Method, user equipment, and access network node
By employing techniques to separate antenna elements and manage interference in TDD communication systems, the limitations of uplink time allocation in 5G networks are addressed, enhancing coverage and capacity while mitigating interference.
Patent Information
- Application Number
- JP2025507052
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2022-08-12
- Filing Date
- 2023-08-04
- Publication Date
- 2025-08-26
AI Technical Summary
The limited time allocation to the uplink on TDD carriers in 5G networks results in reduced coverage, increased latency, and reduced capacity, with significant interference issues at both the base station and user equipment due to full-duplex operations.
Implementing techniques to manage interference by separating antenna elements between uplink and downlink, using intelligent beam scheduling, digital interference cancellation, and providing frequency gaps, particularly in subband non-overlapping full duplex operations.
Enhances communication efficiency by reducing interference, improving coverage, and increasing capacity in TDD communication systems.
Smart Images

Figure 2025528111000001_ABST
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to methods, user equipment, and access network nodes. The present disclosure is particularly, but not exclusively, related to wireless communication systems and apparatus thereof operating in accordance with 3rd Generation Partnership Project (3GPP®) standards (including LTE-Advanced, next generation or 5G networks, future generations, and beyond), or equivalents or derivatives thereof. The present disclosure is particularly, but not necessarily exclusively, related to improved apparatus and methods supporting full-duplex communication in time division duplex (TDD) communication bands. [Background technology]
[0002] Recent developments in 3GPP standards are referred to as the Long Term Evolution (LTE) of the Evolved Packet Core (EPC) network and the Evolved UMTS Terrestrial Radio Access Network (E-UTRAN), also commonly referred to as "4G." Additionally, the terms "5G" and "new radio" (NR) refer to evolving communications technologies that are expected to support a variety of applications and services. 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. 3GPP intends to support 5G through the so-called 3GPP Next Generation (NextGen) radio access network (RAN) and 3GPP NextGen core network.
[0003] Under 3GPP standards, a NodeB (or eNB in LTE, gNB in 5G) is a radio access network (RAN) node (or simply "access node," "access network node," or "base station") through which communication devices (user equipment or "UE") connect to a core network and communicate with other communication devices or remote servers. For simplicity, this application uses the terms RAN node or base station to refer to any such access node.
[0004] In current 5G architectures, for example, a gNB structure may be split into two parts known as a Central Unit (CU) and a Distributed Unit (DU), connected by an F1 interface. This allows for the use of a "split" architecture, whereby the "upper" CU layer (e.g., although not necessarily or exclusively), PDCP, and the "lower" DU layer (e.g., although not necessarily or exclusively, RLC / MAC / PHY), are typically implemented separately. Thus, for example, within each gNB, the upper layer CU functions of some gNBs may be implemented centrally (e.g., by a single processing unit or in a cloud-based or virtualized system), while keeping the lower layer DU functions local.
[0005] For simplicity, this application uses the terms mobile device, user device, or UE to refer to any communication device that can connect to a core network via one or more base stations. While this application may refer to mobile devices in the description, it will be understood that the described techniques can be implemented in any communication device (mobile and / or generally fixed) that can connect to a communication network to transmit / receive data, regardless of whether such communication device is controlled by human input or software instructions stored in memory.
[0006] Historically, communication systems have employed two core duplexing schemes: frequency division duplex (FDD) and time division duplex (TDD). In FDD, the frequency domain resource is divided between the downlink (DL) and uplink (UL), while in TDD, the time domain resource is divided between the DL and UL.
[0007] The appropriate duplexing scheme to be used in a given scenario is largely spectrum-dependent, with some overlap. When lower frequency bands are used for communications, paired spectrum UL and DL resource allocations are typically used, thus FDD. In contrast, in higher frequency bands, the use of unpaired spectrum, and therefore TDD, is becoming increasingly prevalent. Therefore, TDD is widely used in commercial NR deployments. Given the significantly higher carrier frequencies supported by 5G and future communication generations (6G and beyond) compared to previous communication generations, improved techniques for providing efficient use of unpaired spectrum are and will continue to be increasingly important. Summary of the Invention [Problem to be solved by the invention]
[0008] However, the very limited time allocation to the UL on TDD carriers can result in reduced coverage, increased latency, and reduced capacity.
[0009] Full duplex (FD) operation involves sharing both frequency and time domain resources between the UL and DL within the bandwidth of a conventional TDD carrier and represents one way in which improvements over conventional TDD performance may be achievable. Therefore, extensions to implement full duplex operation in gNBs within TDD carriers are currently being developed, and there are currently no limitations on the possible frequency ranges used for such FD operation. Currently, half-duplex operation within TDD carriers is still envisioned for UEs, but full-duplex UE operation remains a future option. However, the use of FD can cause serious interference issues at both the base station and the UE that are difficult to address.
[0010] For example, there are several possible FD implementations that can be implemented on a TDD carrier, including subband non-overlapping, subband overlapping, and full overlapping.
[0011] 1A-1D, in subband non-overlapping duplex (SBFD), also referred to as cross division duplex (XDD), non-overlapping UL and DL subbands may be configured on a TDD carrier (as in the general case shown in FIG. 1A). As seen in FIGS. 1A-1D, each subband includes a respective relatively "narrow" frequency band having a bandwidth that extends over only a portion of the total available bandwidth in the current TDD carrier configured for communication in the associated cell. Thus, a base station can simultaneously perform simultaneous (full-duplex) transmission and reception on different respective non-overlapping subbands for different UEs.
[0012] Figure 1B shows a specific example in which only one dedicated DL subband and one dedicated UL subband are configured in a TDD carrier. Figure 1C shows an example in which full-duplex operation is active from the first slot to the fourth slot, when the UL subband is located in the center of the frequency band and two DL subbands are located on either side of the DL subband. In the fifth slot, the base station uses legacy TDD operation (i.e., the entire frequency band is used only for UL). Figure 1D shows an example in which full-duplex operation is active from the first slot to the fifth slot. In the first four slots, the UL subband is located in the center of the frequency band and two DL subbands are located on either side of the DL subband. In the fifth slot, a complementary UL / DL configuration exists compared to the first four slots.
[0013] In subband overlapping FD, the UL and DL may be configured similarly to subband non-overlapping FD, but different subbands may overlap in frequency. In full overlap FD, the entire available bandwidth can be used for UL or DL transmission.
[0014] Currently, the focus is on developing techniques to implement subband non-overlapping FD operations and potential related enhancements to dynamic or flexible TDD. However, it will be appreciated that other FD implementations remain options for the future, and that the extensions envisioned for subband non-overlapping FD may have advantages in other FD schemes.
[0015] Among the interference issues that need to be considered are base station-to-base station (e.g., inter-gNB) cross link interference (CLI), base station self-interference, and UE-to-UE (UE-to-UE) CLI.
[0016] Inter-gNB CLI may result from, for example, adjacent channel CLI, co-channel CLI (or both), depending on the deployment scenario.
[0017] Inter-UE CLI may include CLI occurring between UEs in the same cell (intra-cell CLI), for example, as a result of both DL and UL transmissions being performed in parallel. In this scenario, interference may be observed by a DL UE from adjacent subbands used for UL transmissions from another UE in the same cell. Such interference may arise, for example, due to nonlinear distortion or frequency error (e.g., Doppler spread for DL reception). The interference may be expected to be particularly evident for DL frequency resources close to UL resource elements (REs). This may be a serious problem if the interference occurs due to DL reference signal (RS) reception (e.g., Channel State Information RS (CSI-RS) reception), which may reduce system efficiency. Base station self-interference when receiving UL may be due to adjacent channel CLI of DL transmissions from the same base station at the same time opportunity. Such interference may arise, for example, due to nonlinear distortion or frequency error. The interference may be expected to be particularly evident for UL frequency resources close to DL resource elements (REs). This can be a serious problem when interference occurs due to UL reference signal (RS) reception (e.g., Sounding Reference Signal (SRS) reception), which can reduce system efficiency.
[0018] In the case of subband non-overlapping FD operation, both subband (intra-subband) CLI and subband-to-subband (inter-subband) CLI may be particularly relevant.
[0019] Therefore, it can be seen that enhancements are needed to help enable efficient dynamic / flexible TDD in communication networks. Enhancements may include, for example, techniques for effectively managing CLI handling between base stations and / or UEs (of the same or different operators) and / or techniques for mitigating or avoiding CLI. The development of such technologies must consider several different, sometimes conflicting, factors related to the technologies' potential performance and their impact on legacy operation (assuming they coexist with legacy operation on the same and adjacent channels). These factors may include, for example, low latency, improved capacity, support for dynamic FD configuration changes, CLI reduction / minimization, and more general requirements for proper support for interworking with legacy (e.g., legacy NR) UEs and base stations. Such technologies also need to be developed taking into account their potential impact on current technologies, such as NR frame structure, DL / UL resource allocation, inter-gNB signaling, and / or interference measurement procedures.
[0020] The present disclosure aims to provide apparatus and methods that at least partially address the above needs and / or problems.
