110 transmits information or data to node 100. The nodes are not limited to network nodes or terminals. For example, in a D2D scenario, a terminal may be used as a relay node to serve another terminal. In some scenarios, a wireless backhaul link may be an access link. For example, backhaul link 123 may be considered to be an access link of node 110, and backhaul link 113 is also an access link of node 100. It should be understood that the upper node may be a base station or a relay node, and the lower node may be a relay node or a terminal with relay functionality. For example, in a D2D scenario, the lower node may be a terminal.
[0076] In Figure 1, a donor node is a node that may access the core network through itself or that is an anchor base station in a radio access network and may access the network through its anchor base station. The anchor base station processes data at the packet data convergence protocol (PDCP) layer, receives data from the core network, and forwards the data to a relay node, or receives data from a relay node and forwards the data to the core network. The donor node may generally access the network in a wired manner, for example, through optical fiber.
[0077] Any relay node (or any IAB node) includes two parts configured to implement functions similar to those of a base station and functions similar to those of a terminal. See FIG. 2. An IAB node may include a mobile termination (MT) and a distributed unit (DU). The MT is a functional module used to implement functions similar to those of a common terminal and is configured to communicate with a higher-level node, e.g., to transmit uplink (UL) data to the higher-level node and receive downlink (DL) data from the higher-level node. The DU is a functional module used to implement functions similar to those of a common base station and is configured to communicate with a lower-level node, e.g., to transmit downlink (DL) data to the lower-level node and receive uplink (UL) data from the lower-level node.
[0078] In order to better understand the methods provided in the embodiments of the present application, the following describes the technical terms and concepts in the embodiments of the present application.
[0079] (1) Transmission resources of MTs at IAB nodes
[0080] The transmission resources of an MT in an IAB node may be classified into three types: downlink (D), uplink (U), and flexible (F). The three types of resources may also be supported by a common terminal and indicated through signaling. The transmission resources of a DU in an IAB node may be classified into three transmission directions: uplink (U), downlink (D), and flexible (F). The resources of a DU may be classified into three types: hard, soft, and not available. DU hard resources indicate resources that are always available to the DU, DU soft resources indicate that whether a resource is available to the DU depends on an indication from the upper node, and DU not available resources indicate resources that are not available to the DU.
[0081] (2) Time domain duplex (TDD) uplink / downlink configuration common
[0082] A common terminal (which may be referred to as terminal for short) may obtain a TDD uplink-downlink common configuration (UL-DL-configuration common) from a broadcast message. The TDD uplink-downlink common configuration includes the number of downlink slots / symbols and the number of uplink slots / symbols. In a configuration period, the number of downlink slots indicates the number of consecutive slots counted from the first slot; the number of uplink slots indicates the number of consecutive slots counted backward from the last slot; the number of downlink symbols indicates the number of consecutive symbols counted forward from the first symbol in the remaining slots not shown, i.e., flexible slots; and the number of uplink symbols indicates the number of consecutive symbols counted backward from the last symbol in the remaining slots not shown, i.e., flexible slots. All symbols mentioned herein refer to OFDM symbols in an OFDM system, and the absolute time length of an OFDM symbol is related to the subcarrier spacing. The TDD uplink-downlink common configuration indicates that the configuration period starts with a downlink slot and ends with an uplink slot. After the terminal accesses the cell, the base station configures a TDD uplink-downlink-dedicated (TDD-UL-DL-dedicated) configuration through radio resource control (RRC) signaling, and further indicates the transmission direction of the "F" slot or symbol portion in the configured TDD configuration in the broadcast message.
[0083] The MT of the IAB node may use a common terminal resource configuration method, that is, the resource configuration method supports the following: a configuration period starts with a downlink time domain resource and ends with an uplink time domain resource. As shown in FIG. 3, the TDD uplink-downlink common configuration provides a configuration scheme starting from D and ending at U. In FIG. 3, one block may represent one slot. For example, five consecutive slots are used as one configuration period, and each configuration period starts from D and ends at U. In this embodiment of the present application, the time domain resource in a unit may be a slot, a symbol, or another type of time domain resource. For ease of explanation, in one configuration period, "the starting time domain resource is uplink" may be described as "starting from U", "the ending time domain resource is downlink" may be described as "ending at D", "the starting time domain resource is downlink" may be described as "starting from D", and "the ending time domain resource is uplink" may be described as "ending at U".
[0084] (3) Spatial division multiplexing on the access and backhaul links of IAB nodes cannot be implemented due to half-duplex constraints.
[0085] An IAB node integrates a wireless access link and a wireless backhaul link. The wireless access link is a communication link between user equipment (UE) and the IAB node, the wireless backhaul link is a communication link between IAB nodes and between the IAB node and the IAB donor, and the wireless backhaul link is used for data backhaul. Therefore, the IAB node does not require a wired transmission network for data backhaul, and the IAB node is more likely to be deployed in dense urban scenarios. This alleviates the burden of deploying a wired transmission network. The wireless access link is briefly referred to as an access link, and the wireless backhaul link is briefly referred to as a backhaul link.
[0086] In-band relaying is a relay solution in which a backhaul link and an access link share the same frequency band. In-band relaying is generally subject to half-duplex constraints. Specifically, when receiving a downlink signal transmitted by an upper node of an IAB node, the IAB node cannot transmit a downlink signal to a lower node of the IAB node. Meanwhile, when receiving an uplink signal transmitted by a lower node of the relay node, the relay node cannot transmit an uplink signal to the upper node of the relay node.
[0087] During the configuration period, the DU transmits downlink data to a subordinate node or terminal on the downlink time domain resource of the DU of the IAB node. Spatial multiplexing implemented on the DU and MT of the IAB node means that when the DU performs downlink transmission, the MT performs uplink transmission; and when the DU performs uplink reception, the MT performs downlink reception. As shown in FIG. 4a, when IAB node 1 receives a downlink transmission signal of its upper node on the backhaul link, IAB node 1 may simultaneously receive an uplink signal transmitted by its lower node or terminal on the access link. In simple terms, when the DU of IAB node 1 performs uplink reception, the MT performs downlink reception; or when the MT of IAB node 1 performs downlink reception, the DU performs uplink reception. As shown in Figure 4b, when IAB node 1 transmits an uplink signal to its upstream node on the backhaul link, IAB node 1 may simultaneously transmit a downlink signal to its downstream node or terminal on the access link. In simple terms, when the DU of IAB node 1 performs downlink transmission, the MT performs uplink transmission; or when the MT of IAB node 1 performs uplink transmission, the DU performs downlink transmission. Figures 4a and 4b are schematically illustrated using an example in which the upstream node of IAB node 1 is a donor node, and the upstream node of IAB node 1 may alternatively be another IAB node.
[0088] When spatial multiplexing is performed on the DU and MT of an IAB node, the MT of the IAB node may receive or transmit data on an MT resource corresponding to the downlink time domain resource of the DU. Due to half-duplex constraints, when an IAB node receives a downlink signal transmitted by an upper node of the IAB node, the IAB node cannot transmit a downlink signal to a lower node of the IAB node. As a result, spatial multiplexing cannot be implemented.
[0089] (4) The transmission resource configuration dedicated to the IAB node is used to implement spatial multiplexing on the access link and backhaul link of the IAB node.
[0090] A dedicated transmission resource configuration for an IAB node is provided to the IAB node, and the dedicated transmission resource configuration for an IAB node supports the following: a configuration period starts from an uplink time domain resource and ends with a downlink time domain resource. This helps to implement spatial multiplexing on the access link and the backhaul link, i.e., on the MT and the DU. The dedicated transmission resource configuration is defined such that the configuration period starts from an uplink time domain resource. The uplink time domain resource includes an uplink slot or an uplink symbol. Of course, the dedicated transmission resource configuration may also be defined such that the configuration period starts from a flexible time domain resource, and the flexible time domain resource includes a flexible slot or a flexible symbol.
[0091] (5) Transmission resource configuration of MT in IAB node
[0092] An MT of an IAB node obtains a transmission resource configuration. The transmission resource configuration includes a first configuration and a second configuration. The "configuration" of the first configuration and the second configuration may be a time-domain resource configuration, for example, a slot configuration. The "configuration" of the first configuration and the second configuration may be understood as a pattern. In this case, the first configuration may be referred to as a first pattern, and the second configuration may be referred to as a second pattern.
[0093] The first configuration indicates that a starting time domain resource in one configuration period is a downlink resource, or indicates that an ending time domain resource in one configuration period is an uplink resource, or indicates that a starting time domain resource in one configuration period is a downlink resource and an ending time domain resource in one configuration period is an uplink resource.
