Method for a network-controlled repeater, method for an access network node, network-controlled repeater, and access network node
By transmitting capability information to manage interference and beamforming, the method addresses inefficiencies in NCRs, enhancing their integration and control within 3GPP networks, particularly in 5G environments.
Patent Information
- Application Number
- JP2025510419
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2022-08-31
- Filing Date
- 2023-08-17
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2043-08-17
AI Technical Summary
Existing network controlled repeaters (NCRs) face challenges in managing interference and beamforming efficiently, requiring improved power management and frequency management to enhance integration and control within 3GPP networks, particularly in 5G environments.
The method involves transmitting capability information from the NCR to the access network node to handle interference between control, backhaul, and access links, including power and gain control, frequency management, and beamforming capabilities, with the node providing control information based on this capability to manage interference and communication.
This approach enhances the integration and control of NCRs in 3GPP networks by improving interference management, power management, and beamforming, thereby optimizing communication efficiency and reducing interference.
Smart Images

Figure 2025527615000001_ABST
Abstract
Description
[Technical Field]
[0001] This disclosure relates to wireless communication systems and devices thereof that operate in accordance with 3rd Generation Partnership Project (3GPP®) standards or equivalents or derivatives thereof. This disclosure has particular, but not exclusive, relevance to improvements relating to network controlled repeaters (NCR). [Background technology]
[0002] Under 3GPP standards, a NodeB (or "eNB" in LTE, "gNB" in 5G) is a base station through which communication devices (user equipment, or "UE") connect to the core network and communicate with other communication devices or remote servers. End-user communication devices are commonly referred to as User Equipment (UE) and may be operated by a human or may comprise an automated device. Such communication devices may be, for example, mobile communication devices such as mobile phones, smartphones, smart watches, personal digital assistants, laptop / tablet computers, web browsers, e-book readers, connected vehicles, etc. Such mobile (or more generally, fixed) devices are typically operated by users (and thus are often collectively referred to as user equipment "UE"), although Internet of Things (IoT) devices and similar Machine Type Communication (MTC) devices may also connect to the network. For simplicity, this application will use the term base station to refer to such base stations and the term mobile device or UE to refer to such communication devices. The latest development in the 3GPP standards is the so-called "5G" or "New Radio" (NR) standard, which refers to an evolving communications technology that is expected to support a variety of applications and services, such as MTC, IoT / Industrial IoT (IIoT) communications, vehicular communications and autonomous vehicles, high-definition video streaming, and smart city services. 3GPP intends to support 5G with the so-called 3GPP Next Generation (NextGen) radio access network (RAN) / radio access technology (RAT) and 3GPP NextGen core (NGC) network. Various details of 5G networks are described, for example, in the "NGMN 5G White Paper" V1.0 by the Next Generation Mobile Networks (NGMN) Alliance, available at https: / / www.ngmn.org / 5g-white-paper.html.
[0003] In a communication network, a UE may be outside the transmission range of a base station. However, a repeater may be provided that receives transmissions from the base station and retransmits the received signal, effectively extending the range of the base station. Thus, the UE can communicate with the base station through the repeater. Repeaters provide a flexible alternative to extend the coverage of a network without deploying additional regular full-stack cells. Repeaters are sometimes called radio frequency repeaters (RF repeaters). A simple repeater can receive signals from a base station and simply broadcast the received signals in all directions. In other words, an RF repeater can simply amplify and forward the signals received from the base station to provide an extended coverage area.
[0004] While RF repeaters provide a relatively cost-effective way to extend network coverage, simple amplify-and-forward may not always be appropriate, for example, when the original transmission from the base station is a beamformed transmission. To inform the repeater of its configuration information for transmitting and / or receiving signals, the repeater can receive control information from the base station. Such repeaters are sometimes called "network controlled repeaters" (NCRs), and the control information received from the base station is sometimes called "side control information." However, improved NCR and gNB-to-NB and NCR and UE-to-UE communications are needed to facilitate improved NCR integration in the network and improved NCR control by the gNB. For example, improved apparatus and methods are needed for more efficient transmission and reception in NCR, improved power management in NCR, improved frequency management and beamforming, and reduced interference. [Prior art documents] [Non-patent literature]
[0005] [Non-Patent Document 1] "NGMN 5G White Paper" V1.0 Summary of the Invention [Problem to be solved by the invention]
[0006] The present disclosure seeks to provide methods and associated apparatus that address or at least mitigate (at least some of) the problems discussed above. [Means for solving the problem]
[0007] According to one aspect, a method is provided for a network controlled repeater (NCR), the NCR having a control link and a backhaul link to an access network node and an access link to a user equipment (UE), wherein transmissions over the control link are terminated at the NCR and transmissions over the backhaul link are forwarded to the access link via the NCR, the method including: transmitting capability information to the access network node indicating a capability of dealing with interference between transmissions on the control link, the backhaul link, and the access link; and receiving control information from the access network node over the control link for controlling the NCR to deal with the interference based on the capability information.
[0008] Optionally, the capability information may indicate a capability of power and / or gain control of transmissions of the backhaul link and / or the access link, and the capability information may include at least one of a range of gain or power values supported by the NCR or a maximum gain or power value supported by the NCR.
[0009] Optionally, the capability information may indicate the capability of power and / or gain control of transmissions of the backhaul link and / or access link, and the capability information may include the current power or gain of transmissions of the backhaul link and / or access link in the NCR.
[0010] Optionally, or instead, the power and / or gain control capabilities for backhaul link and / or access link transmissions may include information that applies to uplink transmissions and information that applies to downlink transmissions, or information that applies to both uplink and downlink transmissions.
[0011] Optionally, or instead, the capability information may indicate a capability for power and / or gain control of backhaul link and / or access link transmissions, and the capability information may include at least one of an indication of whether the NCR supports power control or gain control for access link transmissions or an indication of whether the NCR supports power control or gain control for backhaul link transmissions.
[0012] Optionally, or alternatively, if the capability of power and / or gain control of backhaul link and / or access link transmissions is not supported by the NCR, the capability information may include a certain gain or power value indicating that the capability of power and / or gain control of backhaul link and / or access link transmissions is not supported.
[0013] Optionally, or alternatively, the capability information may include at least one of an indication of a power or gain increase or an indication of a power or gain decrease.
[0014] Optionally, or alternatively, the method may further include transmitting the capability information to the access network node based on a timer or in response to a transmission received from the access network node.
[0015] Optionally, or instead, the capability information may indicate the capabilities of frequency information supported by the NCR, and the capability information may include at least one of an indication of frequencies or frequency ranges supported by the NCR for the access link or an indication of frequencies or frequency ranges supported by the NCR for the backhaul link, and the capability information may be independent of the capabilities of frequencies or frequency ranges supported by the NCR for the control link.
[0016] Optionally, the frequency or frequency range supported by the NCR for the control link may be different from the frequency or frequency range supported by the NCR for the access link or the frequency or frequency range supported by the NCR for the backhaul link.
[0017] Optionally, or instead, the capability information may include an indication of a first frequency or frequency range supported by the NCR for one of the access link and the backhaul link having a first time division duplex (TDD) configuration, and a second frequency or frequency range supported by the NCR for the other of the access link and the backhaul link having a second TDD configuration, wherein the first TDD configuration may differ from the second TDD configuration.
[0018] Optionally, or instead, the capability information may include an indication of a bandwidth corresponding to a frequency or frequency range supported by the NCR for the access link or backhaul link, and the bandwidth corresponding to a frequency or frequency range supported by the NCR for the control link may be limited by the capabilities of the frequency or frequency range supported by the NCR for the control link.
[0019] Optionally, or alternatively, the capability information may include the beamforming capabilities of the NCR, and the capability information may include an indication of antenna configurations or beam configurations supported by the NCR for transmission of beamformed signals.
[0020] Optionally, the capability information may include an indication of at least one of horizontal or vertical antenna elements or ports supported by the NCR for transmission of beamformed signals, panels supported by the NCR for transmission of beamformed signals, or ports supported by the NCR for transmission of beamformed signals.
[0021] Optionally, or alternatively, the indication of antenna or beam configurations supported by the NCR may indicate antenna or beam configurations supported by the NCR for the access link.
[0022] Optionally, or alternatively, the capability information may include an indication of the number of beam configurations supported by the NCR.
[0023] Optionally, or instead, the capability information may include an indication of the number of beams of a first beam type supported by the NCR and an indication of the number of beams of a second beam type supported by the NCR.
[0024] Optionally, the first beam type may correspond to a wide beam and the second beam type may correspond to a narrow beam, or the first beam type may correspond to a Synchronization Signal / Physical Broadcast Channel (PBCH) Block (SSB) beam and the second beam type corresponds to a Channel State Information Reference Signal (CSI-RS) beam or a data beam.
[0025] Optionally, or alternatively, the capability information may include an indication of the beam width and / or the beam sweeping range of the beams supported by the NCR.
[0026] Optionally, or alternatively, the capability information may include an indication of at least one beam direction value supported by the NCR.
[0027] Optionally, or instead, the capability information may include an indication of a first beamforming capability of the NCR supported for the first frequency band and an indication of a second beamforming capability of the NCR supported for the second frequency band.
[0028] Optionally, or alternatively, the capability information may indicate the ability of the NCR to perform simultaneous uplink or downlink communications in the same symbol for the control link and the backhaul or access link.
[0029] Optionally, the capability information may indicate the ability of the NCR to perform simultaneous uplink or downlink communications for a particular frequency band or carrier.
[0030] Optionally, or instead, the capability information may indicate the capability of the NCR to perform simultaneous uplink or downlink communication on a control link in a first frequency band and simultaneous uplink or downlink communication on a backhaul link or access link in a second frequency band different from the first frequency band.
[0031] Optionally, or alternatively, the capability information may indicate that the NCR cannot perform simultaneous uplink or downlink communications due to contention between the control link and the backhaul link or the access link, and the method may further include stopping transmission over the access link and / or the backhaul link.
[0032] Optionally, or instead, the method may further include receiving from the access network node an indication of a mapping between a port or symbol corresponding to a reference signal received from the access network node and a corresponding antenna element or port of the NCR, and transmitting the reference signal based on the mapping.
[0033] Optionally, or alternatively, the method may further include receiving from the access network node an indication of a mapping between ports and corresponding time opportunities corresponding to reference signals received from the access network node, and transmitting the reference signals based on the mapping.
[0034] Optionally, or instead, the method may further include receiving from the access network node an indication of a mapping between time domain resources corresponding to the reference signal received from the access network node and corresponding antenna elements or ports of the NCR, and transmitting the reference signal based on the mapping.
[0035] Optionally, or alternatively, the method may further include receiving a beam indication from the access network node indicating a beam to be used for data transmission over the access link.
[0036] Optionally, or instead, the beam instructions may include one or more weight values to be used for the antenna ports or antenna elements of the NCR used for data transmission over the access link.
[0037] Optionally, the capability information may indicate information of multiple beams that overlap in the spatial domain and the information transmission / reception direction of each of the multiple beams, and the method may include beam indication indicating one of the multiple beams to be used for data transmission over the access link.
[0038] According to another aspect, a method for a network controlled repeater (NCR) is disclosed, the method including receiving downlink control information from an access network node for controlling transmission or reception in the NCR, and determining to transmit Hybrid Automatic Repeat Request (HARQ) feedback indicating whether the downlink control information was successfully received in the NCR.
[0039] Optionally, the determining may include at least one of: determining based on whether the downlink control information indicates not to perform any transmission over a backhaul link between the NCR and the access network node and / or an access link between the access network node and the user equipment (UE); determining based on whether the downlink control information indicates to modify a configuration for transmission over the backhaul link and / or the access link; determining based on an indication sent from the access network node indicating whether transmission of HARQ feedback should be enabled or disabled; determining based on a time difference between a time opportunity indicated by the downlink control information and an opportunity for HARQ feedback; or determining based on a time difference between a timing of receiving the downlink control information and a time opportunity indicated by the downlink control information.
[0040] Optionally, or instead, the downlink control information may indicate time occasions when the NCR behavior should change and time occasions when the NCR behavior should not change.
[0041] According to another aspect, a method is disclosed for an access network node, the method including receiving capability information from a network controlled repeater (NCR) having a control link and a backhaul link to the access network node and an access link to a user equipment (UE), wherein transmissions over the control link are terminated at the NCR and transmissions over the backhaul link are forwarded to the access link via the NCR, the capability information indicating a capability to handle interference between transmissions on the control link, the backhaul link, and the access link, and transmitting control information over the control link to the NCR to control the NCR to handle the interference based on the capability information.
[0042] According to another aspect, a method is disclosed for an access network node, the method including transmitting downlink control information to a network controlled repeater (NCR) for controlling transmission or reception at the NCR, and determining to receive Hybrid Automatic Repeat Request (HARQ) feedback at the NCR indicating whether the downlink control information was successfully received.