[0021] As mentioned above, one of the major issues facing the development of a suitable FD scheme for TDD, i.e., subband non-overlapping full duplex, is the potential for high interference at a base station during UL reception, e.g., due to simultaneous DL transmissions in the same frequency band. The inventors have considered several options for supporting full duplex in time division duplex (TDD) communication bands that can mitigate this interference and / or its effects, including, for example, providing a frequency gap (or guard band) between the UL and DL subbands, providing intelligent beam scheduling between the UL and DL (e.g., scheduling the UL and DL in orthogonal beams), using digital interference cancellation algorithms in the UL chain, and / or separating antenna elements between the UL and DL (e.g., such that the UL and DL use different sets of antenna elements). This disclosure discloses several techniques for supporting full duplex communication in time division duplex (TDD) communication bands, particularly by supporting separation of antenna elements between the UL and DL. [Means for solving the problem]
[0022] In one aspect, the present disclosure provides a method performed by a user equipment (UE), the method including: receiving, from an access network node, configuration information of resources for at least one downlink reference signal; performing at least one measurement of the at least one downlink reference signal based on the configuration information; transmitting, to the access network node, first information for configuring a first transmitter parameter configuration of at least one physical downlink shared channel (PDSCH) to be transmitted on at least one time resource configured for a communication scheme and second information for configuring a second transmitter parameter configuration of the at least one PDSCH to be transmitted on at least one time resource configured for another communication scheme, based on the configuration information and the at least one measurement; and receiving, from the access network node, the at least one PDSCH, wherein if the at least one PDSCH is received on the at least one time resource configured for the communication scheme, the at least one PDSCH is transmitted using the first transmitter parameter configuration, and if the at least one PDSCH is received on the at least one time resource configured for the other communication scheme, the at least one PDSCH is transmitted using the second transmitter parameter configuration.
[0023] The configuration information may include information indicating a configuration of a single downlink reference signal resource. Both the first transmitter parameter configuration and the second transmitter parameter configuration are based on at least one measurement for the single downlink reference signal resource. Both the first transmitter parameter configuration and the second transmitter parameter configuration may be based on reported information based on at least one measurement for the single downlink reference signal resource. The configuration information may indicate, for the single downlink reference signal resource configuration, at least one of a first port or a first frequency resource for reporting the first information and at least one of a second port or a second frequency resource for reporting the second information. The configuration information may include information indicating a first configuration of at least one first downlink reference signal resource and a second configuration of at least one second downlink reference signal resource. The first transmitter parameter configuration may be based on at least one measurement for the at least one first downlink reference signal resource. The second transmitter parameter configuration may be based on at least one measurement for the at least one second downlink reference signal resource. The first transmitter parameter configuration can be based on reported information based on at least one measurement for at least one first downlink reference signal resource, and the second transmitter parameter configuration can be based on reported information based on at least one measurement for at least one second downlink reference signal resource.
[0024] The first configuration of the at least one first downlink reference signal resource may be based on a first set of at least one resource. The second configuration may be based on a second set of at least one resource, and at least one resource of the first set and at least one resource of the second set may overlap. The first information may include an indication of at least one first wideband cell quality indicator (CQI). The second information may include an indication of at least one second wideband CQI, and the indication of the at least one second wideband CQI may indicate the at least one second wideband CQI relative to the first CQI. The first information may include an indication of at least one subband cell quality indicator (CQI), and the second information may not include any indication of a subband CQI. The first information may include an indication of at least one first subband cell quality indicator (CQI), and the second information may include an indication of at least one second subband CQI based on a condition that a number of second subband CQIs for the indication in the second information differ from corresponding first subband CQIs by at least a threshold value. The second information may include an indication of at least one second subband CQI based on a condition that a number of subband CQIs for the indication in the second information is less than corresponding first subband CQIs by at least a threshold value. The second information may include an indication of whether at least one second subband CQI is included in the second information. The first information may include an indication of at least one first subband cell quality indicator (CQI), and the second information may include an indication of how many second subband CQIs differ from corresponding first subband CQIs by at least a threshold value. The second information may include an indication of how many second subband CQIs are less than the corresponding first subband CQIs by at least a threshold value.The first information may include an indication of at least one first subband cell quality indicator (CQI), and the second information may include an indication of at least one second subband CQI for a subset of the subbands. The second information may include an indication of at least one second subband CQI for a subset of the subbands that includes every Nth subband, where N is an integer.
[0025] The first information may include an indication of at least one subband precoding matrix indicator (PMI), and the second information may not include any indication of subband PMIs. The first information may include an indication of at least one first subband precoding matrix indicator (PMI), and the second information may include an indication of at least one second subband PMI based on a condition that the number of second subband PMIs for the indication in the second information differs from the corresponding first subband PMI by at least a threshold value. The second information may include an indication of whether at least one second subband PMI is included in the second information. The first information may include an indication of at least one first precoding matrix indicator (PMI), and the second information may include an indication of how many second subband PMIs differ from the corresponding first subband CQI by at least a threshold value. The first information may include an indication of at least one first precoding matrix indicator (PMI), and the second information may include an indication of at least one second subband PMI for the subset of subbands. The second information may include an indication of at least one second subband PMI for the subset of subbands that includes every Nth subband, where N is an integer.
[0026] The first information may include an indication of at least one first rank indicator (RI), and the second information may include at least one second RI. If the value of the at least one second RI differs from the corresponding value of the at least one first RI, the second information may include an indication of at least one precoding matrix indicator (PMI) column or layer that is valid for the value of the at least one second RI.
[0027] The second information may form part of a partial report of information based on at least one measurement of at least one downlink reference signal transmitted using at least one downlink reference signal resource, and the method may further include receiving, from the access network node, trigger information for triggering transmission of a further report, and transmitting the further report. The trigger information may indicate that the further report should be based on previously performed measurements.
[0028] The second information may be transmitted as part of the same report as the first information. The configuration information may indicate at least one parameter to be reported as part of the second information. The first information may be transmitted as part of the first report, and the second information may be transmitted as part of a second report that is different from the first report. The at least one parameter reported as part of the second report may be determined based on the at least one parameter reported as part of the first report. The configuration information may indicate an association between the first report and the second report.
[0029] The first information and the second information may be based on respective measurements on at least one first downlink reference signal resource and at least one second downlink reference signal resource, and the at least one first downlink reference signal resource and the at least one second downlink reference signal resource may at least partially overlap. The first information and the second information may be jointly coded.
[0030] In one aspect, the present disclosure provides a method performed by an access network node, the method including: transmitting, to a user equipment (UE), configuration information of resources for at least one downlink reference signal; receiving, from the UE, based on the configuration information and at least one measurement of the at least one downlink reference signal based on the configuration information, first information for configuring a first transmitter parameter configuration of at least one physical downlink shared channel (PDSCH) to be transmitted on at least one time resource configured for a communication scheme and second information for configuring a second transmitter parameter configuration of the at least one PDSCH to be transmitted on at least one time resource configured for another communication scheme; and transmitting, to the UE, the at least one PDSCH, wherein if the at least one PDSCH is received on the at least one time resource configured for the communication scheme, the at least one PDSCH is transmitted using the first transmitter parameter configuration, and if the at least one PDSCH is received on the at least one time resource configured for the other communication scheme, the at least one PDSCH is transmitted using the second transmitter parameter configuration.
[0031] In one aspect, the present disclosure provides a user equipment (UE), the UE comprising: means for receiving, from an access network node, configuration information of resources for at least one downlink reference signal; means for performing at least one measurement of the at least one downlink reference signal based on the configuration information; means for transmitting, to the access network node, based on the configuration information and the at least one measurement, first information for configuring a first transmitter parameter configuration of at least one physical downlink shared channel (PDSCH) to be transmitted on at least one time resource configured for a communication scheme and second information for configuring a second transmitter parameter configuration of the at least one PDSCH to be transmitted on at least one time resource configured for another communication scheme; and means for receiving, from the access network node, the at least one PDSCH, wherein if the at least one PDSCH is received on the at least one time resource configured for the communication scheme, the at least one PDSCH is transmitted using the first transmitter parameter configuration, and if the at least one PDSCH is received on the at least one time resource configured for the other communication scheme, the at least one PDSCH is transmitted using the second transmitter parameter configuration. Provides equipment (UE).
[0032] In one aspect, the present disclosure provides an access network node, comprising: means for transmitting, to a user equipment (UE), configuration information of resources for at least one downlink reference signal; means for receiving, from the UE based on the configuration information and at least one measurement of the at least one downlink reference signal based on the configuration information, first information for configuring a first transmitter parameter configuration of at least one physical downlink shared channel (PDSCH) to be transmitted on at least one time resource configured for a communication scheme and second information for configuring a second transmitter parameter configuration of the at least one PDSCH to be transmitted on at least one time resource configured for another communication scheme; and means for transmitting, to the UE, the at least one PDSCH, wherein if the at least one PDSCH is received on the at least one time resource configured for the communication scheme, the at least one PDSCH is transmitted using the first transmitter parameter configuration, and if the at least one PDSCH is received on the at least one time resource configured for the other communication scheme, the at least one PDSCH is transmitted using the second transmitter parameter configuration.