[0094] The second configuration indicates that a starting time domain resource in one configuration period is an uplink resource, or indicates that an ending time domain resource in one configuration period is a downlink resource, or indicates that a starting time domain resource in one configuration period is an uplink resource and an ending time domain resource in one configuration period is a downlink resource.
[0095] The first configuration may be understood as a TDD uplink-downlink common configuration and / or a TDD uplink-downlink dedicated (TDD-UL-DL-dedicated) configuration, and the second configuration may be understood as a transmission resource configuration dedicated to IAB nodes (TDD-UL-DL-dedicated-IAB-MT). The transmission resource configuration dedicated to IAB nodes may be referred to as an IAB node dedicated configuration for short.
[0096] The transmission directions of the first and second configurations are described using an example. Two TDD periods (i.e., configuration periods) are used as an example. One TDD period includes five time domain resources, and the sequence numbers of the time domain resources in the first TDD period are 0 to 4, and the sequence numbers of the time domain resources in the second TDD period are 5 to 9.
[0097] 5a, the transmission direction of the transmission resources of the first configuration in one configuration period may be DDDFU, i.e., the transmission direction of the first configuration in time domain resources 0 to 4 is DDDFU, and the transmission direction of the first configuration in time domain resources 5 to 9 is DDDFU. The transmission direction of the transmission resources of the second configuration in one configuration period may be expressed as UUUFD, i.e., the transmission direction of the second configuration in time domain resources 0 to 4 is UUUFD, and the transmission direction of the second configuration in time domain resources 5 to 9 is UUUFD.
[0098] As shown in Figure 5b, the transmission direction of the transmission resources of the first configuration in one configuration period is DDDFU, i.e., the transmission direction of the first configuration in time domain resources 0 to 4 is DDDFU, and the transmission direction of the first configuration in time domain resources 5 to 9 is DDDFU. The transmission direction of the transmission resources of the second configuration in one configuration period may be represented as _UU_D, where "_" represents null and refers to the hard resource of the DU of the IAB node. In this example, it is assumed that the IAB does not have the multiplexing capability to transmit and receive on the MT and DU simultaneously. Therefore, the MT of the IAB node is not expected to be scheduled for transmission at the resource position corresponding to "_".
[0099] 5a and 5b, two TDD periods are used as an example, and it will be understood that one transmission resource configuration period may further include more or fewer TDD periods.
[0100] (6) Timing type
[0101] The timing type refers to the rule that the IAB node follows when determining the transmission timing.
[0102] For an IAB node, the transmission timing may include uplink transmission timing and downlink transmission timing. The uplink transmission timing is specific to the MT, and the uplink transmission timing of the MT includes uplink transmission timing and uplink reception timing. The uplink transmission timing of the MT is the timing used when the MT performs uplink transmission to a DU of an upper node. The uplink reception timing of the MT is the timing used when the MT receives a signal from a DU of an upper node.
[0103] In the embodiment of the present application, an example in which the timing type of the uplink transmission timing is determined is used for illustration, that is, the IAB node determines the transmission timing of the uplink transmission based on the timing type.
[0104] Below we provide some examples of timing types.
[0105] Timing Type 1:
[0106] The MT of the IAB node determines the uplink transmission timing based on the timing advance (TA) indication information of the upper node. The downlink transmission timing of the DU of the IAB node is coordinated between the DUs of different nodes.
[0107] Timing Type 2:
[0108] The uplink transmission timing of the MT of the IAB node is aligned with the downlink transmission timing of the DU of the IAB node.
[0109] Timing Type 3:
[0110] The uplink receive timing of the MTs of the IAB nodes is aligned with the downlink receive timing of the DUs of the IAB nodes.
[0111] As explained in point (3) above, spatial multiplexing being implemented on the DU and MT of an IAB node means that when the DU performs downlink transmission, the MT performs uplink transmission, and when the DU performs uplink reception, the MT performs downlink reception. MT performing uplink transmission when the DU performs downlink transmission can be briefly described as a spatial multiplexing scenario in which the IAB nodes simultaneously perform transmission. MT performing downlink reception when the DU performs uplink reception can be briefly described as a spatial multiplexing scenario in which the IAB nodes simultaneously perform reception.
[0112] Timing type 2 may be applicable to spatial multiplexing scenarios where IAB nodes perform simultaneous transmissions. Timing type 3 may be applicable to spatial multiplexing scenarios where IAB nodes perform simultaneous reception. Timing type 1 above may be applicable to the case of time division multiplexing on MT and DU of IAB nodes.
[0113] The aforementioned timing types specify rules for determining the uplink transmission timing of the MT of the IAB node. In both timing type 2 and timing type 3, the uplink transmission timing of the MT is related to the downlink transmission timing of the DU. In this embodiment of the present application, the downlink transmission timing of the DU may be determined by any method. For example, referring to timing type 1, the downlink transmission timing of the DU may be aligned with the downlink transmission timing of the IAB donor node. Specifically, the downlink transmission timing of the DU may be indicated and adjusted by an upper node based on air interface synchronization signaling (OTA synchronization, OTA refers to over-the-air), or the downlink transmission timing of the DU may be obtained based on the GPS global positioning system or another system supporting timing services such as GNSS or BeiDou.
[0114] An IAB node may use different timing types in different scenarios. For example, an IAB node may use a first configuration in one TDD period and a second configuration in another TDD period. When the first configuration is used, the transmission timing may be determined by using timing type 1, and when the second configuration is used, the transmission timing may be determined by using timing type 2 or timing type 3. Regardless of which TDD configuration is used by an IAB node, how an IAB node determines the transmission timing of uplink transmissions when the IAB node supports multiple timing types is an issue that needs to be considered.
[0115] The transmission timing determination method provided in the embodiment of the present application can be used by an IAB node to determine the transmission timing of uplink transmission. It should be noted that the IAB node is used for explanation in the embodiment of the present application, and the implementation solution of the IAB node can be extended to any device with relay function.
[0116] The following describes several implementation methods of the transmission timing determination method provided in the embodiments of the present application. In the following description, the method is performed by a first node, and the first node may specifically be an MT of the first node. The first node may be a base station, a relay node, an IAB node, a terminal with relay function, or any device with relay function.
[0117] As shown in FIG. 6, the specific procedure of the first transmission timing determination method according to an embodiment of the present application is described as follows:
[0118] S601: A second node transmits control information to a first node, and the first node receives control information from the second node.
[0119] The control information includes scheduling information for uplink transmission, and the control signaling includes first scrambling information. The second node may be an upper node of the first node or a donor node.
[0120] For example, the control information may be a downlink control indication (DCI) signaling carried on a downlink control channel PDCCH. The first scrambling information may be a radio network temporary identifier (RNTI), or the first scrambling information may be a cell-radio network temporary identifier (C-RNTI) or another identifier having a function similar to that of a radio network temporary identifier.
[0121] S602: A first node determines a first timing type associated with the first scrambling information.
[0122] The first scrambling information has a correspondence relationship with a first timing type, which indicates that the first scrambling information implicitly holds information about the first timing type. After receiving the control information, the first node may determine the first timing type based on the first scrambling information held in the control information. For example, the control information indicates to the MT of the first node to transmit an uplink signal, and the uplink signal includes at least one of a PUSCH, a PUCCH, and an SRS.
[0123] S603: The first node determines a transmission timing of an uplink transmission based on a first timing type.
[0124] According to the embodiment in Figure 6, the first node may determine a first timing type based on the first scrambling information carried in the control information, and determine a transmission timing of the uplink transmission scheduled by the control information based on the first timing type. In this way, the timing type is implicitly indicated in the control information without adding a redundant field indicating the timing type.
[0125] In the following, some optional implementations of the embodiment in FIG. 6 are described.
[0126] Before receiving the control information from the second node, the first node obtains the correspondence between the scrambling information and the timing type.
[0127] The donor node transmits the correspondence between the scrambling information and the timing type to the first node, and the first node receives the correspondence from the donor node. If the donor node is an ancestor node of the first node, the donor node directly generates the correspondence and transmits it to the first node. If the donor node is not an ancestor node of the first node, the donor node may obtain the correspondence from an ancestor node of the first node and then transmit the correspondence to the first node. Alternatively, if the donor node is not an ancestor node of the first node, the donor node directly generates the correspondence and transmits it to the first node.
[0128] The correspondence between the scrambling information and the timing type may be maintained in an RRC message. For example, the donor node sends an RRC message to the first node and adds the correspondence between the scrambling information and the timing type to the RRC message. The first node receives the RRC message from the donor node and obtains the correspondence between the scrambling information and the timing type from the RRC message.
