Information transmission method, device, IAB node and network equipment
By coordinating frequency domain resources within IAB nodes, the method addresses interference issues in IAB systems, improving transmission efficiency through strategic DU resource allocation.
Patent Information
- Application Number
- JP2023537280
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-12-18
- Filing Date
- 2021-12-14
- Publication Date
- 2026-01-14
- Estimated Expiration
- 2041-12-14
AI Technical Summary
Existing IAB systems lack a solution for coordinating frequency domain resources to manage interference between or within IAB nodes, leading to inefficiencies in information transmission.
The method involves indicating and configuring frequency domain availability of distributed units (DUs) within IAB nodes, using parent IAB nodes or central units to define resource usage, thereby reducing interference through coordinated frequency domain resource allocation.
This approach effectively reduces interference between or within IAB nodes by optimizing frequency domain resource utilization, enhancing information transmission efficiency.
Smart Images

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Abstract
Description
[Technical Field]
[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) This application claims priority from Chinese Patent Application No. 202011507740.6 filed in China on December 18, 2020, the entire contents of which are incorporated herein by reference.
[0002] The present application relates to the field of communication technology, and in particular to an information transmission method, apparatus, IAB node and network equipment. [Background technology]
[0003] The Integrated Access Backhaul (IAB) system is a technology whose standardization began in New Radio (NR) Release 16 (Rel-16). An IAB node includes a distributed unit (DU) and a mobile termination (MT) functional section. In a single backhaul circuit, the DUs of all IAB nodes are connected to a centralized unit (CU) node. The CU node locates the DUs via the F1 control plane interface (F1-C) or F1 application protocol (F1-AP protocol) and locates the MTs via the radio resource control (RRC) protocol. The introduction of the IAB system addresses the situation where the deployment of wired transmission networks is insufficient when access points are densely deployed. In other words, when there is no wired transmission network, access points can rely on wireless backhaul.
[0004] Currently, DUs and MTs can adopt time division multiplexing (TDM), space division multiplexing (SDM), or frequency division multiplexing (FDM) multiplexing methods. However, when DUs and MTs use TDM, SDM, or FDM multiplexing methods to transmit information, there is no relevant solution for how to use frequency domain resources to coordinate interference between or within IAB nodes. Summary of the Invention [Problem to be solved by the invention]
[0005] The embodiments of the present application provide an information transmission method, an apparatus, an IAB node, and network equipment, thereby providing a method for coordinating information transmission between or within IAB nodes by utilizing frequency domain resources, and further reducing interference between or within IAB nodes. [Means for solving the problem]
[0006] According to a first aspect, an embodiment of the present application provides an information transmission method, the method comprising: transmitting information based on frequency domain availability of a distributed unit (DU) of the IAB node; Here, the frequency domain availability of the DU of the IAB node is indicated by the parent IAB node of the IAB node, or configured by a central unit CU, or predefined by a protocol.
[0007] According to a second aspect, an embodiment of the present application further provides an information transmission method, the method comprising: Indicating frequency domain availability of the DU of the IAB node to the IAB node.
[0008] According to a third aspect, an embodiment of the present application provides an information transmission device, the device comprising: a transmission module for transmitting information based on frequency domain availability of a distributed unit DU of the IAB node; Here, the frequency domain availability of the DU of the IAB node is indicated by the parent IAB node of the IAB node, or configured by a central unit CU, or predefined by a protocol.
[0009] According to a fourth aspect, an embodiment of the present application further provides an information transmission device, the device comprising: and a first indication module for indicating to an IAB node frequency domain availability of a DU of the IAB node.
[0010] According to a fifth aspect, an embodiment of the present application further provides an IAB node, the IAB node including a processor, a memory, and a program or instructions stored in the memory and operable to run on the processor, the program or instructions implementing the steps of the method according to the first aspect when executed by the processor.
[0011] According to a sixth aspect, an embodiment of the present application further provides a network device, the network device including a processor, a memory, and a program or instructions stored in the memory and operable to run on the processor, the program or instructions, when executed by the processor, implementing the steps of the method according to the second aspect.
[0012] According to a seventh aspect, an embodiment of the present application further provides a readable storage medium having a program or instructions stored therein, the program or instructions performing steps of the method according to the first aspect or performing steps of the method according to the second aspect when executed by a processor.
[0013] According to an eighth aspect, an embodiment of the present application further provides a chip, the chip including a processor and a communication interface, the communication interface being coupled to the processor, the processor running a program or instruction to implement the method according to the first aspect or being used to implement the method according to the second aspect.
[0014] According to a ninth aspect, there is provided a computer program product, the computer program product being stored on a non-transitory storage medium, the computer program product being executed by at least one processor to implement the method according to the first aspect or the method according to the second aspect.
[0015] According to a tenth aspect, there is provided a communications device, the communications device being configured to perform the method according to the first aspect or to perform the method according to the second aspect. [Effects of the Invention]
[0016] In an embodiment of the present application, information transmission is based on the frequency domain availability of the DUs of an IAB node, where the frequency domain availability of the DUs of the IAB node is indicated by the parent IAB node of the IAB node, configured by a central unit (CU), or predefined by a protocol. By configuring the frequency domain availability of the DUs to coordinate information transmission between or within IAB nodes, interference between or within IAB nodes can be reduced. [Brief explanation of the drawings]
[0017] [Figure 1] 1 is a structural schematic diagram of an IAB system according to an embodiment of the present application; [Figure 2] 1 is a structural schematic diagram of a CU-DU of an AB system according to an embodiment of the present application; [Figure 3] 1 is a structural diagram of a network system to which an embodiment of the present application can be applied; [Figure 4]1 is a flowchart of an information transmission method according to an embodiment of the present application; [Figure 5a] 1 is a schematic diagram of the location of a frequency domain availability indication in a DCI according to an embodiment of the present application; [Figure 5b] 2 is a second schematic diagram of the location of the frequency domain availability indication in DCI according to an embodiment of the present application; [Figure 5c] 3 is a third schematic diagram of the location of the frequency domain availability indication in DCI according to an embodiment of the present application. [Figure 6] 1 is a flowchart of an information transmission method according to an embodiment of the present application; [Figure 7] 1 is a structural diagram of an information transmission device according to an embodiment of the present application; [Figure 8] FIG. 10 is a structural diagram of another information transmission device according to an embodiment of the present application; [Figure 9] FIG. 1 is a structural diagram of an IAB node according to an embodiment of the present application; [Figure 10] FIG. 1 is a structural diagram of a network device according to an embodiment of the present application; DETAILED DESCRIPTION OF THE INVENTION
[0018] The following clearly and completely describes the technical solutions in the embodiments of the present application, in conjunction with the drawings in the embodiments of the present application, and it is obvious that the described embodiments are only some of the embodiments of the present application, and not all of the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present application fall within the scope of protection of the present application.
[0019] The terms "first," "second," etc., used in the specification and claims of this application are intended to distinguish between similar objects and are not intended to describe a particular order or sequence. It should be understood that such terms are interchangeable where appropriate, so that embodiments of this application may be performed in orders other than those illustrated or described herein, and that objects distinguished by "first" and "second" generally are of the same type and do not limit the number of objects; for example, a first object may be one or more. Furthermore, "and / or" in the specification and claims indicates at least one of the connected objects, and the character " / " generally indicates an "or" relationship between the related objects.
[0020] It should be noted that the techniques described in the embodiments of the present application are not limited to Long Term Evolution (LTE) / LTE-Advanced (LTE-A) systems, but can also be applied to other wireless communication systems, such as Code Division Multiple Access (CDMA), Time Division Multiple Access (TDMA), Frequency Division Multiple Access (FDMA), Orthogonal Frequency Division Multiple Access (OFDMA), Single-carrier Frequency-Division Multiple Access (SC-FDMA), and other systems. The terms "system" and "network" in the embodiments of the present application are always used interchangeably, and the described techniques may be used in the above-mentioned systems and radio technologies as well as other systems and radio technologies. However, although the following description describes a New Radio (NR) system for illustrative purposes and uses NR terminology in most of the following description, these techniques may be applied to applications other than NR system applications, such as 6th Generation (6G) communication systems.
[0021] For ease of understanding, the following describes some details regarding the embodiments of the present application.
[0022] Integrated Access Backhaul (IAB): The IAB system is a technology whose standardization began with the New Radio (NR) Release 16 (Rel-16). As shown in Figure 1, an IAB node includes a distributed unit (DU) and a mobile termination (MT). Based on the MT, an access IAB node (i.e., IAB node) finds an upstream IAB node (i.e., parent IAB node) and establishes a wireless connection with the DU accessing the IAB node. This wireless connection is called a backhaul link. After an IAB node establishes a complete backhaul link, the IAB node can turn on its DU function and provide cellular service, i.e., the DU can provide access service for the UE. A self-access backhaul circuit also includes a donor IAB node, which has a directly connected wired transmission network.
[0023] Figure 2 is a schematic diagram of the centralized unit-distributed unit (CU-DU) structure of an IAB system. In a self-access backhaul circuit, the DUs of all IAB nodes are connected to a single CU node, which includes a CU control plane (i.e., CU-CP) and a CU user plane (i.e., CU-UP). The CU node configures DUs via the F1-C or F1-AP protocol (i.e., F1 application protocol) and configures MTs via the Radio Resource Control (RRC) protocol. The donor IAB node does not have an MT function. The introduction of the IAB system addresses the situation where the deployment of a wired transmission network is insufficient when access points are densely deployed. In other words, when there is no wired transmission network, access points can rely on wireless backhaul.
[0024] Duplexing or multiplexing method for DU and MT: The DU and MT are time-division multiplexed (TDM) resource multiplexed, and the DU transmit and receive operations and the MT transmit and receive operations are time-division multiplexed (TDMed). It should be noted that this duplex scheme is half duplex.
[0025] The DU and MT use a resource multiplexing method of frequency division multiplexing (FDM) or space division multiplexing (SDM), and the transmission and reception operation methods of the DU and MT may include several duplex or multiplexing methods as follows:
[0026] Distributed Unit Transmit X (DU-TX) & Mobile Termination Transmit X (MT-TX), i.e., DU is configured as Downlink (DL) and MT is configured as Uplink (UL), or DU has actual DL transmission and MT has actual UL transmission, Distributed Unit Receive X (DU-RX) & Mobile Termination Receive X (MT-RX), i.e., DU is configured as UL and MT is configured as DL, or DU has actual UL reception and MT has actual DL reception; DU-TX&MT-RX, i.e. DU is configured as DL and MT is configured as DL, or there is actual DL transmission in DU and actual DL reception in MT; DU-RX&MT-TX, i.e. DU is configured as UL and MT is configured as UL, or there is actual UL reception in DU and actual UL transmission in MT.
[0027] It should be noted that in the embodiments of the present application, DU TX and DU DL may be generic, MT TX and MT UL may be generic, DU RX and DU UL may be generic, and MT RX and MT DL may be generic.
[0028] It should be noted that the flexible allocation may be equivalent to the DL / UL allocation process or may be independent of the DL / UL allocation process.
[0029] DU resource allocation: In a Rel-16 IAB network, a donor node CU configures the time domain resources of a DU through gNB-DU resource configuration (i.e., gNB-DU resource configuration) signaling in an F1-AP (or F1-C). Here, the transmission type of a symbol in each slot is configured, and the symbol type includes DL / UL / flexible symbol. Configuring the availability of each type of symbol for a DU may include hard type / soft type / Not Available (NA) type / shared type configuration. Here, availability is determined by the symbol type, and specifically may include the following cases:
[0030] If a DL symbol is configured as a hard type, an IAB DU can be transmitted on this symbol; if a UL symbol is configured as a hard type, an IAB DU can be received on this symbol; if a flexible symbol is configured as a hard type, an IAB DU can be transmitted or received on this symbol.
[0031] If a DL symbol is configured as a soft type, an IAB DU can be transmitted on this symbol if its transmission does not affect the transmission or reception of the MT, otherwise it is not transmitted on this symbol; if a UL symbol is configured as a soft type, an IAB DU can be received on this symbol if its reception does not affect the transmission or reception of the MT, otherwise it is not received on this symbol; if a flexible symbol is configured as a soft type, an IAB DU can be transmitted or received on this symbol if its transmission or reception does not affect the transmission or reception of the MT, otherwise it is not transmitted or received on this symbol. Furthermore, the IAB parent node can indicate the availability of soft symbols for IAB DUs by Downlink Control Information (DCI) format 2_5 (i.e., DCI format 2_5).
[0032] If a DL / UL / flexible symbol is configured as NA type, the IAB DU neither transmits nor receives on this symbol.
[0033] If a DL / UL / flexible symbol is configured as a shared type, the IAB DU may be able to send and receive data simultaneously with the IAB MT on this symbol.
[0034] The available frequency domain resource of a DU is the bandwidth of the DU cell. The CU can configure a number of carriers that the DU can use, and the DU can schedule resources on the configured carriers.
[0035] For the frequency domain resources of a DU, the availability of the frequency domain resources can be configured as hard type / soft type / NA type / shared type, where: If a frequency domain resource is configured as a hard type, the IAB DU can transmit / receive / transmit or receive on this frequency domain resource; If a DL frequency domain resource is configured as a soft type, then if the transmission of an IAB DU on this DL frequency domain resource does not affect the transmission or reception of an MT, the IAB DU can transmit on this DL frequency domain resource; otherwise, it does not transmit on this DL frequency domain resource. If a UL frequency domain resource is configured as a soft type, then if the reception of an IAB DU on this UL frequency domain resource does not affect the transmission or reception of an MT, the IAB DU can receive on this UL frequency domain resource; otherwise, it does not receive on this UL frequency domain resource. If a flexible frequency domain resource is configured as a soft type, then if the transmission or reception of an IAB DU on this flexible frequency domain resource does not affect the transmission or reception of an MT, the IAB DU can transmit or receive on this flexible frequency domain resource; otherwise, it does not transmit or receive on this flexible frequency domain resource.