[0033] Although the communication system to which this application pertains is described in the context of full-duplex extensions at the base station side, half-duplex operation at the UE side, and unlimited frequency ranges, it will be appreciated that the described extensions may have benefits in other communication systems, for example, communication systems in which the UE is capable of full-duplex operation and / or where there are limitations on the frequency ranges that may be used. [Brief explanation of the drawings]
[0034] Embodiments of the present disclosure will now be described, by way of example only, with reference to the accompanying drawings, in which: [Figure 1A] 1 is a time-frequency diagram illustrating a subband non-overlapping full duplex scheme and various exemplary implementations of such a scheme. [Figure 1B]1 is a time-frequency diagram illustrating a subband non-overlapping full duplex scheme and various exemplary implementations of such a scheme. [Figure 1C] 1 is a time-frequency diagram illustrating a subband non-overlapping full duplex scheme and various exemplary implementations of such a scheme. [Figure 1D] 1 is a time-frequency diagram illustrating a subband non-overlapping full duplex scheme and various exemplary implementations of such a scheme. [Figure 2] 1 illustrates schematically a mobile ("cellular" or "wireless") telecommunications system. [Figure 3] 3 shows a typical frame structure that may be used in the telecommunications system of FIG. [Figure 4] 3 is a simplified sequence diagram illustrating various slot configuration procedures that may be applied in the telecommunications system of FIG. 2. [Figure 5] 5 shows an illustrative example of a slot configuration constructed according to the procedure of FIG. 4. [Figure 6] 3 is a simplified time-frequency diagram illustrating an illustrative example of a full-duplex configuration that can be used in the telecommunications system of FIG. 2. [Figure 7] 3 is a simplified diagram of an antenna panel configuration for a base station of the telecommunications system of FIG. 2. [Figure 8] FIG. 1 is a simplified diagram of how logical antenna ports may be configured for MIMO and / or beamforming. [Figure 9] Some information elements that may be used for such measurement signaling in 5G systems are shown. [Figure 10] 10 illustrates different respective use cases for CSI-RS measurements to support transmission of data (over PDSCH) and associated DMRS. [Figure 11] 10 illustrates different respective use cases for CSI-RS measurements to support transmission of data (over PDSCH) and associated DMRS. [Figure 12]10 illustrates different respective use cases for CSI-RS measurements to support transmission of data (over PDSCH) and associated DMRS. [Figure 13] FIG. 10 is a simplified diagram of an example mapping between CSI-RS ports, logical antenna elements, and physical antenna elements. [Figure 14] FIG. 1 is a simplified diagram of several different CSI-RS versus logical antenna array configurations for a single panel antenna. [Figure 15] FIG. 1 is a simplified diagram of several different CSI-RS versus logical antenna array configurations for a multi-panel antenna. [Figure 16] 15 illustrates the number of horizontal and vertical beams that can be configured for each CSI-RS resource for the configuration of FIG. 14. [Figure 17A] 3 shows an exemplary power control equation that may be used in the telecommunications system of FIG. 2. [Figure 17B] 3 shows an exemplary power control equation that may be used in the telecommunications system of FIG. 2. [Figure 18] 3 is a simplified diagram of an antenna panel configuration for full duplex communication in the telecommunications system of FIG. 2. [Figure 19] FIG. 3 is another simplified diagram of an antenna panel configuration for full-duplex communication in the telecommunications system of FIG. 2. [Figure 20] 3 is a simplified sequence diagram illustrating another procedure that may be employed in the telecommunications system of FIG. 2. [Figure 21] 21 illustrates an exemplary implementation of the procedure of FIG. 20. [Figure 22] 3 is a simplified sequence diagram illustrating another procedure that may be employed in the telecommunications system of FIG. 2. [Figure 23] 3 is a simplified sequence diagram illustrating another procedure that may be employed in the telecommunications system of FIG. 2. [Figure 24]3 is a simplified sequence diagram illustrating another procedure that may be employed in the telecommunications system of FIG. 2. [Figure 25] 3 is a simplified sequence diagram illustrating another procedure that may be employed in the telecommunications system of FIG. 2. [Figure 26A] 3 illustrates different possible techniques that can be applied for CSI reporting in the telecommunication system of FIG. 2. [Figure 26B] 3 illustrates different possible techniques that can be applied for CSI reporting in the telecommunication system of FIG. 2. [Figure 26C] 3 illustrates different possible techniques that can be applied for CSI reporting in the telecommunication system of FIG. 2. [Figure 26D] 3 illustrates different possible techniques that can be applied for CSI reporting in the telecommunication system of FIG. 2. [Figure 27A] 3 illustrates another possible technique that can be applied for CSI reporting in the telecommunications system of FIG. 2. [Figure 27B] 3 illustrates another possible technique that can be applied for CSI reporting in the telecommunications system of FIG. 2. [Figure 28] 1 illustrates a potential relationship between CSI reporting and downlink data transmission. [Figure 29] 3 is a simplified sequence diagram illustrating several different procedures that may be applied to update transmission parameters in the telecommunications system of FIG. 2; [Figure 30] 3 is a simplified timing diagram illustrating a technique that may be used to reduce CSI-RS transmission overhead in the telecommunications system of FIG. 2. [Figure 31] 3 is a simplified timing diagram illustrating another technique that may be used to reduce CSI-RS transmission overhead in the telecommunications system of FIG. 2. [Figure 32] FIG. 3 is a schematic block diagram illustrating the main components of a UE for the telecommunications system of FIG. 2. [Figure 33] FIG. 3 is a schematic block diagram illustrating the main components of a base station of the telecommunications system of FIG. 2. DETAILED DESCRIPTION OF THE INVENTION
[0035] overview An exemplary telecommunications system in general terms will now be described, by way of example only, with reference to Figures 2-19.
[0036] FIG. 1 illustrates schematically a mobile (cellular or wireless) telecommunications system 1 to which embodiments of the present disclosure are applicable.
[0037] In network 1, user equipment (UE) 3-1, 3-2, 3-3 (e.g., mobile phones and / or other mobile devices) can communicate with one another via radio access network (RAN) nodes 5 that operate according to one or more compatible radio access technologies (RATs). In the illustrated example, the RAN nodes 5 comprise NR / 5G base stations or "gNBs" 5 that operate one or more associated cells 9. Communications via the base stations 5 are typically routed through a core network 7 (e.g., a 5G core network or evolved packet core network (EPC)).
[0038] As one skilled in the art will appreciate, for illustrative purposes, FIG. 1 shows three UEs 3 and one base station 5, but the system, when implemented, will typically include other base stations and UEs.
[0039] Each base station 5 controls, directly or via one or more other nodes (e.g., home base stations, relays, remote radio heads, distributed units, etc.), one or more associated cells 9. It will be appreciated that some base stations 5 may be configured to support both 4G, 5G and 6G protocols, and / or any other 3GPP or non-3GPP communication protocol.
[0040] A UE 3 and its serving base station 5 are connected via a suitable air interface (such as, for example, the so-called "Uu" interface). Neighboring base stations 5 may be connected to each other via suitable base station-base station interfaces (such as, for example, the so-called "X2" interface, "Xn" interface, etc.).
[0041] The core network 7 includes several logical nodes (or "functions") for supporting communications in the telecommunications system 1. In this example, the core network 7 comprises a control plane function (CPF) 10 and one or more user plane functions (UPFs) 11. The CPF 10 includes one or more Access and Mobility Management Functions (AMFs) 10-1, one or more Session Management Functions (SMFs), and several other functions 10-n.
[0042] The base stations 5 are connected to core network nodes via appropriate interfaces (or "reference points"), such as the N2 reference point between the base stations 5 and the AMF 10-1 for communication of control signaling, and the N3 reference point between the base stations 5 and each UPF 11 for communication of user data. The UEs 3 are each connected to the AMF 10-1 by a non-access stratum (NAS) connection via the N1 reference point (similar to the S1 reference point in LTE). It will be appreciated that N1 communications are transparently routed via the base stations 5.
[0043] The one or more UPFs 11 are connected to an external data network (eg, an IP network such as the Internet) via reference point N6 for the communication of user data.
[0044] The AMF 10-1 performs mobility management related functions, maintains non-NAS signaling connections with each UE 3, and manages UE registrations. The AMF 10-1 is also responsible for managing paging. The SMF 10-2 provides session management functions (forming part of the MME functionality in LTE) and also combines some control plane functions (provided by the Serving Gateway and Packet Data Network Gateway in LTE). The SMF 10-2 also allocates an IP address to each UE 3.
[0045] The base stations 5 of the communication system 1 are configured to operate at least one cell 9 on an associated TDD carrier operating in unpaired spectrum. It will be appreciated that the base stations 5 may also operate at least one cell 9 on an associated FDD carrier operating in paired spectrum.
[0046] The base station 5 is also configured for the transmission of control information and user data via several downlink (DL) physical channels and for the transmission of several physical signals, and the UE 3 is configured for the reception of control information and user data via several downlink (DL) physical channels and for the transmission of several physical signals, where the DL physical channels correspond to resource elements (REs) carrying information originating from higher layers, and the DL physical signals correspond to REs used by the physical layer and not carrying information originating from higher layers.
[0047] Physical channels may include, for example, a physical downlink shared channel (PDSCH), a physical broadcast channel (PBCH), and a physical downlink control channel (PDCCH). The PDSCH carries data that shares the capacity of the PDSCH on a time and frequency basis. The PDSCH can carry various data items, including, for example, user data, UE-specific upper layer control messages mapped downward from higher channels, system information blocks (SIBs), and paging. The PDCCH carries downlink control information (DCI) to support several functions, including, for example, scheduling downlink transmissions on the PDSCH and uplink data transmissions on the physical uplink shared channel (PUSCH). The PBCH provides a Master Information Block (MIB) to the UE. It also supports time and frequency synchronization, in conjunction with the PDCCH, which aids in cell acquisition, selection, and reselection.
[0048] DL physical signals may include, for example, reference signals (RS) and synchronization signals (SS). Reference signals (sometimes called pilot signals) are signals having a predetermined special waveform known to both the UE 3 and the base station 5. Reference signals may include, for example, cell-specific reference signals, UE-specific reference signals (UE-RS), downlink demodulation signals (DMRS), and channel state information reference signals (CSI-RS).