[0043] According to another aspect, a network controlled repeater (NCR) is disclosed, the NCR having a control link and a backhaul link to an access network node and an access link to a user equipment (UE), wherein transmissions over the control link are terminated at the NCR and transmissions over the backhaul link are forwarded to the access link via the NCR, the NCR comprising: means for transmitting capability information to the access network node indicating a capability of dealing with interference between transmissions on the control link, the backhaul link, and the access link; and means for receiving control information from the access network node for controlling the NCR to deal with the interference based on the capability information.
[0044] According to another aspect, a network controlled repeater (NCR) is disclosed, comprising: means for receiving downlink control information from an access network node for controlling transmission or reception at the NCR; and means for determining to send Hybrid Automatic Repeat Request (HARQ) feedback indicating whether the downlink control information was successfully received at the NCR.
[0045] According to another aspect, an access network node is disclosed, the access network node comprising: a network controlled repeater (NCR) having a control link and a backhaul link to the access network node and an access link to a user equipment (UE), wherein transmissions over the control link are terminated at the NCR and transmissions over the backhaul link are forwarded to the access link via the NCR; means for receiving capability information from the NCR indicating a capability to handle interference between transmissions on the control link, the backhaul link, and the access link; and means for transmitting control information over the control link to the NCR for controlling the NCR to handle the interference based on the capability information.
[0046] According to another aspect, an access network node is disclosed, comprising: means for transmitting downlink control information to a network controlled repeater (NCR) for controlling transmission or reception at the NCR; and means for determining to receive Hybrid Automatic Repeat Request (HARQ) feedback indicating whether the downlink control information was successfully received at the NCR. [Brief explanation of the drawings]
[0047] Embodiments of the present disclosure will now be described, by way of example only, with reference to the accompanying drawings, in which: [Figure 1] FIG. 1 illustrates schematically a mobile (cellular or wireless) telecommunications system in which embodiments of the present disclosure may be applied. [Figure 2] FIG. 2 shows a schematic diagram of a network-controlled repeater (NCR) located between a base station and a UE. [Figure 3] FIG. 3 is a schematic block diagram of a mobile device. [Figure 4] FIG. 4 is a schematic block diagram of a base station. [Figure 5] FIG. 5 is a schematic block diagram of the NCR. [Figure 6] FIG. 6 shows an example of communication between an (R)AN node and a UE via NCR. [Figure 7] FIG. 7 shows a schematic flow diagram illustrating the NCR procedure. [Figure 8A] FIG. 8A shows the NCR-MT initial access procedure. [Figure 8B] FIG. 8B shows the NCR-MT initial access procedure. [Figure 9] Figure 9 shows the NCR-Fwd setup procedure. [Figure 10] FIG. 10 shows an alternative NCR-Fwd setup procedure. [Figure 11A] FIG. 11A shows the side control information update procedure. [Figure 11B] FIG. 11B shows the side control information update procedure. [Figure 12] FIG. 12 illustrates the transmission of power control capability information. [Figure 13] FIG. 13 shows the transmission of support frequency information. [Figure 14] FIG. 14 illustrates the transmission of beamforming capability information. [Figure 15] FIG. 15 shows a further example of communication between an (R)AN node, an NCR, and a UE. [Figure 16] FIG. 16 illustrates an example of beamforming for transmission between an NCR and a UE. [Figure 17] FIG. 17 shows an example of DCI indication and HARQ feedback exchanged between NCR and (R)AN nodes. [Figure 18] FIG. 18 shows an example of interference between the control link and the access link. [Figure 19] FIG. 19 illustrates the transmission of uplink contention information. DETAILED DESCRIPTION OF THE INVENTION
[0048] FIG. 1 illustrates schematically a mobile (cellular or wireless) telecommunications system 1 in which embodiments of the present disclosure may be applied.
[0049] In this system 1, users of mobile devices 3 (UE) can communicate with each other and other users via base stations 5 (and other access network nodes) and a core network 7 using an appropriate 3GPP radio access technology (RAT), such as, for example, Evolved Universal Terrestrial Radio Access (E-UTRA), 5G RAT, and / or later generation radio access technologies. It will be understood that several base stations 5 form a (radio)access network, or (R)AN. As those skilled in the art will appreciate, while four mobile devices 3A, 3B, 3C, and 3D and two base stations 5A and 5B are shown in FIG. 1 for illustrative purposes, the system, when implemented, will typically include other base stations / (R)AN nodes 5 and mobile devices (UE) 3.
[0050] Each base station 5 controls (directly or via other nodes such as home base stations, relays, remote radio heads, distributed units, etc.) one or more associated cells 6. In this example, the base station 5a has a direct coverage area 6A-1 and a further coverage area 6A-2 provided by a network controlled repeater (NCR) 9. A UE 3B located within the further coverage area 6A-2 provided by the NCR 9 can communicate with the base station 5a via the NCR 9.
[0051] Base stations 5 that support next generation / 5G protocols may be referred to as "gNBs." It will be appreciated that some base stations 5 may be configured to support both 4G and 5G protocols and / or any other 3GPP or non-3GPP communication protocols. It will be appreciated that some base stations 5 form a (radio)access network, or (R)AN.
[0052] A mobile device 3 and its serving base station 5 are connected via an appropriate air interface (e.g., a so-called "NR" air interface, a "Uu" interface, etc.). Adjacent base stations 5 may be connected to each other via an appropriate inter-base station interface (e.g., a so-called "Xn" interface, an "X2" interface, etc.). The base stations 5 are also connected to core network nodes via an appropriate interface (e.g., a so-called "NG-U" interface (for the user plane), a so-called "NG-C" interface (for the control plane), etc.).
[0053] The core network 7 (e.g., EPC in the case of LTE or NGC in the case of NR / 5G) typically includes logical nodes (or “functions”) for subscriber management, mobility management, charging, security, and call / session management (among other things) to support communications in the telecommunications system 1. For example, the core network 7 in a “next generation” / 5G system includes user plane and control plane entities, such as one or more control plane functions (CPFs) and one or more user plane functions (UPFs) 8-3. The one or more control plane functions (CPFs) include a control plane function 8-1 responsible for handling attachment and mobility tasks for mobile devices 3, such as the so-called Access and Mobility Management Function (AMF) in 5G or the Mobility Management Entity (MME) in 4G. The one or more control plane functions (CPFs) also include a control plane function 8-4 (e.g., a Session Management Function (SMF)) responsible for handling communication sessions for mobile devices 3, such as session establishment, modification, and release, and may also include one or more additional control plane functions 8-2. The Operations, Administration and Maintenance (OAM) functions 8-5 may be implemented in software in one or more 5G CN nodes. The core network 7 connects to a data network 10, such as the Internet or a similar Internet Protocol (IP)-based network.
[0054] When a UE 3 first establishes a radio resource control (RRC) connection with a base station 5 via a cell, the UE 3 registers with an appropriate core network node 8-1 (e.g., AMF, MME). The UE 3 is in the so-called RRC connected state, and an associated UE context is maintained by the network. When the UE 3 is in the so-called RRC idle or RRC inactive state, the UE 3 selects a suitable cell to camp on, so that the network knows the approximate location (not necessarily at cell level) of the UE 3.
[0055] 2 shows a schematic diagram of an NCR 9 located between a base station 5 and a UE 3. The NCR 9 comprises an "NCR-Mobile termination" (NCR-MT) 201 for communication with the base station 5 over a control link (including reception of "side control information," described in more detail below). The control link (C-link) is based on the new radio (NR) Uu interface. The NCR 9 also comprises an "NCR-Forwarding" (NCR-Fwd) 202 for communication with the base station 5 over a backhaul link and with the UE 3 over an access link.
[0056] The NCR 9 receives control information from a base station 5 (e.g., a gNB). This control information may be referred to as "side control information." The side control information may include control information for downlink (DL) transmissions and / or uplink (UL) transmissions. The behavior of the NCR-Fwd 202 (e.g., one or more configurations of the NCR 9 related to the backhaul link and / or the access link) is controlled based on the control information received from the base station 5.
[0057] For DL transmissions, the repeater 9 receives transmissions from the base station 5 over the backhaul link and transmits corresponding signals to the UE 3 over the access link. As will be described in more detail below, the side control information may control the direction (beamforming), timing, frequency, and power of transmissions to the UE 3 on the access link. In other words, the side control information controls the forwarding of transmissions from the base station 5 to the UE 3 by the NCR 9. The side control information may also indicate, for example, the time or frequency for signals to be received at the NCR 9 over the backhaul from the base station 5. For UL transmissions, the NCR 9 receives transmissions from the UE 3 over the access link and transmits corresponding signals to the base station 5. The side control information may control the direction in which the NCR 9 receives on the access link in a particular time and / or frequency resource window. The side control information may also indicate the time for receiving signals from the UE 3 over the access link.
[0058] In the case of downlink signal transmission, the side control information may include information indicating the direction in which the NCR 9 transmits downlink signals to the UE 3 over the access link at a specific time (e.g., a time window). In the case of uplink signal transmission, the side control information may include information indicating the direction in which the NCR 9 receives uplink signals from the UE 3 at a specific time (e.g., a time window). The side control information may indicate the directions to be used for uplink / downlink reception / transmission at each time. The side control information may include information for a beam refinement procedure for the beam transmitted by the NCR 9. The beam refinement procedure may be used, for example, when the condition of the radio link between the UE 3 and the NCR 9 changes.
[0059] The side control information may include access link configuration information that directs the configuration of transmission and / or reception over an access link. The side control information may also (or instead) include backhaul link configuration information or control link configuration information that directs the configuration of transmission and / or reception over a backhaul link or a control link, respectively.
[0060] The side control information can include configuration information for transmitting beamformed signals and / or uplink / downlink (UL / DL) time division duplex (TDD) configuration information. The UL / DL TDD configuration information can indicate a quasi-static TDD UL / DL configuration for the control link, backhaul link, and / or access link. The same TDD UL / DL configuration can be assumed for the backhaul link and the access link. If the NCR-MT and NCR-Fwd are in the same frequency band, the same TDD UL / DL configuration can be assumed for the control link, backhaul link, and access link. More generally, the control information is used to control the UL and / or DL forwarding behavior of the NCR 9.
[0061] For the access link, the base station 5 can send dynamic beam instructions, quasi-static beam instructions, or a combination of dynamic and quasi-static beam instructions to the NCR 9.
[0062] The side control information may include information regarding quasi-static and / or dynamic downlink / uplink configurations, adaptive transmitter / receiver spatial beamforming, on / off information (e.g., for more efficient interference management and improved energy efficiency), power control information (e.g., for improved interference management that may be achieved by controlling the amplification gain of the NCR-Fwd 202), or any other suitable control information. The on / off information may be for controlling the behavior of the NCR-Fwd 202 and may include explicit indication of on / off states (e.g., by dynamic or quasi-static signaling) or on / off patterns (e.g., periodic / quasi-static on / off patterns, or new discontinuous reception (DRX)-like patterns of on / off). The on / off information may include implicit indication through signaling of other information, such as beam information, DL / UL configuration information, or power control information. The on / off information may include a combination of explicit and implicit indications.
[0063] The side control information may include timing information that instructs the NCR 9 when to amplify and forward signals for the downlink and / or uplink. The timing information may be for configuring the DL receive timing of the NCR-Fwd on the backhaul link. The timing information may also, or instead, be for configuring the UL receive timing of the NCR-Fwd on the access link. The NCR-Fwd 202 amplifies and forwards the corresponding received signals to the UE 3 for the downlink and to the base station 5 for the uplink.
[0064] The side control information may be transmitted from the base station 5 to the NCR 9 as L1 / L2 control signaling and / or as RRC signaling. The NCR 9 may obtain configuration information for receiving L1 / L2 signaling by radio resource control (RRC) signaling. Alternatively, the configuration information for receiving L1 / L2 signaling may be received from an operations administration and maintenance (OAM) entity 8-5 in the network or may be pre-configured in the NCR 9. In a further alternative, the configuration information for receiving L1 / L2 signaling may be received partly in RRC signaling and partly from an OAM entity in the network. The configuration information for receiving L1 / L2 signaling may include configuration information for receiving a physical downlink control channel (PDCCH) and / or a physical downlink shared channel (PDSCH), configuration information for transmitting a physical uplink control channel (PUCCH), configuration information for transmitting a physical uplink shared channel (PUSCH), configuration information for downlink control information (DCI), configuration information for uplink control information (UCI), and / or configuration information for a medium access control element (MAC CE).
[0065] The control and backhaul links between the NCR 9 and the base station 5 may use either fixed or adaptive beams.
[0066] The DL of the control link and the backhaul link may be performed simultaneously or may be performed in a time division multiplexed (TDM) manner based on timing information included in the side control information, for example. The UL of the control link and the UL of the backhaul link may be performed in a TDM manner.