[0129] The donor node further needs to transmit the correspondence to the DU of the upper node of the first node. For example, the donor node transmits the correspondence to the DU of the upper node of the first node through F1-AP signaling. In this way, the DU of the upper node of the first node obtains the correspondence and determines the transmission timing of downlink transmission based on the correspondence. Therefore, the transmission timing of the downlink transmission of the DU of the upper node of the first node corresponds to the transmission timing of the uplink transmission of the MT of the first node.
[0130] The correspondence between the scrambling information and the timing type may be expressed using a table, a function, or another method. The table format is used as an example. Table 1 shows the relationship between several types of scrambling information and the timing type. [Table 1]
[0131] Therefore, timing type 1 may not be configured with scrambling information. That is, after the first node receives the control information, if the C-RNTI in the prior art is used for scrambling, timing type 1 is used by default. Timing type 1 may correspond to default scrambling information. Scrambling information value 2 is a sequence, and similarly, scrambling information value 3 is a sequence.
[0132] The following describes the method in the embodiment in Figure 6. It is assumed that the scrambling information is RNTI and the control information is DCI. The first node is an IAB node.
[0133] The RNTI may be a 16-bit sequence and is used to scramble a cyclic redundancy check (CRC). Upon receiving a PDCCH signal at a specific resource location, the IAB node attempts to descramble the CRC by using a different RNTI to determine whether the data of the PDCCH is valid data for the IAB node, and further acquires the content of the PDCCH if the IAB node determines that the data is valid data for the IAB node. The C-RNTI is generally used by the IAB node to receive data scheduling for unicast.
[0134] The donor node configures the correspondence between the RNTI and timing type for the IAB node in advance. The correspondence is shown in Table 2. [Table 2]
[0135] The RNTI value 1 is a 16-bit binary array or sequence that is not repeated with application-specific RNTIs specified within the protocol, such as a paging-radio network temporary identifier (P-RNTI) or a system information-radio network temporary identifier (SI-RNTI).
[0136] The MT of the IAB node receives a DCI command from an upper node, where the DCI command includes scheduling information for uplink transmission, and the DCI signaling is scrambled by using the RNTI. The IAB node determines a timing type associated with the RNTI based on the correspondence shown in Table 2, and determines the transmission timing of the uplink transmission based on the timing type.
[0137] For example, the DCI received by the IAB node is scrambled by using RNTI value 1, and the IAB node determines timing type 2 associated with RNTI value 1 based on the correspondence shown in Table 2. In this case, it may be determined that the uplink transmission timing of the MT of the IAB node is aligned with the downlink transmission timing of the DU of the IAB node.
[0138] It should be understood that Tables 1 and 2 show three types of timing types. In actual applications, more or fewer timing types may be included. One timing type may correspond to one RNTI or multiple RNTIs.
[0139] The timing type in the correspondence relationship may be represented by the index number of the timing type, or may be a specific meaning of the timing type. For example, timing type 1 means that the MT of the IAB node determines the uplink transmission timing based on the TA indication information of the upper node. Timing type 2 means that the uplink transmission timing of the MT of the IAB node is aligned with the downlink transmission timing of the DU of the IAB node. Timing type 3 means that the uplink reception timing of the MT of the IAB node is aligned with the downlink reception timing of the DU of the IAB node. The meaning of each timing type may be represented in a table. The IAB node may determine the meaning of the timing type and further determine the transmission timing based on the scrambling information value.
[0140] The timing type in the correspondence may be represented by the multiplexing mode. For example, as shown in Table 3, timing type 2 is represented by MT-Tx / DU-Tx, i.e., a spatial multiplexing scenario in which IAB nodes simultaneously perform transmission, and timing type 3 is represented by MT-Rx / DU-Rx, i.e., a spatial multiplexing scenario in which IAB nodes simultaneously perform reception. Timing type 1 may use the RNTI mapping defined in the conventional protocol, such as C-RNTI, by default. [Table 3]
[0141] In the embodiment in Figure 6, the timing type is implicitly indicated by using scrambling information in the control information to determine the transmission timing of the uplink transmission, which includes scheduling information for the uplink transmission, and which may be a transmission on a physical uplink shared channel (PUSCH), a transmission on a physical uplink control channel (PUCCH), or a transmission of a sounding reference signal (SRS).
[0142] As shown in FIG. 7, the specific procedure of the second transmission timing determination method according to an embodiment of the present application is described as follows:
[0143] S701: A second node transmits control information to a first node, and the first node receives control information from the second node.
[0144] The control information includes scheduling information for the uplink transmission, and the control signaling includes first information indicating a first timing type.
[0145] The second node may be a superior node of the first node or may be a donor node.
[0146] S702: The first node determines a first timing type based on the control information.
[0147] The first node determines a first timing type based on the first information in the control information.
[0148] S703: The first node determines a transmission timing of an uplink transmission based on a first timing type.
[0149] According to the embodiment in FIG. 7, the timing type may be explicitly indicated in the control information, such that upon receiving the control information, the first node may use the control information to determine the transmission timing of the scheduled uplink transmission by using the explicitly indicated timing type.
[0150] In the following, some optional implementations of the embodiment in FIG. 7 are described.
[0151] A field in the control information indicates a timing type. Before receiving the control information from the second node, the first node obtains the correspondence between the code point of the bit in the field and the timing type. If the field contains n bits, the field is n For example, the field may have a total of 2 bits and indicate up to 4 timing types, or the field may have a total of 3 bits and indicate up to 8 timing types.
[0152] As shown in Table 4, the field has a total of 2 bits, and the correspondence between the code points and timing types of the field is shown in Table 4. Of course, the correspondence is only an example, and multiple different combinations may exist between the code points and timing types. [Table 4]
[0153] Similar to the correspondence in the embodiment of Figure 6, the timing type in the correspondence may be represented by using a timing type index number, a specific meaning of the timing type, or a multiplexing mode. For example, as shown in Table 5, timing type 2 is represented by MT-Tx / DU-Tx, i.e., a spatial multiplexing scenario in which IAB nodes simultaneously perform transmission, and timing type 3 is represented by MT-Rx / DU-Rx, i.e., a spatial multiplexing scenario in which IAB nodes simultaneously perform reception. Timing type 1 may be indicated explicitly, by using a default codepoint, or not. [Table 5]
[0154] Before receiving control information from the second node, the first node receives configuration information from the donor node, where the configuration information includes a correspondence between the code points of the fields and the timing types. Of course, the correspondence between the code points of the fields and the timing types may be specified by using a protocol. In this case, the donor node needs to indicate the correspondence.
[0155] In a possible design, if the control information received by the first node does not include a field used to explicitly indicate a timing type, the first node uses a default timing type. For example, the control information is format 0_0, which is a type of DCI format that can hold small information and is not suitable for holding a field used to explicitly indicate a timing type. In this case, the first node receives DCI in format 0_0 and determines the transmission timing of the uplink transmission by using the default timing type.
[0156] In the embodiment in FIG. 7, the timing type may be explicitly indicated by using first information in the control information, and the first node may determine the timing type based on the first information that explicitly indicates the timing type, and further determine the transmission timing of the uplink transmission.
[0157] In the embodiment in FIG. 7, the uplink transmission may be a PUSCH transmission, a PUCCH transmission, or an SRS transmission.
[0158] Based on the embodiment in FIG. 7, the following describes an embodiment in a scenario where the uplink transmission is an SRS transmission.
[0159] The control information includes scheduling information for SRS transmission, and first information in the control information indicates an SRS transmission configuration. The first node may determine a first timing type associated with the first information based on the first information. The first information may explicitly indicate the first timing type. Alternatively, the correspondence between the first information and the first timing type is specified in advance in a protocol.
[0160] For example, in the case of aperiodic SRS transmission, the second node may send DCI signaling to the first node, where the DCI signaling includes an SRS request field, where the value of the SRS request field is an SRS resource index, and the SRS resource index indicates a resource to be used by the first node to transmit the SRS.
[0161] For example, as shown in Table 6, the SRS request field includes two bits, and an SRS resource index of 00 indicates that no SRS transmission is triggered. If the SRS resource index is 01, the first SRS resource set is triggered. If the SRS resource index is 00, the second SRS resource set is triggered. If the SRS resource index is 00, the third SRS resource set is triggered. [Table 6]
[0162] The protocol may pre-specify the trigger command indicated by the SRS request field. Upon receiving the DCI signaling, the first node may determine a resource configuration for the SRS based on the SRS resource index in the DCI signaling, and transmit the SRS based on the resource configuration for the SRS.