[0049] Similarly, UE 3 is configured for transmitting control information and user data over several uplink (UL) physical channels corresponding to REs carrying information originated from higher layers and UL physical signals corresponding to REs used at the physical layer that do not carry information originated from higher layers, and base station 5 is configured for receiving control information and user data over several uplink (UL) physical channels corresponding to REs carrying information originated from higher layers and UL physical signals corresponding to REs used at the physical layer that do not carry information originated from higher layers. The physical channels may include, for example, a physical uplink shared channel (PUSCH), a physical uplink control channel (PUCCH), and / or a physical random-access channel (PRACH). The UL physical signals may include, for example, a demodulation reference signal (DMRS) for UL control / data signals and / or a sounding reference signal (SRS) used for UL channel measurements.
[0050] 3, which illustrates a typical frame structure that may be used in telecommunications system 1, base stations 5 and UEs 3 of telecommunications system 1 communicate with each other using resources formed in the time domain into frames that are 10 ms long. Each frame includes 10 equally sized subframes that are 1 ms long. Each subframe is divided into one or more slots that include 14 Orthogonal Frequency-Division Multiplexing (OFDM) symbols of equal length.
[0051] As can be seen in FIG. 3, the telecommunication system 1 supports a number of different numerologies (subcarrier spacing (SCS), slot length, and therefore OFDM symbol length). Specifically, each numerology is specified by a parameter μ, where μ=0 represents 15 kHz (corresponding to the LTE SCS). Now, the SCS for other values of μ can in fact be derived from μ=0 by scaling up by a power of 2 (i.e., SCS=15×2 μ kHz). The relationship between the parameter μ and SCS(Δf) is shown in Table 1. [Table 1]
[0052] Typical Slot Configuration Referring to Figures 4 and 5, a base station 5 appropriately configures the use of slots within each cell 9 operating on a TDD carrier.
[0053] As can be seen in Figure 4, which is a simplified sequence diagram illustrating different slot configuration procedures (S410, S414, S418) that may be applied in the communication system 1, the base station 5 can apply many different procedures for configuring the slot usage in each cell 9 operating on a TDD carrier.
[0054] As seen in step S410, for example, a base station 5 of communication system 1 is configured to provide a respective common (or “cell-specific”) slot configuration for each cell 9 operating on a TDD carrier. This common slot configuration may be provided to all UEs 3 in the cell using system information (as shown in S410a) (e.g., in a tdd-UL-DL-Configuration Common information element (IE) in a system information block type 1 (SIB1)). This common slot configuration may also be provided to a specific UE 3 in the cell using (e.g., radio resource control (RRC)) signaling (e.g., in a tdd-UL-DL-Configuration Common IE in an RRC message such as an RRC reconfiguration message) (as shown in S410b). Thus, upon receiving the common slot configuration, a UE 3 can set the common slot format configuration on a slot-by-slot basis across several slots (as seen in S412).
[0055] As can be seen in FIG. 5, which shows an illustrative example of a slot configuration configured according to the procedure of FIG. 4, a slot may be configured as a downlink-only slot, an uplink-only slot, or an unassigned or "flexible" slot (which may be downlink or uplink).
[0056] The common slot configuration is defined by several parameters provided by base station 5 as part of the common UL / DL configuration. These parameters include the slot configuration period (e.g., configured by the dl-UL-TransmissionPeriodicity IE); the number of slots having only downlink symbols (e.g., configured by the nrofDownlinkSlots IE); the number of downlink symbols (e.g., configured by the nrofDownlinkSymbols IE); the number of slots having only uplink symbols (e.g., configured by the nrofUplinkSlots IE); and the number of uplink symbols (e.g., configured by the nrofUplinkSymbols IE). As can be seen in FIG. 5, these effectively form a repeating pattern of slot types (repeating with the slot configuration period), which in this example includes DL-only slots and symbols, followed by flexible slots and symbols, followed by UL-only slots and symbols. The repeating pattern begins with a DL group containing a specified number of DL-only slots, followed by a specified number of DL-only symbols in the next slot. The repeating pattern ends with a UL group containing a specified number of UL-only slots preceded by a specified number of UL-only symbols in the preceding slots. Flexible symbols and slots are those between a DL group of DL-only slots and symbols and a UL group of UL-only slots and symbols.
[0057] As can be seen in step S414, the base station 5 of the communication system 1 is also configured to provide, if necessary, a dedicated (or "UE-specific") slot configuration for a particular UE 3. This dedicated slot configuration may be provided using dedicated (e.g., radio resource control (RRC)) signaling to the particular UE 3 inside the cell (e.g., in a tdd-UL-DL-ConfigurationDedicated IE of an RRC message, such as an RRC reconfiguration message) (as shown in S415).
[0058] If UE3 has a dedicated slot configuration in addition to a common slot configuration, the dedicated slot configuration overrides only the symbols and slots configured as flexible symbols and slots, on a slot-by-slot basis, across the number of slots configured by the common slot configuration (as seen in the example of Figure 5).
[0059] If a dedicated configuration is provided, it includes one or more individual slot-specific configurations (e.g., using the slotSpecificConfigurationsToAddModList IE), each of which includes information identifying a particular slot within the slot configuration period defined by the common slot configuration (e.g., a Slotondex IE) and information defining a symbol structure (e.g., a symbols IE). The information defining the symbol structure provides the direction (downlink or uplink) of the symbols within the particular slot being configured. The information defining the symbol structure may, for example, indicate that all symbols in a particular slot are used for the downlink (e.g., by setting the symbols IE to "allDownlink"); indicate that all symbols in a particular slot are used for the uplink (e.g., by setting the symbols IE to "allUplink"); or explicitly indicate how many symbols at the beginning and end of a particular slot are allocated to the downlink and uplink, respectively (e.g., the nrofDownlinkSymbols IE may indicate the number of consecutive downlink symbols at the beginning of the slot identified by the slot index, and the nrofUplinkSymbols IE may indicate the number of consecutive uplink symbols at the end of the slot identified by the slot index).
[0060] Therefore, the UE 3 can set a dedicated slot format configuration for each slot across several slots (as seen in S416).
[0061] Therefore, UE3 is trained to receive symbols in slots designated as downlink by the common slot configuration or dedicated slot configuration, and similarly, UE3 is trained to transmit symbols in slots designated as uplink by the common slot configuration or dedicated slot configuration.
[0062] Even after configuring the slots in the cell-specific and UE-specific manner described above, the slot configuration may leave some more flexible slots / symbols unassigned. Layer 1 signaling can be utilized to dynamically reconfigure the remaining flexible symbols (if any).
[0063] For example, as seen in step S418, the base station 5 of the communication system 1 is also configured to provide one or more dynamic slot configurations via a physical downlink control channel (PDCCH) to a group of one or more UEs 3. As shown in S419, the base station 5 may provide one or more dynamic slot configurations to a specific group of one or more UEs 3 in the cell 9 using downlink control information (DCI) using an appropriate DCI format (e.g., DCI format 2_0).
[0064] One or more slot format indicator (SFI) indices may be provided within the payload of the DCI for a group of one or more UEs 3. To enable addressing and decoding of the DCI, one or more UEs 3 of the group's cyclic redundancy check (CRC) bits of the DCI are scrambled with an associated radio network temporary identifier (RNTI), e.g., "SFI-RNTI," and one or more UEs in the group are assigned the same RNTI. Each UE 3 in the group is configured to extract its own SFI index based on the location of the SFI index within the DCI payload (this location may be configured, for example, by UE-specific RRC signaling). The RRC configuration may be, for example, by an RRC message carrying a PDCCH Serving Cell Configuration IE with a slot format indicator (SFI) IE that provides an SFI-RNTI for a particular serving cell (identified by a serving cell ID (e.g., by a servingCellId IE)); defines one or more slot format combinations (e.g., by a slotFormatCombinations IE); and identifies the starting position (bits) of the DCI for the SFI index applicable to the configured UE (e.g., by a positionInDCI IE).
[0065] Each SFI index provided by the DCI serves as a pointer to a slot format combination (each slot format corresponding to a respective combination of downlink, uplink, and / or flexible symbols) to define the slot format for each slot of several slots starting from the slot where the UE detects the dynamic slot configuration DCI format.
[0066] Thus, for any slot that is indicated to the UE as flexible by both the common slot configuration and the dedicated slot configuration (as seen in the example of Figure 5), the DCI can be used to dynamically configure the downlink, uplink, and / or flexible symbols within that slot. Therefore, the UE 3 can set a dynamic slot format configuration for each slot over several slots (as seen in S420).
[0067] Bandwidth Portion (BWP) In communication system 1, the cell bandwidth can be divided into multiple bandwidth parts (BWPs), each of which starts with a respective common resource block (RB) and includes a set of contiguous RBs with a given numerology (sub-carrier spacing "SCS" and cyclic prefix "CP") in a given carrier. Conventionally, it will be understood that the number of downlink symbols, uplink symbols, and flexible symbols in each slot of a slot configuration (e.g., common or dedicated) is common to each configured BWP.