[0067] If the carrier of the NCR-MT 201 is in the set of carriers forwarded by the NCR-Fwd 202, the same Transmission Configuration Index (TCI) state as used for the control link may be assumed for the beam of the NCR-Fwd 202.
[0068] User Equipment (UE) FIG. 3 is a block diagram illustrating the main components of the mobile device (UE) 3 shown in FIG. 1. As shown, the UE 3 includes transceiver circuitry 21 operable to transmit signals to and receive signals from connected nodes via one or more antennas 22. While not necessarily shown in FIG. 3, the UE 3 naturally has all the usual functionality of a conventional mobile device (such as a user interface 24), which may be provided by any one or any combination of hardware, software, and firmware, as appropriate. A controller 23 controls the operation of the UE 3 in accordance with software stored in memory 25. This software may be pre-installed in memory 25 and / or downloaded, for example, via a telecommunications network or from a removable data storage device (RMD). The software includes, among other things, an operating system 26 and a communications control module 27.
[0069] The communications control module 27 is responsible for signaling and processing (generating / sending / receiving) uplink / downlink data packets between the UE 3 and other nodes, including the (R)AN node 6, the NCR 9, and core network nodes. The signaling may include control signaling (such as RRC signaling) related to configuring and assisting cell reselection by the UE 3.
[0070] The UE 3 may receive one or more signals (e.g., beamformed signals transmitted by the NCR 9) from the base station 5 or the NCR 9 and perform corresponding signal strength measurements. The UE 3 may, for example, determine to communicate using a particular beam transmitted by the NCR 9 (e.g., the beam having the strongest signal received at the UE 3 during a measurement period). Alternatively, the UE 3 may report signal strength measurements (or any other suitable measured / determined parameters related to signal strength or signal quality) to the base station 5, and the base station 5 may select a beam to be used for communication. The beam selected by the UE 3 (or selected by the base station 5) may be identified using a corresponding index and may be used for communication between the base station 5 and the UE 3 directly or via the NCR 9.
[0071] Base station / gateway (access network node) FIG. 4 is a block diagram illustrating the main components of the gateway / base station 5 (a base station (gNB) or similar access network node, although a base station need not necessarily be a gNB) shown in FIG. 1 . As shown, the base station 5 includes transceiver circuitry 41 operable to transmit signals to and receive signals from one or more UEs 3 or NCRs 9 via one or more antennas 42, and to transmit signals to and receive signals from other network nodes (directly or indirectly) via a network interface 43. The network interface 43 typically includes an appropriate base station-to-base station interface (e.g., X2 / Xn) and an appropriate base station-to-core network interface (e.g., S1 / NG-C / NG-U). A controller 44 controls the operation of the base station 5 according to software stored in memory 45. This software may be pre-installed in memory 45 and / or may be downloaded, for example, over a network or from a removable data storage device (RMD). The software includes, among other things, an operating system 46, a communications control module 47, a control link module 48, and a backhaul module 49.
[0072] The communications control module 47 is responsible for handling (generating / sending / receiving) signaling between the base station 5 and other nodes, such as the UE 3 and core network nodes. The signaling may include, for example, control signaling (e.g., RRC signaling) related to configuring and assisting cell reselection by the UE 3.
[0073] The control link module 48 is responsible for controlling communication over the control link with the NCR 9 NCR-MT 201. It will be appreciated that the control link module 48 may be configured to control communication over the control link according to any of the examples described below.
[0074] The backhaul module 49 is responsible for controlling communication over the backhaul with the NCR 9 NCR-Fwd 202. It will be appreciated that the backhaul module 49 may be configured to control communication over the backhaul according to any of the examples described below.
[0075] Network controlled repeater(NCR) 5 is a block diagram illustrating the major components of the NCR 9 shown in FIG. 1. As shown, the NCR 9 includes transceiver circuitry 31 operable to transmit signals to and receive signals from one or more UEs 3 and base stations 5 via one or more antennas 42. A controller 33 controls the operation of the NCR 9 according to software stored in memory 34. This software may be pre-installed in memory 34 and / or may be downloaded, for example, over a network or from a removable data storage device (RMD). The software includes, among other things, an operating system 35, a communications control module 36, a control link module 37, and an amplify-and-forward module 38.
[0076] The communication control module 36 is responsible for the overall handling (generation / transmission / reception) of transmissions to and from the base station 5 and to and from the UE 3 . The control link module 37 is responsible for controlling communication with the base station 5 over a control link. It will be appreciated that the control link module 37 may be configured to control communication over the control link according to any of the examples described below. The control link module 37 may be the NCR-MT 201 shown in FIG. 2.
[0077] The amplify-and-forward module 38 is responsible for controlling communications with the base station 5 over the backhaul and controlling communications with the UE 3 over the access link. It will be appreciated that the amplify-and-forward module 38 may be configured to control communications over the backhaul and the access link according to any of the examples described below. The amplify-and-forward module 38 may be the NCR-Fwd 202 shown in FIG. 2.
[0078] A received signal (eg, a broadcast signal) may be relayed multiple times by the NCR 9 on the access link in different beam directions, thereby achieving a "beam sweeping" effect (illustrated in FIG. 6).
[0079] The NCR 9 may be transparent to the UE 3 in the system 1. The NCR 9 may be configured to simultaneously maintain a base station-repeater link (backhaul link and / or control link) and a repeater-UE link (access link).
[0080] NCR Transfer Overview FIG. 6 shows an example of communication between a base station 5 and a UE 3F via an NCR 9.
[0081] As shown in FIG. 6, in this example, the base station 5 transmits signals in multiple beam directions 70a-70g. Each beam 70a-70g may (but does not necessarily) have a corresponding index to identify the beam. Alternatively, a source reference signal (RS) index may be used to indicate the beam (e.g., an indicator such as a TCI). In the case of Synchronization Signal Block (SSB) transmission, the index may be an SSB index. In the example shown in FIG. 6, beams 70a-70d are transmitted by the base station 5 in different beam directions using different time resources to achieve a beam-sweeping effect. While each beam 70a-70d is typically transmitted in a different direction, it should be understood that there may be some spatial overlap between the beams, as illustrated in FIG. 6, where, for example, beam 70b partially overlaps with beams 70a and 70c. In the case of SIB1 / SI / paging transmission, there may be one or more beam-sweeping cycles within one SIB1 / SI / paging transmission window / transmission opportunity. In this example, base station 5 also transmits beams 70e-70g beamformed toward NCR 9 for subsequent forwarding by NCR 9 as corresponding beams 70e-1-70g-1. However, the beams transmitted by base station 5 for forwarding by NCR 9 do not necessarily have to be beamformed toward NCR 9.
[0082] The beamformed transmission shown in FIG. 6 may be, for example, an SSB transmission. The SSB beam may be transmitted as a group of SSB transmissions, sometimes referred to in the time domain as an "SSB burst set." Each SSB in the SSB burst set may be referred to as an "SSB block." For example, a 5-ms SSB burst set, in which SSB beams 70a-70d are sequentially transmitted by the base station 5 within a 5-ms period, may be used to create a "beam sweeping" effect. However, the burst set does not necessarily have to be 5 ms in duration. Various other transmission configurations in the time domain may be used depending on the configuration of the base station 5 and the available communication resources. Also, although the example shown in FIG. 6 shows the base station 5 transmitting four SSBs, the number of SSBs does not necessarily have to be four. Alternatively, the number of SSBs may be three or less, or five or more (e.g., up to 64 SSB blocks in one SSB burst set).
[0083] In the example of Figure 6, a first UE 3E is located within the coverage area of SSB 70c transmitted by base station 5. A second UE 3F is located within the coverage area of SSB 70f-1 transmitted by NCR 9 and can communicate with base station 5 via NCR 9 by communicating with NCR 9 via an access link (and with NCR 9 via a backhaul link).
[0084] The first UE 3E receives a signal corresponding to SSB 70c and may also receive signals corresponding to other SSBs (e.g., adjacent SSBs 70b and 70d). The UE 3E and the base station 5 may perform an initial access procedure after the UE 3E receives one of the beamformed signals transmitted by the base station 5, and the UE 3E may be configured to transmit a corresponding measurement report to the base station 5. The UE 3E may perform, for example, measurements of synchronization signal RSRP (SS-RSRP) or physical broadcast channel demodulation reference signal (PBCH DMRS). The UE 3E may be configured to determine an SSB index corresponding to the beam by decoding the PBCH DMRS. The UE 3E may determine a particular beam (and / or corresponding time or frequency resource) to be used for communication with the base station 5 based on the corresponding signal measurements performed by the UE 3E. Alternatively, the UE 3E may report the measurements to the base station 5, and the base station 5 may determine the beam (and / or corresponding time or frequency resource) to be used for communication with the UE 3E.
[0085] In this example, the second UE 3F is located outside the non-extended range of the base station 5 and is therefore not within the coverage area of the beam directly transmitted by the base station 5. However, the second UE 3F is within the coverage area of the beam 70f-1 transmitted by the NCR 9. In other words, the second UE 3F is within the extended coverage area provided by the NCR 9.
[0086] The NCR 9 receives signals corresponding to beams 70e-70g transmitted by the base station 5. The NCR-MT 201 determines reception time windows corresponding to the beams (e.g., reception time windows for SI, SIB1, and / or paging). The NCR-MT 201 determines when and how to forward the beamformed signals over the access link to the UE 3. In other words, the NCR-MT 201 determines the spatial, frequency, and time resources to use for transmitting one or more forwarding beams. The decision on when and how to forward the beams may be based on side control information received from the base station 5 over the control link.
[0087] Overview of NCR Procedure An exemplary NCR procedure will now be outlined with reference to FIG.
[0088] In step S701, the base station 5 broadcasts 'NCR-support' in system information block x (SIBx). For example, the base station 5 can broadcast NCR-support in SIB1. In this example, the information element (IE) type of NCR-support is 'true'. In the case of multiple Public Land Mobile Networks (PLMNs) indicated in SIB1, this field is common to all PLMNs. In step S702, the NCR-MT initial access step is performed. At this stage of the procedure, the access link between the UE 3 and the NCR 9 is not ready for data transfer. The NCR-MT 201 initiates the registration / attach procedure with a cell broadcasting 'NCR-support'='true'. For the NCR-MT 201, cellBarred, cellReservedForOperatorUse and cellReservedForOtherUse are ignored and unified access control (UAC) is omitted. The NCR-MT initial access procedure is described in more detail below with reference to Figures 8A and 8B.
[0089] In step S703, the NCR-Fwd setup step is performed. As will be described later with reference to Figures 9 and 10, the method may involve reusing RRCConnectionReconfiguration or using a new "NCR Setup" procedure for NCR-Fwd 202 initialization. Initial side control information may be transmitted, including a list of SSB indices of repeater coverage, or initial on / off of Fwd and corresponding beamforming information in each time window. After the NCR-Fwd setup phase is completed, NCR-Fwd 202 is activated. NCR-Fwd 202 may be activated at the time of "reconfiguration complete" or "NCR setup complete".
[0090] In step S704, a signal forwarding step is performed in which the NCR 9 receives a signal from the base station 5 and transmits a corresponding signal to the UE 3. The NCR 9 can receive further side control information from the base station 5 for control of the NCR-Fwd access link (or for control of the backhaul or control link between the NCR 9 and the base station 5).
[0091] NCR-MT Initial Access Procedures The NCR-MT initial access procedure (used, for example, as the NCR-MT initial access procedure in step S702 of FIG. 7) will now be described with reference to FIGS. 8A and 8B.
[0092] The procedures illustrated in Figures 8A and 8B are based on the initial access and initial attach procedures between the UE 3 and the base station 5 (see, for example, 3GPP TS 38.331 v17.1.0), but in this example have been modified to include an indication of NCR support in the system information sent by the base station 5 and an NCR indication from the NCR 7.
[0093] Referring first to FIG. 8A, in step S800, the base station 5 transmits system information to the NCR-MT 201. Advantageously, this system information includes an NCR support indication, enabling the NCR-MT 201 to determine whether the base station 5 supports NCR 9. The base station 5 may broadcast 'NCR-support' in an appropriate system information block (SIB). For example, the base station 5 may broadcast the NCR support indication (e.g., an 'NCR-support' information element (IE)) in SIB1. In this example, NCR-support is set to 'true' to indicate that NCR 9 (or specific features of NCR) are supported by the base station 5 (alternatively, NCR-support may be 'false' to indicate that NCR 9 is not supported by the base station 5, or the NCR-support indication may be omitted entirely), but it will be appreciated that any suitable NCR support indication (explicit or implicit) may be used. In case of multiple Public Land Mobile Networks (PLMNs) indicated in SIB1, this field is common to all PLMNs.
[0094] Step S801 involves switching on, downlink (DL) synchronization, and reading system information received from the base station 5. The unified access control (UAC) is omitted and bar / reserve bits (e.g., bits indicating access / cell restriction and / or cell reservation) are ignored.