[0036] If a frequency domain resource is configured as NA type, the IAB DU neither transmits nor receives on this frequency domain resource; If a frequency domain resource is configured as a shared type, the IAB DU can transmit and receive data simultaneously with the IAB MT on this frequency domain resource.
[0037] Downlink control information (DCI) format 2_5 (i.e., DCI format 2_5) configuration: For each IAB node or each cell in an IAB DU, IAB DU Serving Cell Identifier (iabDuCellId-AI); and The position of one Availability Indicator (AI) (hereinafter abbreviated as AI) in DCI format 2_5 (positionInDCI-AI); and providing a set of availability combination indications (AvailabilityCombinations), where each availability combination indication is: a resource availability indication (resourceAvailability) for indicating the availability of soft type symbol resources in one or more slots; and a mapping from Soft type symbol availability combinations provided by the resource availability indication (resourceAvailability) to corresponding availability indication index field values in DCI format 2_5 provided by the availability combination identifier (AvailabilityCombinationId).
[0038] The IAB-DU is assumed to adopt the SCS configuration whose availability combination is provided by the IAB-DU uplink and downlink configuration (IAB-DU-Resource-Configuration-TDD-Config).
[0039] An AI indication in DCI format 2_5 indicates the availability of one or more slots for IAB DUs. Here, the size of the AI indication is max{ceil(log2(maxAIindex + 1)),1} bits, where maxAIindex represents the largest AI index. The availability of one soft type symbol is obtained based on the AI index and a table configured by Radio Resource Control (RRC). Specifically, the availability indication of soft type symbols in one slot may be shown in Table 1.
[0040] [Table 1]
[0041] Here, the realization code of the RRC configuration may alternatively be expressed as follows:
[0042] AvailabilityCombinationsPerCell information element -- ASN1START -- TAG-AVAILABILITYCOMBINATIONSPERCELL-START AvailabilityCombinationsPerCell-r16 ::= SEQUENCE { availabilityCombinationsPerCellIndex-r16 AvailabilityCombinationsPerCellIndex-r16, iab-DU-CellIdentity-r16 CellIdentity, positionInDCI-AI-r16 INTEGER(0..maxAI-DCI-PayloadSize-r16-1) OPTIONAL, -- Need M availabilityCombinations-r16 SEQUENCE (SIZE (1..maxNrofAvailabilityCombinationsPerSet-r16))OF AvailabilityCombination-r16, ... } AvailabilityCombinationsPerCellIndex-r16 ::= INTEGER(0..maxNrofDUCells-r16) AvailabilityCombination-r16 ::= SEQUENCE { availabilityCombinationId-r16 AvailabilityCombinationId-r16, resourceAvailability-r16 SEQUENCE (SIZE (1..maxNrofResourceAvailabilityPerCombination-r16)) OF INTEGER (0..7) } AvailabilityCombinationId-r16 ::= INTEGER (0..maxNrofAvailabilityCombinationsPerSet-r16-1) -- TAG-AVAILABILITYCOMBINATIONSPERCELL-STOP -- ASN1STOP
[0043] It should be noted that, in the above method, the corresponding time domain indication number (Entry) is first found according to the time domain availability indication in DCI format 2_5, and then the corresponding frequency domain availability combination is found according to the frequency domain availability indication using the time domain indication number, that is, the frequency domain resource indication is an indication embedded in each time domain indication number.
[0044] 3 shows a structural diagram of a wireless communication system to which the embodiments of the present application can be applied. The wireless communication system includes an IAB node 11 and a network device 12. Here, the network device 12 may be a parent IAB node or a CU of the IAB node 11.
[0045] Hereinafter, the information transmission method according to the embodiment of the present application will be described in detail with reference to specific embodiments and application scenarios in conjunction with the drawings.
[0046] Referring to FIG. 4, FIG. 4 is a flowchart of an information transmission method according to an embodiment of the present application, which may be performed by a self-backhaul IAB node, and as shown in FIG. 4, includes the following steps:
[0047] Step 401: transmitting information based on the frequency domain availability of the DU of the IAB node; Here, the frequency domain availability of the DU of the IAB node is indicated by the parent IAB node of the IAB node, or configured by a central unit CU, or predefined by a protocol.
[0048] In the embodiment of the present application, the DU of the IAB node may be referred to as the IAB DU, and the MT of the IAB node may be referred to as the IAB MT.
[0049] The frequency domain availability may refer to the availability of frequency domain resources. Optionally, the frequency domain availability may include at least one of a hard type, a soft type, an unavailable (NA) type, and a shared type. Here, frequency domain resources with hard type frequency domain availability can be used only by IAB DUs, frequency domain resources with soft type frequency domain availability can be used by IAB DUs only if it does not affect transmission / reception of IAB MTs, frequency domain resources with unavailable type frequency domain availability cannot be used by DUs, and frequency domain resources with shared type frequency domain availability can be used simultaneously by IAB DUs and IAB MTs.
[0050] Alternatively, the frequency domain availability may include support for TDM only and support for simultaneous transmission, where support for simultaneous transmission means that the MT and the DU support transmitting information on the same time domain resource, or at least one of multiplexing scheme A, multiplexing scheme B, multiplexing scheme C, multiplexing scheme D, and support for TDM only.
[0051] Here, the multiplexing method A may be expressed as DU-TX&MT-TX, i.e., DU is configured as DL and MT is configured as UL; the multiplexing method B may be expressed as DU-RX&MT-RX, i.e., DU is configured as UL and MT is configured as DL; the multiplexing method C may be expressed as DU-TX&MT-RX, i.e., DU is configured as DL and MT is configured as DL; and the multiplexing method D may be expressed as DU-RX&MT-TX, i.e., DU is configured as UL and MT is configured as UL.
[0052] The frequency domain availability of the DUs of the IAB node may be indicated by the parent IAB node of the IAB node, for example, the parent IAB node may indicate the frequency domain availability of the DUs of the IAB node by DCI, a Media Access Control (MAC) control unit (Control, Element, CE) (i.e., MAC CE) or RRC, or the frequency domain availability of the DUs of the IAB node may be indicated by a CU, for example, the CU may indicate the frequency domain availability of the DUs of the IAB node by F1-C, a Backhaul Adaptation Protocol control Packet Data Unit (BAP control PDU), or the frequency domain availability of the DUs of the IAB node may be pre-defined by a protocol.
[0053] It should be noted that the frequency domain availability of the DU of the IAB node may be explicitly configured, for example, by sending a frequency domain availability indication of the DU to the IAB node via signaling such as RRC, F1-C, DCI or MAC CE, or may be implicitly configured, for example, by specifying that when the frequency domain resource of the IAB MT and the frequency domain resource of the IAB DU overlap, the frequency domain availability of the frequency domain resource of the IAB DU is of soft type, or the frequency domain availability of the frequency domain resource of the overlapping part is of soft type.
[0054] The information transmission method according to the embodiment of the present application performs information transmission based on the frequency domain availability of the distributed units (DUs) of the IAB nodes, where the frequency domain availability of the DUs of the IAB nodes is indicated by the parent IAB node of the IAB nodes, configured by the central unit (CU), or predefined by a protocol. By configuring the frequency domain availability of the DUs to coordinate information transmission between or within IAB nodes, interference between or within IAB nodes can be reduced.
[0055] Optionally, the method further comprises: the frequency domain availability of the DUs of said IAB node; a mapping relationship between the index of the frequency domain availability combination and the frequency domain availability combination; A combination of frequency domain availability; and an index of the frequency domain availability combination.
[0056] In embodiments of the present application, the combination of frequency domain availability may include the availability of multiple frequency domain resources, for example, the combination of frequency domain availability may include the availability of some or all soft-type frequency domain resources, or the availability of some or all frequency domain resources, or the availability of frequency domain resources of various types (i.e., hard, soft, NA, etc.), or the availability of frequency domain resources of various multiplexing or duplexing schemes (i.e., MT TX / DU TX, MT RX / DU RX, MT TX / DU RX, MT RX / DU TX, TDM, etc.), or the availability of frequency domain resources of various link directions (i.e., UL / DL / Flexbile), or the availability of frequency domain resources of multiple slots or symbols, and the embodiments of the present application are not limited thereto.
[0057] For example, the combination of frequency domain availability may include the availability of UL frequency domain resources, the availability of DL frequency domain resources and the availability of flexible frequency domain resources, or the combination of frequency domain availability may include the availability of soft-type frequency domain resources and the availability of hard-type frequency domain resources, or the combination of frequency domain availability may include the availability of UL frequency domain resources in soft-type frequency domain resources, the availability of DL frequency domain resources in soft-type frequency domain resources and the availability of flexible frequency domain resources in soft-type frequency domain resources, etc.
[0058] There is a mapping relationship between the index of the frequency domain availability combination and the frequency domain availability combination, and the IAB node can search for the corresponding frequency domain availability combination based on the index of the frequency domain availability combination and the mapping relationship between the index of the frequency domain availability combination and the frequency domain availability combination.
[0059] It should be noted that the IAB DU frequency domain availability and the IAB DU time domain availability may be indicated separately, i.e., the first indication may be used only to indicate the IAB DU frequency domain availability, or the IAB DU frequency domain availability and the IAB DU time domain availability may be indicated jointly, i.e., the first indication may be used to indicate the frequency domain availability and the time domain availability.
[0060] In an embodiment of the present application, a parent IAB node or a CU of an IAB node may send a first instruction to the IAB node, so that the IAB node can determine the frequency domain availability of the IAB DU based on the first instruction, and can transmit information based on the frequency domain availability of the IAB DU, thereby reducing interference between or within the IAB node. Note that, because the parent IAB node or a CU of the IAB node explicitly indicates the frequency domain availability of the IAB DU to the IAB node through the first instruction, it can not only improve the efficiency of determining the frequency domain availability of the IAB DU, but also improve the flexibility of the frequency domain availability configuration of the IAB DU.
[0061] Optionally, the first indication is also used to indicate time domain availability of DUs of the IAB node.
[0062] In an embodiment of the present application, the IAB DU frequency domain availability and the IAB DU time domain availability are indicated jointly, i.e., the first indication may be used to indicate the IAB DU frequency domain availability and the IAB DU time domain availability, thereby saving configuration signaling.
[0063] Optionally, the first indication is carried in a Downlink Control Information DCI or a Media Access Control (MAC) CE or a Radio Resource Control (RRC) or F1-C signaling or a Backhaul Adaptation Protocol Control Packet Data Unit.
[0064] In an embodiment of the present application, when the frequency domain availability of a DU is indicated to this IAB node by the parent IAB node of this IAB node, the first indication may be carried in a DCI, MAC CE, or RRC, and when the frequency domain availability of a DU is indicated to this IAB node by a CU, the first indication may be carried in an F1-C signaling or a BAP control PDU.
[0065] It should be noted that when the first indication is carried on a DCI, the DCI may be used only to carry the frequency domain availability indication of the DU, i.e., the first indication, or may carry the frequency domain availability indication and the time domain availability indication of the DU simultaneously.
[0066] Alternatively, the DCI may be DCI format 2_5 or Downlink Control Information (DCI) format 2_0 (i.e., DCI format 2_0), or may be a newly defined DCI format, for example, a DCI defined specifically for indicating frequency domain availability of a DU.
[0067] Alternatively, the DCI may be a DCI scrambled using a specific Radio Network Temporary Identifier (RNTI), or a DCI obtained in a specific search space, or a DCI obtained in a specific control resource set.
[0068] Optionally, the location and / or size of the first indication in the DCI is configured by RRC.
[0069] The position of the first instruction in the DCI may include at least one of a start position of the first instruction in the DCI, an end position of the first instruction in the DCI, and a position range of the first instruction in the DCI.
[0070] Specifically, a parent IAB node of an IAB node may configure the location and / or size of the first instruction in the DCI to the IAB node via RRC, thereby enabling the IAB node to quickly obtain the first instruction from the DCI based on the location and / or size of the first instruction in the DCI.
[0071] In the embodiment of the present application, the location and / or size of the first indication in the DCI can be configured by the RRC, thereby improving the flexibility of the first indication configuration.
[0072] Optionally, the location of the first indication in the DCI is determined based on the location of a time domain availability indication of the DU of the IAB node in the DCI.
[0073] In an embodiment of the present application, the position of the frequency domain availability indication of an IAB DU in a DCI is associated with the position of the time domain availability indication of the IAB DU in this DCI, thereby allowing an IAB node to determine the position of the frequency domain availability indication of the IAB DU (i.e., the first indication) in the DCI based on the position of the time domain availability indication of the IAB DU in this DCI, thereby saving the indication signaling overhead of the frequency domain availability indication position.
[0074] Optionally, the location of the first indication in the DCI is: a position in the DCI of the last time domain availability indication in the DCI offset by a first offset value, which is an offset value of a frequency domain availability indication; a position where the position of the time domain availability indication of the DU of the IAB node in the DCI is offset by a second offset value, which is the size of the time domain availability indication; and the location in the DCI of the time domain availability indication of the DU of the IAB node.
[0075] In an embodiment of the present application, the first offset value may be indicated by a parent IAB node or a CU, or may be predefined by a protocol, or may be determined based on the size of a time domain availability indication.
[0076] The position in the DCI of the last time domain availability indication in the DCI (positionInDCI-AIlast) may be the start position or end position in the DCI of the last time domain availability indication in the DCI, or the like.