[0068] Thus, the UE 3 and base station 5 of the communication system 1 are configured for operation using BWPs. For each serving cell for the UE 3, the base station 5 can configure at least one downlink (DL) BWP (e.g., an initial DL BWP). The base station 5 can configure the UE 3 with up to (typically four) DL BWPs, with only a single DL BWP active at a given time. The UE 3 is not expected to receive PDSCH, PDCCH, or CSI-RS outside the active bandwidth portion (except in the case of radio resource management (RRM)). If the serving cell is configured with an uplink (UL), the base station 5 can configure at least one UL BWP (e.g., an initial UL BWP). The base station 5 can configure the UE 3 with up to (typically four) UL BWPs, with only one UL BWP active at a given time. The UE 3 does not transmit PUSCH or PUCCH outside the active bandwidth portion. For the active cell, the UE 3 does not transmit SRS outside the active bandwidth portion. It will be appreciated that the slot format indicator (e.g., SFI index field value) of the dynamic slot configuration DCI format may indicate to the UE 3 the slot format of each slot of several slots of each DL BWP or each UL BWP.
[0069] A BWP identifier (BWP-ID) or index is used to refer to a BWP (independently in UL and DL). Thus, various radio resource control (RRC) configuration procedures can use the BWP-ID to associate themselves with a particular BWP.
[0070] In the case of paired spectrum (FDD), the DL BWP and UL BWP are configured separately, whereas in the case of unpaired spectrum (TDD), the DL BWP is effectively linked (paired) to the UL BWP, and the paired DL BWP and UL BWP share the same BWP-ID and center frequency (but possibly different bandwidths).
[0071] Specifically, the base station 5 can configure the initial DL BWP (e.g., using the initialDownlinkBWP IE) via system information (e.g., system information block 1, "SIB1") and / or via dedicated (e.g., RRC) signaling (e.g., RRC reconfiguration, RRC resume, or RRC setup message). For example, common parameters for the initial DL BWP may be provided via system information, and UE-specific parameters may be provided via dedicated signaling (e.g., in a ServingCellConfig IE in an RRC message containing a dedicated UE-specific BWP configuration). The dedicated signaling may also include some cell-specific information that may be useful for certain scenarios (e.g., handover).
[0072] The base station 5 can configure the initial UL BWP (e.g., using the initialUplinkBWP IE) via system information (e.g., system information block 1, "SIB1") and / or via dedicated (e.g., RRC) signaling (e.g., RRC reconfiguration, RRC restart, or RRC setup message). For example, one or more initial UL BWP common parameters may be provided via system information, and UE-specific parameters may be provided via dedicated signaling (e.g., in a ServingCellConfig IE in an RRC message containing a dedicated UE-specific BWP configuration), which provides configuration information for either a so-called special cell (SpCell) or a secondary cell (SCell), which is a PCell of a master cell group (MCG) or a secondary cell group (SCG).
[0073] The initial DL and UL BWPs are used for at least initial access before an RRC connection is established. The initial BWP is known as BWP#0 because it has a BWP identifier (or "index") of 0. Prior to receiving the system information defining the UE's initial DL BWP, each UE 3's DL BWP has a frequency range and numerology corresponding to a control resource set (CORESET), e.g., CORESET#0, defined by a master information block (MIB) (or possibly dedicated RRC signaling). The CORESET is used to carry downlink control information (DCI), which is transmitted over a physical downlink control channel (PDCCH) for scheduling system information blocks.
[0074] After receiving the system information (e.g., SIB1), the UE 3 configures the initial DL BWP and the initial UL BWP using the BWP configuration defined by the system information. The configured initial UL BWP is then used to initiate a random access procedure to set up an RRC connection. The base station 5 configures the frequency domain location and bandwidth of the initial DL BWP in the system information so that the initial DL BWP includes the entire CORESET#0 in the frequency domain.
[0075] For each DL BWP in the set of DL BWPs for the primary cell, the UE 3 can be configured with a CORESET of all types of common search space (CSS) sets and UE-specific search space (USS) sets. For each UL BWP in the set of UL BWPs for the primary cell or PUCCH-secondary cell, the UE 3 is configured with a resource set for PUCCH transmission.
[0076] The UE 3 is configured to switch its active BWP between its configured BWPs as needed. For example, switching in the UE 3 may be initiated by receipt of a scheduling DCI, by expiration of an inactivity timer (e.g., BWPInactivityTimer), and / or by initiation of a random access procedure.
[0077] Provides full duplex The UE 3 and the base station 5 of the communication system 1 are mutually configured to provide full duplex (FD) communication on a TDD carrier. Specifically, the UE 3 and the base station 5 of the communication system 1 are configured to facilitate sub-band non-overlapping FD communication.
[0078] For example, as seen in Figure 6, a simplified time-frequency diagram illustrating an illustrative example of a full-duplex configuration that may be used in communication system 1, different UE-specific slot configurations allow a slot within the cell bandwidth to be effectively configured as an FD slot by configuring that slot as an uplink slot for one UE, while the same slot is configured as a downlink slot for another UE (or vice versa). Thus, UL communication from one UE 3 in the cell bandwidth may occur in parallel with DL communication to another UE 3. While not specifically shown, it will be understood that parallel UL / DL communication may be configured at the symbol level and the slot level.
[0079] It will be appreciated that the base station 5 is configured to schedule frequency resources in any slot configured as an FD slot to ensure that frequency resources scheduled for UL communication by one UE 3 are part of a different sub-band than frequency resources scheduled for DL communication to another UE 3. Thus, the base station 5 can provide non-overlapping FD communication in this sub-band, while the UE 3 can provide half-duplex communication.
[0080] For this reason, the base station 5 may configure one or more of the slots (and / or symbols) of the TDD carrier as FD slots (and / or symbols), more specifically, as SBFD slots (and / or symbols) if subband non-overlapping full duplex (SBFD) is used for full-duplex operation. For convenience, the following terms are generally used: "SBFD slot" for a slot that includes both DL and UL subbands from the base station's perspective; legacy DL slot for a slot that includes only DL from the base station's perspective; and legacy UL slot (or simply UL slot) for a slot that includes only UL from the base station's perspective.
[0081] It will be appreciated that from the UE's perspective, the SBFD slot or symbol may appear to be a legacy UL, DL, or flexible symbol because the UE 3 is operating using half-duplex on a TDD carrier. Nevertheless, the FD / SBFD slot / symbol may be implicitly or explicitly notified to the UE 3 to enable the UE 3 to assist in interference avoidance / mitigation. For example, if the UE 3 can identify the FD / SBFD slot / symbol, the UE 3 can contribute to implementing an appropriate frequency gap between frequency resources used by that UE 3 (e.g., for UL or DL) and frequency resources used by another UE 3 (e.g., for DL or UL); avoid, reconfigure, and / or apply updated resources for a particular transmission / reception (e.g., for semi-static transmissions such as SPS).
[0082] For example, the base station 5 can explicitly indicate which slots / symbols are configured as FD / SBFD-type slots / symbols, e.g., dynamically using DCI with an appropriate DCI format and / or using a Medium Access Control (MAC) Control Element (CE). Alternatively or additionally, the base station 5 can explicitly indicate which slots / symbols are configured as FD / SBFD-type slots / symbols via system information or dedicated (RRC) signaling (e.g., by frame structure signaling similar to that used for cell-specific and / or dedicated TDD UL / DL slot configurations). The UE 3 can implicitly determine whether a slot / symbol is configured as an FD / SBFD-type slot / symbol based on other information received from the network (base station 5). For example, the UE can assume that an SBFD slot occurs when the base station 5 indicates that an UL transmission should occur during a DL configuration slot or that a DL transmission should occur during a UL configuration slot.
[0083] For each DL or UL channel where the parameters for the SBFD slots differ from the parameters for the non-SBFD slots, the base station 5 may indicate in the physical channel configuration the time occasions when one set of parameters should be used and the time occasions when the second set of parameters should be used. In the case of CSI-RS, the time occasions may be indicated in the associated CSI reporting configuration (as described in more detail below).
[0084] For each DL or UL channel where different resources are configured for SBFD slots than for non-SBFD slots, the base station 5 may indicate in the physical channel resource configuration the time occasions for which each resource is valid / applicable. In the case of CSI-RS, the time occasions may be indicated in the associated CSI reporting configuration (as will be explained in more detail later).
[0085] It will be appreciated that communication system 1 may be configured to provide support for any suitable subband non-overlapping FD scheme. Such schemes may include, for example, inter-BWP full duplex and / or intra-BWP full duplex. Inter-BWP full duplex involves parallel UL and DL transmissions in different BWPs, where a particular slot in one BWP may be configured as an uplink slot and a corresponding slot (i.e., having the same timing) in another BWP may be configured as a downlink slot (or vice versa). Thus, UL from one UE 3 in one BWP may occur in parallel with DL communication to another UE 3 in another BWP. On the other hand, inter-BWP full duplex involves parallel UL and DL transmissions in different BWPs, where different UE-specific slot configurations allow a slot in a particular BWP to be effectively configured as an FD slot by configuring a slot for one UE as an uplink slot, while the same slot in the same BWP is configured as a downlink slot for another UE (or vice versa). Thus, UL communication from one UE 3 in the BWP may occur in parallel with DL communication to another UE 3 in the same BWP.
[0086] Antenna panel configuration Referring to Figure 7, which is a simplified diagram of an antenna panel configuration for a base station 5, a base station 5 of a communication system 1 includes an antenna having multiple antenna panels 710-1, 710-2 (two in this example, although more antenna panels are possible). Each antenna panel 710 includes multiple physical antenna elements 712a, 712b arranged in cross-pole pairs of antenna elements 712. In the illustrated example, each cross-pole pair 712 includes a plus 45° antenna element 712a and a minus 45° antenna element 712b, although it will be understood that other arrangements are possible. In Figure 7, for illustrative purposes, each antenna panel 710 is shown as including 64 cross-pole pairs in an 8x8 array of antenna elements 712 (128 physical antenna elements 712a, 712b).