[0163] In a possible embodiment, the timing type indicated by the SRS request field may be specified in advance in the protocol. Upon receiving the DCI signaling, the first node may determine the corresponding timing type based on the SRS resource index in the DCI signaling, and determine the SRS transmission timing based on the timing type. Possible correspondences are shown in Table 7. Of course, other combinations of SRS resource sets and timing types exist. [Table 7]
[0164] In this way, the SRS resource index may indicate the timing type.
[0165] In another possible embodiment, the second node may indicate the timing type to the first node, or the SRS resource index may be reused. Thus, in addition to the bits occupied by the existing SRS resource index, bits need to be added to indicate the timing type based on indicating the resource configuration. It is assumed that there are three types of timing types. For example, in Table 6, in addition to the bits occupied by the SRS resource index, one or more bits need to be added to indicate the timing type. For example, one bit is added, i.e., the SRS resource index is three bits. For example, the SRS resource index may be as shown in Table 8. [Table 8]
[0166] Of course, the SRS resource index is 3 bits and can indicate 8 combination relationships between SRS resource sets and timing types. All combination relationships between the 3 SRS resource sets and the 3 timing types cannot be exhaustively listed. The SRS resource index may be extended to more bits to indicate the combination relationships. The number of bits of the SRS resource index may be configured according to actual applications.
[0167] It will be understood that if the control information indicates transmission of another type of reference signal, the method for indicating the timing type is similar to the method for indicating aperiodic SRS by using DCI, and the method for indicating the timing type may be obtained by analogy.
[0168] As shown in FIG. 8, the specific procedure of the third transmission timing determination method according to an embodiment of the present application is described as follows:
[0169] S801: A second node sends configuration information to a first node, and the first node receives configuration information from the second node.
[0170] The configuration information includes the correspondence between time unit indexes and timing types.
[0171] S802: The first node determines, based on the correspondence, a first timing type associated with the first time unit.
[0172] S803: Determine, based on the first timing type, a transmission timing for the first node to perform uplink transmission in the first time unit.
[0173] The time unit may be a slot, or may be a subframe, a symbol, a system frame, or another type of time domain resource. For example, the time unit is a slot, and the configuration information includes a correspondence between a slot index and a timing type.
[0174] The second node may be a donor node or a superior node. One system frame includes multiple slots, and the correspondence between one or more slot indexes and timing types may be configured by using configuration information.
[0175] The number of slots included in the system frame varies at different subcarrier intervals, and the correspondence included in the configuration information may be a correspondence between slot indexes and timing types on the reference subcarriers.
[0176] The first node may determine a first timing type associated with the first time unit based on the reference subcarrier spacing, the subcarrier spacing corresponding to the first time unit, and the correspondence relationship. For example, the first node may determine a first time unit index corresponding to the first time unit in the reference subcarrier spacing based on the subcarrier spacing corresponding to the first time unit, and determine a first timing type associated with the first time unit index based on the correspondence relationship.
[0177] For example, the reference subcarrier spacing is 60 kHz, the first time unit is the first slot, and the subcarrier spacing corresponding to the first slot is 120 kHz. The number of slots included in the 60 kHz system frame is different from that included in the 120 kHz system frame. The number of slots included in the 60 kHz system frame is 40, and the number of slots included in the 120 kHz system frame is 80. Figure 9 shows the correspondence between the slot sequence numbers included in the 60 kHz system frame and the 120 kHz system frame.
[0178] The correspondence included in the configuration information acquired by the first node is a correspondence between slot index and timing type at 60 kHz. For example, at 60 kHz, slot index 0 corresponds to timing type 1, slot index 1 corresponds to timing type 2, and slot index 2 corresponds to timing type 3. In this case, if the first node wants to determine the timing type corresponding to the first slot, the first node first needs to determine the slot index corresponding to the first slot in the reference subcarrier. It is assumed that the first slot is slot sequence number 2 at 120 kHz, and the first node determines that slot sequence number 2 at 120 kHz corresponds to slot index 1 at 60 kHz, and further determines that slot index 1 at 60 kHz corresponds to timing type 2, and as a result, the first node may determine that slot sequence number 2 at 120 kHz corresponds to timing type 2.
[0179] The subcarrier spacing corresponding to the first time unit is the subcarrier spacing at which the first node actually performs uplink transmission. If the subcarrier spacing at which the first node actually performs transmission is the reference subcarrier spacing, the first node may directly determine the associated first timing type based on the first slot.
[0180] There may be several types of reference subcarrier spacing, and the first node may obtain the type of the reference subcarrier spacing in advance.
[0181] The reference subcarrier spacing may be the subcarrier spacing of the serving carrier of the first node. Alternatively, the reference subcarrier spacing may be the subcarrier spacing of an active bandwidth part (BWP) of the first node. Alternatively, the reference subcarrier spacing may be the subcarrier spacing indicated by an instruction from the second node. For example, the reference subcarrier spacing may be indicated by using the configuration information in S801 or by using other signaling.
[0182] The following describes the correspondence between time unit index and timing type by using an example. The time unit still uses slot as an example. Table 9a or Table 9b shows the correspondence between slot index and timing type. [Table 9] [Table 10]
[0183] It will be understood that the correspondence between time unit index and timing type may indicate several time units within a system frame, and a default timing type is used for time units not shown. In Table 9a, slot indices 3, 5, and 7 correspond to timing type 2, slot indices 11, 13, and 27 correspond to timing type 3, and other not shown slot indices correspond to timing type 1 or another default timing type.
[0184] As in the previous description, the timing type in the correspondence relationship may be represented by using the index number of the timing type, the specific meaning of the timing type, or the multiplexing mode. For example, as shown in Table 10, timing type 2 is represented by MT-Tx / DU-Tx, i.e., a spatial multiplexing scenario in which IAB nodes simultaneously perform transmission, and timing type 3 is represented by MT-Rx / DU-Rx, i.e., a spatial multiplexing scenario in which IAB nodes simultaneously perform reception. [Table 11]
[0185] If the slot index is not configured, timing type 1 may be used by default.
[0186] The configuration information in the embodiment of Figure 8 includes a correspondence between time unit indexes and timing types, and may be configured for one or more uplink transmission types. For example, the correspondence may be a correspondence corresponding to PUSCH transmission, a correspondence corresponding to PUCCH transmission, or a correspondence corresponding to SRS transmission. Alternatively, multiple uplink transmission types may correspond to the same correspondence. For example, PUSCH transmission, PUCCH transmission, and SRS transmission all correspond to the same correspondence.
[0187] Optionally, the uplink transmission type for which the configuration information is specific may be specified or explicitly indicated in the protocol, for example, the configuration information may further hold a channel corresponding to a correspondence or corresponding to an uplink transmission type.
[0188] S801: A second node sends configuration information to a first node, where the second node may be a donor node. The donor node sends the configuration information to the first node. The configuration information may be an RRC message, or the configuration information may be held in the RRC message. For example, the donor node sends an RRC message to the first node and adds a correspondence between a time unit index and a timing type to the RRC message. The first node receives the RRC message from the donor node and obtains the correspondence between the time unit index and the timing type from the RRC message.
[0189] The donor node further needs to transmit the correspondence to the DU of the upper node of the first node. For example, the donor node transmits the correspondence to the DU of the upper node of the first node through F1-AP signaling. In this way, the DU of the upper node of the first node obtains the correspondence and determines the transmission timing of downlink transmission based on the correspondence. Therefore, the transmission timing of the downlink transmission of the DU of the upper node of the first node corresponds to the transmission timing of the uplink transmission of the MT of the first node.
[0190] The following provides transmission timing determination methods for specific uplink transmission types.
[0191] 1. Configured Grant PUSCH
[0192] The ConfiguredGrant PUSCH is a pre-configured resource that is periodically used for uplink data transmission and does not require DCI for scheduling. The ConfiguredGrant PUSCH is also referred to as grant-free uplink transmission or semi-persistent scheduling.
[0193] The ConfiguredGrant PUSCH includes two types. Type 1 ConfiguredGrant PUSCH resources refer to periodic PUCCH resources configured by a base station through RRC signaling. In this embodiment of the present application, the second node may configure periodic PUCCH resources for the first node through RRC signaling. For type 1 ConfiguredGrant PUSCH, the aforementioned default uplink transmission timing may be used. For example, the uplink transmission timing is determined by using timing type 1 by default. Alternatively, when configuring the ConfiguredGrant PUSCH resource through an RRC message, the second node may explicitly indicate the timing type. For example, the RRC message holds configuration information of the ConfiguredGrant PUSCH resource, and the configuration information includes a field indicating the timing type.