[0077] The position of the time domain availability indication of the DU of the IAB node in the DCI may be, for example, the start position or end position of the time domain availability indication of the IAB DU in the DCI.
[0078] In one embodiment, the position in the DCI of the frequency domain availability indication (i.e., the first indication) of an IAB DU may be offset from the position in the DCI of the last time domain availability indication in the DCI by a first offset value. For example, as shown in Figure 5a, the position or start position in the DCI of the frequency domain availability indication (i.e., frequency domain availability indication field position) = positionInDCI - AIlast + position indicator size, where positionInDCI - AIlast is the position or start position in the DCI of the last time domain availability indication in the DCI, and position indicator size is the size of the time domain availability indication.
[0079] In another embodiment, the location of the frequency domain availability indication (i.e., the first indication) of an IAB DU in the DCI may be offset by a second offset value from the location of the corresponding time domain availability indication in the DCI.
[0080] For example, as shown in Figure 5b, the position or starting position of the frequency domain availability indication in the DCI (i.e., frequency domain availability indication field position) = positionInDCI-AI + position indicator size, where positionInDCI-AI is the position or starting position of the time domain availability indication of the IAB DU in the DCI, and position indicator size is the size of the time domain availability indication.
[0081] In another embodiment, the position of the frequency domain availability indication (i.e., the first indication) of an IAB DU in the DCI may be the position of the corresponding time domain availability indication in the DCI. For example, as shown in Figure 5c, the position or start position of the frequency domain availability indication in the DCI (i.e., the frequency domain availability indication field position) = positionInDCI-AI, where positionInDCI-AI is the position or start position of the time domain availability indication of an IAB DU in the DCI. This embodiment allows multiplexing of positionInDCI-AI without defining a new field position indication.
[0082] Alternatively, the parameter positionInDCI-AI carried to the RRC may represent the starting position in the DCI of the time domain availability indication of the first cell, and the position in the DCI of the frequency domain availability indication of the first cell is after the time domain indication, or the parameter positionInDCI-AI carried to the RRC represents the time frequency domain availability indication of the first cell, and the size of the time frequency domain availability indication is max{ceil(log2(maxAIindex +1)),1} bits, where maxAIindex represents the largest AI index.
[0083] Optionally, the method further comprises: The method further includes determining frequency domain availability of a DU of the IAB node based on an index of a frequency domain availability combination indicated by the first instruction and a first mapping relationship, where the first mapping relationship is a mapping relationship between an index of a frequency domain availability combination and a frequency domain availability combination.
[0084] In an embodiment of the present application, when the first instruction indicates a frequency domain availability combination index, the IAB node may determine the frequency domain availability of the IAB DU based on the frequency domain availability combination index indicated by the first instruction and a mapping relationship between the frequency domain availability combination index and the frequency domain availability combination, where the mapping relationship between the frequency domain availability combination index and the frequency domain availability combination may be configured by the CU or the parent IAB node via RRC, or may be pre-defined by a protocol.
[0085] For example, the parent IAB node may configure a frequency domain availability combination list, i.e., a mapping relationship between the frequency domain availability combination index and the frequency domain availability combination, via RRC, and the parent IAB node may indicate the frequency domain availability combination index to the IAB node via DCI. The IAB node determines the frequency domain availability by searching for the frequency domain availability combination in the frequency domain availability combination list based on the frequency domain availability combination index indicated by the DCI.
[0086] Optionally, the indication granularity of the frequency domain availability of the DU of the IAB node is: Indication granularity of frequency domain availability indicated by F1-C or RRC or MAC CE or DCI or BAP control PDU; A frequency domain availability indication granularity that is predefined by the protocol; A predefined mapping relationship between the bandwidth range of the DU of the parent IAB node of the IAB node and the indication granularity of frequency domain availability; A mapping relationship between a predefined bandwidth range of the DU of the IAB node and an indication granularity of frequency domain availability; A mapping relationship between a predefined bandwidth range of the IAB node where the mobile terminal MT can be deployed and an indication granularity of frequency domain availability; the size of the first indication; The available frequency domain resources of the DU of the IAB node; The actual scheduled frequency domain resources of the DU of the IAB node; and the frequency range in which the carriers of the DUs of the IAB node are located.
[0087] In an embodiment of the present application, when the indication granularity of frequency domain availability of a DU of an IAB node is indicated by a parent IAB node, the parent IAB node may indicate the indication granularity of frequency domain availability to this IAB node via RRC or MAC CE or DCI, and when the indication granularity of frequency domain availability of a DU of an IAB node is indicated by a CU, the CU may indicate the indication granularity of frequency domain availability to this IAB node via F1-C.
[0088] The bandwidth range in which the MT of the IAB node can be allocated may be referred to as the bandwidth part (BWP) range of the IAB MT.
[0089] The above-mentioned determining the indication granularity of the frequency domain availability of the IAB DU based on the available frequency domain resources or actually scheduled frequency domain resources of the IAB DU may also be determining the indication granularity of the frequency domain availability of the IAB DU based on the size of the available frequency domain resources or actually scheduled frequency domain resources of the IAB DU and / or the size of the frequency domain availability indication signaling, for example, the larger the available frequency domain resources or actually scheduled frequency domain resources of the IAB DU, the larger the indication granularity of the frequency domain availability of the IAB DU will be if the size of the indication signaling remains unchanged.
[0090] For example, from the bottom edge to the top edge of the carrier or BWP, it corresponds to 0, 1 / 4, 1 / 2, 3 / 4, and 1, that is, the frequency domain resource of the IAB DU is divided into four parts.
[0091] The above-mentioned determining the indication granularity of the frequency domain availability of an IAB DU based on the frequency range in which the carrier of the IAB DU is located may specifically be configuring different indication granularities of frequency domain availability for different frequency ranges, thereby determining the corresponding indication granularity of the frequency domain availability for the carrier of the IAB DU based on the frequency range in which the carrier is located. For example, if an IAB aggregation cell includes an FR1 cell and an FR2 cell, corresponding indication granularities of frequency domain availability may be configured for the FR1 cell and the FR2 cell. It should be noted that in addition to the division by FR1 and FR2, there may be more division schemes, such as below 6 GHz, 6 to 30 GHz, and 30 to 100 GHz, and corresponding indication granularities of frequency domain availability may be configured for each frequency range.
[0092] Optionally, the indication granularity of the frequency domain availability of the DU of the IAB node is: N physical resource blocks (PRBs) per channel (N is a positive integer), M resource block groups (RBGs) (M is a positive integer); K carriers per channel (K is a positive integer); One of L subbands (L is a positive integer).
[0093] In the embodiment of the present application, the value of at least one of N, M, K and L may be indicated by the parent IAB node or indicated by the CU, or may be predefined by the protocol.
[0094] Alternatively, the parent IAB node may indicate at least one value of N, M, K, and L via MAC CE or DCI, and the CU may indicate at least one value of N, M, K, and L via F1-C.
[0095] The RBG may be obtained for a Resource Block (RB) packet. Alternatively, the RBG may be determined based on a bandwidth, i.e., an RB packet is associated with a bandwidth.
[0096] For example, the correspondence between resource block size and bandwidth may be predefined or preconfigured, so that the CU or parent IAB node can obtain the size of the indication information based on the correspondence between the bandwidth and the indicated granularity / resource group size and the bandwidth, so that the IAB DU can obtain the frequency domain resource range based on the correspondence between the indication information and the indicated granularity / resource group size and the bandwidth, and further determine the frequency domain availability based on the frequency domain resource range and the indication information.
[0097] It should be noted that the above RBG may be the same as the concept of RBG defined in Rel-16, or may be a newly defined resource block group, and the embodiments of the present application are not limited thereto.
[0098] Optionally, the subbands are determined based on interference-related parameters or Channel State Information (CSI) measurement parameters.
[0099] In an embodiment of the present application, the subband may be associated with an interference-related parameter or a CSI measurement parameter, where the interference-related parameter may include, but is not limited to, at least one of an interference level, an interference threshold, etc. The CSI measurement parameter may include, but is not limited to, at least one of a CSI measurement reference signal, a measurement threshold, a measurement time-frequency resource, etc.
[0100] Optionally, the subcarrier space (SCS) for determining the frequency domain availability is an SCS indicated by an F1-C, RRC, MAC CE, DCI or BAP control PDU; an SCS corresponding to a combination of time domain availability of the DU of the IAB node; An SCS configured in uplink resource configuration and / or downlink resource configuration of the DU of the IAB node; A SCS of a Physical Downlink Shared Channel (PDCCH) or a Synchronous Signal Block (SSB) of a primary cell (PCell) of the IAB node; and an SCS corresponding to the frequency range of the aggregation cell of the IAB node.
[0101] In an embodiment of the present application, the parent IAB node may instruct the IAB node to use an SCS for determining the frequency domain availability via an RRC, MAC CE, or DCI, and the CU may instruct the IAB node to use an SCS for determining the frequency domain availability via an F1-C or a backhaul adaptation protocol control packet data unit.
[0102] It should be noted that the SCS indicated by the above F1-C, RRC, MAC CE, DCI or BAP control PDU may be an SCS for determining the frequency domain availability that is directly indicated by the F1-C, RRC, MAC CE, DCI or backhaul adaptation protocol control packet data unit, or may be an SCS corresponding to a parameter indicated by the F1-C, RRC, MAC CE, DCI or backhaul adaptation protocol control packet data unit, such as the SCS of the SSB of the DU of the parent IAB node or the SCS of the PDCCH.
[0103] The time domain availability combinations may be the above-mentioned availabilityCombinations. The uplink resource configuration and / or downlink resource configuration may be the above-mentioned IAB-DU-Resource-Configuration-TDD-Config.
[0104] Regarding the SCS corresponding to the frequency range of the aggregation cell of the IAB node, specifically, corresponding SCSs may be configured for aggregation cells of different frequency ranges, for example, corresponding SCSs may be configured or predefined for FR1 cells and FR2 cells, respectively. Optionally, if the FR1 cell and the FR2 cell have a PCell or a Primary Secondary Cell (PSCell), the SCS of the SSB or PDCCH of the PCell or PSCell is referenced; otherwise, the SCS of the SSB or PDCCH of a designated cell (e.g., the cell with the lowest frequency) is referenced. It should be noted that in addition to the division by FR1 and FR2, there may be more division schemes, for example, below 6 GHz, 6 to 30 GHz, and 30 to 100 GHz, and a corresponding SCS may be configured for each cell in the frequency range.
[0105] Optionally, when there are at least two SCSs in the uplink resource allocation and / or the downlink resource allocation, the SCS for determining the frequency domain availability is: a largest SCS of the at least two SCSs; and a smallest SCS of the at least two SCSs; One of the at least two SCSs is the SCS of the primary cell synchronization signal block.
[0106] In an embodiment of the present application, when there are multiple uplink resource configurations and / or downlink resource configurations (IAB-DU-Resource-Configuration-TDD-Config) and the multiple uplink resource configurations and / or downlink resource configurations provide different SCS configurations, for example, corresponding to a scenario in which an IAB MT is in a dual connectivity state, the SCS configuration for determining the frequency domain availability may be the largest SCS configuration or the smallest SCS configuration among the different SCS configurations, or the SCS configuration of a PCell SSB. Alternatively, when the uplink resource configurations and / or downlink resource configurations provide multiple SCS configurations, the SCS configuration for determining the frequency domain availability may be the largest SCS configuration or the smallest SCS configuration among the multiple SCS configurations, or the SCS configuration of a PCell SSB.
[0107] Optionally, when at least two SCSs are configured in the MT of the IAB node and / or the DU of the IAB node, the SCS for determining frequency domain availability comprises: The SCS of the primary cell, Primary secondary cell SCS and a largest SCS of the at least two SCSs; and a smallest SCS of the at least two SCSs; an SCS of a PDCCH or SSB of a primary cell of a primary cell group; The SCS of the PDCCH or SSB of the reference cell of the primary cell group; It is one of the PDCCH or SSB SCS of the reference cell of the secondary cell group.
[0108] In an embodiment of the present application, when at least two SCSs are configured in the MT of the IAB node and / or the DU of the IAB node, for example, corresponding to a scenario in which the IAB is in an MT dual connectivity state, the SCS for determining the frequency domain availability may be the SCS of the PCell or PSCell among them, or the largest or smallest SCS among them, or the SCS of the PDCCH or SSB of the PCell of the MCG among them, or the SCS of the PDCCH or SSB of the reference cell of the MCG among them, or the SCS of the PDCCH or SSB of the reference cell of the SCG among them.
[0109] Optionally, the first instruction comprises: time domain resource allocation; Frequency domain resource allocation; A resource multiplexing mode between the DU and MT of the IAB node; The IAB node's duplex mode (DU and MT) is determined based on at least one of the following:
[0110] In one embodiment, the frequency domain availability of the IAB DU may be related to the time domain resource allocation, where the time domain resource allocation may include time domain resource availability allocation. Specifically, the parent IAB node or CU may perform frequency domain resource availability allocation based on the time domain resource allocation, i.e., allocation of the content indicated by the first instruction. For example, the frequency domain availability is configured for resources whose time domain availability is configured as a soft type, i.e., the first instruction is used to indicate the frequency domain availability of resources whose time domain availability is configured as a soft type, or the first instruction is used for resources whose time domain availability is configured as a soft type.