[0087] Although the base station 5 is described as having multiple antenna panels, it will be understood that the base station 5 (or another similar base station 5 in the communication system 1) can have a single panel, as at least some operators currently support a single antenna panel at each base station location. It will also be understood that the number of antenna elements is not limited to 128 physical antenna elements (64 crossed pole pairs). One or more antenna panels may include, for example, 64 physical antenna elements (32 crossed pole pairs), 32 physical antenna elements (16 crossed pole pairs), etc.
[0088] The UE 3 also has an antenna with multiple antenna elements. The use of antennas with multiple physical antenna elements allows the base station 5 and UE 3 to transmit (and receive) using logical antenna ports that are mapped to one or more subsets of the physical antenna elements 712. Thus, transmissions that share the same antenna port traverse the same propagation channel.
[0089] The use of logical antenna ports at a base station 5 or UE 3 enables multiple input multiple output (MIMO) communications, in which multiple data streams (called "transmission layers") can be transmitted (or received) in parallel using the same time and frequency resources, but via different logical antenna ports. Furthermore, the ability to map a given logical antenna port to a subset containing multiple physical antenna elements enables the base station 5 or UE 3 to beamform transmissions made via that logical antenna port (i.e., by applying appropriate amplitude and / or phase adjustments at each physical antenna element).
[0090] Figure 8 shows a simplified example of how logical antenna ports can be configured for MIMO and / or beamforming. As seen in Figure 8, the simplified example includes a single-panel array of 64 physical antenna elements (32 cross-pole pairs (+45° / -45°)). In this example, there are four separate MIMO transmission layers (e.g., for 4x4 MIMO), each transmitted over a different respective set of 16 physical antenna elements that are mapped to a corresponding antenna port. When each antenna port is mapped to multiple physical antenna elements, beamforming is possible, and thus each data stream transmitted for each transmission layer can be beamformed to form a corresponding beam as shown.
[0091] The original signal S transmitted from the transmitter antenna port N with a particular data stream / transmission layer and received at the receiver antenna port M is N Without precoding, the propagation channel h MN Therefore, the signal Y received at the receiver antenna port M is Mcorresponds to the sum of each original signal modified by the respective propagation channel. This can be expressed mathematically using algebraic matrices. For example, in the simplified case of two transmitter antenna ports and two receiver antenna ports (e.g., 2x2 MIMO), the received signal can be expressed as follows: [Formula 1a] TIFF2025528111000003.tif756 and [Formula 1b] TIFF2025528111000004.tif757
[0092] where Y is the received signal vector (e.g., TIFF2025528111000005.tif1511) S is the original signal vector (e.g., TIFF2025528111000006.tif1511) H is the propagation channel coefficient matrix (e.g., TIFF2025528111000007.tif1532). This can generally be expressed in matrix terms as Y=HS, or more specifically for the 2×2 MIMO example as: [Formula 2] TIFF2025528111000008.tif1566
[0093] As long as there is sufficient orthogonality between the propagation paths taken by the signals of each transmission layer, the original signal can be restored at the receiver based on propagation coefficients derived from measurements of reference signals (e.g., DMRS) transmitted through the same propagation paths (i.e., transmitted and received by the same respective antenna ports). For example, Equation 2 can be solved by deriving a channel coefficient inverse matrix (e.g., based on the reference signal measurements) and multiplying this matrix by the received signal.
[0094] Nevertheless, the propagation paths may not be perfectly orthogonal, and to improve the orthogonality of the received signals, precoding can be applied to the original signals before they are transmitted. Specifically, let P be a matrix of precoding parameters (e.g., TIFF2025528111000009.tif1531), which can generally be expressed using matrix notation as Y=HPS, or more specifically for the 2x2 MIMO example as [Formula 3] TIFF2025528111000010.tif1599
[0095] Synchronization Signal Block (SSB) The base station 5 is also configured to transmit Synchronisation Signal Blocks (SSBs) in one or more cells 9 in which it operates. The SSBs include both synchronization signals (e.g., a primary synchronisation signal (PSS) and a secondary synchronisation signal (SSS)) and a physical broadcast channel (PBCH) carrying a master information block (MIB) that provides at least some of the minimum system information for accessing the corresponding cell 9 (e.g., parameters needed to obtain system information block 1 (SIB1), which carries other minimum system information).
[0096] When scanning for a cell to camp on, each UE 3 is configured to search for a synchronization signal block (SSB) and decode an associated PBCH before decoding other system information transmitted on the PDSCH. Each UE 3 is also configured to perform SSB measurements, such as reference signal received power (RSRP), reference signal received quality (RSRQ), and / or signal to interference and noise ratio (SINR) measurements.
[0097] Channel State Information Reference Signal (CSI-RS) and Demodulation Reference Signal (DMRS) The base station 5 is also configured to transmit reference signals (RS) in the cell or cells 9 in which it operates. These reference signals include channel state information RS (CSI-RS) and demodulation RS (DMRS).
[0098] The CSI-RS may be used by the UE 3 for several different purposes, including, for example, CSI reporting, in which the UE 3 derives channel state information, including one or more channel quality indicators (CQIs), rank indicators (RIs), and / or precoding matrix indicators (PMIs), from the CSI-RS measurements and reports them to the base station 5 in a CSI report. The CQI is a (typically 4-bit) index value representing the signal-to-interference-and-noise ratio (SINR). The CQI value also corresponds to the modulation and coding scheme (MCS) used per layer. The RI indicates the number of MIMO transmission layers requested by the UE 3 (although the base station 5 may not use the requested number of MIMO transmission layers). The PMI is used by the UE 3 to report parameters defining a preferred precoding matrix to be applied to downlink transmissions (although the base station 5 may not use the requested precoding). A layer indicator (LI) may be included in the CSI report to identify the strongest layer from the set of layers indicated by the RI.
[0099] The CSI-RS may also be used by the UE 3 for beam management, including refining the initial beam selection based on the SSB. For example, the base station 5 may use a set of relatively wide beams for SSB transmissions and a set of narrower (more directional) beams for the CSI-RS. The UE 3 may be configured by the base station 5 to measure each CSI-RS transmission to identify the best CSI-RS beam and report this to the base station 3 (e.g., via a CSI report including a CSI-RS indicator (CRI) that identifies the strongest CSI-RS, and therefore the CSI-RS beam). The UE 3 may also be configured to report the measured (Layer 1) RSRP for the strongest CSI-RS.
[0100] CSI-RS can be either zero power (ZP-CSI-RS) or non-zero power (NZP-CSI-RS). NZP-CSI-RS is used for most procedures including channel measurement, beam management, beam measurement, connected mode mobility, etc. ZP-CSI-RS is an empty resource element used mainly for interference measurement.
[0101] There are also several other ways in which CSI-RS can be used, including, for example, connected mode mobility, radio link failure detection, beam failure detection / recovery, and precise timing for time and / or frequency synchronization.
[0102] The DMRS includes a DMRS for the PBCH, a DMRS for the PDCCH, and a DMRS for the PDSCH. The DMRS for the PBCH is used by the UE 3 to estimate the propagation channel experienced by the PBCH for the purpose of demodulating the PBCH and subsequently decoding system information (e.g., carried by the MIB). The DMRS for the PDCCH is used by the UE 3 to estimate the propagation channel experienced by the PDCCH for the purpose of demodulating the PDCCH and subsequently decoding DCI.
[0103] The DMRS for the PDSCH is transmitted in combination with the associated PDSCH using the same precoding and logical antenna port. Therefore, both the DMRS and the associated PDSCH pass through the same combined propagation channel. The DMRS is transmitted using a sequence known to the UE 3, so the UE 3 can determine the characteristics of the propagation channel (propagation coefficients) based on a comparison between the received DMRS and the original DMRS transmitted by the base station 5. The UE 3 can then decode the associated PDSCH based on the derived propagation coefficients.
[0104] Data communicated on the PDSCH (and associated DMRS) may be transmitted in parallel transmission layers and / or may be beamformed (e.g., as generally described with reference to Figures 7 and 8).
[0105] CSI report The base station 5 may use appropriate measurement configuration signaling to configure how the UE 3 measures and reports CSI-RS.
[0106] Figure 9 shows some information elements that may be used for such measurement signaling in a 5G system according to the relevant 3GPP standards, which are shown for illustrative purposes and will be understood to be purely exemplary.
[0107] The base station 5 may, for example, use measurement configuration signaling (e.g., using the CSI-measconfig IE) to configure the UE 3 to measure and report specific resources used for CSI-RS (e.g., using the CSI-ReportConfig IE of Figure 9). Multiple different reporting configurations may be configured and identified by appropriate identifiers (e.g., the CSI-ReportConfigID IE of Figure 9).