[0194] Type-2 ConfiguredGrant PUSCH refers to a periodic PUCCH resource configured by the second node for the first node through RRC signaling and requires a DCI to activate the ConfiguredGrant PUSCH. For the Type-2 ConfiguredGrant PUSCH, the timing type may be determined based on the scrambling information carried in the DCI. See the method in the embodiment in Figure 6. For a method for determining by the first node the timing type associated with the scrambling information carried in the DCI, and the correspondence between the scrambling information and the timing type, and how the first node determines the timing type based on the correspondence, see the description of the embodiment in Figure 6. The scrambling information may be a CS-RNTI.
[0195] In a possible implementation, the timing type of a Type-2 ConfiguredGrant PUSCH may be determined in the following manner: a ConfiguredGrant configuration index (ConfigIndex) is an index number of a group of resource configurations in a protocol, and a correspondence between the resource configuration index and the timing type may be set. The correspondence may be specified in advance in the protocol or may be transmitted by the second node to the first node. When recognizing the ConfiguredGrant ConfigIndex based on the correspondence between the resource configuration index and the timing type, the first node may determine the timing type associated with the ConfiguredGrant ConfigIndex and may further determine the transmission timing for transmitting the PUSCH by using the timing type on the resource corresponding to the ConfiguredGrant ConfigIndex.
[0196] 2. PUCCH and / or SRS
[0197] When the first node can determine the timing type of the PUSCH and the transmission timing for transmitting the PUSCH, and if the first node further transmits a PUCCH and / or an SRS, the first node may determine the transmission timing of the PUCCH and / or the SRS in the following manner: The timing type of the PUSCH may be determined by using the method in any one of the foregoing embodiments in Figure 6, Figure 7, or Figure 8.
[0198] Scheme 1: The transmission timing of the PUCCH and / or SRS associated with the PUSCH follows the transmission timing of the PUSCH. For example, if the PUCCH transmits information used to control the PUSCH, the PUCCH is associated with the PUSCH. In another example, if the SRS is a reference signal used for PUSCH transmission, the SRS is associated with the PUSCH.
[0199] Alternatively, when the PUCCH and / or SRS and the PUSCH are located in the same slot, the transmission timing of the PUCCH and / or SRS is determined based on the timing type of the PUSCH. For example, the timing type of the PUSCH may be determined by using the method in the embodiment of FIG. 6. The first node receives control information, determines a first timing type associated with first scrambling information, and determines the transmission timing of the PUSCH based on the first timing type. The first node may further determine the transmission timing of the PUCCH and / or SRS in the transmission slot of the PUSCH based on the first timing type. Alternatively, the transmission timing of the PUCCH and / or SRS transmitted in the same slot as the PUSCH is the same as the transmission timing of the PUSCH.
[0200] Scheme 2: If a PUSCH transmission does not occur in a PUCCH and / or SRS transmission slot according to the criteria specified in Scheme 1, the transmission timing of the PUCCH and / or SRS is determined based on a default timing type. For example, the default timing type is timing type 1. Alternatively, if a PUSCH transmission does not occur in a PUCCH and / or SRS transmission slot according to the criteria specified in Scheme 1, the PUCCH and / or SRS are not transmitted during this period.
[0201] The PUCCH transmission and / or SRS transmission that satisfies the above-mentioned scheme 1 may be periodic or may be triggered by control signaling.
[0202] In addition, if PUCCH transmission and / or SRS transmission is triggered by control signaling, the PUCCH transmission and / or SRS transmission may be determined by using the method in any of the embodiments of Figure 6, Figure 7, or Figure 8.
[0203] Scheme 3: Timing type 1 is used by default for periodic PUCCH and / or SRS transmission. Common terminal devices served by the upper node of the first node also determine their transmission timing by using timing type 1. This facilitates uplink multiplexing of IAB nodes and common terminal devices. Using timing type 1 also helps reduce interference in the network.
[0204] Manner 4: The timing type of periodic PUCCH and / or SRS transmission is related to the TDD resource transmission direction.
[0205] If one or more time domain resources occupied by PUCCH and / or SRS in the current period overlap with a UL slot in the second configuration, the first node uses timing type 2 or timing type 3.
[0206] If one or more time domain resources occupied by PUCCH and / or SRS in the current period overlap with a UL slot in the first configuration, the first node uses timing type 1.
[0207] If a UL slot in the first configuration and a UL slot in the second configuration overlap and one or more time domain resources occupied by PUCCH and / or SRS in the current period overlap with a UL slot in the first configuration and a UL slot in the second configuration, the first node uses a default timing type, for example, timing type 1.
[0208] To implement the functions in the methods provided in the foregoing embodiments of the present application, the first node may include a hardware structure and / or a software module, and implement the foregoing functions by using the hardware structure, the software module, or a combination of the hardware structure and the software module. Whether a certain function among the foregoing functions is implemented by using the hardware structure, the software module, or a combination of the hardware structure and the software module depends on the specific application and design constraints of the technical solution.
[0209] Based on the same technical concept, an embodiment of the present application further provides a communication device 1000, as shown in FIG. 10 . The communication device 1000 may be the aforementioned first node, may be a device in the first node, or may be a device that can be used with the first node. In one design, the communication device 1000 may include modules corresponding to performing the method / operation / step / action performed by the first node in the aforementioned method embodiments. The modules may be hardware circuits, software, or may be implemented using a combination of hardware circuits and software. In one design, the device may include a processing module 1001 and a communication module 1002.
[0210] In one embodiment, the communication module 1002 is configured to receive control information from a second node, the control information including scheduling information for uplink transmission, and the control signaling including first scrambling information.
[0211] The processing module 1001 is configured to determine a first timing type associated with the first scrambling information, and determine a transmission timing of the uplink transmission based on the first timing type.
[0212] In another embodiment, the communication module 1002 is configured to receive configuration information from a second node, the configuration information including a correspondence between a time unit index and a timing type.
[0213] The processing module 1001 is configured to determine, based on the correspondence, a first timing type associated with the first time unit; and determine, based on the first timing type, a transmission timing for performing uplink transmission in the first time unit.
[0214] In another embodiment, the communication module 1002 is configured to receive control information from a second node, the control information including scheduling information for a sounding reference signal (SRS) transmission, the control signaling including first information, the first information indicating an SRS transmission configuration.
[0215] The processing module 1001 is configured to determine a first timing type associated with the first information, and determine a transmission timing of the uplink transmission based on the first timing type.
[0216] The processing module 1001 and the communication module 1002 may be further configured to perform other corresponding steps or operations performed by the first node in the above-described method embodiments, which will not be described again in detail herein.
[0217] The division into modules in the embodiments of the present application is merely an example and is a division into logical functions, and other divisions may be used in actual implementation. In addition, the functional modules in the embodiments of the present application may be integrated into one processor, each module may exist physically alone, or two or more modules may be integrated into one module. The integrated module may be implemented in the form of hardware or in the form of a software functional module.
[0218] FIG. 11 illustrates a communication device 1100 according to an embodiment of the present application. The communication device 1100 is configured to implement the functionality of the first node in the aforementioned method. The device may be the first node, a device within the first node, or a device that can be used with the first node. The device may be a chip system. In this embodiment of the present application, the chip system may include a chip or may include a chip and other discrete components. The communication device 1100 includes at least one processor 1120 and is configured to implement the functionality of the first node in the method provided in the embodiment of the present application. The communication device 1100 may further include a communication interface 1110. In this embodiment of the present application, the communication interface may be a transceiver, a circuit, a bus, a module, or another type of communication interface, configured to communicate with another device through a transmission medium. For example, the communication interface 1110 is used by a device within the communication device 1100 to communicate with another device. For example, if the communications device 1100 is a first node, the other device may be a second node or a donor node. The processor 1120 is configured to receive and transmit data through the communications interface 1110 and to implement the methods in the method embodiments described above.
[0219] In one embodiment, the communication interface 1110 is configured to receive control information from the second node, the control information including scheduling information for an uplink transmission, and the control signaling including first scrambling information. The processor 1120 is configured to determine a first timing type associated with the first scrambling information and determine a transmission timing of the uplink transmission based on the first timing type.
[0220] Optionally, the communication interface 1110 is further configured to receive, from the donor node, a correspondence between the scrambling information and the timing type.
[0221] When determining the first timing type associated with the first scrambling information, the processor 1120 is configured to determine the first timing type associated with the first scrambling information based on the correspondence relationship.
[0222] Optionally, the first timing type includes any one of the following:
[0223] The uplink transmission timing is determined based on timing advance TA indication information from the second node; the uplink transmission timing of the mobile termination MT of the first node is aligned with the downlink transmission timing of the distributed unit DU of the first node; or the uplink reception timing of the MT of the first node is aligned with the downlink reception timing of the DU of the first node.