[0111] In another embodiment, the frequency domain availability of the IAB DU may be related to frequency domain resource allocation. Optionally, a parent IAB node or a CU may further indicate the frequency domain resource availability of the IAB node's DU when configuring the frequency domain resource availability of the IAB node's DU. For example, the CU may configure the frequency domain resource availability of the IAB node's DU by sending a third indication via F1-C, and the parent IAB node may further indicate that the frequency domain resource availability of the frequency domain availability is configured to the available resources of the IAB node's DU by sending the first indication via DCI or MAC CE.
[0112] Also, for example, the parent IAB node may further indicate frequency domain availability for resources whose frequency domain availability is configured as soft type, i.e., the first indication is used to indicate frequency domain availability for resources whose frequency domain availability is configured as soft type, or the first indication is used for resources whose frequency domain availability is configured as soft type.
[0113] For example, the availability type of the frequency domain resources of the DU may include at least one of a hard type, a soft type, an NA type, and a shared type, and the frequency domain resources of the DU may be configured as different availability types, and for frequency domain resources whose frequency domain availability is configured as a soft type, the parent IAB node or CU may further indicate their availability.
[0114] In another embodiment, the frequency domain availability of the IAB DU may be associated with a resource multiplexing mode, where the resource multiplexing mode may include at least one of TDM, FDM, and SDM, etc. Specifically, the parent IAB node or CU may perform frequency domain resource availability configuration based on the resource multiplexing mode, i.e., the configuration indicated by the first instruction. For example, the frequency domain availability is configured for resources whose resource multiplexing mode is TDM, i.e., the first instruction is used to indicate the frequency domain availability of resources for which the DU and MT are in TDM resource multiplexing mode, or the first instruction is used for resources for which the DU and MT are in TDM resource multiplexing mode, or the time when the first instruction is valid is the time for which the DU and MT are in TDM resource multiplexing mode.
[0115] Optionally, the signaling carrying said first indication may carry indication information indicating the resource multiplexing mode covered by said first indication.
[0116] In another embodiment, the frequency domain availability of the IAB DU may be associated with a duplexing scheme, where the duplexing scheme may include at least one of the MT TX / DU TX, MT TX / DU RX, MT RX / DU RX, MT RX / DU TX, only MT TX, only MT RX, only DU TX, and only DU RX. Specifically, the parent IAB node or CU may perform frequency domain resource availability configuration based on the duplexing scheme, i.e., the configuration indicated by the first instruction. For example, the frequency domain availability is configured for resources in which the duplex mode is DU-TX&MT-TX, i.e., the above first instruction is used to indicate the frequency domain availability of resources in which the DU and MT are in the duplex mode of DU-TX&MT-TX, or the first instruction is used for resources in which the DU and MT are in the duplex mode of DU-TX&MT-TX, or the time when the first instruction is enabled is the time in which the DU and MT are in the duplex mode of DU-TX&MT-TX.
[0117] Optionally, the signaling carrying said first indication may carry indication information indicating the duplex mode to which this first indication applies.
[0118] Optionally, the first instruction comprises: A resource whose time domain is arranged as a soft type; A resource in which the time domain is arranged as a hard type; a resource whose time domain is placed as unavailable type; A resource in which the time domain is arranged as a downlink type; A resource in which the time domain is arranged as an uplink type; A resource whose time domain is arranged as a flexible type; The resource is used for at least one of the resources corresponding to each slot or each symbol.
[0119] The first indication is used for a resource whose time domain is configured as a soft type, i.e., the first indication is used to indicate the time domain availability of the resource whose time domain is configured as a soft type. Specifically, the parent IAB node or the CU may configure the frequency domain availability for the resource whose time domain is configured as a soft type.
[0120] The first indication is used for resources whose time domain is hard-typed, i.e., the first indication is used to indicate the time domain availability of the resources whose time domain is hard-typed. Specifically, the parent IAB node or the CU may configure the frequency domain availability for the resources whose time domain is hard-typed.
[0121] The first indication is used for a resource whose time domain is configured as an unavailable type, i.e., the first indication is used to indicate the time domain availability of the resource whose time domain is configured as an unavailable type. Specifically, the parent IAB node or the CU may configure the frequency domain availability for the resource whose time domain is configured as an unavailable type.
[0122] The first indication is used for resources whose time domain is configured as a DL type, i.e., the first indication is used to indicate the time domain availability of resources whose time domain is configured as a DL type. Specifically, the parent IAB node or the CU may configure frequency domain availability for resources whose time domain is configured as a DL type.
[0123] The first indication is used for resources whose time domain is configured as a UL type, i.e., the first indication is used to indicate the time domain availability of resources whose time domain is configured as a UL type. Specifically, the parent IAB node or the CU may configure frequency domain availability for resources whose time domain is configured as a UL type.
[0124] The first indication is used for a resource whose time domain is configured as a flexible type, i.e., the first indication is used to indicate the time domain availability of the resource whose time domain is configured as a flexible type. Specifically, the parent IAB node or the CU may configure the frequency domain availability for the resource whose time domain is configured as a flexible type.
[0125] The first indication is used for resources corresponding to each slot or each symbol, i.e., the first indication is used to indicate the time domain availability of resources corresponding to each slot or each symbol. Specifically, the parent IAB node or CU may configure the frequency domain availability of each slot or each symbol.
[0126] Alternatively, the first indication may be used for a resource whose time domain is configured as a soft type and whose type is flexible, i.e. the first indication may be used to indicate the frequency domain availability of a resource whose time domain is configured as a soft type and whose type is flexible.
[0127] Optionally, the activation time of the first instruction is: a predefined time domain parameter activated by the first instruction; The indication or placement of the first indication is determined based on at least one of: a time domain parameter that enables the first indication;
[0128] In the embodiments of the present application, the activation time may be understood as an activation time window, and may include an activation start time and an activation end time. The time domain parameters enabled by the instruction or the first instruction configured may be the time domain parameters enabled by the first instruction indicated via F1-C, RRC, MAC CE, or DCI. The time domain parameters may include, but are not limited to, at least one of an activation period, a time domain offset, a time domain resource size, a frequency domain resource size, and a frequency domain resource position (including a start point and an end point), etc.
[0129] Optionally, the time domain parameters may include at least one of an activation period, a time domain offset, and a time domain resource size.
[0130] The time domain offset may represent an offset of a start time at which activation of the first instruction begins relative to a reference time, where the time domain offset may be a fixed value or a variable value, and the reference time may be a time at which the first instruction is received or a time point determined based on the time at which the first instruction is received.
[0131] For example, if the reception time of the first instruction is a certain symbol or sub-slot or slot of the DU cell, the activation start time of the first instruction may be S symbols or sub-slots or slots after this symbol or sub-slot or slot, where S is the time domain offset.
[0132] The time domain resource size may include the number of slots, the number of symbols, etc.
[0133] For example, if the time domain resource size enabled by the frequency domain availability indication is pre-configured to 10 slots, and an IAB node receives an indication from its parent IAB node that an IAB DU is of hard type in slot P, the IAB DUs in the corresponding frequency domain range from slot P to slot P+9 will be considered to have hard type frequency domain availability, and will be scheduled based on this frequency domain availability type, where P is a positive integer. That is, by regarding the DUs as continuously occupying resources in a certain interval, the frequency domain availability indication for each time domain unit (e.g., slot) can be reduced, thereby saving the overhead of indication signaling.
[0134] Optionally, the activation time of the first instruction may be determined based on frequency domain parameters, where the frequency domain parameters may include at least one of a frequency domain resource size and a frequency domain resource position, etc., and the frequency domain resource position may include a start position and an end position of the frequency domain resource.
[0135] For example, if the frequency domain resources enabled by the frequency domain availability indication are pre-configured to 20 PRBs, and the IAB node receives an indication from a parent IAB node or CU that the Qth PRB of the IAB DU is of soft type, the resources from the Qth PRB to the Q+19th PRB of the frequency domain resources of the IAB DU are of soft type, and the IAB node schedules based on the configured frequency domain availability type, where P is a positive integer.
[0136] Optionally, the method further comprises: The method may further include receiving a second instruction, wherein the second instruction is used to indicate at least one of a size and a location of an available frequency region of a DU of the IAB node.
[0137] In an embodiment of the present application, the parent IAB node or CU may instruct the IAB node on at least one of the size and location of the available frequency range of the IAB DU.
[0138] For example, multiple DU cells are located in an IAB node, and the parent IAB node may directly and dynamically indicate that some of the multiple DU cells are available cells for the DU.
[0139] Also, for example, for a cell configured for an IAB DU, the parent IAB node may directly and dynamically indicate that some frequency domain resources in this cell are available resources for the DU.
[0140] For example, for a cell configured for an IAB DU, some resources in this cell are configured as semi-statically available resources for the DU, and the parent IAB node may dynamically indicate that some of the semi-statically available resources are actually available resources for the DU.
[0141] It should be noted that the actual available resources of the DU may be the intersection or union of the semi-statically allocated resources and the dynamically directed resources.
[0142] Optionally, the frequency domain availability of the DU of the IAB node is A frequency domain resource of a DU of the IAB node; A resource multiplexing mode between the DU and MT of the IAB node; The IAB node's duplex mode (DU and MT) is determined based on at least one of the following:
[0143] In one embodiment, the frequency domain availability of a DU of an IAB node may be determined based on the frequency domain resources of the DU of the IAB node. Optionally, the frequency domain availability of a DU of an IAB node may be determined based on the frequency domain resources of the DU of the IAB node and the frequency domain resources of an MT of the IAB node. For example, when the frequency domain resources of an MT and the frequency domain resources of a DU overlap, the availability of the frequency domain resources of the DU is soft, or the availability of the frequency domain resources of the overlapping portion is soft.
[0144] In another embodiment, the frequency domain availability of the DU of the IAB node may be determined based on a resource multiplexing mode between the DU and MT of the IAB node, where the resource multiplexing mode may include at least one of TDM, FDM, SDM, etc. Specifically, different resource multiplexing modes may correspond to different frequency domain availability types, for example, FDM corresponds to the soft type, TDM corresponds to the NA type, SDM corresponds to the hard type, etc. In this way, the IAB node can determine the frequency domain availability of the corresponding DU based on the current resource multiplexing mode of the DU and MT.
[0145] In another embodiment, the IAB node may determine the frequency domain availability of a DU based on a duplexing mode between the DU and MT of the IAB node, where the duplexing mode may include at least one of MT TX / DU TX, MT TX / DU RX, MT RX / DU RX, MT RX / DU TX, only MT TX, only MT RX, only DU TX, and only DU RX. Specifically, different duplexing modes may correspond to different frequency domain availability types, for example, DU-TX & MT-TX corresponds to the soft type, DU-RX & MT-RX corresponds to the NA type, and DU-TX & MT-RX corresponds to the hard type. In this way, the IAB node may determine the frequency domain availability of a corresponding DU based on the current duplexing mode between the DU and MT.
[0146] Alternatively, the availability of time-frequency resources of the DUs of the IAB node may be determined based on the time domain availability and frequency domain availability of the DUs of the IAB node.
[0147] For example, if the time domain availability type and the frequency domain availability type of the DU of the IAB node are the same, the availability type of the time-frequency resources of the DU of the IAB node is the same type; if the time domain availability type and the frequency domain availability type of the DU of the IAB node are different, the availability type of the time-frequency resources of the DU of the IAB node may be the time domain availability type of the DU of the IAB node or the frequency domain availability type of the IAB node.
[0148] Alternatively, for a soft-type time-frequency resource, if the DU can determine in advance that this time-frequency resource will not be used for MT, this time-frequency resource may be an available resource for the DU.
[0149] Alternatively, if the time domain availability of the DU of the IAB node is of a soft type and the frequency domain availability is of a soft type, the availability of the corresponding time-frequency resource is of a soft type; If the time domain availability of the DU of the IAB node is of hard type and the frequency domain availability is of soft type, the availability of the corresponding time-frequency resource is of soft type; If the time domain availability of the DU of the IAB node is of soft type and the frequency domain availability is of hard type, the availability of the corresponding time-frequency resource is of soft type; If the time domain availability of the DU of the IAB node is of soft type and the frequency domain availability is of shared type, the availability of the corresponding time-frequency resource is of soft type.
[0150] Optionally, the method further comprises: The method may further include reporting frequency domain resource parameters; Here, the frequency domain resource parameters include at least one of a frequency domain resource boundary, a frequency domain resource range, a frequency domain resource size, and availability of a desired frequency domain resource.
[0151] In an embodiment of the present application, an IAB node may report frequency domain resource parameters to a parent IAB node or a CU. Alternatively, the IAB node may report frequency domain resource parameters to a parent IAB node or a CU via assistant information, MAC CE, or BAP control PDU.
[0152] Optionally, the reporting manner of the frequency domain resource parameters includes one of periodic reporting, event-triggered reporting, and poll-triggered reporting.
[0153] Referring to FIG. 6, FIG. 6 is a flowchart of another information transmission method according to an embodiment of the present application, which is performed by a network device, and as shown in FIG. 6, includes the following steps:
[0154] Step 601: Indicate the frequency domain availability of the DU of the IAB node to the IAB node.
[0155] In an embodiment of the present application, the network device may be a parent IAB node of an IAB node or a CU. For example, the parent IAB node may indicate the frequency domain availability of the DU of the IAB node via DCI, MAC CE, RRC, etc., or the CU may indicate the frequency domain availability of the DU of the IAB node via F1-C, BAP control PDU, etc.
[0156] It should be noted that this embodiment is an embodiment of a network device corresponding to the embodiment shown in FIG. 4, and its specific embodiment can be referred to the relevant description of the embodiment shown in FIG. 4, and can achieve the same beneficial effects. In order to avoid repetition of the description, no further description will be given here.