[0095] In step S802, the NCR-MT 201 transmits an RRC setup request message to the base station 5. In step S803, the base station 5 transmits an RRC setup message to the NCR-MT 201.
[0096] In step S804, an RRC setup complete message including a registration request is sent to the base station 5. In this example, the RRC setup complete message includes an NCR indication. Advantageously, this NCR indication is used by the NCR 9 to indicate to the base station 5 that it is an NCR. However, the NCR indication does not necessarily have to be included. In step S805, an INITIAL UE MESSAGE is transmitted from the base station 5 to the core network node 8-1 (for example, AMF). The base station 5 may transmit a registration request and an NCR indication to the core network node 8-1.
[0097] In step S806, UE NAS identity transfer, authentication and NAS security processing is performed.
[0098] Next, referring to FIG. 8B, in step S807, the core network node 8-1 sends an INITIAL CONTEXT SETUP REQUEST and a registration acceptance to the base station 5. In step S808, the base station 5 transmits a security mode command to the NCR-MT 201. In step S809, the NCR-MT 201 transmits a security mode completion message to the base station 5. In step S810, the base station 5 sends an INITIAL CONTEXT SETUP RESPONSE to the core network node 8-1. In optional step S811, the base station 5 sends an RRC reconfiguration message to the NCR-MT 201. In optional step S812, the NCR-MT 201 sends an RRC reconfiguration complete to the base station 5.
[0099] There are two options for identifying the NCR-MT type to the base station 5 during registration / attach: In the first option, the NCR-MT 201 configures the content of the RRC Setup Complete message, including the NCR node indication (e.g., as described above). In the second option, the NCR-MT 201 compiles and forwards the NCR node indication associated with the wireless UE capability information, for example, when receiving a UE capability inquiry from the base station 5.
[0100] There are two options for protocol data unit (PDU) session configuration, data radio bearer (DRB) configuration, and the core network-base station interface (e.g., Ng interface). In the first option (sometimes called the legacy option), the core network-base station interface is established and a PDU session and default DRB / SRB2 are set up. In the second option, the base station 5 stores the UE context, but does not store the core network-base station connection and PDU session configuration or DRB configuration. In the second option, signaling radio bearer 2 (SRB2) may not be required either.
[0101] NCR-Fwd setup instructions The NCR-Fwd setup procedure (used, for example, as the NCR-Fwd setup procedure in step S703 of FIG. 7) will now be described with reference to FIG.
[0102] In this NCR-Fwd setup procedure, using RRC signaling to transmit side control information is advantageous because this information is semi-persistent / semi-static and related to the always-on / common channels of the cell. At least a portion of the RRC side control information may be indicated implicitly, for example, by a list of SSB indices. Alternatively, or in addition, at least a portion of the RRC side control information may be indicated explicitly, for example, by indicating one or more of an index, a timing information field, and / or a beam information field. An index may be included in the signaling for further updates to the configuration (e.g., updating the beam information due to UE movement and maintaining the same time / frequency information, or releasing the configuration). The timing (frequency) information field may indicate the time at which the NCR 9 should relay signals between the base station 5 and the UE 3. The timing information may correspond to a repeatable pattern. The beam information field may indicate the beam direction to be used for transmission / reception on the access link. The beam direction information may be used in combination with the time / frequency indicated by the timing information field.
[0103] In step S900, the NCR-MT connects to the base station 5 after completing the NCR-MT initial access procedure (eg, the procedure illustrated in FIG. 8).
[0104] In this example, in step S901, the NCR-MT 201 transmits NCR-Fwd capability information to the base station 5. The NCR-Fwd may indicate the number of SSBs (e.g., the number of SSBs supported by the NCR 9) and / or antenna information for the NCR 9. Beneficially, the base station 5 can configure the NCR 9 more efficiently and effectively based on the received NCR-Fwd capability information. Examples of information that may be included in the NCR-Fwd capability information are described in more detail below.
[0105] In step S902a, the base station 5 sends an RRC reconfiguration message including side control information to the NCR-MT 201. In step S903a, the NCR-MT 201 transmits an RRCReconfigurationComplete message to the base station 5. In optional step S904, the base station 5 may send further side control information to the NCR-MT 201.
[0106] In step S905, a receive and forward procedure is performed in which the NCR 9 receives transmissions from the base station 5 on the backhaul link and forwards those transmissions to the UE 3 on the access link. Similarly, the NCR 9 receives transmissions from the UE 3 on the access link and forwards those transmissions to the base station 5 via the backhaul link. In step S905, the NCR 9 can receive and forward downlink SSBs (e.g., SSB #a / b / c), SIB1, system information (SI), and / or paging information, for example, during a paging occasion (PO) in the downlink. The NCR 9 can receive and forward uplink information during a PO corresponding to an SSB (e.g., SSB #a / b / c) in the uplink.
[0107] An alternative NCR-Fwd setup procedure is shown in Figure 10. In the example of Figure 10, steps S902a and S903a are replaced with steps S902b and S903b. The remaining steps shown in Figure 10 are the same as the corresponding steps shown in Figure 9. In step S902b, the base station 5 sends a new NCR setup message including side control information to the NCR-MT 201 for initialization of the NCR-Fwd 202.
[0108] In step S903b, the NCR-MT sends an NCR setup complete message to the base station 5, indicating that the initialization of the NCR-Fwd 202 is complete. Thus, advantageously, the base station 5 and the NCR 9 can exchange information about the NCR 9 more efficiently by exchanging the new NCR setup message and the NCR setup complete message.
[0109] 9 and 10, signaling 902a / b and 903a / b may be for indicating, for example, time information, frequency information, spatial (beamforming) information, power control information, interference management information, or frame structure information for transmissions received and / or transmitted by NCR 9. For example, signaling 902a / b may include access link configuration information, backhaul link configuration information, and / or control link configuration.
[0110] After the NCR-Fwd setup procedure is completed, NCR-Fwd signal relaying begins to provide an extended coverage area. In the examples illustrated in Figures 9 and 10, NCR-Fwd relaying is activated after receiving an RRC reconfiguration complete or an NCR setup complete message at base station 5, respectively.
[0111] Side control information addition / update / release procedure The side control information update procedure for UE 3 access / release via NCR 9 will now be described with reference to Figures 11A and 11B.
[0112] 11A and 11B, side control information is transmitted to configure when the NCR-Fwd relays signals and to provide an indication of the direction (beamforming information) to relay or receive signals in the uplink. For example, the beamforming information can indicate a direction corresponding to the location of a particular UE 3.
[0113] In this example, medium access control (MAC) signaling is used to transmit the side control information. MAC signaling is advantageous because the side control information is exchanged relatively frequently, is related to scheduling and beamforming, and the number of bits of side control information is not too small. However, it is not necessary to use MAC signaling to transmit the side control information.
[0114] The MAC Control Element (MAC CE) may include an index to indicate further updates to the configuration. For example, updating the beam information due to UE movement while maintaining the same time / frequency information or releasing the configuration. The timing (frequency) information field may indicate the time at which the NCR 9 should relay signals between the base station 5 and the UE 3. The timing information may correspond to a repeatable or periodic pattern. The timing information may correspond to a downlink (DL) or uplink (UL) subframe, slot, and / or symbol. The beam information field may indicate the beam direction to be used for transmission / reception on the access link. The beam direction information may be used in combination with the time / frequency indicated by the timing information field.
[0115] 11A, in step S110, a receive and forward procedure is performed by the NCR-Fwd 202 based on the received side control information. As described above, in this receive and forward procedure, the NCR 9 receives transmissions from the base station 5 on the backhaul link and forwards those transmissions to the UE 3 on the access link. Similarly, the NCR 9 receives transmissions from the UE 3 on the access link and forwards those transmissions to the base station 5 via the backhaul link. For example, the receive and forward procedure can receive and forward downlink SSBs (e.g., SSB #a / b / c), SIB1, system information (SI), and / or paging information during a paging occasion (PO) in the downlink. The NCR 9 can receive and forward uplink information during a PO corresponding to an SSB (e.g., SSB #a / b / c) in the uplink.
[0116] In step S111, a preamble is transmitted from the UE 3 to the base station 5 via the NCR-Fwd 202. In this example, in step S112, base station 5 determines (eg, based on the preamble) that UE 3 is located with a coverage area of NCR 9.
[0117] In step S113, the base station 5 sends MAC side control information (Add) to the NCR-MT 201 to indicate additional times for the NCR 9 to relay signals in the uplink and / or downlink. In the case of downlink relaying, this MAC side control information can indicate beam directions for the NCR-Fwd 202 to relay received signals at said additional times. In the case of uplink relaying, this MAC side control information can indicate beam directions for the NCR-Fwd 202 to receive signals at said additional times for forwarding to the base station 5.
[0118] In step S114, the base station 5 transmits a random access response (RAR) to the UE 3 via the NCR 9. In step S115, the UE 3 sends an RRC setup request to the base station 5. In step S116, the base station 5 sends an RRC setup message to the UE 3.
[0119] 11B, in step S117, the base station 5 performs a beam reconfiguration procedure. The UE beam is reconfigured based on the measurement configuration / report.
[0120] In step S118, the base station 5 sends MAC side control information (Modify) to the NCR-MT 201 (e.g., to modify the beam direction or any other configuration or parameter configured in step S113 for one or more control links, backhaul links, or access links).
[0121] In step S119, the base station 5 sends an RRCRelease message to the UE 3 via the NCR 9.
[0122] In step S120, the base station 5 transmits a MAC side control information (Release) message to the NCR-MT 201 to release the side control information configured in steps S113 and S118.
[0123] It should be noted that steps S113, S118, and S120 can be performed at any time during the NCR data transfer phase, and the order of the method steps described above is an example of when side control information reconfiguration / update can be triggered by UE access, movement, and release.
[0124] NCR power control capability We will now describe power control capability information that may be transmitted, for example, as part of the NCR capability information transmitted in step S901 of Figure 9. The power control capability information does not necessarily have to be transmitted in step S901 of Figure 9, but may instead be transmitted from the NCR 9 to the base station 5 in any other suitable procedure (e.g., in the alternative manner illustrated in Figure 10). For example, as illustrated in step S121 of Figure 12, the power control capability information may be transmitted separately to the base station 5 at any suitable time or as part of any suitable procedure (e.g., upon initial connection of the NCR 9 to the base station 5 or as part of an RRC information exchange procedure).
[0125] Advantageously, transmitting power control capability information improves the overall performance and efficiency of the system 1. However, because power control capability increases the complexity and cost of the NCR 9, the NCR 9 does not necessarily need to be configured for power control capability.
[0126] The NCR-MT 201 portion of the NCR capability information may include information contained in the UE 3 capability exchange, however, additional capability information may advantageously be specified to indicate the capabilities of the NCR 9 with respect to the access link between the NCR 9 and the UE 3.
[0127] The power control capability information transmitted from the NCR 9 to the base station 5 includes an indication of whether the NCR 9 supports power control or gain control for the access link. Additionally or alternatively, the power control capability information indicates whether the NCR 9 supports power control or gain control for the backhaul link. Additionally or alternatively, the power control capability information indicates whether the NCR 9 supports power control or gain control for the NCR-Fwd 202. If power control is not supported by the NCR 9, a fixed NCR gain value may be indicated in the power control capability information.
[0128] If power control or gain control is supported, the power control capability information may include power / gain control values supported by NCR 9. For example, the power control capability information may include a range of gain values, a minimum gain value, and / or a maximum gain value supported by NCR 9.
[0129] The power control capability information may be included in a MAC CE or DCI included in a transmission from the NCR 9 to the base station 5. The MAC CE or DCI may include an indication of the current power / gain control state of the NCR 9. For example, the MAC CE or DCI may include an indication of the current gain value or an indication of a possible gain increase / decrease. The transmission to the base station 5 containing the MAC CE or DCI may be triggered by the base station 5 or may be timer-based (e.g., transmitted periodically).
[0130] Power control information may be provided separately for each transmission direction (UL and DL) or may be common to both transmission directions.
[0131] Advantageously, the base station 5 can determine the power control capability of the NCR 9 based on the received power control capability information, allowing for improved control of the NCR 9 by the base station 5. For example, as illustrated in step S122 of Figure 12, the base station 5 can send side control information to the NCR 9 based on the power control capability information received at the base station 5 to control the operation of the NCR 9. This increases the overall efficiency of the system and reduces the risk of interference.
[0132] Frequency Band Support The radio configuration (e.g., supported frequency bands) of the control link may differ from the radio configuration of the backhaul link or the access link (or NCR-Fwd 202). The frequencies supported by the backhaul link and the access link (or NCR-Fwd 202) may be significantly higher than the frequencies supported by the control link. For example, the backhaul link and the access link may support a contiguous bandwidth of 1 GHz, while the control link may support only a cell bandwidth of 5 MHz. FIG. 13 illustrates the transmission of supported frequency information from the NCR 9 to the base station 5 in step S131. The supported frequency information includes an indication of the frequency bands and bandwidths supported by the backhaul link and / or the access link (or NCR-Fwd 202). The supported frequency information may also include an indication of the frequency bands and bandwidths supported by the control link. Advantageously, the base station 5 can determine the frequencies supported by the NCR 9 for each communication link based on the supported frequency information and thus perform improved NCR 9 control (e.g., more efficient frequency resource scheduling).