[0224] Optionally, the uplink transmission is a PUSCH transmission.
[0225] The communication interface 1110 includes: The mobile station is further configured to transmit a physical uplink control channel (PUCCH) and / or an uplink sounding reference signal (SRS), and when the PUCCH and / or SRS and the PUSCH are located in the same slot, the transmission timing of the PUCCH and / or SRS is determined based on the first timing type.
[0226] Optionally, the processor 1120: The PUCCH and / or SRS may be further configured to determine transmission timing of the PUCCH and / or SRS based on a default timing type when a PUSCH transmission is not present in a transmission slot of the PUCCH and / or SRS.
[0227] Optionally, the control information is used to activate a pre-configured granted PUSCH transmission.
[0228] In another embodiment, the communication interface 1110 is configured to receive configuration information from a second node, the configuration information including a correspondence between a time unit index and a timing type.
[0229] The processor 1120 is configured to determine, based on the correspondence, a first timing type associated with the first time unit, and determine, based on the first timing type, a transmission timing for performing uplink transmission in the first time unit.
[0230] Optionally, the time unit index is an index determined in a reference subcarrier interval.
[0231] When determining the first timing type associated with the first time unit based on the correspondence, the processor 1120 specifically: Determine a first timing type associated with the first time unit based on the reference subcarrier spacing, a subcarrier spacing corresponding to the first time unit, and a correspondence relationship. It is structured as follows.
[0232] Optionally, when determining the first timing type associated with the first time unit based on the reference subcarrier spacing, the subcarrier spacing corresponding to the first time unit, and the correspondence relationship, the processor 1120 specifically: determining a first time unit index corresponding to the first time unit in a reference subcarrier spacing based on the subcarrier spacing corresponding to the first time unit; and Determine a first timing type associated with the first time unit index based on the correspondence. It is structured as follows.
[0233] Optionally, the reference subcarrier spacing is a subcarrier spacing of a serving carrier of the first node; the reference subcarrier spacing is a subcarrier spacing of an active bandwidth portion BWP of the first node; or the reference subcarrier spacing is a subcarrier spacing indicated by an instruction from the second node.
[0234] Optionally, the first timing type includes any one of the following:
[0235] The uplink transmission timing is determined based on timing advance TA indication information from the second node; the uplink transmission timing of the mobile termination MT of the first node is aligned with the downlink transmission timing of the distributed unit DU of the first node; or the uplink reception timing of the MT of the first node is aligned with the downlink reception timing of the DU of the first node.
[0236] Optionally, the correspondence between the time unit index and the timing type is associated with an uplink transmission type, where the uplink transmission type includes one or more of a physical uplink shared channel PUSCH, a physical uplink control channel PUCCH, or a sounding reference signal SRS.
[0237] In another embodiment, the communication interface 1110 is configured to receive control information from a second node, the control information including scheduling information for a sounding reference signal (SRS) transmission, and the control signaling including first information, the first information indicating an SRS transmission configuration.
[0238] The processor 1120 is configured to determine a first timing type associated with the first information and determine a transmission timing of the uplink transmission based on the first timing type.
[0239] Optionally, the first information further indicates a first timing type.
[0240] Optionally, the correspondence between the first information and the first timing type is specified in a protocol.
[0241] The communication device 1100 may further include at least one memory 1130 configured to store program instructions and / or data. The memory 1130 is coupled to the processor 1120. A coupling in this embodiment of the present application may be an indirect coupling or communication connection between devices, units, or modules in an electrical, mechanical, or other form, used for information exchange between the devices, units, or modules. The processor 1120 may operate in cooperation with the memory 1130. The processor 1120 may execute program instructions stored in the memory 1130. At least one of the at least one memory may be included in the processor.
[0242] The specific connection medium between the communication interface 1110, the processor 1120, and the memory 1130 is not limited in this embodiment of the present application. In this embodiment of the present application, in FIG. 11, the memory 1130, the processor 1120, and the communication interface 1110 are connected to each other through a bus 1140. In FIG. 11, the bus is represented by using a thick line. The connection method between the other components is described schematically and is not limited thereto. The bus may be classified into an address bus, a data bus, a control bus, and the like. For ease of representation, only one thick line is used to represent the bus in FIG. 11, but this does not mean that there is only one bus or only one type of bus.
[0243] In the present embodiments of the present application, the processor may be a general-purpose processor, a digital signal processor, an application-specific integrated circuit, a field programmable gate array or other programmable logic device, a discrete gate or transistor logic device, or a discrete hardware component, which may implement or execute the methods, steps, and logic block diagrams disclosed in the embodiments of the present application. The general-purpose processor may be a microprocessor or any conventional processor, etc. Each step of the method disclosed with reference to the embodiments of the present application may be performed directly by a hardware processor, or may be performed using a combination of processor hardware and software modules.
[0244] In this embodiment of the present application, memory may be non-volatile memory, such as a hard disk drive (HDD) or solid-state drive (SSD), or may be volatile memory, such as random access memory (RAM). Memory is any medium that can hold or store desired program code in the form of instructions or data structures and that can be accessed by a computer, but is not limited to this. Memory in this embodiment of the present application may alternatively be a circuit or any other device that can implement a storage function and is configured to store program instructions and / or data.
[0245] When the communication device 1000 and the communication device 1100 are specifically chips or chip systems, the communication module 1902 and the communication interface 1110 may output or receive baseband signals. When the device 1000 and the device 1100 are specifically devices, the communication module 1002 and the communication interface 1110 may output or receive radio frequency signals.
[0246] An embodiment of the present application provides a computer storage medium storing a computer program, the computer program including instructions used to perform the transmission resource configuration method provided in the above-mentioned embodiment.
[0247] An embodiment of the present application provides a computer program product including instructions, which, when executed on a computer, enables the computer to perform the transmission resource configuration method provided in the foregoing embodiment.
[0248] An embodiment of the present application further provides a chip, the chip including a processor and an interface circuit, the interface circuit coupled to the processor, the processor configured to execute a computer program or instruction to implement the transmission resource configuration described above, and the interface circuit configured to communicate with another module external to the chip.
[0249] Those skilled in the art will understand that the embodiments of the present application may be provided as a method, a system, or a computer program product. Therefore, the present application may take the form of a hardware-only embodiment, a software-only embodiment, or an embodiment that combines software and hardware. In addition, the present application may take the form of a computer program product embodied in one or more computer-usable storage media (including, but not limited to, disk memory, CD-ROM, optical memory, etc.) containing computer-usable program code.
[0250] The present application has been described with reference to flowcharts and / or block diagrams of methods, devices (systems), and computer program products according to embodiments of the present application. It should be understood that computer program instructions can be used to implement each process and / or each block in the flowcharts and / or block diagrams, and combinations of processes and / or blocks in the flowcharts and / or block diagrams. These computer program instructions may be provided to a processor of a general-purpose computer, a special-purpose computer, an embedded processor, or any other programmable data processing device to create a machine, such that the instructions, executed by the processor of the computer or another programmable data processing device, create an apparatus for implementing the specific function(s) in one or more processes in the flowcharts and / or one or more blocks in the block diagrams.
[0251] The computer program instructions may alternatively be stored in a computer-readable memory that can be configured to cause a computer or other programmable data processing device to operate in another particular manner, such that the instructions stored in the computer-readable memory produce an artifact that includes an instruction apparatus that implements a particular function in one or more processes of the flowcharts and / or one or more blocks of the block diagrams.
[0252] The computer program instructions may alternatively be loaded into a computer or other programmable data processing device such that a sequence of operations and steps are executed on the computer or other programmable device to produce a computer-implemented process. Thus, the instructions executed on the computer or other programmable device provide steps for implementing a particular function in one or more procedures of the flowcharts and / or one or more blocks of the block diagrams.
[0253] Although several preferred embodiments of the present application have been described, those skilled in the art may make changes and modifications to these embodiments once they recognize the basic technical concepts. Therefore, it is intended that the following claims be interpreted to encompass all changes and modifications that fall within the scope of the preferred embodiments and the present application.