[0157] In the information transmission method according to an embodiment of the present application, by indicating the frequency domain availability of the DU of the IAB node to the IAB node, the IAB node can transmit based on the frequency domain availability information of the DU of the IAB node, and further reduce interference between or within IAB nodes.
[0158] Optionally, the indicating to the IAB node the frequency domain availability of the DU of the IAB node includes: sending a first instruction to the IAB node, the first instruction comprising: the frequency domain availability of the DUs of said IAB node; a mapping relationship between the index of the frequency domain availability combination and the frequency domain availability combination; A combination of frequency domain availability; and an index of a frequency domain availability combination.
[0159] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0160] Optionally, the first indication is also used to indicate time domain availability of DUs of the IAB node.
[0161] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0162] Optionally, the network device is a parent IAB node of the IAB node, and the first instruction is carried in downlink control information DCI or a media access control unit MAC CE or a radio resource control RRC.
[0163] In an embodiment of the present application, a parent IAB node of the IAB node may send a first indication to the IAB node via DCI or MAC CE or RRC.
[0164] Optionally, the location and / or size of the first indication in the DCI is configured by RRC.
[0165] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0166] Optionally, the location of the first indication in the DCI is determined based on the location of a time domain availability indication of the DU of the IAB node in the DCI.
[0167] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0168] Optionally, the location of the first indication in the DCI is: a position in the DCI of the last time domain availability indication in the DCI offset by a first offset value, which is an offset value of a frequency domain availability indication; a position where the position of the time domain availability indication of the DU of the IAB node in the DCI is offset by a second offset value, which is the size of the time domain availability indication; and the location in the DCI of the time domain availability indication of the DU of the IAB node.
[0169] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0170] Optionally, the network device is a CU, and the first instruction is carried in an F1-C signaling or backhaul adaptation protocol control packet data unit.
[0171] In an embodiment of the present application, the CU may send the first instruction to the IAB node via F1-C signaling or BAP control PDU.
[0172] Optionally, the method further comprises: indicating the frequency domain availability indication granularity to the IAB node; and instructing the IAB node to use an SCS to determine the frequency domain availability.
[0173] In an embodiment of the present application, the indication granularity of frequency domain availability may be indicated to the IAB node by the parent IAB node of the IAB node via DCI, MAC CE, or RRC, or the indication granularity of frequency domain availability of the DU of the IAB node may be indicated to the IAB node by the CU via F1-C signaling or BAP control PDU.
[0174] Similarly, the SCS for determining the frequency domain availability may be instructed to the IAB node by the parent IAB node of the IAB node via DCI, MAC CE, or RRC, or the SCS for determining the frequency domain availability may be instructed to the IAB node by the CU via F1-C signaling or BAP control PDU.
[0175] Optionally, the indication granularity of the frequency domain availability of the DU of the IAB node is: A frequency domain availability indication granularity that is predefined by the protocol; A predefined mapping relationship between the bandwidth range of the DU of the parent IAB node of the IAB node and the indication granularity of frequency domain availability; A mapping relationship between a predefined bandwidth range of the DU of the IAB node and an indication granularity of frequency domain availability; A mapping relationship between a predefined bandwidth range of the IAB node where the mobile terminal MT can be deployed and an indication granularity of frequency domain availability; the size of the first indication; The available frequency domain resources of the DU of the IAB node; The actual scheduled frequency domain resources of the DU of the IAB node; and the frequency range in which the carriers of the DUs of the IAB node are located.
[0176] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0177] Optionally, the indication granularity of the frequency domain availability of the DU of the IAB node is: N physical resource blocks PRB (N is a positive integer); M resource block groups RBG (M is a positive integer); K carriers per channel (K is a positive integer); One of L subbands (L is a positive integer).
[0178] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0179] Optionally, the RBG is determined based on a bandwidth.
[0180] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0181] Optionally, the subbands are determined by interference-related parameters or channel state information (CSI) measurement parameters.
[0182] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0183] Optionally, the SCS for determining frequency domain availability comprises: an SCS corresponding to a combination of time domain availability of the DU of the IAB node; An SCS configured in uplink resource configuration and / or downlink resource configuration of the DU of the IAB node; an SCS of a PDCCH or SSB of a primary cell of the IAB node; and an SCS corresponding to the frequency range of the aggregation cell of the IAB node.
[0184] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0185] Optionally, when there are at least two SCSs in the uplink resource allocation and / or the downlink resource allocation, the SCS for determining the frequency domain availability is: a largest SCS of the at least two SCSs; and a smallest SCS of the at least two SCSs; One of the at least two SCSs is the SCS of the primary cell synchronization signal block.
[0186] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0187] Optionally, when at least two SCSs are configured in the MT of the IAB node and / or the DU of the IAB node, the SCS for determining frequency domain availability comprises: The SCS of the primary cell, Primary secondary cell SCS and a largest SCS of the at least two SCSs; and a smallest SCS of the at least two SCSs; an SCS of a PDCCH or SSB of a primary cell of a primary cell group; The SCS of the PDCCH or SSB of the reference cell of the primary cell group; It is one of the PDCCH or SSB SCS of the reference cell of the secondary cell group.
[0188] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0189] Optionally, the first instruction comprises: time domain resource allocation; The IAB node is determined based on at least one of the resource multiplexing modes of the DU and MT of the IAB node.
[0190] Optionally, the first instruction comprises: A resource whose time domain is arranged as a soft type; A resource in which the time domain is arranged as a hard type; a resource whose time domain is placed as unavailable type; A resource in which the time domain is arranged as a downlink type; A resource in which the time domain is arranged as an uplink type; A resource whose time domain is arranged as a flexible type; The resource is used for at least one of the resources corresponding to each slot or each symbol.
[0191] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0192] Optionally, the method further comprises: The method further includes transmitting time domain parameters that the first instruction enables to the IAB node.
[0193] In an embodiment of the present application, the time domain parameters enabled by the first instruction may be transmitted to the IAB node by the parent IAB node of the IAB node via DCI, MAC CE, or RRC, or the time domain parameters enabled by the first instruction may be transmitted to the IAB node by the CU via F1-C signaling or BAP control PDU.
[0194] Optionally, the time domain parameters include at least one of an activation period, a time domain offset, and a time domain resource size.
[0195] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0196] Optionally, the method further comprises: and further comprising transmitting a second instruction, wherein the second instruction is used to indicate at least one of a size of an available frequency region and a location of the available frequency region for the DU of the IAB node.
[0197] In an embodiment of the present application, the second instruction may be sent to the IAB node by the parent IAB node of the IAB node via DCI, MAC CE, or RRC, or the second instruction may be sent to the IAB node by the CU via F1-C signaling or BAP control PDU.
[0198] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0199] Optionally, the frequency domain availability of the DU of the IAB node is A frequency domain resource of a DU of the IAB node; A resource multiplexing mode between the DU and MT of the IAB node; The IAB node's duplex mode (DU and MT) is determined based on at least one of the following:
[0200] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0201] Optionally, the availability of time-frequency resources of the DUs of the IAB node is determined by the time domain availability and frequency domain availability of the DUs of the IAB node.
[0202] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0203] Alternatively, if the time domain availability of the DU of the IAB node is of a soft type and the frequency domain availability is of a soft type, the availability of the corresponding time-frequency resource is of a soft type; If the time domain availability of the DU of the IAB node is of hard type and the frequency domain availability is of soft type, the availability of the corresponding time-frequency resource is of soft type; If the time domain availability of the DU of the IAB node is of soft type and the frequency domain availability is of hard type, the availability of the corresponding time-frequency resource is of soft type; If the time domain availability of the DU of the IAB node is of soft type and the frequency domain availability is of shared type, the availability of the corresponding time-frequency resource is of soft type.
[0204] Optionally, the method further comprises: receiving frequency domain resource parameters reported by the IAB nodes; Here, the frequency domain resource parameters include at least one of a frequency domain resource boundary, a frequency domain resource range, a frequency domain resource size, and availability of a desired frequency domain resource.
[0205] The implementation method of this embodiment can be achieved by referring to the related explanation of the embodiment shown in FIG. 4, and the explanation will be omitted here.
[0206] Optionally, the manner of reporting the frequency domain resource parameters includes one of periodic reporting, event-triggered reporting, and poll-triggered reporting.
[0207] For ease of understanding, the information transmission method according to the embodiment of the present application will be described below in conjunction with an example.
[0208] Example 1: Time domain availability is multiplexed with DCI format 2_5 signaling and indicated together with time domain availability in DCI, and this solution is compatible with R16 UE.
[0209] Specifically, for each IAB node or each cell of an IAB DU, IAB DU Serving Cell Identifier (iabDuCellId-AI); and The position of one frequency domain availability indication in DCI format 2_5 (FreqPositionInDCI-AI), Some or all of the information may be provided with a set of frequency domain availability combination indications (FreqAvailabilityCombinations), where each frequency domain availability combination indication comprises: A frequency domain resource availability indication (FreqResourceAvailability); and mapping from a Soft-type frequency domain resource availability combination or some or all frequency domain resource availability combinations provided by a frequency domain resource availability indication (FreqResourceAvailability) to a corresponding AI index field value of DCI format 2_5 provided by a frequency domain availability combination identifier (FreqAvailabilityCombinationId), i.e., the corresponding frequency domain resource availability indication can be found based on the mapping relationship between the FreqAvailabilityCombinationId and FreqAvailabilityCombinations configuration indicated in the DCI.
[0210] Here, the frequency domain resource availability indication (FreqResourceAvailability) is used to indicate the availability of frequency domain resources. Alternatively, it may be the availability indication of some or all soft-type frequency domain resource configuration frequency domain resources, or the availability indication of some or all frequency domain resource configuration frequency domain resources, i.e., not limited to soft-type frequency domain resources, or the frequency domain resource availability indication is configured for frequency domain resources of each resource type (i.e., hard / soft / NA, etc.), or the frequency domain resource availability indication is configured for each multiplexing mode (i.e., MT TX / DU TX, MT RX / DU RX, MT TX / DU RX, MT RX / DU TX, TDM), or the frequency domain resource availability indication is configured for each link direction (i.e., UL / DL / Flexbile), or the frequency domain resource availability indication is configured for each slot or each symbol.
[0211] It should be noted that when the frequency domain resource availability indication is used for soft-type frequency domain resources, i.e., used to indicate the availability of soft-type frequency domain resources, the frequency domain resource availability indication in DCI only overrides resources that are pre-configured in the frequency domain as soft-type, and does not override resources that are pre-configured as Hard / NA-type.When the frequency domain resource availability indication is used for some or all resources without considering the availability of frequency domain resources pre-configured in the frequency domain, the frequency domain resource availability indication in DCI can override the availability of Hard / NA-type resources.
[0212] The IAB-DU may adopt the same SCS configuration as the frequency domain availability combination indication (FreqAvailabilityCombinations) or the time domain availability combination indication (availabilityCombinations), or adopt the SCS configuration provided by the IAB-DU uplink / downlink configuration (IAB-DU-Resource-Configuration-TDD-Config), or adopt the highest or lowest SCS configuration if multiple IAB-DU uplink / downlink configurations provide different SCS configurations (which may correspond to the case of MT dual connectivity), or adopt the highest or lowest SCS configuration among multiple time domain availability combination indications (availabilityCombinations) (which may correspond to the case of MT dual connectivity) that support different SCS configurations.
[0213] Here, the location of the frequency domain availability indication in the DCI may be one of the following three ways:
[0214] Scheme 1: As shown in FIG. 5a, the location of the frequency domain availability indication in the DCI may be after the location of the last time domain availability indication in the DCI.
[0215] Scheme 2: As shown in FIG. 5b, the location of the frequency domain availability indication in the DCI may be after the location of the corresponding time domain availability indication in the DCI.
[0216] Scheme 3: As shown in FIG. 5c, the location of the frequency domain availability indication in the DCI may be the location of the corresponding time domain availability indication in the DCI.
[0217] It should be noted that, compared with Scheme 1 and Scheme 2, Scheme 3 may configure only one positionInDCI indication in the RRC configuration, where the frequency domain availability indication carried in DCI Format 2_5 may be FreqAvailabilityCombinationId-r17.
[0218] Regarding indicating the frequency domain availability of a cell through RRC signaling, the corresponding RRC signaling configuration may be one of the following schemes:
[0219] Scheme 1: The frequency domain availability indication and the time domain availability indication may adopt the same information element (IE).
[0220] Here, some fields in the IE may be shared between the time domain availability indication and the frequency domain availability indication, such as availabilityCombinationsPerCellIndex. The positionInDCI-AI field may be shared between the time domain availability indication and the frequency domain availability indication, or a new field position indication may be defined. If a new field position indication is not provided, the position of the frequency domain indication may be determined based on positionInDCI-AI, for example, frequency domain available resource indication field position = positionInDCI-AIlast + position indicator size, where positionInDCI-AIlast is the position or start position of the last time domain availability indication in the DCI, and position indicator size is the size of the time domain availability indication. The conventional field AvailabilityCombinationsPerCellIndex is a joint index of the time domain and frequency domain available resource sets.