[0133] The support frequency information may be transmitted, for example, as part of the NCR capability information transmitted in step S901 of Figure 9. However, the support frequency information is not limited to being transmitted in step S901 of Figure 9, but may instead be transmitted from the NCR 9 to the base station 5 in any other suitable procedure (e.g., in the alternative manner illustrated in Figure 10). For example, as illustrated in step S131 of Figure 13, the support frequency information may be transmitted separately to the base station 5 at any suitable time or as part of any suitable procedure (e.g., upon initial connection of the NCR 9 to the base station 5 or as part of an RRC information exchange procedure).
[0134] In step S132, the base station 5 transmits side control information to the NCR 9 to control the operation of the NCR 9 based on the supported frequency information received from the NCR 9 by the base station 5.
[0135] The supported frequency information may include an indication of frequency ranges over which independent operation of the backhaul link and the access link may be performed, for example, the supported frequency information may include an indication of frequency ranges supported in different TDD configurations.
[0136] The supported frequency information may include an indication of the frequency ranges or bands supported by the NCR 9 for the backhaul link and / or the access link (and / or NCR-Fwd 202).
[0137] The supported frequency information may include a supported bandwidth for each frequency range / band. For example, the frequency information may indicate that the NCR 9 can support a 100 MHz NCR-FWD / backhaul link / access link bandwidth in a 2.4 GHz frequency channel and a 400 MHz NCR-FWD / backhaul link / access link bandwidth in a 28 GHz frequency channel.
[0138] The support frequency information may be coded in a similar manner to the carrier aggregation (CA) band combination capability, or may be indicated in a new information element.
[0139] The operation of the backhaul link and / or the access link may be controlled by the base station 5 based on a cell configuration or a bandwidth configuration. For example, communication on the backhaul / access link may be performed over the entire bandwidth of a designated cell or bandwidth part (BWP). For the control link, individual channel configurations (e.g., for PDCCH, Channel State Information Reference Signal (CSI-RS), sounding reference signal (SRS), PUCCH) may be provided, with frequencies limited to those supported by the NCR-MT 201. One bandwidth part may be configured for the control link, while the backhaul / access link may operate using the entire cell bandwidth or using another configured bandwidth part.
[0140] Beamforming Support The antenna configuration of the NCR-base station link (backhaul link and control link) may differ from the antenna configuration of the access link between the NCR 9 and the UE 3. FIG. 14 illustrates the transmission of beamforming capability information from the NCR 9 to the base station 5 in step S141. The beamforming capability information (which may alternatively be referred to as antenna configuration information or transmit capability information) includes an indication of the antenna or beam configurations supported by the NCR 9 for the access link or NCR-Fwd 202. Thus, advantageously, the base station 5 can determine the antenna or beam configurations supported by the NCR 9 and manage the beams more effectively.
[0141] The beamforming capability information may be transmitted, for example, as part of the NCR capability information transmitted in step S901 of Figure 9. However, the beamforming capability information is not limited to being transmitted in step S901 of Figure 9, but may instead be transmitted from the NCR 9 to the base station 5 in any other suitable procedure (e.g., in the alternative manner illustrated in Figure 10). For example, as illustrated in step S141 of Figure 14, the beamforming capability information may be transmitted separately to the base station 5 at any suitable time or as part of any suitable procedure (e.g., upon initial connection of the NCR 9 to the base station 5 or as part of an RRC information exchange procedure).
[0142] In step S142, the base station 5 transmits side control information to the NCR 9 to control the operation of the NCR 9 based on the beamforming capability information that the base station 5 receives from the NCR 9. The beamforming capability information may include an indication of the number of SSB beams supported by NCR 9.
[0143] The beamforming capability information may include an indication of the number of beams supported by NCR 9. The number of supported beams may be indicated for each type of beam. For example, the beamforming capability information may include an indication of the number of supported wide beams and the number of supported narrow beams. As illustrated in FIG. 15, transmissions between base station 5 and NCR 9 may include transmission of SSB 151 at time t1 and transmission of CSI-RS 152 at time t2 (corresponding transmissions 153, 154 are illustrated between NCR 9 and UE 3). The beamforming capability information may include an indication of the number of supported SSB beams and the number of supported CSI-RS or data beams. The beamforming capability information may also include an indication of the supported beam width for each supported beam type.
[0144] The beamforming capability information may include an indication of supported beam widths and / or allowed beam sweeping ranges. For example, the beamforming capability information may include an indication of possible values of beam direction values (which may be discrete or continuous).
[0145] The beamforming capability information may include an indication of supported antenna configurations. The indication of supported antenna configurations may include an indication of supported horizontal and / or vertical antenna elements, panels, or ports. The supported antenna configurations may be provided per NCR 9, or may be provided per beamwidth or CSI-RS / SSB beam.
[0146] The beamforming capability information may be provided for each frequency band. For example, if NCR 9 supports two frequency bands with a relatively large difference (e.g., 5 GHz and 28 GHz), the beamforming capability may differ for each frequency band.
[0147] PMI and Beamforming In the case of direct communication between the base station 5 and the UE 3, different antenna ports are used for CSI-RS transmission on the same symbol to enable precoding and multiple-input / multiple-output (MIMO) so that the UE 3 can report a precoding matrix indicator (PMI) / channel quality information (CQI) by measuring each CSI-RS port separately. Beneficially, precoding enables narrower beam selection for the base station-UE link. To achieve this for the access link between the NCR 9 and the UE 3, the NCR must be able to transmit separate CSI-RS sequences over separate access link antenna ports. The NCR 9 can be configured to receive multiple CSI-RS sequences from the base station 5 at the same time and map those CSI-RS sequences to separate antenna ports for the access link. However, this increases the implementation complexity of the NCR 9. Furthermore, MIMO is difficult to implement for the access link because it requires the NCR 9 to be configured to receive multiple transmit streams from the base station 5 and map them to appropriate antenna ports, which also increases the complexity and cost of implementing the NCR 9. The inventors have recognized the need for a new procedure that enables the selection of narrow beams for data transmission.
[0148] 16 illustrates an example in which narrow beams are used for data transmission on an access link between NCR 9 and UE 3. As shown in FIG. 16, transmission between base station 5 and NCR 9 includes CSI-RS 161 transmitted at time t1, CSI-RS transmitted at time t2, and data beam 163 transmitted at time t3. Transmission from NCR 9 includes CSI-RS 164 at time t1 using a first port p1, CSI-RS 165 transmitted at time t2 using a second port p2, and narrow beam 166 for data transmission to UE 3 at time t3 (after t1 and t2). Data transmission to UE 3 is performed using a first antenna port p1, which may have an associated first weight w1, and a second antenna port p2, which may have an associated weight w2. The first weight w1 and the second weight w2 are derived based on UE measurement reports (e.g., PMI reports) of CSI-RS 164 at time t1 using the first port p1 and CSI-RS 165 transmitted at time t2 using the second port p2.
[0149] In a first option, PMI indication may not be supported for the access link (or NCR-Fwd 202), in which case the CSI-RS sent from the base station 5 to the NCR 9 contains a single port and the CSI report does not contain a rank indicator or PMI value.
[0150] In the second option, at least wideband PMI indication is supported for the access link. To enable this, only CSI-RS configurations are used where the CSI-RS ports are transmitted in separate symbols. The network can provide an indication of the mapping between CSI-RS ports / symbols and the corresponding antenna elements / ports of the NCR 9.
[0151] A CSI-RS configuration may be specified in which each CSI-RS port is mapped to a different time occasion. Alternatively, a CSI-RS configuration may be used in which a subset of the CSI-RS ports are disabled and the remaining enabled ports are mapped to different time occasions. In a further alternative, multiple TDM CSI-RS resources may be used, each TDM CSI-RS resource being mapped to a different CSI-RS port.
[0152] For CSI reporting, only wideband PMI is supported (e.g., no sub-band PMI), and the allowed rank indication may be a single layer. It will be appreciated that this may be beneficial because sub-band PMI or multi-layer transmission may require complex baseband processing in NCR 9, which may not be available.
[0153] In this example, the base station 5 transmits an indication of the beam (e.g., data beam 166 of the access link) to be used for transmission / reception in NCR 9. The base station 5 can transmit an indication of the beam weight values to be used for the corresponding antenna port / element in NCR 9. Alternatively, the NCR 9 can provide information (e.g., included in the beamforming capability information described above with reference to FIG. 14) regarding oversampled beams (the number of spatially overlapping beams) and corresponding transmit / receive direction information. Advantageously, the base station 5 can then select one of the beams to be used for data transmission / reception (e.g., to provide the narrow data beam 166 illustrated in FIG. 16).
[0154] Frame Structure Instructions Frame structure information for the backhaul link or access link (or NCR-Fwd 202) that may be exchanged between the base station 5 and the NCR 9 will now be described with reference to FIG. 17, which illustrates an example of DCI and Hybrid Automatic Repeat Request (HARQ) feedback exchanged between the base station 5 and the NCR 9.
[0155] The base station 5 can configure a semi-static TDD configuration for NCR 9. Dynamic signaling can be used where specific slots / symbols are switched on or off.
[0156] As shown in Figure 17, the base station 5 can transmit a DCI to the NCR 9. A DCI "on" indication can be used to modify existing slot or symbol information. For example, the DCI can be for changing the beam configuration, power configuration, or transmission direction. A DCI "off" indication can be used to indicate that no backhaul link transmission or access link transmission will be performed by the NCR at a particular time.
[0157] The DCI on indication and the DCI off indication may have the same DCI format. The type of DCI information (on or off) may be indicated using an explicit DCI field that indicates whether the DCI corresponds to a DCI on indication or a DCI off indication. Alternatively, the type of DCI may be indicated implicitly using an invalid or reserved value in the DCI field (e.g., by having an invalid value for a beam or frequency in the DCI). Alternatively, the NCR 9 may be configured to monitor two DCI formats. The base station 5 can send to the NCR 9 an indication of the DCIs enabled and monitored by the NCR 9.
[0158] The DCI off indication may include time opportunity information. For example, the DCI off indication may include slot and symbol information and duration information. Multiple time opportunities may be indicated by the DCI off indication.
[0159] The DCI-on indication may also include time opportunity information. For example, the DCI-on indication may include slot and symbol information and duration information. As with the DCI-off indication, the DCI-on indication may indicate multiple time opportunities. For each time opportunity indicated by the DCI-on indication, the DCI-on indication may include corresponding information indicating the transmission direction, frequency resource information, access link beam information, the QCL state used for the backhaul link (which allows the NCR 9 to select the receive beam direction for the backhaul link), and / or backhaul / access link power control information. The frequency resource information may include a carrier, bandwidth portion, or frequency band. The access link beam information may include a beam weight, an SSB beam indication, a CSI-RS beam indication, or any other suitable type of beam identifier. If the DCI does not include QCL state information, the backhaul link receive beam direction may be selected based on the same QCL used to receive DCI control information related to backhaul reception, or may be configured using RRC signaling (e.g., the set of physical resources and parameters used to carry the PDCCH / DCI based on a CORESET configuration). In one example, if the NCR 9 includes an indication in its transmission to the base station 5 that it supports power control (e.g., in step S121 shown in FIG. 12), the base station 5 may decide to include power control information in the DCI.
[0160] The DCI included in the transmission from the base station 5 to the NCR 9 is prone to errors. The inventors have recognized the need for an improved method and apparatus for increasing the reliability of DCI transmission to ensure that the frame structure between the base station 5 and the NCR 9 is well aligned. FIG. 17 shows an example in which the reliability of DCI transmission is improved by providing HARQ feedback. In step S171, a DCI indication (described in detail above) is transmitted from the base station 5 to the NCR 9. In step S172, the NCR 9 transmits HARQ feedback to the base station 5. The HARQ feedback transmitted by the NCR 9 indicates whether the corresponding DCI was successfully received at the NCR 9. The HARQ feedback may include an acknowledgement (ACK) indication or a negative-acknowledgement (NACK) indication. However, the transmission of a NACK may not be required and may be implicit (in some cases, for example, if the NCR cannot determine that DCI has been transmitted, the transmission of a NACK may not be possible). The resources used for transmitting HARQ feedback may be indicated by the DCI itself or may be indicated as part of the RRC configuration (e.g., using implicit indication). The actual time opportunity for NCR 9 on / off may occur earlier or later than the HARQ feedback.
[0161] HARQ feedback corresponding to DCI does not necessarily have to be enabled all the time. HARQ feedback may be disabled for a DCI-on indication and enabled for a DCI-off indication. Alternatively, HARQ feedback may be disabled for a DCI-off indication and enabled for a DCI indication.