[0254] Obviously, those skilled in the art may make various modifications and variations to the embodiments of the present application without departing from the spirit and scope of the present application, and the present application intends to cover these modifications and variations provided within the scope of protection defined by the following claims and equivalent technologies. [Other possible items] [Item 1] receiving, by the first node, control information from the second node, wherein the control information includes scheduling information for uplink transmission and the control signaling includes first scrambling information; determining, by the first node, a first timing type associated with the first scrambling information; and determining, by the first node, a transmission timing of the uplink transmission based on the first timing type; A transmission timing determination method comprising: [Item 2] The method further comprises receiving, by the first node, from a donor node, a correspondence between scrambling information and timing types; and Item 1. The method of item 1, wherein the step of determining, by the first node, a first timing type associated with the first scrambling information comprises the step of determining, by the first node, the first timing type associated with the first scrambling information based on the correspondence. [Item 3] The first timing type is: uplink transmission timing is determined based on timing advance (TA) indication information from the second node; the uplink transmission timing of the mobile termination MT of said first node is aligned with the downlink transmission timing of the distributed unit DU of said first node; or The uplink receive timing of the MT of the first node is aligned with the downlink receive timing of the DU of the first node. 3. The method according to item 1 or 2, comprising any one of the following: [Item 4] The uplink transmission is a PUSCH transmission; and The method comprises: transmitting, by the first node, a physical uplink control channel (PUCCH) and / or an uplink sounding reference signal (SRS), wherein if the PUCCH and / or the SRS and PUSCH are located in the same slot, transmission timing of the PUCCH and / or the SRS is determined based on the first timing type. 4. The method of any one of items 1 to 3, further comprising: [Item 5] determining the transmission timing of the PUCCH and / or the SRS based on a default timing type when there is no PUSCH transmission in a transmission slot of the PUCCH and / or the SRS; Item 5. The method of item 4, further comprising: [Item 6] 6. The method according to any one of items 1 to 5, wherein the control information is used to activate a preconfigured granted PUSCH transmission. [Item 7] receiving, by the first node, configuration information from the second node, wherein the configuration information includes a correspondence between a time unit index and a timing type; determining, by the first node, a first timing type associated with a first time unit based on the correspondence; and determining, by the first node, a transmission timing for performing an uplink transmission in the first time unit based on the first timing type; A transmission timing determination method comprising: [Item 8] The time unit index is an index determined in a reference subcarrier interval; and determining, by the first node, a first timing type associated with a first time unit based on the correspondence, determining, by the first node, the first timing type associated with the first time unit based on the reference subcarrier spacing, the subcarrier spacing corresponding to the first time unit, and the correspondence relationship; 8. The method according to item 7, comprising: [Item 9] determining, by the first node, the first timing type associated with the first time unit based on the reference subcarrier spacing, the subcarrier spacing corresponding to the first time unit, and the correspondence relationship, determining, by the first node, a first time unit index in the reference subcarrier spacing corresponding to the first time unit based on the subcarrier spacing corresponding to the first time unit; and determining, by the first node, the first timing type associated with the first time unit index based on the correspondence; Item 9. The method according to Item 8, comprising: [Item 10] The reference subcarrier spacing is a subcarrier spacing of a serving carrier of the first node; the reference subcarrier spacing is the subcarrier spacing of the active bandwidth portion BWP of the first node; or 10. The method according to claim 8 or 9, wherein the reference subcarrier spacing is a subcarrier spacing indicated by a command from the second node. [Item 11] The first timing type is: uplink transmission timing is determined based on timing advance (TA) indication information from the second node; the uplink transmission timing of the mobile termination MT of said first node is aligned with the downlink transmission timing of the distributed unit DU of said first node; or The uplink receive timing of the MT of the first node is aligned with the downlink receive timing of the DU of the first node. 11. The method according to any one of items 7 to 10, comprising any one of the following: [Item 12] 12. The method according to any one of items 7 to 11, wherein the correspondence between the time unit index and the timing type is associated with an uplink transmission type, the uplink transmission type comprising one or more of a Physical Uplink Shared Channel (PUSCH), a Physical Uplink Control Channel (PUCCH), or a Sounding Reference Signal (SRS). [Item 13] receiving, by a first node, control information from a second node, wherein the control information includes scheduling information for a sounding reference signal (SRS) transmission, the control signaling including first information, the first information indicating an SRS transmission configuration; determining, by the first node, a first timing type associated with the first information; and determining, by the first node, a transmission timing of an uplink transmission based on the first timing type; A transmission timing determination method comprising: [Item 14] Item 14. The method of item 13, wherein the first information further indicates the first timing type. [Item 15] Item 14. The method according to item 13, wherein the correspondence between the first information and the first timing type is specified in a protocol. [Item 16] a communications module configured to receive control information from a second node, where the control information includes scheduling information for uplink transmissions and the control signaling includes first scrambling information; and a processing module configured to determine a first timing type associated with the first scrambling information and to determine a transmission timing of the uplink transmission based on the first timing type. A transmission timing determination device applied to a first node, comprising: [Item 17] The communication module is further configured to receive, from a donor node, a correspondence between scrambling information and timing types; and Item 17. The apparatus of item 16, wherein when determining the first timing type associated with the first scrambling information, the processing module is configured to determine the first timing type associated with the first scrambling information based on the correspondence. [Item 18] The first timing type is: uplink transmission timing is determined based on timing advance (TA) indication information from the second node; the uplink transmission timing of the mobile termination MT of said first node is aligned with the downlink transmission timing of the distributed unit DU of said first node; or The uplink receive timing of the MT of the first node is aligned with the downlink receive timing of the DU of the first node. 18. The device according to item 16 or 17, comprising any one of: [Item 19] The uplink transmission is a PUSCH transmission; and The communication module includes: 19. The apparatus according to any one of claims 16 to 18, further configured to transmit a physical uplink control channel (PUCCH) and / or an uplink sounding reference signal (SRS), wherein if the PUCCH and / or the SRS and PUSCH are located in the same slot, the transmission timing of the PUCCH and / or the SRS is determined based on the first timing type. [Item 20] The processing module includes: When there is no PUSCH transmission in the transmission slot of the PUCCH and / or the SRS, determining the transmission timing of the PUCCH and / or the SRS based on a default timing type. 20. The apparatus according to item 19, further configured as follows: [Item 21] 21. The apparatus of claim 16, wherein the control information is used to activate a preconfigured granted PUSCH transmission. [Item 22] a communication module configured to receive configuration information from a second node, wherein the configuration information includes a correspondence between a time unit index and a timing type; and a processing module configured to determine, based on the correspondence, a first timing type associated with a first time unit, and to determine, based on the first timing type, a transmission timing for performing an uplink transmission in the first time unit. A transmission timing determination device applied to a first node, comprising: [Item 23] The time unit index is an index determined in a reference subcarrier interval; and When determining the first timing type associated with the first time unit based on the correspondence relationship, the processing module specifically: determining the first timing type associated with the first time unit based on the reference subcarrier spacing, the subcarrier spacing corresponding to the first time unit, and the correspondence relationship; Item 23. The device according to item 22, configured as follows: [Item 24] When determining the first timing type associated with the first time unit based on the reference subcarrier spacing, the subcarrier spacing corresponding to the first time unit, and the correspondence relationship, the processing module specifically: determining a first time unit index corresponding to the first time unit in the reference subcarrier spacing based on the subcarrier spacing corresponding to the first time unit; and determining the first timing type associated with the first time unit index based on the correspondence; Item 24. The device according to item 23, configured as follows: [Item 25] The reference subcarrier spacing is a subcarrier spacing of a serving carrier of the first node; the reference subcarrier spacing is the subcarrier spacing of the active bandwidth portion BWP of the first node; or 25. The apparatus of claim 23 or 24, wherein the reference subcarrier spacing is a subcarrier spacing indicated by an instruction from the second node. [Item 26] The first timing type is: uplink transmission timing is determined based on timing advance (TA) indication information from the second node; the uplink transmission timing of the mobile termination MT of said first node is aligned with the downlink transmission timing of the distributed unit DU of said first node; or The uplink receive timing of the MT of the first node is aligned with the downlink receive timing of the DU of the first node. 26. The device according to any one of items 22 to 25, comprising any one of: [Item 27] 27. The apparatus of claim 22, wherein the correspondence between the time unit index and the timing type is associated with an uplink transmission type, the uplink transmission type comprising one or more of a physical uplink shared channel (PUSCH), a physical uplink control channel (PUCCH), or a sounding reference signal (SRS). [Item 28] a communications module configured to receive control information from a second node, where the control information includes scheduling information for a sounding reference signal (SRS) transmission, and the control signaling includes first information, the first information indicating an SRS transmission configuration; and a processing module configured to determine a first timing type associated with the first information and determine a transmission timing of an uplink transmission based on the first timing type; A transmission timing determination device comprising: [Item 29] Item 29. The apparatus of item 28, wherein the first information further indicates the first timing type. [Item 30] Item 29. The apparatus of item 28, wherein the correspondence between the first information and the first timing type is specified in a protocol. [Item 31] A communication device comprising a processor and a communication interface, the communication interface configured to communicate with another communication device, and the processor configured to execute a set of programs to enable the communication device to implement the method of any one of items 1 to 6, the method of any one of items 7 to 12, or the method of any one of items 13 to 15. [Item 32] A chip system comprising a processor, the processor being configured to be coupled to a memory, the processor being configured to call a program to implement the method of any one of items 1 to 6, the method of any one of items 7 to 12, or the method of any one of items 13 to 15. [Item 33] A computer-readable storage medium storing computer-readable instructions that, when executed on a communication device, enable the communication device to perform the method of any one of items 1 to 6, the method of any one of items 7 to 12, or the method of any one of items 13 to 15.