[0108] The base station 5 can configure the UE 3 (e.g., using the CSI-ReportConfig IE in FIG. 9 ) to provide different types of CSI reports providing different information depending on the requirements of the use case, for example, by appropriately setting a report quantity parameter (e.g., the reportQuantity IE in FIG. 9 ). For example, the UE 3 can be configured to report only the RI and CQI for one or more associated CRIs by appropriately setting the report quantity parameter (e.g., to cri-RI-CQI); to report the RI, PMI, and CQI for one or more associated CRIs by appropriately setting the report quantity parameter (e.g., to cri-RI-PMI-CQI); or to report the RI, LI, PMI, and CQI for one or more associated CRIs by appropriately setting the report quantity parameter (e.g., to cri-RI-LI-PMI-CQI). Similarly, for a beam management procedure, UE3 may be configured to report the RSRP or SINR of one or more associated CRIs by appropriately setting the reporting quantity parameter (e.g., to cri-RSRP or cri-SINR), and to report the RSRP or SINR of one or more associated SSBs by appropriately setting the reporting quantity parameter (e.g., to ssb-Index-RSRP or ssb-Index-SINR).
[0109] The base station 5 can also configure the UE 3 (e.g., using the CSI-ReportConfig IE in FIG. 9 to provide CSI reporting based on) different reporting timing configurations. For example, the UE 3 can be configured for persistent reporting, semi-persistent reporting on the PUSCH, semi-persistent reporting on the PUCCH, or aperiodic reporting. Aperiodic reporting and semi-persistent reporting on the PUSCH can be triggered using a PUSCH DCI. For example, a DCI (e.g., using DCI format 0_1) can trigger aperiodic reporting by making a CSI request that points to a respective index of one or more corresponding aperiodic trigger states (e.g., configured in the CSI-AeriodicTriggerStateList IE shown in FIG. 9). Each of these trigger states is associated with one or more corresponding CSI reporting configurations (e.g., identified by one or more associated CSI-ReportConfig IEs in FIG. 9). Semi-persistent reporting on PUSCH may be triggered in a similar manner (e.g., by identifying one or more CSI-ReportConfig IEs of one or more CSI-SemiPersistentOnPUSCH-TriggerState listed in the CSI-SemiPersistentOnPUSCH-TriggerStateList shown in FIG. 9).
[0110] Semi-persistent reporting in PUCCH may be triggered using the MAC CE (as shown in FIG. 9). Each CSI reporting configuration identifies at least one CSI resource configuration for measurements (e.g., channel measurements) (e.g., using the CSI-ResourceConfigId IE in FIG. 9). The identified CSI resource configuration is defined by a list of identifiers corresponding to one or more sets of CSI resources (e.g., a list of one or more NZP-CSI-RS-ResourceSetIDs for a non-zero-power CSI-RS as shown in FIG. 9) and a corresponding IE containing related configuration information (e.g., using the CSI-ResourceConfigId IE in FIG. 9). The related configuration information may, for example, identify the related bandwidth portion (e.g., using the BWP ID in FIG. 9) and the resource type (e.g., using the resourceType IE in FIG. 9). The identified resource type may, for example, identify the CSI-RS resource as a periodic, semi-persistent, or aperiodic type. Each resource set includes one or more specific CSI resource configurations, each represented by an associated identifier (e.g., one or more NZP-CSI-RS-ResourceIDs for non-zero power CSI-RS as shown in FIG. 9 ) that points to the specific (e.g., defined by the NZP-CSI-RS-Resource IE for non-zero power CSI-RS as shown in FIG. 9 ) configuration information for that CSI resource configuration.
[0111] Therefore, a base station can configure multiple CSI reporting configuration instances and CSI resource configuration instances. It will be understood that for aperiodic CSI RS resources, multiple resource sets can be configured per CSI resource config. The same number of CSI-RS ports is assumed for multiple CSI-RS resources in a given resource set.
[0112] In this way, reporting of a specific CSI resource set for a specific use case can be configured. For example, a CSI-RS resource set containing CSI-RS resources for different beams can be configured for beam management purposes. For channel estimation purposes, a CSI-RS resource set containing a single CSI-RS resource for N ports can be configured.
[0113] In the case of multiple transmission reception points (TRPs), different resource sets may also be configured for each resource configuration. In this scenario, different resource sets may be part of the same CSI resource configuration for aperiodic CSI reporting or may be part of different CSI resource configurations for periodic / semi-persistent CSI reporting. Nevertheless, it will be appreciated that in the case of the same number of ports for all TRPs, it is possible to configure CSI-RS resources belonging to different TRPs in the same resource set. In another example, CSI reporting of multiple secondary cells (SCells) can be triggered together by including CSI reporting configurations of different SCells within information defining a single CSI aperiodic trigger state.
[0114] The base station 5 may also configure the UE 3 (e.g., using the reportFreqConfiguration IE in the CSI-ReportConfig IE to provide either) wideband or subband granularity of reporting. For example, CQI and / or partial PMI may be reported per subband by setting the corresponding indicators (e.g., the cqi-FormatIndicator IE and / or the pmi-FormatIndicator IE, respectively) appropriately (e.g., to widebandCQI or subbandCQI, and / or to widebandPMI or subbandPMI, respectively).
[0115] The base station 5 may also configure the UE 3 with a time limit for channel measurements (and / or interference measurements). If a time limit is set, the UE 3 is configured to derive measurements for calculating a CSI value based only on the last measured CSI-RS occasion associated with the CSI report.
[0116] The available space in the uplink control information (UCI) portion of the PUCCH or PUSCH may be limited. Furthermore, the CSI report payload size may increase significantly in the presence of subband-based reporting. Therefore, prioritization rules are defined to indicate which CSI reporting parameters should be transmitted with the highest priority.
[0117] For CSI reporting of RI, CQI, and PMI, the CSI report for a single CSI resource may be divided into two parts: a first part containing the RI, CRI, and CQI for the first codeword, and a second part containing the PMI and CQI for the second codeword. The first part may be transmitted in its entirety, while part of the second part may be omitted (depending on the allowed size of the UCI). For UCI coding, the first part of each CSI report is coded into UCI, and the second part of the CSI report is coded based on the amount of available space.
[0118] Relationship between CSI-RS and DMRS for channel estimation 10-12 each illustrate a different use case of CSI-RS measurements to support transmission of data (over PDSCH) and associated DMRS.
[0119] As illustrated in FIG. 10, when CSI-RS transmissions are used for PMI reporting purposes, it is not necessary to apply any CSI-RS beamforming; instead, the CSI-RS may be transmitted directly from a physical antenna element. In this case, there is a substantially one-to-one mapping between each CSI-RS port and the associated antenna element. The lack of any CSI-RS beamforming means that the CSI-RS transmission radiates across the cell area with a wide beamwidth. UE 3 measures the CSI-RS and identifies from the PMI codebook a set of precoding parameters (and thus associated PMI) that, when applied to the CSI-RS port, produce the best (narrow) precoded beam or beams toward UE 3 using the CSI-RS port. UE 3 reports this PMI to base station 5 (e.g., in a CSI report that includes other relevant parameters, such as CQI and / or RI), and if base station 5 decides to use the reported PMI, it can appropriately apply the precoding parameters to precode / beamform the DMRS and / or associated PDSCH based on the PMI indication.
[0120] Upon receiving the PDSCH / DMRS, measurements of the DMRS can be performed in the usual way for estimating the composite propagation channel (i.e., the propagation channel modified by precoding / beamforming—e.g., multiplication by the precoding matrix W) and decoding the PDSCH.
[0121] As illustrated in FIG. 11 , CSI-RS transmissions may be beamformed, with each CSI-RS resource mapped to a different respective beam (and associated set of physical antenna elements). Because the CSI-RS is already beamformed, the UE 3 measures the CSI-RS, identifies one or more directional beams on which it can successfully receive data, and reports one or more CSI-RS resources associated with the one or more identified beams (or the best identified beam) to the base station 5. Thus, the base station 5 can schedule resources for the PDSCH (and associated DMRS) using the one or more identified beams, and the PDSCH (and associated DMRS) can be precoded / beamformed using the same weights as those used for CSI-RS beamforming for the identified beam.
[0122] Upon receiving the PDSCH / DMRS, measurements of the DMRS can be performed in the usual manner for estimating the composite propagation channel (i.e., the propagation channel modified by precoding / beamforming—e.g., multiplication by the beamforming precoding matrix X) and decoding the PDSCH.
[0123] As illustrated in FIG. 12, CSI-RS transmissions may be beamformed, with all CSI-RS antenna ports mapped to the same beam at a given timing (although different beams may be used at different times). Each CSI antenna port may be mapped to a respective set of physical antenna elements. In this case, even if the CSI-RS is already beamformed, the PMI may be used to indicate a narrower precoded beam that can be formed using the CSI-RS antenna ports. Thus, UE 3 measures the CSI-RS and identifies from the PMI codebook a set of precoding parameters (and therefore associated PMI) that, when applied to the CSI-RS transmission in the current beam, produce a narrower precoded beam toward UE 3. UE 3 reports this PMI to base station 5 (e.g., in a CSI report that includes other relevant parameters, such as CQI and / or RI), and if base station 5 decides to use the reported PMI, it can appropriately apply the precoding parameters to precode / beamform the DMRS and / or associated PDSCH based on the PMI indication. This example is particularly relevant to frequency range 2 (FR2) and therefore to TDD using FR2.
[0124] Upon receiving the PDSCH / DMRS, measurements of the DMRS can be performed in the usual manner for estimating the composite propagation channel (i.e., the propagation channel modified by precoding / beamforming—e.g., multiplication of the precoding matrix W with the beamforming precoding matrix X) and decoding the PDSCH.