[0162] HARQ feedback may be enabled / disabled based on HARQ control information transmitted from the base station 5 to the NCR 9. The HARQ control information may be common to both the DCI-on instruction and the DCI-off instruction, or separate HARQ control information may be provided for each type of DCI. The base station 5 may control the enabling / disabling of HARQ feedback using RRC signaling, and the HARQ control information may be included in the DCI. The DCI may implicitly indicate whether HARQ feedback is enabled / disabled. For example, an invalid value (e.g., an invalid value for the HARQ resource) may be set in the DCI to indicate that HARQ feedback is not required.
[0163] Whether HARQ feedback should be used may be implicit based on the timing of the NCR on / off opportunity. For example, if an on / off opportunity occurs before the HARQ feedback opportunity, or if the time difference between the DCI and the on / off opportunity is less than the time difference limit, the NCR 9 may determine that HARQ feedback is not necessary. A MAC CE based mechanism may be used for ACK / NACK feedback.
[0164] In step S173, the NCR 9 forwards the DL transmission from the base station 5 to the UE 3 based on the information included in the DCI indication (e.g., using the indicated beam configuration, power configuration, and / or transmission direction of the backhaul and / or access link). In the example shown in Figure 17, the forwarding by the NCR 9 in step S173 occurs after the transmission of the HARQ feedback in step S172, but this does not necessarily have to be the case. Alternatively, step S173 may be performed before step S172.
[0165] Different transmission parameters may be used for the two types of DCI indications (ON and OFF), for example, the DCI ON indication may be configured to use a higher code rate or more indications to increase the probability of successful decoding.
[0166] The use of DCI indication advantageously provides a mechanism for the base station 5 to control the behavior of the NCR 9. However, there may be some time occasions (e.g., SSB occasions) where the behavior of the NCR 9 should not change over time. For some time occasions, the base station 5 may send an indication to the NCR 9 that the NCR 9 should always transmit. For some time occasions, the base station 5 may send an indication to the NCR 9 that the NCR 9 should never transmit. The transmission behavior and transmission direction (beamforming) of the NCR 9 at a time occasion (slot / symbol / period) may be explicitly configured by the base station 5. Alternatively, the configuration may be implicitly indicated. Alternatively, the configuration may be indicated based on the SSB, CSI-RS, or physical random access channel (PRACH) configuration. For example, base station 5 can indicate which SSB / CSI-RS / PRACH opportunities should be forwarded by NCR 9 and associated beams, and / or should indicate which SSB / CSI-RS / PRACH opportunities should not be forwarded by NCR 9.
[0167] Some slots and / or symbols may be designated as flexible (available for either UL or DL). For such slots / symbols, the NCR 9 may not perform any transmissions unless instructed to do so by a DCI indication.
[0168] Alternatively, the NCR 9 may perform a default operation (e.g., UL or DL transmission) for flexible slots / symbols that are not overridden by a DCI on / off indication. The default operation may be configured by the base station 5. The access link beam information may be configured by the base station 5 to be used for the flexible symbols. Alternatively, the NCR 9 may use a default beam for the access link (e.g., the largest beam available for the access link).
[0169] In a further alternative, the base station 5 may configure transmission per physical channel, e.g., per CORESET, PUCCH, PRACH, SRS, or CSI-RS. Some of these resources may not be scheduled for the NCR-MT 201. In the case of flexible symbols, the NCR-MT 201 determines whether DL or UL transmission should be performed based on whether the time opportunity includes either a DL or UL physical channel opportunity.
[0170] Uplink Contention FIG. 18 illustrates an example of interference between the control link and the access link. As shown in FIG. 18, interference may occur between the control link UL 181 and the access link UL 183. Interference between the backhaul link UL 182 and the access link UL 183 may be avoided by using TDM. However, there may be cases where the NCR 9 needs to perform UL transmissions on the control link 181 while receiving UL transmissions on the access link from the UE. For example, the NCR 9 may need to perform UL control link transmissions for link recovery for PRACH, SRS for channel estimation by the base station 5, PUCCH for CQI reports or HARQ feedback, or PUSCH for RRC messages. Therefore, the inventors have recognized a need for improved methods and apparatus for mitigating interference that may occur between the control link UL 181 and the access link UL 183.
[0171] 19 illustrates the transmission of uplink contention information from the NCR 9 to the base station 5 in step S191. The uplink contention information may include an indication of whether the NCR 9 can perform simultaneous control link UL and access / backhaul link (or NCD-Fwd 202) UL in the same symbol. This capability may be associated with the frequency bands / carriers used for the control link and access / backhaul link (or NCR-Fwd 202). For example, simultaneous control link UL and access / backhaul UL may be possible if the frequency band of the control link is different from the frequency band of the access / backhaul link.
[0172] If the uplink contention information transmitted in step S191 includes an indication that simultaneous control link UL and access / backhaul link (or NCR-Fwd 202) UL is not supported (or not possible), interference management may be performed for carriers where contention may occur. For example, access link forwarding may not be performed by the NCR 9 during SRS / PUCCH opportunities configured for the NCR-MT 201. In a further example, access link forwarding may not be performed during time opportunities where PUSCH is scheduled for the NCR-MT 201. In a further example, access link forwarding may not be performed during RACH opportunities where the NCR 9 is to perform RACH, or may be disabled when the NCR 9 initiates a RACH procedure (and may be resumed / enabled upon completion / success of the RACH procedure).
[0173] In step S192, the base station 5 transmits side control information to the NCR 9 to control the operation of the NCR 9 based on the uplink contention information received by the base station 5 from the NCR 9 (e.g., to disable forwarding at specific times based on the uplink contention information).
[0174] While the interference example illustrated in FIG. 18 concerns UL interference, it will be appreciated that similar issues may arise for DL transmissions. For example, similar contention may arise between the control link DL and the access / backhaul link (or NCR-Fwd 202) DL. The NCR 9 can indicate to the base station 5 (e.g., in the uplink contention information transmitted in step S191) whether the NCR supports simultaneous control link DL and access / backhaul link DL. As described above for the UL, this capability / support may be associated with the frequency bands / carriers used for the control link and the access / backhaul link. During DL transmission opportunities where the NCR-MT 201 will receive DL transmissions from the base station 5, DL forwarding (on the backhaul / access link) may be disabled, thereby reducing the risk of interference. The access link DL may be disabled in the PDCCH / CORESET resources configured for receiving control link information. The access link DL may be disabled in the CSI-RS resources configured for the NCR-MT 201. The access link DL may be disabled with PDSCH transmissions scheduled for NCR-MT 201.
[0175] The uplink contention information may be transmitted, for example, as part of the NCR capability information transmitted in step S901 of Figure 9. However, the uplink contention information is not limited to being transmitted in step S901 of Figure 9, but may instead be transmitted from the NCR 9 to the base station 5 in any other suitable procedure (e.g., in the alternative manner illustrated in Figure 10). For example, as illustrated in step S191 of Figure 19, the power control capability information may be transmitted separately to the base station 5 at any suitable time or as part of any suitable procedure (e.g., upon initial connection of the NCR 9 to the base station 5 or as part of an RRC information exchange procedure).
[0176] Modifications and Alternatives Detailed embodiments have been described above. As those skilled in the art will appreciate, several modifications and alternatives can be made to the above embodiments while still benefiting from the disclosure embodied therein. By way of example only, some of these alternatives and modifications are described herein.
[0177] Base stations in a 5G / NR communication system are generally referred to as New Radio Base Stations ("NR-BS") or "gNBs," although it will be understood that they may also be referred to using the term "eNB" (or 5G / NR eNB), which is more typically associated with Long Term Evolution (LTE) base stations (also generally referred to as "4G" base stations). 3GPP Technical Specification (TS) 38.300 V16.7.0 and TS 37.340 V16.7.0 define, among other things, the following nodes: gNB: A node that provides NR user plane and control plane protocol termination for the UE and is connected to the 5G core network (5GC) via the NG interface. ng-eNB: A node that provides E-UTRA user plane and control plane protocol termination towards the UE and is connected to the 5GC via the NG interface. En-gNB: A node that provides protocol termination for the NR user plane and control plane towards the UE and functions as a secondary node in E-UTRA-NR Dual Connectivity (EN-DC). NG-RAN node: Either gNB or ng-eNB.
[0178] It will be understood that the above embodiments may be applied to both 5G New Radio systems and LTE systems (E-UTRAN). A base station (gateway) supporting E-UTRA / 4G protocols may be referred to as an "eNB," and a base station supporting Next Generation / 5G protocols may be referred to as a "gNB." It will be understood that some base stations may be configured to support both 4G and 5G protocols, and / or any other 3GPP or non-3GPP communication protocols.
[0179] Each cell may have an associated "NR Cell Global Identifier" (NCGI) to globally identify the cell. The NCGI is constructed from the Public Land Mobile Network (PLMN) identity (PLMN ID) to which the cell belongs and the cell's NR Cell Identity (NCI). The PLMN ID contained in the NCGI is the first PLMN ID in the PLMN ID set associated with the NR cell identity in System Information Block Type 1 (SIB1). The "gNB Identifier" (gNB ID) is used to identify a specific gNB within a PLMN. The gNB ID is contained in the NCI of that cell. The "global gNB ID" is used to globally identify a gNB and is constructed from the PLMN identity to which the gNB belongs and the gNB ID. The Mobile Country Code (MCC) and Mobile Network Code (MNC) are the same as those contained in the NCGI.
[0180] In the above description, for ease of understanding, the UE 3, access network node (base station 5), and NCR 9 are described as having several separate modules (e.g., communication control modules). While these modules may be provided in this manner in certain applications, such as when an existing system is modified to implement the present disclosure, in other applications, such as when a system is designed from the beginning with the features of the present invention in mind, these modules may not be identifiable as separate entities because they may be incorporated into an overall operating system or code. These modules may be implemented in software, hardware, firmware, or a combination thereof.
[0181] Each controller may include any suitable form of processing circuitry including, for example (but not limited to), one or more hardware-implemented computer processors, microprocessors, central processing units (CPUs), arithmetic logic units (ALUs), input / output (IO) circuitry, internal memory / cache (program and / or data), processing registers, communication buses (e.g., control buses, data buses and / or address buses), direct memory access (DMA) functions, hardware or software-implemented counters, pointers and / or timers, etc.
[0182] In the above embodiments, several software modules have been described. As will be understood by those skilled in the art, the software modules may be provided in compiled or uncompiled form and may be supplied to the UE 3, NCR 9, or base station 5 as a signal, over a computer network, or on a recording medium. Furthermore, the functions performed by some or all of this software may be performed using one or more dedicated hardware circuits. However, the use of software modules is preferred because it facilitates updating the UE 3, NCR 9, or base station 5 to update their functions.
[0183] The above embodiments are also applicable to "non-mobile" or generally fixed user equipment 3. The above-mentioned mobile devices (UE) 3 may include MTC / IoT devices, power-saving UEs, etc.
[0184] User Equipment 3 (or "UE," "mobile station," "mobile device," or "wireless device") in this disclosure is an entity connected to a network via a wireless interface. It should be noted that the present disclosure is not limited to dedicated communication devices, but may be applied to any device having communication capabilities as described in the following paragraphs.
[0185] The terms "User Equipment" or "UE" (as this term is used by 3GPP), "mobile station," "mobile device," and "wireless device" are generally intended to be synonymous with each other and include standalone mobile stations such as terminals, cell phones, smartphones, tablets, cellular IoT devices, IoT devices, and machines. It will be understood that the terms "mobile station" and "mobile device" also encompass devices that remain stationary for extended periods of time.
[0186] A UE may be, for example, an item of production or manufacturing equipment and / or an item of energy-related machinery (e.g., equipment or machinery such as boilers, engines, turbines, solar panels, wind turbines, hydroelectric generators, thermal generators, nuclear generators, batteries, nuclear systems and / or related equipment, heavy electrical machinery, pumps including vacuum pumps, compressors, fans, blowers, hydraulic equipment, pneumatic equipment, metalworking machinery, manipulators, robots and / or application systems thereof, tools, dies or molds, rolls, conveying equipment, elevators, material handling equipment, textile machinery, sewing machinery, printing and / or related machinery, paper converting machinery, chemical machinery, mining and / or construction machinery and / or related equipment, machinery and / or implements for agriculture, forestry and / or fisheries, safety and / or environmental protection equipment, tractors, precision bearings, chains, gears, power transmission equipment, lubrication equipment, valves, pipe fittings, and / or application systems for any of the foregoing equipment or machinery, etc.).
[0187] A UE may be, for example, an item of transportation equipment (e.g., transportation equipment such as rail cars, vehicles (automobiles), motorcycles, bicycles, trains, buses, carts, rickshaws, ships and other watercraft, aircraft, rockets, satellites, drones, balloons, etc.).