Claims
1. A transmission timing determination method, comprising: determining, by a first node, configuration information, the configuration information including a correspondence between a time unit index and a timing type; transmitting, by the first node, the configuration information to a second node, wherein the correspondence is used by the second node to determine a first timing type associated with a first time unit; Equipped with The first timing type is: an uplink transmission timing is determined based on timing advance (TA) indication information transmitted by the first node; the uplink transmission timing of a mobile termination (MT) of the second node is aligned with the downlink transmission timing of a distributed unit (DU) of the second node; or The uplink receive timing of the DU at the second node is aligned with the downlink receive timing of the MT at the second node. Contains one of the following: method.
2. The first timing type includes any one of timing type 1, timing type 2, and timing type 3. The method of claim 1.
3. The bits corresponding to the timing type 1 are 00, the bits corresponding to the timing type 2 are 01, and the bits corresponding to the timing type 3 are 10. The method of claim 2.
4. The correspondence between the time unit index and the timing type indicates some time units within a system frame, and the timing type for a time unit not indicated within the system frame is a default timing type. The method of claim 3.
5. the time unit index is an index determined in a reference subcarrier interval, The first timing type associated with the first time unit is determined based on the reference subcarrier spacing, the subcarrier spacing corresponding to the first time unit, and the correspondence relationship.
5. The method according to any one of claims 1 to 4.
6. a first time unit index corresponding to the first time unit in the reference subcarrier spacing is determined based on the subcarrier spacing corresponding to the first time unit; The first timing type associated with the first time unit index is determined based on the correspondence. The method of claim 5.
7. the reference subcarrier spacing is a subcarrier spacing of a serving carrier of the first node; the reference subcarrier spacing is a subcarrier spacing of an active bandwidth portion (BWP) of the first node; or The reference subcarrier spacing is the subcarrier spacing indicated by the command from the second node. The method of claim 5.
8. The correspondence between the time unit index and the timing type indicates a correspondence between each time unit index of a plurality of time unit indexes, and the timing type is the uplink transmission timing is determined based on the TA indication information transmitted by the first node. the uplink transmission timing of the MT of the second node is aligned with the downlink transmission timing of the DU of the second node; or The uplink receive timing of the DU at the second node is aligned with the downlink receive timing of the MT at the second node. Contains one of the following:
5. The method according to any one of claims 1 to 4.
9. The correspondence between the time unit index and the timing type is associated with an uplink transmission type, the uplink transmission type including one or more of a physical uplink shared channel (PUSCH), a physical uplink control channel (PUCCH), or a sounding reference signal (SRS).
5. The method according to any one of claims 1 to 4.
10. A transmission timing determination device applied to a first node, comprising: a processing module configured to determine configuration information, the configuration information including a correspondence between a time unit index and a timing type; a communication module configured to transmit the configuration information to a second node, the correspondence being used by the second node to determine a first timing type associated with a first time unit; Equipped with The first timing type is: an uplink transmission timing is determined based on timing advance (TA) indication information transmitted by the first node; the uplink transmission timing of a mobile termination (MT) of the second node is aligned with the downlink transmission timing of a distributed unit (DU) of the second node; or The uplink receive timing of the DU at the second node is aligned with the downlink receive timing of the MT at the second node. Contains one of the following: Device.
11. The first timing type includes any one of timing type 1, timing type 2, and timing type 3.
11. The apparatus of claim 10.
12. The bits corresponding to the timing type 1 are 00, the bits corresponding to the timing type 2 are 01, and the bits corresponding to the timing type 3 are 10.
12. The apparatus of claim 11.
13. The correspondence between the time unit index and the timing type indicates some time units within a system frame, and the timing type for a time unit not indicated within the system frame is a default timing type.
13. The apparatus of claim 12.
14. the time unit index is an index determined in a reference subcarrier interval, The first timing type associated with the first time unit is determined based on the reference subcarrier spacing, the subcarrier spacing corresponding to the first time unit, and the correspondence relationship.
14. Apparatus according to any one of claims 10 to 13.
15. a first time unit index corresponding to the first time unit in the reference subcarrier spacing is determined based on the subcarrier spacing corresponding to the first time unit; The first timing type associated with the first time unit index is determined based on the correspondence.
15. The apparatus of claim 14.
16. the reference subcarrier spacing is a subcarrier spacing of a serving carrier of the first node; the reference subcarrier spacing is a subcarrier spacing of an active bandwidth portion (BWP) of the first node; or The reference subcarrier spacing is the subcarrier spacing indicated by the command from the second node.
15. The apparatus of claim 14.
17. The correspondence between the time unit index and the timing type indicates a correspondence between each time unit index of a plurality of time unit indexes, and the timing type is the uplink transmission timing is determined based on the TA indication information transmitted by the first node. the uplink transmission timing of the MT of the second node is aligned with the downlink transmission timing of the DU of the second node; or The uplink receive timing of the DU at the second node is aligned with the downlink receive timing of the MT at the second node. Contains one of the following:
14. Apparatus according to any one of claims 10 to 13.
18. The correspondence between the time unit index and the timing type is associated with an uplink transmission type, the uplink transmission type including one or more of a physical uplink shared channel (PUSCH), a physical uplink control channel (PUCCH), or a sounding reference signal (SRS).
14. Apparatus according to any one of claims 10 to 13.
19. In the first node, determining, by the first node, configuration information, the configuration information including a correspondence between a time unit index and a timing type; transmitting, by the first node, the configuration information to a second node, wherein the correspondence is used by the second node to determine a first timing type associated with a first time unit; Execute an operation including The first timing type is: an uplink transmission timing is determined based on timing advance (TA) indication information transmitted by the first node; the uplink transmission timing of a mobile termination (MT) of the second node is aligned with the downlink transmission timing of a distributed unit (DU) of the second node; or The uplink receive timing of the DU at the second node is aligned with the downlink receive timing of the MT at the second node. Contains one of the following: Computer program.
20. The first timing type includes any one of timing type 1, timing type 2, and timing type 3.
20. A computer program according to claim 19.
21. The bits corresponding to the timing type 1 are 00, the bits corresponding to the timing type 2 are 01, and the bits corresponding to the timing type 3 are 10.
21. A computer program according to claim 20.
22. The correspondence between the time unit index and the timing type indicates some time units within a system frame, and the timing type for a time unit not indicated within the system frame is a default timing type.
22. A computer program according to claim 21.
23. the time unit index is an index determined in a reference subcarrier interval, The first timing type associated with the first time unit is determined based on the reference subcarrier spacing, the subcarrier spacing corresponding to the first time unit, and the correspondence relationship.
23. A computer program according to any one of claims 19 to 22.
24. a first time unit index corresponding to the first time unit in the reference subcarrier spacing is determined based on the subcarrier spacing corresponding to the first time unit; The first timing type associated with the first time unit index is determined based on the correspondence.
24. A computer program according to claim 23.
25. the reference subcarrier spacing is a subcarrier spacing of a serving carrier of the first node; the reference subcarrier spacing is a subcarrier spacing of an active bandwidth portion (BWP) of the first node; or The reference subcarrier spacing is the subcarrier spacing indicated by the command from the second node.
24. A computer program according to claim 23.
26. The correspondence between the time unit index and the timing type indicates a correspondence between each time unit index of a plurality of time unit indexes, and the timing type is the uplink transmission timing is determined based on the TA indication information transmitted by the first node. the uplink transmission timing of the MT of the second node is aligned with the downlink transmission timing of the DU of the second node; or The uplink receive timing of the DU at the second node is aligned with the downlink receive timing of the MT at the second node. Contains one of the following:
23. A computer program according to any one of claims 19 to 22.
27. The correspondence between the time unit index and the timing type is associated with an uplink transmission type, the uplink transmission type including one or more of a physical uplink shared channel (PUSCH), a physical uplink control channel (PUCCH), or a sounding reference signal (SRS).
23. A computer program according to any one of claims 19 to 22.
Citation Information
Patent Citations
Method and apparatus for switching a transmission route of data in wireless communication system
US20200404569A1