[0221] Alternatively, the implementation code for the selective RRC configuration may be as follows:
[0222] AvailabilityCombinationsPerCell information element -- ASN1START -- TAG-AVAILABILITYCOMBINATIONSPERCELL-START AvailabilityCombinationsPerCell-r16 ::= SEQUENCE { availabilityCombinationsPerCellIndex-r16 AvailabilityCombinationsPerCellIndex-r16, iab-DU-CellIdentity-r16 CellIdentity, positionInDCI-AI-r16 INTEGER(0..maxAI-DCI-PayloadSize-r16-1) OPTIONAL, -- Need M FreqPositionInDCI-AI-r17 INTEGER(0..maxAI-DCI-PayloadSize-r16-1) OPTIONAL, -- Need M availabilityCombinations-r16 SEQUENCE (SIZE (1..maxNrofAvailabilityCombinationsPerSet-r16)) OF AvailabilityCombination-r16, FreqAvailabilityCombinations-r17 SEQUENCE (SIZE (1..maxNrofFreqAvailabilityCombinationsPerSet-r17)) OF FreqAvailabilityCombination-r17, ... } AvailabilityCombinationsPerCellIndex-r16 ::= INTEGER(0..maxNrofDUCells-r16) AvailabilityCombination-r16 ::= SEQUENCE { availabilityCombinationId-r16 AvailabilityCombinationId-r16, resourceAvailability-r16 SEQUENCE (SIZE (1..maxNrofResourceAvailabilityPerCombination-r16)) OF INTEGER (0..7) } FreqAvailabilityCombination-r17 ::= SEQUENCE { FreqAvailabilityCombinationId-r17 FreqAvailabilityCombinationId-r17, FreqResourceAvailability-r17 SEQUENCE (SIZE (1..maxNrofFreqResourceAvailabilityPerCombination-r17)) OF INTEGER (0..N) } AvailabilityCombinationId-r16 ::= INTEGER (0..maxNrofAvailabilityCombinationsPerSet-r16-1) FreqAvailabilityCombinationId-r17 ::= INTEGER (0..maxNrofFreqAvailabilityCombinationsPerSet-r17-1) -- TAG-AVAILABILITYCOMBINATIONSPERCELL-STOP -- ASN1STOP
[0223] It should be noted that if the frequency domain availability indication is carried in DCI format 2-5, the maximum value of FreqPositionInDCI-AI-r17 may be defined as maxAI-DCI-PayloadSize-R17, where maxAI-DCI-PayloadSize-R17 = maxAI-DCI-PayloadSize-R16. If the frequency domain availability indication adopts a new DCI (e.g., Downlink Control Information (DCI) format 2_7 (i.e., DCI format 2_7)) indication, the maximum value of FreqPositionInDCI-AI-r17 may be defined as maxAI-DCI-PayloadSize-R17. Here, the value of maxAI-DCI-PayloadSize-R17 is not required to be the same as the maxAI-DCI-PayloadSize-R16 configuration. maxAI-DCI-PayloadSize-R17 represents the size of the largest DCI for indicating availability defined in the 17th release (Release 17, Rel-17) of the protocol, and maxAI-DCI-PayloadSize-R16 represents the size of the largest DCI for indicating availability defined in Rel-16 of the protocol.
[0224] Scheme 2: An independent RRC IE is employed to indicate frequency domain availability.
[0225] Optionally, the realization code of the selective RRC configuration may be shown as follows:
[0226] FreqAvailabilityCombinationsPerCell information element -- ASN1START -- TAG-AVAILABILITYCOMBINATIONSPERCELL-START FreqAvailabilityCombinationsPerCell-r17 ::= SEQUENCE { FreqAvailabilityCombinationsPerCellIndex-r17 FreqAvailabilityCombinationsPerCellIndex-r17, iab-DU-CellIdentity-r17 CellIdentity, FreqPositionInDCI-AI-r17 INTEGER(0..maxAI-DCI-PayloadSize-r17-1) OPTIONAL, -- Need M FreqAvailabilityCombinations-r17 SEQUENCE (SIZE (1..maxNrofFreqAvailabilityCombinationsPerSet-r17)) OF FreqAvailabilityCombination-r17, ... } FreqAvailabilityCombinationsPerCellIndex-r17 ::= INTEGER(0..maxNrofDUCells-r17) FreqAvailabilityCombination-r17 ::= SEQUENCE { FreqAvailabilityCombinationId-r17 FreqAvailabilityCombinationId-r17, FreqResourceAvailability-r17 SEQUENCE (SIZE (1..maxNrofFreqResourceAvailabilityPerCombination-r17)) OF INTEGER (0..N) } FreqAvailabilityCombinationId-r17 ::= INTEGER (0..maxNrofFreqAvailabilityCombinationsPerSet-r17-1) -- TAG-AVAILABILITYCOMBINATIONSPERCELL-STOP -- ASN1STOP
[0227] It should be noted that if the frequency domain availability indication is carried in DCI format 2-5, the maximum value in FreqPositionInDCI-AI-r17 may be defined as maxAI-DCI-PayloadSize-R17, where maxAI-DCI-PayloadSize-R17 = maxAI-DCI-PayloadSize-R16. If the frequency domain availability indication adopts a new DCI (e.g., DCI format 2_7) indication, the maximum value in FreqPositionInDCI-AI-r17 may be defined as maxAI-DCI-PayloadSize-R17. Here, the value of maxAI-DCI-PayloadSize-R17 is not required to be the same as the maxAI-DCI-PayloadSize-R16 configuration.
[0228] Example 2: A time domain availability indication incorporates a primary frequency domain availability indication.
[0229] For each IAB node or each cell in an IAB DU, IAB DU Serving Cell Identifier (iabDuCellId-AI); and The position in DCI format 2_5 of one time domain availability indication (positionInDCI-AI); The position of one frequency domain availability indication in DCI format 2_5 (FreqPositionInDCI-AI), Providing some or all of the information with a set of time domain availability combinations (Availability Combinations), where each time domain availability combination is: a time domain availability indication (resourceAvailability) for indicating the availability of soft-type symbol resources in one or more slots; a mapping from a Soft type symbol availability combination provided by a time domain availability indication (resourceAvailability) to a corresponding Availability Indicator (AI) index field value in DCI format 2_5 provided by a time domain availability combination identifier (AvailabilityCombinationId); and mapping from some / all frequency domain resource availability combinations provided by the frequency domain resource availability indication (FreqResourceAvailability) to corresponding AI index field values of DCI format 2_5 provided by the frequency domain availability combination identifier (FreqAvailabilityCombinationId).
[0230] It should be noted that, when this indication method is adopted, the corresponding time domain entry can be first found based on the time domain availability indication in DCI format 2_5, and then the corresponding frequency domain availability indication can be found under the time domain entry based on the frequency domain availability indication, that is, the frequency domain resource indication is an indication embedded under each time domain entry.
[0231] Here, for RRC configuration parameters related to frequency domain availability (e.g., available frequency domain resources (FreqResourceAvailability), available frequency domain combination identifier (FreqAvailabilityCombinationId), etc.), SCS configuration, and DCI format, refer to Example 1.
[0232] Example 3: RRC indicates frequency domain indication granularity and DCI indicates frequency domain availability.
[0233] The CU or parent IAB node may configure a frequency domain availability indication granularity, such as a frequency domain availability indication granularity (FreqGranularity), for the IAB MT or IAB DU via RRC.
[0234] A DCI for indicating frequency domain availability, for example, DCI format 2_7, is defined, and the frequency domain availability of an IAB DU is indicated by this DCI.
[0235] The IAB node may determine the length of the frequency domain availability indication based on the resource bandwidth of the MT or DU, where the length of the frequency domain availability indication may be one of the following:
[0236] In the case of a bitmap indication, the length of the indication field in the DCI may be ceil(BW / FreqGranularity), where ceil represents rounding up, BW represents the resource bandwidth of the MT or DU, and FreqGranularity represents the frequency domain availability indication granularity. In this manner, each frequency domain unit corresponds to one bit, and is indicated as available or unavailable, or soft-type resources are indicated as hard or NA type.
[0237] In the case of a bitmap indication, the length of the indication field in the DCI may be 2*ceil(BW / FreqGranularity), where ceil represents rounding up, BW represents the resource bandwidth of the MT or DU, and FreqGranularity represents the frequency domain availability indication granularity. In this manner, each frequency domain unit corresponds to 2 bits, and the frequency domain unit resource may be indicated as a soft type, a hard type, or an NA type.
[0238] In the case of a continuous indication, the length of the indication field in the DCI may be ceil(log2(BW / FreqGranularity))+1, where ceil represents rounding up, BW represents the resource bandwidth of the MT or DU, and FreqGranularity represents the frequency domain availability indication granularity, where the highest or lowest 1 bit indicates available or unavailable, or indicates Hard type or NA type, and ceil(log2(BW / FreqGranularity)) identifies which frequency domain resource is the indicated attribute.
[0239] In the case of a continuous indication, the length of the indication field in the DCI is 2*ceil(log2(BW / FreqGranularity))+2, where ceil represents rounding up, BW represents the resource bandwidth of the MT or DU, and FreqGranularity represents the frequency domain availability indication granularity. Here, the highest or lowest bit indicates Hard type or NA type, and ceil(log2(BW / FreqGranularity)) identifies which frequency domain resource is the indicated attribute. The second highest bit or the second lowest bit or the second bit+ceil(log2(BW / FreqGranularity)) indicates Hard type or NA type, and ceil(log2(BW / FreqGranularity)) identifies which frequency domain resource is the indicated attribute.
[0240] Here, the reference SCS for determining frequency domain availability may be a parameter of the RRC configuration.
[0241] It should be noted that, in the above method, the corresponding time domain indication number (Entry) is first found according to the time domain availability indication in DCI format 2_5, and then the corresponding frequency domain availability combination is found according to the frequency domain availability indication using the time domain indication number, that is, the frequency domain resource indication is an indication embedded in each time domain indication number.
[0242] Example 4: Expanding the range of the availability indication area.
[0243] In the IE of the RRC configuration availability parameters (i.e., AvailabilityCombinationsPerCell information element), the indication range of resourceAvailability-r16 is extended.
[0244] The realization code of selective RRC configuration may be shown as follows:
[0245] AvailabilityCombinationsPerCell information element -- ASN1START -- TAG-AVAILABILITYCOMBINATIONSPERCELL-START AvailabilityCombinationsPerCell-r17 ::= SEQUENCE { availabilityCombinationsPerCellIndex-r16 AvailabilityCombinationsPerCellIndex-r16, iab-DU-CellIdentity-r16 CellIdentity, positionInDCI-AI-r16 INTEGER(0..maxAI-DCI-PayloadSize-r16-1) OPTIONAL, -- Need M availabilityCombinations-r16 SEQUENCE (SIZE (1..maxNrofAvailabilityCombinationsPerSet-r16)) OF AvailabilityCombination-r16, ... } AvailabilityCombinationsPerCellIndex-r16 ::= INTEGER(0..maxNrofDUCells-r16) AvailabilityCombination-r16 ::= SEQUENCE { availabilityCombinationId-r16 AvailabilityCombinationId-r16, resourceAvailability-r17 SEQUENCE (SIZE (1..maxNrofResourceAvailabilityPerCombination-r16)) OF INTEGER (0..N) } AvailabilityCombinationId-r16 ::= INTEGER (0..maxNrofAvailabilityCombinationsPerSet-r16-1) -- TAG-AVAILABILITYCOMBINATIONSPERCELL-STOP -- ASN1STOP
[0246] Here, the value range of resourceAvailability-r17 is 0-N, which represents the time-frequency domain resource availability indication of IAB, where N is a value equal to or greater than 8.
[0247] It should be mentioned that in Rel-16, the value range of resourceAvailability-r16 is 0-7, representing an indication of the availability of time domain UL / DL / Flexible symbols.
[0248] It should be noted that, in the above method, the corresponding time domain indication number (Entry) is first found according to the time domain availability indication in DCI format 2_5, and then the corresponding frequency domain availability combination is found according to the frequency domain availability indication using the time domain indication number, that is, the frequency domain resource indication is an indication embedded in each time domain indication number.
[0249] Example 5: F1-C signaling.
[0250] The frequency domain availability or frequency domain resource attributes are configured for the DU by CUF1-C signaling.
[0251] Here, the configuration parameters of the F1-C signaling may be as follows:
[0252] Case 1: Frequency domain availability is configured explicitly, and N PRBs are configured as the designated granularity.
[0253] One alternative implementation code may be shown as follows:
[0254] Frequency configuration list: >Frequency configuration item: 1.. <maxnooffrequencyresource> > HSNA frequency info ENUMERATED (HARD, SOFT, NOTAVAILABLE).
[0255] Here, maxnoofFrequencyResource represents the number of specified frequency domain resources. For example, if 10 PRBs are specified as the specified granularity and the maximum bandwidth is 275 PRBs, 28 frequency domain instruction marks are required.
[0256] Case 2: Explicitly configure frequency domain availability.
[0257] One alternative implementation code may be shown as follows:
[0258] Frequency configuration list: >HSNA frequency resource granularity ENUMERATED(RB1, RB2, RB3,RB4,…) >Frequency configuration item: 1.. <maxnooffrequencyresource> > HSNA frequency info ENUMERATED (HARD, SOFT, NOTAVAILABLE).
[0259] Here, RB1, RB2, RB3, RB4, . . . represent the indication granularity of the frequency domain availability indication.
[0260] Here, maxnoofFrequencyResource represents the number of specified frequency domain resources. For example, if 10 PRBs are specified as the specified granularity and the maximum bandwidth is 275 PRBs, 28 frequency domain instruction marks are required.
[0261] Case 3: Configure frequency domain availability based on resource multiplexing mode and configure in multiplexing info IE.
[0262] One alternative implementation code may be shown as follows:
[0263] IAB-MT Cell List: > IAB-MT Cell Item >> NR Cell Identity >>DU_RX / MT_RX >>> HSNA frequency info ENUMERATED(HARD, SOFT, NOTAVAILABLE) >>DU_TX / MT_TX >>> HSNA frequency info ENUMERATED(HARD, SOFT, NOTAVAILABLE) >>DU_TX / MT_RX >>> HSNA frequency info ENUMERATED(HARD, SOFT, NOTAVAILABLE) >>DU_RX / MT_TX >>> HSNA frequency info ENUMERATED(HARD, SOFT, NOTAVAILABLE).