[0188] A UE may be, for example, an item of information and communications equipment (eg, information and communications equipment such as electronic computers and related equipment, communications and related equipment, electronic components, etc.).
[0189] The UE may be, for example, a refrigerator, a refrigerator application product, an item of trade and / or service industry equipment, a vending machine, an automated service machine, an office machine or equipment, a home appliance or electronic device (e.g., a household appliance such as audio equipment, video equipment, loudspeakers, radios, televisions, microwave ovens, rice cookers, coffee machines, dishwashers, washing machines, dryers, electronic fans or related equipment, vacuum cleaners, etc.).
[0190] The UE may be, for example, an electrical application system or device (eg, an electrical application system or device such as an x-ray system, a particle accelerator, a radioisotope device, a sonic device, an electromagnetic application device, a power application device, etc.).
[0191] The UE may be, for example, an electronic lamp, a lighting fixture, a measuring instrument, an analyzer, a tester, or a surveying or sensing device (e.g., a smoke alarm, a motion sensor, a radio tag, or other surveying or sensing device), a wristwatch or watch, an inspection device, an optical device, a medical device and / or system, a weapon, an item of tableware, a hand tool, etc.
[0192] A UE may be, for example, a wireless-equipped personal digital assistant or related equipment, such as a wireless card or module designed to be attached to or inserted into another electronic device (e.g., a personal computer, an electrical measuring instrument), etc.
[0193] The UE may be a device or part of a system that uses various wired and / or wireless communication technologies to provide the applications, services, and solutions described below in relation to the "internet of things (IoT)."
[0194] Internet of Things devices (or "Things") may be equipped with appropriate electronics, software, sensors, network connections, etc. that enable these devices to collect and exchange data with each other and other communicating devices. IoT devices may include automated equipment that follows software instructions stored in internal memory. IoT devices may operate without the need for human supervision or interaction. IoT devices may also remain stationary and / or inactive for long periods of time. IoT devices may be implemented as part of a (typically) stationary device. IoT devices may also be embedded in a non-stationary device (e.g., a vehicle) or attached to an animal or person being monitored / tracked.
[0195] It will be understood that IoT technology may be implemented on any communication device that can connect to a communication network to send / receive data, whether such communication device is controlled by human input or software instructions stored in memory.
[0196] It will be understood that IoT devices may also be referred to as Machine-Type Communication (MTC) devices or Machine-to-Machine (M2M) communication devices. It will be understood that a UE may support one or more IoT or MTC applications. Some examples of MTC applications are listed in the table below (Source: 3GPP TS 22.368 V13.1.0, Annex B, the contents of which are incorporated herein by reference). This list is not exhaustive and is intended to illustrate some examples of machine-type communication applications.
[0197] [Table 1]
[0198] The applications, services, and solutions may be Mobile Virtual Network Operator (MVNO) services, emergency wireless communication systems, Private Branch eXchange (PBX) systems, PHS / digital cordless communication systems, Point of sale (POS) systems, advertising call systems, Multimedia Broadcast and Multicast Service (MBMS), Vehicle to Everything (V2X) systems, train radio systems, location-related services, disaster / emergency wireless communication services, community services, video streaming services, femtocell application services, Voice over LTE (VoLTE) services, billing services, wireless on-demand services, roaming services, activity monitoring services, telecommunications carrier / communication network selection services, function restriction services, Proof of Concept (PoC) services, personal information management services, ad hoc networks / Delay Tolerant Networking (DTN) services, and the like.
[0199] Furthermore, the above-mentioned UE categories are merely examples of applications of the concepts and exemplary embodiments described herein, and it should be understood that these concepts and embodiments are not limited to the above-mentioned UEs and may be modified in various ways.
[0200] Various other modifications will be apparent to those skilled in the art and will not be described in further detail here.
[0201] This application claims the benefit of priority from UK Patent Application No. 2212692.4, filed August 31, 2022, the disclosure of which is incorporated herein by reference in its entirety.
[0202] For example, all or part of the exemplary embodiments disclosed above can be described as, but are not limited to, the following supplementary notes. (Appendix 1) 1. A method for a network controlled repeater (NCR), the method comprising: power control capability information indicating the power control capability or gain control capability of the NCR; Supported frequency information indicating the frequencies or frequency ranges supported by the NCR; Beamforming capability information indicating the beamforming capabilities of the NCR; or An indication of the NCR's ability to perform simultaneous uplink or downlink communications transmitting NCR capability information to the access network node, the NCR capability information including at least one of: receiving control information for controlling NCR from the access network node, the control information being based on the NCR capability information; A method comprising: (Appendix 2) Power control capability information is an indication of whether the NCR supports power control or gain control with respect to transmissions by the NCR over the access link between the NCR and the user equipment (UE); or an indication of whether the NCR supports power control or gain control with respect to transmissions by the NCR over the backhaul link between the NCR and the access network node; 2. The method of claim 1, comprising at least one of: (Appendix 3) 3. The method of claim 1 or 2, wherein if power control capability is not supported by the NCR, the power control capability information includes a gain or power value that indicates that power control capability or gain control capability is not supported. (Appendix 4) 3. The method of claim 1 or 2, wherein if power control capability is supported by the NCR, the power control capability information includes power control parameters or gain control parameters supported by the NCR. (Appendix 5) If power control capability is supported by the NCR, the power control capability information is The range of gain or power values supported by the NCR, or Maximum gain or power value supported by NCR 5. The method of claim 4, comprising at least one of: (Appendix 6) The method of any preceding clause, wherein the power control capability information includes an indication of the currently used power or gain used in the NCR. (Appendix 7) Power control capability information is Indications of power or gain increases that the NCR can implement; Indication of power or gain reduction that NCR can implement The method of any preceding clause, including at least one of: (Appendix 8) 10. The method of any preceding clause, wherein the method comprises transmitting power control capability information to the access network node based on a timer or in response to a transmission received from the access network node. (Appendix 9) A method as described in any preceding addendum, wherein the power control capability information includes an uplink indication indicating the power control capability or gain control capability of the NCR for the uplink connection, and a downlink indication indicating the power control capability or gain control capability of the NCR for the downlink connection. (Appendix 10) 9. The method of any one of Supplementary Notes 1 to 8, wherein the power control capability information includes an indication of the power control or gain control capabilities of the NCR for both the uplink and downlink connections. (Appendix 11) Support frequency information is available at An indication of the frequencies or frequency ranges supported by the NCR for the access link between the NCR and the user equipment (UE); or An indication of the frequency or frequency range supported by the NCR for the backhaul link between the NCR and the access network node The method of any preceding clause, including at least one of: (Appendix 12) The supported frequency information includes an indication of frequencies or frequency ranges supported by the NCR for control links between the NCR and the access network node; the frequency or frequency range supported by the NCR for the control link is different from the frequency or frequency range supported by the NCR for the access link or the frequency or frequency range supported by the NCR for the backhaul link; The method described in Appendix 11. (Appendix 13) Support frequency information is available at a first supported frequency or frequency range supported by the NCR for an access link or a backhaul link having a first time division duplex (TDD) configuration; and a second supported frequency or frequency range supported by the NCR for the access link or backhaul link having the second TDD configuration; including instructions for The first TDD configuration is different from the second TDD configuration, 13. The method of claim 11 or 12. (Appendix 14) 10. The method of any preceding clause, wherein the supported frequency information includes an indication of bandwidths corresponding to frequencies or frequency ranges supported by the NCR. (Appendix 15) 10. The method of any preceding claim, wherein the beamforming capability information includes an indication of antenna configurations or beam configurations supported by the NCR for transmission of beamformed signals. (Appendix 16) Beamforming capability information is Horizontal or vertical antenna elements or ports supported by the NCR for transmission of beamformed signals, with a panel supported by NCR for beamformed signal transmission, or Ports supported by NCR for transmitting beamformed signals 16. The method of claim 15, comprising at least one of the following instructions: (Appendix 17) 17. The method of claim 15 or 16, wherein the indication of the antenna configuration or beam configuration supported by the NCR indicates an antenna configuration or beam configuration supported by the NCR for an access link between the NCR and the UE or for a backhaul link between the NCR and an access network node. (Appendix 18) 10. The method of any preceding clause, wherein the beamforming capability information includes an indication of the number of beam configurations supported by the NCR. (Appendix 19) A method as described in any preceding addendum, wherein the beamforming capability information includes an indication of the number of beams of a first beam type supported by the NCR and an indication of the number of beams of a second beam type supported by the NCR. (Appendix 20) The first beam type corresponds to a wide beam and the second beam type corresponds to a narrow beam, or The first beam type corresponds to a Synchronization Signal Block (SSB) beam, and the second beam type corresponds to a Channel State Information Reference Signal (CSI-RS) beam or a data beam. 19. The method described in Appendix 19. (Appendix 21) 10. The method of any preceding clause, wherein the beamforming capability information includes an indication of beamwidths of beams supported by the NCR. (Appendix 22) 10. The method of any preceding clause, wherein the beamforming capability information includes an indication of at least one beam direction value supported by the NCR. (Appendix 23) 10. The method of any preceding claim, wherein the beamforming capability information includes an indication of a first beamforming capability of the NCR supported for the first frequency band and an indication of a second beamforming capability of the NCR supported for the second frequency band. (Appendix 24) An indication of the ability of an NCR to perform simultaneous uplink or downlink communications is a control link between the NCR and the access network node; and Backhaul link between NCR and access network node, or access link between NCR and user equipment (UE) 2. A method as described in any preceding clause, for indicating the ability of an NCR to perform simultaneous uplink or downlink communications. (Appendix 25) 25. The method of claim 24, wherein the indication of the NCR's ability to perform simultaneous uplink or downlink communications indicates the NCR's ability to perform simultaneous uplink or downlink communications for a particular frequency band or carrier. (Appendix 26) 1. A method for a network controlled repeater (NCR), the method comprising: receiving from the access network node an indication of a mapping between ports or symbols corresponding to reference signals received from the access network node and corresponding antenna elements or ports of the NCR; transmitting a reference signal based on the mapping; A method comprising: (Appendix 27) The method comprises: receiving measurement information from a user equipment (UE) corresponding to measurements of a reference signal by the UE; transmitting the measurement information to an access network node; receiving a beam indication from the access network node indicating a beam to be used for data transmission from the NCR to the UE; 27. The method of claim 26, further comprising: (Appendix 28) 28. The method of claim 27, wherein the beam instruction includes one or more weight values to be used for antenna ports or antenna elements of the NCR used for data transmission from the NCR to the UE. (Appendix 29) 1. A method for a network controlled repeater (NCR), the method comprising: receiving downlink control information from an access network node for controlling transmission or reception in the NCR; transmitting feedback indicating whether downlink control information was received at the NCR; A method comprising: (Appendix 30) 29. The method of claim 29, wherein the feedback is hybrid automatic repeat request feedback. (Appendix 31) 31. The method of claim 29 or 30, wherein the downlink control information includes an indication of a beam configuration corresponding to transmission or reception. (Appendix 32) The downlink control information is Transmission over the backhaul link between the NCR and the access network node, or Transmission over the access link between the NCR and the user equipment (UE) 32. The method of any one of claims 29 to 31, including instructions that the NCR should not perform at least one of the following: (Appendix 33) 33. The method of any one of Supplementary Notes 29 to 32, wherein the downlink control information includes an indication of resources for transmission of the feedback. (Appendix 34) 34. The method of any one of claims 29 to 33, further comprising receiving an indication from the access network node whether sending of feedback should be enabled or disabled. (Appendix 35) 1. A method for an access network node, the method comprising: power control capability information indicating the power control capability or gain control capability of the NCR; Supported frequency information indicating the frequencies or frequency ranges supported by the NCR; Beamforming capability information indicating the beamforming capabilities of the NCR; or An indication of the NCR's ability to perform simultaneous uplink or downlink communications receiving NCR capability information from a network controlled repeater (NCR), the NCR capability information including at least one of: sending control information to the NCR for controlling the NCR, the control information being based on the NCR capability information; A method comprising: (Appendix 36) 1. A method for an access network node, the method comprising: sending to a network controlled repeater (NCR) an indication of a mapping between ports or symbols corresponding to reference signals received from an access network node and corresponding antenna elements or ports of the NCR; receiving a reference signal based on the mapping; A method comprising: (Appendix 37) 1. A method for an access network node, the method comprising: Sending downlink control information to a network controlled repeater (NCR) for controlling transmission or reception at the NCR; receiving feedback indicating whether downlink control information was received at the NCR; A method comprising: (Appendix 38) A network controlled repeater (NCR), power control capability information indicating the power control capability or gain control capability of the NCR; Supported frequency information indicating the frequencies or frequency ranges supported by the NCR; Beamforming capability information indicating the beamforming capabilities of the NCR; or An indication of the NCR's ability to perform simultaneous uplink or downlink communications means for transmitting NCR capability information to an access network node, the NCR capability information including at least one of: means for receiving control information for controlling NCR from an access network node, the control information being based on NCR capability information; A network controlled repeater (NCR) is provided. (Appendix 39) A network controlled repeater (NCR), means for receiving from the access network node an indication of a mapping between ports or symbols corresponding to reference signals received from the access network node and corresponding antenna elements or ports of the NCR; means for transmitting a reference signal based on the mapping; A network controlled repeater (NCR) is provided. (Appendix 40) A network controlled repeater (NCR), means for receiving downlink control information from an access network node for controlling transmission or reception in the NCR; means for transmitting feedback indicating whether downlink control information has been received at the NCR; A network controlled repeater (NCR) is provided. (Appendix 41) an access network node, power control capability information indicating the power control capability or gain control capability of the NCR; Supported frequency information indicating the frequencies or frequency ranges supported by the NCR; Beamforming capability information indicating the beamforming capabilities of the NCR; or An indication of the NCR's ability to perform simultaneous uplink or downlink communications means for receiving NCR capability information from a network controlled repeater (NCR), the NCR capability information including at least one of: means for transmitting control information to the NCR for controlling the NCR, the control information being based on the NCR capability information; An access network node comprising: (Appendix 42) an access network node, means for transmitting to a network controlled repeater (NCR) an indication of a mapping between ports or symbols corresponding to reference signals received from an access network node and corresponding antenna elements or ports of the NCR; means for receiving a reference signal based on the mapping; An access network node comprising: (Appendix 43) an access network node, means for transmitting downlink control information to a network controlled repeater (NCR) for controlling transmission or reception at the NCR; means for receiving feedback indicating whether downlink control information has been received at the NCR; an access network node, including: [Explanation of symbols]
[0203] 1 Mobile (cellular or wireless) telecommunications systems 3. Mobile Devices 5 Base Station / (R)AN Node 6 Related Cells 7 Core Network 9 network controlled repeater(NCR) 10. Data Network 21 Transceiver circuit 22 Antenna 23 Controller 24 User Interface 25 memory 26 Operating Systems 27 Communication Control Module 31 Transceiver Circuit 32 Antenna 33 Controller 34 memory 35 Operating Systems 36 Communication Control Module 37 Control Link Module 38 Amplification and Transmission Module 41 Transceiver Circuit 42 Antenna 43 Network Interface 44 Controller 45 memory 46 Operating Systems 47 Communication Control Module 48 Control Link Module 49 Backhaul Module
Claims
1. 1. A method for a network controlled repeater (NCR) having a control link and a backhaul link to an access network node and an access link to a user equipment (UE), wherein transmissions over the control link are terminated at the NCR and transmissions over the backhaul link are forwarded to the access link via the NCR, the method comprising: transmitting capability information to the access network node indicating a capability to handle interference between transmissions on the control link, the backhaul link, and the access link; receiving control information from the access network node via the control link for controlling the NCR to address the interference based on the capability information; A method comprising:
2. the capability information indicating a capability of power and / or gain control of transmissions of the backhaul link and / or the access link; The capability information is a range of gain or power values supported by said NCR; or The maximum gain or power value supported by the NCR at least one of: The method of claim 1.
3. the capability information indicating a capability of power and / or gain control of transmissions of the backhaul link and / or the access link; The capability information includes a current power or gain of transmission of the backhaul link and / or the access link in the NCR; The method of claim 1.
4. The capability of power and / or gain control of transmissions of the backhaul link and / or the access link may comprise: information that applies to uplink transmissions and information that applies to downlink transmissions, or Information that applies to both uplink and downlink transmissions Including, The method according to claim 2 or 3.
5. the capability information indicating a capability of power and / or gain control of transmissions of the backhaul link and / or the access link; The capability information is an indication of whether the NCR supports power control or gain control with respect to transmissions on the access link; or an indication of whether the NCR supports power control or gain control with respect to transmissions on the backhaul link; at least one of:
5. The method according to any one of claims 1 to 4.
6. If a capability of power and / or gain control of transmissions of the backhaul link and / or the access link is not supported by the NCR, the capability information includes a certain gain or power value indicating that the capability of power and / or gain control of transmissions of the backhaul link and / or the access link is not supported.
6. The method according to any one of claims 2 to 5.
7. The capability information is An indication of increased power or gain, or Power or gain reduction indication at least one of:
7. The method according to any one of claims 1 to 6.
8. transmitting said capability information to said access network node based on a timer or in response to a transmission received from said access network node.
8. The method of claim 1, further comprising:
9. The capability information indicates frequency information capabilities supported by the NCR; The capability information is an indication of the frequencies or frequency ranges supported by the NCR for the access link; or an indication of a frequency or frequency range supported by the NCR for the backhaul link; and The capability information is independent of the capabilities of the frequencies or frequency ranges supported by the NCR for the control link.
9. The method according to any one of claims 1 to 8.
10. the frequency or frequency range supported by the NCR for the control link is different from the frequency or frequency range supported by the NCR for the access link or the frequency or frequency range supported by the NCR for the backhaul link; 10. The method of claim 9.
11. The capability information is a first frequency or frequency range supported by the NCR for one of the access link and the backhaul link having a first time division duplex (TDD) configuration; and a second frequency or frequency range supported by the NCR for the other of the access link and the backhaul link having a second TDD configuration; including instructions for the first TDD configuration is different from the second TDD configuration; 11. The method according to claim 9 or 10.
12. the capability information includes an indication of a bandwidth corresponding to the frequency or frequency range supported by the NCR for the access link or the backhaul link; a bandwidth corresponding to the frequency or frequency range supported by the NCR for the control link is limited by the capability of the frequency or frequency range supported by the NCR for the control link; 12. The method according to any one of claims 9 to 11.
13. The capability information includes a beamforming capability of the NCR; The capability information includes an indication of antenna configurations or beam configurations supported by the NCR for transmission of beamformed signals.
13. The method according to any one of claims 1 to 12.
14. The capability information is horizontal or vertical antenna elements or ports supported by said NCR for transmission of beamformed signals; a panel supported by said NCR for the transmission of beamformed signals; or Ports supported by the NCR for transmission of beamformed signals [0033] The method of claim 13.
15. the indication of the antenna configuration or the beam configuration supported by the NCR indicates an antenna configuration or a beam configuration supported by the NCR for the access link; 15. The method of claim 13 or 14.
16. the capability information includes an indication of the number of beam configurations supported by the NCR; 16. The method according to any one of claims 13 to 15.
17. the capability information includes an indication of a number of beams of a first beam type supported by the NCR and an indication of a number of beams of a second beam type supported by the NCR.
17. The method of any one of claims 13 to 16.
18. the first beam type corresponds to a wide beam and the second beam type corresponds to a narrow beam; or The first beam type corresponds to a Synchronization Signal / Physical Broadcast Channel (PBCH) Block (SSB) beam, and the second beam type corresponds to a Channel State Information Reference Signal (CSI-RS) beam or a data beam.
18. The method of claim 17.
19. The capability information includes an indication of the beam width and / or the beam sweeping range of the beams supported by the NCR.
19. The method of any one of claims 13 to 18.
20. the capability information includes an indication of at least one beam direction value supported by the NCR; 20. The method of any one of claims 13 to 19.
21. The capability information includes an indication of a first beamforming capability of the NCR supported for a first frequency band and an indication of a second beamforming capability of the NCR supported for a second frequency band.
21. The method of any one of claims 13 to 20.
22. The capability information is the control link; and For backhaul links or access links, in the same symbol, Indicating the NCR's ability to perform simultaneous uplink or downlink communications; 22. The method of any one of claims 1 to 21.
23. The capability information indicates the capability of the NCR to perform simultaneous uplink or downlink communications for a particular frequency band or carrier.
23. The method of claim 22.
24. The capability information is simultaneous uplink or downlink communication on the control link in a first frequency band; and Simultaneous uplink or downlink communication on the backhaul link or the access link in a second frequency band different from the first frequency band. Indicating the ability of the NCR to perform 24. The method of claim 22 or 23.
25. The capability information indicates that the NCR cannot perform simultaneous uplink or downlink communication due to contention between the control link and a backhaul link or the access link; the method further comprising ceasing transmission over the access link and / or the backhaul link.
22. The method of any one of claims 1 to 21.
26. receiving from the access network node an indication of a mapping between ports or symbols corresponding to reference signals received from the access network node and corresponding antenna elements or ports of the NCR; transmitting the reference signal based on the mapping; and 26. The method of any one of claims 1 to 25, further comprising:
27. receiving from an access network node an indication of a mapping of ports and corresponding time occasions corresponding to reference signals received from the access network node; transmitting the reference signal based on the mapping; and 26. The method of any one of claims 1 to 25, further comprising:
28. receiving from the access network node an indication of a mapping between time domain resources corresponding to reference signals received from the access network node and corresponding antenna elements or ports of the NCR; transmitting the reference signal based on the mapping; and 26. The method of any one of claims 1 to 25, further comprising:
29. receiving a beam indication from the access network node indicating a beam to be used for data transmission over the access link; 29. The method of any one of claims 26 to 28, further comprising:
30. The beam instruction includes one or more weight values to be used for the antenna ports or antenna elements of the NCR used for the data transmission over the access link.
30. The method of claim 29.
31. The capability information indicates information of a plurality of beams that overlap in a spatial domain and an information transmission / reception direction of each of the plurality of beams, and the method includes: the beam indication indicating one of the plurality of beams to be used for the data transmission over the access link.
30. The method of claim 29.
32. 1. A method for network controlled repeater (NCR), said method comprising: receiving downlink control information from an access network node for controlling transmission or reception in the NCR; determining to transmit Hybrid Automatic Repeat Request (HARQ) feedback indicating whether the downlink control information was successfully received by the NCR; A method comprising:
33. The determining step comprises: determining based on whether the downlink control information indicates not to perform any transmission over a backhaul link between the NCR and the access network node and / or an access link between the access network node and a user equipment (UE); determining, based on whether the downlink control information indicates modifying a configuration for transmission over the backhaul link and / or the access link; determining based on an indication sent from the access network node indicating whether transmission of the HARQ feedback should be enabled or disabled; determining based on a time difference between the time opportunity indicated by the downlink control information and the HARQ feedback opportunity; or determining based on a time difference between a timing at which the downlink control information is received and the time opportunity indicated by the downlink control information; at least one of:
33. The method of claim 32.
34. The downlink control information indicates time opportunities when the behavior of the NCR should change and time opportunities when the behavior of the NCR should not change.
34. The method of claim 32 or 33.
35. 1. A method for an access network node, said method comprising: receiving capability information from a network controlled repeater (NCR) having a control link and a backhaul link to an access network node and an access link to a user equipment (UE), wherein transmissions over the control link are terminated at the NCR and transmissions over the backhaul link are forwarded to the access link via the NCR, the capability information indicating a capability to handle interference between transmissions of the control link, the backhaul link, and the access link; transmitting control information to the NCR via the control link for controlling the NCR to address the interference based on the capability information; A method comprising:
36. 1. A method for an access network node, said method comprising: transmitting downlink control information to a network controlled repeater (NCR) for controlling transmission or reception at the NCR; determining that the NCR receives Hybrid Automatic Repeat Request (HARQ) feedback indicating whether the downlink control information was successfully received; A method comprising:
37. a network controlled repeater (NCR) having a control link and a backhaul link to an access network node and an access link to a user equipment (UE), wherein transmissions over the control link are terminated at the NCR and transmissions over the backhaul link are forwarded to the access link via the NCR, the NCR comprising: means for transmitting capability information to an access network node indicating a capability to handle interference between transmissions on the control link, the backhaul link, and the access link; means for receiving control information from the access network node for controlling the NCR to address the interference based on the capability information; A network controlled repeater (NCR) comprising:
38. A network controlled repeater (NCR), means for receiving downlink control information from an access network node for controlling transmission or reception in said NCR; means for determining to transmit Hybrid Automatic Repeat Request (HARQ) feedback indicating whether the downlink control information has been successfully received at the NCR; A network controlled repeater (NCR) comprising:
39. an access network node, a network controlled repeater (NCR) having a control link and a backhaul link to an access network node and an access link to a user equipment (UE), wherein transmissions over the control link are terminated at the NCR and transmissions over the backhaul link are forwarded to the access link via the NCR, means for receiving capability information from the NCR indicating a capability to handle interference between transmissions of the control link, the backhaul link, and the access link; means for transmitting control information to the NCR via the control link for controlling the NCR to deal with the interference based on the capability information; An access network node comprising:
40. an access network node, means for transmitting downlink control information to a network controlled repeater (NCR) for controlling transmission or reception at the NCR; means for determining to receive Hybrid Automatic Repeat Request (HARQ) feedback indicating whether the downlink control information was successfully received at the NCR; An access network node comprising:
Citation Information
Patent Citations
Relay configuration method and device
EP3001579A1
Power control techniques for a communication system that includes a repeater
US20210306962A1