[0264] Case 4: Configure frequency domain availability based on resource multiplexing mode and configure in multiplexing info IE.
[0265] One alternative implementation code may be shown as follows:
[0266] IAB-MT Cell List: > IAB-MT Cell Item >> NR Cell Identity >>DU_RX / MT_RX >>> HSNA frequency info ENUMERATED(HARD, SOFT, NOTAVAILABLE,SIMUTRANSMISSION) >>DU_TX / MT_TX >>> HSNA frequency info ENUMERATED(HARD, SOFT, NOTAVAILABLE,SIMUTRANSMISSION) >>DU_TX / MT_RX >>> HSNA frequency info ENUMERATED(HARD, SOFT, NOTAVAILABLE,SIMUTRANSMISSION) >>DU_RX / MT_TX >>> HSNA frequency info ENUMERATED(HARD, SOFT, NOTAVAILABLE,SIMUTRANSMISSION)
[0267] Here, SIMUTRANSMISSION indicates that simultaneous scheduling of MT and DU is supported.
[0268] Case 5: Configured in the gNB-DU Cell Resource Configuration IE, with UL / DL / Flexible symbols of time domain resources configured as the indicated granularity.
[0269] One alternative implementation code may be shown as follows:
[0270] HSNA Slot Configuration List > HSNA Slot Configuration Item >>HSNA Downlink >>>HSNA frequency info ENUMERATED (HARD, SOFT, NOTAVAILABLE) >>HSNA Uplink >>>HSNA frequency info ENUMERATED (HARD, SOFT, NOTAVAILABLE) >>HSNA Flexible >>>HSNA frequency info ENUMERATED (HARD, SOFT, NOTAVAILABLE).
[0271] Referring to FIG. 7, FIG. 7 is a structural diagram of an information transmission device according to an embodiment of the present application. As shown in FIG. 7, the information transmission device 700 includes: a transmitting module 701 for transmitting information based on frequency domain availability of a distributed unit DU of an IAB node; Here, the frequency domain availability of the DU of the IAB node is indicated by the parent IAB node of the IAB node, or configured by a central unit CU, or predefined by a protocol.
[0272] Optionally, the device comprises: the frequency domain availability of the DUs of said IAB node; a mapping relationship between the index of the frequency domain availability combination and the frequency domain availability combination; A combination of frequency domain availability; and an index of the frequency domain availability combination.
[0273] Optionally, the first indication is also used to indicate time domain availability of DUs of the IAB node.
[0274] Optionally, the first indication is carried in a Downlink Control Information DCI or a Media Access Control (MAC) CE or a Radio Resource Control (RRC) or F1-C signaling or a Backhaul Adaptation Protocol Control Packet Data Unit.
[0275] Optionally, the location and / or size of the first indication in the DCI is configured by RRC.
[0276] Optionally, the location of the first indication in the DCI is determined based on the location of a time domain availability indication of the DU of the IAB node in the DCI.
[0277] Optionally, the location of the first indication in the DCI is: a position in the DCI of the last time domain availability indication in the DCI offset by a first offset value, which is an offset value of a frequency domain availability indication; a position where the position of the time domain availability indication of the DU of the IAB node in the DCI is offset by a second offset value, which is the size of the time domain availability indication; and the location in the DCI of the time domain availability indication of the DU of the IAB node.
[0278] Optionally, the device comprises: The IAB node further includes a determination module for determining frequency domain availability of a DU of the IAB node based on an index of a frequency domain availability combination indicated by the first instruction and a first mapping relationship, where the first mapping relationship is a mapping relationship between an index of a frequency domain availability combination and a frequency domain availability combination.
[0279] Optionally, the indication granularity of the frequency domain availability of the DU of the IAB node is: The indication granularity of frequency domain availability indicated by F1-C, RRC, MAC CE, DCI, or BAP CONTROL PDU; A frequency domain availability indication granularity that is predefined by the protocol; A predefined mapping relationship between the bandwidth range of the DU of the parent IAB node of the IAB node and the indication granularity of frequency domain availability; A mapping relationship between a predefined bandwidth range of the DU of the IAB node and an indication granularity of frequency domain availability; A mapping relationship between a predefined bandwidth range of the IAB node where the mobile terminal MT can be deployed and an indication granularity of frequency domain availability; the size of the first indication; The available frequency domain resources of the DU of the IAB node; The actual scheduled frequency domain resources of the DU of the IAB node; and the frequency range in which the carriers of the DUs of the IAB node are located.
[0280] Optionally, the indication granularity of the frequency domain availability of the DU of the IAB node is: N physical resource blocks PRB (N is a positive integer); M resource block groups RBG (M is a positive integer); K carriers per channel (K is a positive integer); One of L subbands (L is a positive integer).
[0281] Optionally, the RBG is determined based on a bandwidth.
[0282] Optionally, the subbands are determined by interference-related parameters or channel state information (CSI) measurement parameters.
[0283] Optionally, the subcarrier spacing SCS for determining the frequency domain availability is: an SCS indicated by an F1-C, RRC, MAC CE, DCI or BAP control PDU; an SCS corresponding to a combination of time domain availability of the DU of the IAB node; An SCS configured in uplink resource configuration and / or downlink resource configuration of the DU of the IAB node; an SCS of a PDCCH or SSB of a primary cell of the IAB node; and an SCS corresponding to the frequency range of the aggregation cell of the IAB node.
[0284] Optionally, when there are at least two SCSs in the uplink resource allocation and / or the downlink resource allocation, the SCS for determining the frequency domain availability is: a largest SCS of the at least two SCSs; and a smallest SCS of the at least two SCSs; One of the at least two SCSs is the SCS of the primary cell synchronization signal block.
[0285] Optionally, when at least two SCSs are configured in the MT of the IAB node and / or the DU of the IAB node, the SCS for determining frequency domain availability comprises: The SCS of the primary cell, Primary secondary cell SCS and a largest SCS of the at least two SCSs; and a smallest SCS of the at least two SCSs; an SCS of a PDCCH or SSB of a primary cell of a primary cell group; The SCS of the PDCCH or SSB of the reference cell of the primary cell group; It is one of the PDCCH or SSB SCS of the reference cell of the secondary cell group.
[0286] Optionally, the first instruction comprises: time domain resource allocation; Frequency domain resource allocation; A resource multiplexing mode between the DU and MT of the IAB node; The IAB node's duplex mode (DU and MT) is determined based on at least one of the following:
[0287] Optionally, the first instruction comprises: A resource whose time domain is arranged as a soft type; A resource in which the time domain is arranged as a hard type; a resource whose time domain is placed as unavailable type; A resource in which the time domain is arranged as a downlink type; A resource in which the time domain is arranged as an uplink type; A resource whose time domain is arranged as a flexible type; The resource is used for at least one of the resources corresponding to each slot or each symbol.
[0288] Optionally, the activation time of the first instruction is: a predefined time domain parameter activated by the first instruction; The indication or placement of the first indication is determined based on at least one of: a time domain parameter that enables the first indication;
[0289] Optionally, the time domain parameters include at least one of an activation period, a time domain offset, and a time domain resource size.
[0290] Optionally, the device comprises: and a second receiving module for receiving a second instruction, wherein the second instruction is used to indicate at least one of a size and a location of an available frequency region of a DU of the IAB node.
[0291] Optionally, the frequency domain availability of the DU of the IAB node is A frequency domain resource of a DU of the IAB node; A resource multiplexing mode between the DU and MT of the IAB node; The IAB node's duplex mode (DU and MT) is determined based on at least one of the following:
[0292] Optionally, the availability of time-frequency resources of the DUs of the IAB node is determined by the time domain availability and frequency domain availability of the DUs of the IAB node.
[0293] Alternatively, if the time domain availability of the DU of the IAB node is of a soft type and the frequency domain availability is of a soft type, the availability of the corresponding time-frequency resource is of a soft type; If the time domain availability of the DU of the IAB node is of hard type and the frequency domain availability is of soft type, the availability of the corresponding time-frequency resource is of soft type; If the time domain availability of the DU of the IAB node is of soft type and the frequency domain availability is of hard type, the availability of the corresponding time-frequency resource is of soft type; If the time domain availability of the DU of the IAB node is of soft type and the frequency domain availability is of shared type, the availability of the corresponding time-frequency resource is of soft type.
[0294] Optionally, the device comprises: a reporting module for reporting frequency domain resource parameters; Here, the frequency domain resource parameters include at least one of a frequency domain resource boundary, a frequency domain resource range, a frequency domain resource size, and availability of a desired frequency domain resource.
[0295] Optionally, the manner of reporting the frequency domain resource parameters includes one of periodic reporting, event-triggered reporting, and poll-triggered reporting.
[0296] The information transmission device according to the embodiment of the present application can implement each process in the method embodiment of FIG. 4, which will not be further described here to avoid repetition.
[0297] It should be mentioned that the information transmission device in the embodiments of the present application may be a device, a component, an integrated circuit, or a chip in an IAB node.
[0298] Referring to FIG. 8, FIG. 8 is a structural diagram of another information transmission device according to an embodiment of the present application. As shown in FIG. 8, the information transmission device 800 includes: The IAB node includes a first indicating module 801 for indicating frequency domain availability of a DU of the IAB node to the IAB node.
[0299] Optionally, the first instruction module specifically: for transmitting a first instruction to the IAB node, the first instruction comprising: the frequency domain availability of the DUs of said IAB node; a mapping relationship between the index of the frequency domain availability combination and the frequency domain availability combination; A combination of frequency domain availability; and an index of a frequency domain availability combination.
[0300] Optionally, the first indication is also used to indicate time domain availability of DUs of the IAB node.
[0301] Optionally, the first instruction is carried in downlink control information DCI or a media access control unit MAC CE or a radio resource control RRC.
[0302] Optionally, the location and / or size of the first indication in the DCI is configured by RRC.
[0303] Optionally, the location of the first indication in the DCI is determined based on the location of a time domain availability indication of the DU of the IAB node in the DCI.
[0304] Optionally, the location of the first indication in the DCI is: a position in the DCI of the last time domain availability indication in the DCI offset by a first offset value, where I is the offset value of the frequency domain availability indication; a position in the DCI of the time domain availability indication of the DU of the IAB node offset by a second offset value, where J is the size of the time domain availability indication; and the location in the DCI of the time domain availability indication of the DU of the IAB node.
[0305] Optionally, the first indication is carried in an F1-C signaling or a backhaul adaptation protocol control packet data unit.
[0306] Optionally, the device comprises: a second indication module for indicating the frequency domain availability indication granularity to the IAB node; and a third indication module for indicating to the IAB node an SCS for determining the frequency domain availability.
[0307] Optionally, the indication granularity of the frequency domain availability of the DU of the IAB node is: A frequency domain availability indication granularity that is predefined by the protocol; A predefined mapping relationship between the bandwidth range of the DU of the parent IAB node of the IAB node and the indication granularity of frequency domain availability; A mapping relationship between a predefined bandwidth range of the DU of the IAB node and an indication granularity of frequency domain availability; A mapping relationship between a predefined bandwidth range of the IAB node where the mobile terminal MT can be deployed and an indication granularity of frequency domain availability; the size of the first indication; The available frequency domain resources of the DU of the IAB node; The actual scheduled frequency domain resources of the DU of the IAB node; and the frequency range in which the carriers of the DUs of the IAB node are located.
[0308] Optionally, the indication granularity of the frequency domain availability of the DU of the IAB node is: N physical resource blocks PRB (N is a positive integer); M resource block groups RBG (M is a positive integer); K carriers per channel (K is a positive integer); One of L subbands (L is a positive integer).
[0309] Optionally, the RBG is determined based on a bandwidth.
[0310] Optionally, the subbands are determined by interference-related parameters or channel state information (CSI) measurement parameters.
[0311] Optionally, the subcarrier spacing SCS for determining the frequency domain availability is: an SCS corresponding to a combination of time domain availability of the DU of the IAB node; An SCS configured in uplink resource configuration and / or downlink resource configuration of the DU of the IAB node; an SCS of a PDCCH or SSB of a primary cell of the IAB node; and an SCS corresponding to the frequency range of the aggregation cell of the IAB node.
[0312] Optionally, when there are at least two SCSs in the uplink resource allocation and / or the downlink resource allocation, the SCS for determining the frequency domain availability is: a largest SCS of the at least two SCSs; and a smallest SCS of the at least two SCSs; One of the at least two SCSs is the SCS of the primary cell synchronization signal block.
[0313] Optionally, when at least two SCSs are configured in the MT of the IAB node and / or the DU of the IAB node, the SCS for determining frequency domain availability comprises: The SCS of the primary cell, Primary secondary cell SCS and a largest SCS of the at least two SCSs; and a smallest SCS of the at least two SCSs; an SCS of a PDCCH or SSB of a primary cell of a primary cell group; The SCS of the PDCCH or SSB of the reference cell of the primary cell group; It is one of the PDCCH or SSB SCS of the reference cell of the secondary cell group.
[0314] Optionally, the first instruction comprises: time domain resource allocation; Frequency domain resource allocation; A resource multiplexing mode between the DU and MT of the IAB node; The IAB node's duplex mode (DU and MT) is determined based on at least one of the following:
[0315] Optionally, the first instruction comprises: A resource whose time domain is arranged as a soft type; A resource in which the time domain is arranged as a hard type; a resource whose time domain is placed as unavailable type; A resource in which the time domain is arranged as a downlink type; A resource in which the time domain is arranged as an uplink type; A resource whose time domain is arranged as a flexible type; The resource is used for at least one of the resources corresponding to each slot or each symbol.
[0316] Optionally, the device comprises: The method further includes a first transmitting module for transmitting time domain parameters enabled by the first instruction to the IAB node.
[0317] Optionally, the time domain parameters include at least one of an activation period, a time domain offset, and a time domain resource size.
[0318] Optionally, the device comprises: and a second transmitting module for transmitting a second instruction, wherein the second instruction is used to indicate at least one of a size of an available frequency region and a location of the available frequency region of a DU of the IAB node.
[0319] Optionally, the frequency domain availability of the DU of the IAB node is A frequency domain resource of a DU of the IAB node; A resource multiplexing mode between the DU and MT of the IAB node; The IAB node's duplex mode (DU and MT) is determined based on at least one of the following:
[0320] Optionally, the availability of time-frequency resources of the DUs of the IAB node is determined by the time domain availability and frequency domain availability of the DUs of the IAB node.
[0321] Alternatively, if the time domain availability of the DU of the IAB node is of a soft type and the frequency domain availability is of a soft type, the availability of the corresponding time-frequency resource is of a soft type; If the time domain availability of the DU of the IAB node is of hard type and the frequency domain availability is of soft type, the availability of the corresponding time-frequency resource is of soft type; If the time domain availability of the DU of the IAB node is of soft type and the frequency domain availability is of hard type, the availability of the corresponding time-frequency resource is of soft type; If the time domain availability of the DU of the IAB node is of soft type and the frequency domain availability is of shared type, the availability of the corresponding time-frequency resource is of soft type.
[0322] Optionally, the device comprises: and a receiving module for receiving frequency domain resource parameters reported by the IAB node; Here, the frequency domain resource parameters include at least one of a frequency domain resource boundary, a frequency domain resource range, a frequency domain resource size, and availability of a desired frequency domain resource.
[0323] Optionally, the manner of reporting the frequency domain resource parameters includes one of periodic reporting, event-triggered reporting, and poll-triggered reporting.
[0324] The information transmission device according to the embodiment of the present application can implement each process in the method embodiment of FIG. 6, which will not be further described here to avoid repetition.
[0325] It should be noted that the information transmission device in the embodiments of the present application may be a device, a component, an integrated circuit, or a chip in a CU or a parent IAB node of an IAB node.
[0326] Referring to FIG. 9, FIG. 9 is a structural diagram of an IAB node according to an embodiment of the present application, where the IAB node 900 includes a processor 901, a transceiver 902, a memory 903, and a bus interface, where: The transceiver 902 is used to transmit information based on the frequency domain availability of the distributed units DU of the IAB node, where the frequency domain availability of the DU of the IAB node is indicated by the parent IAB node of the IAB node, or configured by a central unit CU, or predefined by a protocol.
[0327] It should be understood that in this embodiment, the processor 901 and the transceiver 902 can implement each process implemented by the IAB node in the method embodiment of Fig. 4, and can achieve the same technical effect, which will not be further described here to avoid repetition.
[0328] It should be noted that the transceiver 902 transmits and receives data under the control of the processor 901, and the transceiver 902 includes at least two antenna ports.
[0329] In FIG. 9, the bus architecture may include any number of interconnected buses and bridges, specifically linking various circuits, such as one or more processors, represented by processor 901, and memory, represented by memory 903. The bus architecture may also link various other circuits, such as peripherals, voltage regulators, and power management circuits, all of which are known in the art and will not be further described herein. The bus interface provides an interface. The transceiver 902 may be multiple elements, i.e., includes a transmitter and a receiver, providing a unit for communicating with various other devices over a transmission medium. For different user devices, the user interface 904 may be an interface that can be externalized or internalized to the required device, and connected devices may include, but are not limited to, a keypad, a display, a speaker, a microphone, a joystick, etc.
[0330] Processor 901 is responsible for managing the bus architecture and general processing, and memory 903 stores data used in the execution of processor 901 operations.
[0331] Optionally, the embodiment of the present application further provides an IAB node, which includes a processor 901, a memory 903, and a program or instruction stored in the memory 903 and operable on the processor 901, which, when executed by the processor 901, can realize each process of the embodiment of the information transmission method and achieve the same technical effect. To avoid repetition, no further description will be given here.
[0332] Referring to FIG. 10, FIG. 10 is a structural diagram of a network device according to an embodiment of the present application, where the network device 1000 includes: a processor 1001, a transceiver 1002, a memory 1003, and a bus interface, where: The transceiver 1002 is used to indicate to an IAB node the frequency domain availability of the DUs of said IAB node.
[0333] It should be understood that in this embodiment, the processor 1001 and the transceiver 1002 can implement the processes implemented by the network equipment in the method embodiment of Fig. 6, and can achieve the same technical effects. In order to avoid repetition, no further description will be given here.
[0334] It should be noted that the transceiver 1002 is used to transmit and receive data under the control of the processor 1001, and the transceiver 1002 includes at least two antenna ports.
[0335] In FIG. 10, the bus architecture may include any number of interconnected buses and bridges, specifically linking various circuits, such as one or more processors, represented by processor 1001, and memory, represented by memory 1003. The bus architecture may also link various other circuits, such as peripherals, voltage regulators, and power management circuits, all of which are known in the art and will not be further described herein. The bus interface provides an interface. The transceiver 1002 may be multiple elements, i.e., includes a transmitter and a receiver, providing a unit for communicating with various other devices over a transmission medium. For different user devices, the user interface 1004 may be an interface that can be externalized or internalized to the required device, and connected devices may include, but are not limited to, a keypad, a display, a speaker, a microphone, a joystick, etc.
[0336] Processor 1001 is responsible for managing the bus architecture and general processing, and memory 1003 stores data used in the execution of processor 1001 operations.
[0337] Optionally, the embodiments of the present application further provide a network device, which includes a processor 1001, a memory 1003, and a program or instruction stored in the memory 1003 and operable on the processor 1001, which, when executed by the processor 1001, can realize each process of the above-mentioned information transmission method embodiment and achieve the same technical effect. In order to avoid repetition, no further description will be given here.
[0338] The embodiments of the present application further provide a readable storage medium, which may be non-volatile or volatile, and stores a program or instruction on the readable storage medium, which, when executed by a processor, realizes each process of the embodiments of the IAB node-side information transmission method or the network device-side information transmission method, and achieves the same technical effects. In order to avoid repetition, no further description will be given here.
[0339] Here, the processor is the processor in the IAB node described in the above embodiment. The readable storage medium includes a computer-readable storage medium, such as a computer read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk.
[0340] The embodiments of the present application further provide a chip, the chip including a processor and a communication interface, the communication interface being coupled to the processor, the processor running a program or instruction to implement each process of the embodiments of the information transmission method on the IAB node side or the information transmission method on the network equipment side, and can achieve the same technical effects. In order to avoid repetition, no further description will be given here.
[0341] It should be understood that the chips referred to in the embodiments of this application may be referred to as system level chips, system chips, chip systems, or system-on-chips.
[0342] The embodiments of the present application further provide a computer program product, wherein the computer program product is stored in a non-transitory readable storage medium, and the computer program product can be executed by at least one processor to realize each process of the embodiments of the information transmission method at the IAB node side or the information transmission method at the network device side, and achieve the same technical effects. In order to avoid repetition, no further description will be given here.
[0343] It should be noted that, in this specification, the terms "comprise," "include," "includes," or any other variations thereof are intended to cover the non-exclusive "comprise," whereby a process, method, article, or apparatus comprising a set of elements not only includes those elements, but also other elements not expressly listed or inherent in such process, method, article, or apparatus. Absent further limitations, an element defined by the phrase "comprises one of" does not preclude the presence of other identical elements in the process, method, article, or apparatus comprising that element. It should be noted that the scope of the methods and apparatuses in the embodiments of this application is not limited to performing functions in the order shown or discussed, but may include performing functions in an essentially simultaneous manner or in the reverse order based on the functions involved. For example, the described method may be performed in a different order than described, and various steps may be added, omitted, or combined. Furthermore, features described with reference to some examples may be combined in other examples.
[0344] As will be apparent to those skilled in the art from the above description of the embodiments, the methods of the above embodiments can be realized in the form of software and a required general-purpose hardware platform. Of course, they can also be realized in hardware, but in many cases the former is a more preferred embodiment. Based on this understanding, the technical solution of the present application, in substance or in part contributing to the prior art, may be embodied in the form of a software product. This computer software product is stored in a storage medium (e.g., ROM / RAM, magnetic disk, optical disk), and the self-backhauling IAB node executes the methods described in each embodiment of the present application.
[0345] Although the embodiments of the present application have been described above in conjunction with the drawings, the present application is not limited to the above specific embodiments. The above specific embodiments are merely illustrative and not limiting. Those skilled in the art can take the teachings of the present application into account and implement many forms without departing from the spirit and scope of the claims, all of which fall within the scope of protection of the present application.< / maxnooffrequencyresource> < / maxnooffrequencyresource>
Claims
1. 1. A method of information transmission performed by a self-backhauled IAB node, comprising: transmitting information based on frequency domain availability of a distributed unit (DU) of the IAB node; wherein the frequency domain availability of the DU of the IAB node is indicated by a parent IAB node of the IAB node or configured by a central unit CU; The method comprises: receiving a first indication to indicate frequency domain availability of the DU of the IAB node; The indication granularity of the frequency domain availability of the DU of the IAB node is: The particle size is set by F1-C, The frequency domain availability is used for some / all frequency domain resources, and the some / all frequency domain resources are configured by RRC. Information transmission method.
2. The indication granularity of the frequency domain availability of the DU of the IAB node further comprises: N physical resource blocks PRB (N is a positive integer greater than 1), The first instruction is: a mapping relationship between the index of the frequency domain availability combination and the frequency domain availability combination; A combination of frequency domain availability; and an index of a frequency domain availability combination.
3. The method of claim 2 , wherein the first indication is also used to indicate time domain availability of DUs for the IAB node.
4. 3. The method of claim 2, wherein the first instruction is carried in a downlink control information (DCI), a media access control (MAC) control element (CE), a radio resource control (RRC), the F1-C signaling, or a backhaul adaptation protocol control packet data unit (BAP control PDU).
5. The method of claim 2 , wherein the instruction granularity is one or more values.
6. 2. The method of claim 1, wherein at least one of a size of an available frequency region of the DU of the IAB node and a location of the available frequency region is indicated by the parent IAB node via RRC.
7. The method comprises:
3. The method of claim 2, further comprising: determining frequency domain availability of a DU of the IAB node based on an index of a frequency domain availability combination indicated by the first indication and a first mapping relationship, wherein the first mapping relationship is a mapping relationship between an index of a frequency domain availability combination and a frequency domain availability combination.
8. The indication granularity of the frequency domain availability of the DU of the IAB node is: The indication granularity of frequency domain availability indicated by the RRC or MAC CE or DCI or BAP control PDU; A frequency domain availability indication granularity predefined by the protocol; A predefined mapping relationship between a bandwidth range of a DU of a parent IAB node of the IAB node and an indication granularity of frequency domain availability; A mapping relationship between a predefined bandwidth range of the DU of the IAB node and an indication granularity of frequency domain availability; A mapping relationship between a predefined bandwidth range in which a mobile terminal MT of the IAB node can be deployed and an indication granularity of frequency domain availability; the size of the first indication; available frequency domain resources of a DU of the IAB node; the actual scheduled frequency domain resources of the DU of the IAB node; and a frequency range in which a carrier of a DU of the IAB node is located.
9. The subcarrier spacing SCS for determining the frequency domain availability is: an SCS indicated by an F1-C, RRC, MAC CE, DCI or BAP control PDU; an SCS corresponding to a combination of time domain availability of the DU of the IAB node; An SCS configured in uplink resource configuration and / or downlink resource configuration of the DU of the IAB node; an SCS of a PDCCH or SSB of a primary cell of the IAB node; and an SCS corresponding to a frequency range of an aggregation cell of the IAB node.
10. When the uplink resource allocation and / or the downlink resource allocation has at least two SCSs, the SCS for determining the frequency domain availability is: a largest SCS of the at least two SCSs; and a smallest SCS of the at least two SCSs; 10. The method of claim 9, wherein one of the at least two SCSs is an SCS of a primary cell synchronization signal block.
11. When at least two SCSs are configured in the MT of the IAB node and / or the DU of the IAB node, the SCS for determining the frequency domain availability comprises: an SCS of a primary cell; an SCS of a primary secondary cell; a largest SCS of the at least two SCSs; and a smallest SCS of the at least two SCSs; An SCS of a PDCCH or SSB of a primary cell of a primary cell group; An SCS of a PDCCH or SSB of a reference cell of a primary cell group; The method of claim 2, wherein the PDCCH is one of the SCS of the SSB or the PDCCH of the reference cell of the secondary cell group.
12. The first instruction is: time domain resource allocation; Frequency domain resource allocation; A resource multiplexing mode between the DU and MT of the IAB node; The method of claim 2 , wherein the IAB node's DU and MT duplexing method is determined based on at least one of the following:
13. The method comprises: reporting frequency domain resource parameters; The method of claim 1 , wherein the frequency domain resource parameters include at least one of a frequency domain resource boundary, a frequency domain resource range, a frequency domain resource size, and a desired frequency domain resource availability.
14. 14. An IAB node comprising a memory, a processor, and a program or instructions stored in said memory and operable on said processor, wherein said program or instructions, when executed by said processor, implement the steps in the information transmission method of any one of claims 1 to 13.
Citation Information
Patent Citations
Resource allocation method and device, communication node and storage medium
CN111901871A