[0125] CSI-RS to CSI-RS antenna ports / antenna elements mapping 13 to 15, the communication system 1 provides a mapping between each CSI-RS antenna port and a corresponding logical antenna element of a logical antenna array. There are several different configurations that can be used for the logical antenna array. The mapping from logical antenna elements to physical antenna elements depends on the particular implementation used in the base station 5 / UE 3 and is transparent to the operation of the base station 5 / UE 3. Using logical CSI-RS antenna ports in this manner (since each CSI-RS port has its own radio resource overhead) can reduce the total number of CSI-RS ports used for transmission to improve radio resource usage.
[0126] 13 illustrates an example mapping between CSI-RS ports, logical antenna elements of a virtual antenna array, and physical antenna elements of a physical antenna array (a single panel in this example). It will be understood that the illustration is simplified for clarity and that not all mappings are shown.
[0127] 13, the logical antenna array has N1 logical cross-pole pairs in the horizontal direction and N2 logical cross-pole pairs in the vertical direction. Each logical cross-pole pair includes a +45° logical antenna element and a -45° logical antenna element. There is a CSI-RS antenna port corresponding to each logical antenna element, and therefore the total number of CSI-RS antenna ports, P, is equal to the total number of cross-pole pairs (N1 x N2) multiplied by the number of antenna elements per cross-pole pair (2), i.e., P = 2 x N1 x N2.
[0128] Each logical cross-pole pair (and therefore its associated logical antenna element) is mapped to a respective group of physical cross-pole pairs (and therefore an associated group of physical antenna elements). In this example, there are four physical antenna elements / cross-pole pairs mapped to each logical antenna element / cross-pole pair (although it will be understood that any suitable mapping can be used).
[0129] Data and DMRS transmitted over an appropriate number of transmission layers L (L may be 1 or greater) are precoded via an appropriate precoding matrix for transmission over each of the CSI-RS ports.
[0130] When each CSI-RS port is mapped to multiple antenna elements, it is possible to perform beamforming on the signals transmitted via the CSI-RS antenna ports. A base station 5 (e.g., operating in FR2) may decide to use beamforming for each CSI-RS resource transmission, for example (to increase coverage). In this case, the base station may configure multiple CSI-RS resources (one for each beam), with each CSI-RS resource having multiple (N) CSI-RS ports. This is similar to the scenario shown in Figure 12.
[0131] While the illustration shows an array in which there is a two-dimensional array of at least six logical cross-pole pairs (12 logical antenna elements), it will be understood that the array may be one-dimensional (e.g., N2 = 1) and there may be fewer logical cross-pole pairs / antenna elements. For example, if there is no specific requirement to have multiple beams in the vertical direction (e.g., in a rural area), the base station may choose to map each CSI-RS antenna port to a logical antenna element corresponding to all physical antenna elements in a column of the physical antenna array. In this case, N2 would be equal to 1, and beamforming may occur only in the horizontal direction. Figure 14, for example, shows several different CSI-RS to logical antenna array configurations for a single panel antenna.
[0132] It will also be appreciated that for antennas with multiple antenna panels, additional CSI-RS ports are configurable. Figure 15, for example, shows several different CSI-RS to logical antenna array configurations for a multi-panel antenna (where N is the number of antenna panels). For multiple antenna panels, each antenna element on each panel is mapped to a respective NxN array of logical cross-pole pairs of antenna elements. Thus, for a multi-port antenna, the total number of CSI-RS ports is given by 2xNxNxN, where N, N, and N are configurable by the network.
[0133] In the examples of Figures 14 and 15, it should be understood that a higher value of N1 means that more beams can be generated in the horizontal direction, and a higher value of N2 means that more beams can be generated in the vertical direction.
[0134] Figure 16 shows, by way of example, the number of horizontal and vertical beams that can be configured per CSI-RS resource for each configuration listed in Figure 14. As can be seen in Figure 16, the possible number of precoded beams per CSI-RS resource depends on N1 and N2 (based on the logical antenna configuration, as described above), where O1 and O2 are the oversampling parameters shown in the configuration. Specifically, O1 and O2 effectively indicate the number of angular sweep steps of the precoded beam. O1 corresponds to the horizontal sweep step, and O2 corresponds to the vertical sweep step. Thus, the higher the oversampling parameters (O1, O2), the smaller the angular beam sweep step. Therefore, the number of possible precoded beams per CSI-RS resource in the horizontal direction is given by N1 × O1, and the number of precoded beams in the vertical direction is given by N2 × O2.
[0135] Precoder Matrix Indication(PMI) As mentioned above, the PMI may be used by the UE 3 to report a suitable precoding for PDSCH transmission. The PMI (or at least a partial PMI) may be transmitted to the base station 5 as feedback in either a closed-loop or semi-open-loop transmission manner. The PMI may indicate precoding for MIMO only (typically for smaller antenna configurations) or for both MIMO and beamforming (typically for larger antenna configurations). The base station 5 may not apply the precoding indicated by the PMI and may not inform the UE 3 of the actual precoding applied. Nevertheless, the UE 3 can determine the combined effect of the actual precoding and the propagation channel based on measurements of the DMRS precoded in the same manner as the PDSCH and therefore decode the PDSCH.
[0136] Several precoder matrix types may be predefined based on a set of corresponding logical antenna configurations (e.g., logical antenna configurations as shown in Figures 14 and 15). These may be, for example, precoder matrices specified by a relevant standard (e.g., 3GPP TS 38.214).
[0137] Precoder matrices are classified into four different codebook categories: Type 1, Single Panel; Type 1, Multi-Panel; Type 2, Single Panel; and Type 2, Port Selection. Type 1 codebooks generally provide relative course information, while Type 2 codebooks provide more detailed information at the expense of signaling overhead.
[0138] For codebook type 1, the precoder matrix can illustratively have a structure similar to one of the following two general formats (with occasional exceptions): [Formula 4] TIFF2025528111000011.tif13128 and [Formula 5] TIFF2025528111000012.tif27135
[0139] In each case, the number of rows corresponds to the number of CSI-RS ports (P) and the number of columns corresponds to the number of transmission layers (L).
[0140] v1, v2, ... v n effectively defines the precoding beam weights to be applied to the CSI-RS ports. The particular codebook constructed defines the v n effectively determining how many unique possible values of x can exist.
[0141] θ n denotes the weights corresponding to each of the two possible polarizations, and in most cases, θ in the precoding matrix n Different values of differ only with respect to their sign (+ / -). φ n is an additional weight term that is added to account for non-uniform multi-antenna panel scenarios (such that pre-coded beams from different panels add constructively, e.g., when gaps between adjacent panels result in inter-panel spacing between antenna elements that differs from the intra-panel spacing).
[0142] For codebook type 1, two different codebook modes may be used for one or two transmission layers: Using codebook mode 1 allows for higher horizontal and vertical granularity for the wideband, while codebook mode 2 has higher resolution for the subbands.
[0143] Each precoding matrix W can be understood to correspond to the product of two matrices (W = W1W2). The first matrix W1 corresponds to the beam weights (i.e., (v n)) and can be understood to represent the long-term channel characteristics (wideband), while W2 is a vector capturing the short-term channel characteristics (subband). W1 can be understood to contain multiple beam directions, while the W2 matrix can be understood to select a subset of the beam directions (for codebook mode 2) and / or perform a phase shift (for codebook modes 1 and 2).
[0144] It will be appreciated that in a given scenario, different transmission layers can be achieved by using different beams and / or polarizations. For example, signals received via different beams or via different polarizations can be configured to have uncorrelated (orthogonal) propagation channels.
[0145] The PMI reporting can be split into two stages. The first stage provides feedback to the base station 5 representing wideband information (called i1) that does not change rapidly over time, and the second stage provides feedback to the base station 5 representing subband information (called i2) that changes rapidly. The i1 part of the PMI is the feedback of one or more beam weight values (v) of the precoding matrix. n ), where the i1 part of the PMI is reported for wideband (i.e., a single measurement for all CSI-RS subbands), while the i2 part of the PMI may be reported per subband (based on the CSI reporting configuration as described above).
[0146] In some cases (e.g., a semi-open loop transmission scheme), the UE 3 may be configured to report only i1. For example, the base station 5 may configure the UE 3 (e.g., using the CSI-ReportConfig IE) to perform CSI reporting that provides partial (e.g., i1 but not i2) precoding information by appropriately setting a reporting quantity parameter. The UE 3 may be configured, for example, to report RI, i1 and a CQI for one or more associated CRIs by appropriately setting a reporting quantity parameter (e.g., to cri-RI-i1-CQI), or to report RI, i1 without a CQI for one or more associated CRIs by appropriately setting a reporting quantity parameter (e.g., to cri-RI-i1).
[0147] For illustration, we now consider the exemplary case of two-layer PMI feedback for a single-panel type-1 codebook using codebook mode 1. In this case, the precoding matrix is specified as follows: [Formula 6] TIFF2025528111000013.tif19136
[0148] In the formula, P CI-RS is the number of CSI-RS antenna ports, TIFF2025528111000014.tif836
[0149] The UE reports i1 and i2, where i1 = [i 1,1 ,i 1,2 ,i 1,3 ]. i 1,1 effectively denotes the index of the beam that should be used in the horizontal direction, and i 1,2 effectively denotes the index of the beam that should be used in the vertical direction, and i 1,3 effectively denotes the second beam (with an offset relative to the first beam) to be formed for PDSCH transmission (multiple beams may provide independent orthogonal channels), and i2 denotes the weight used for the second polarization.
[0150] The conversion from beam index to actual beam weight for 5G is defined in the relevant standards (e.g., 3GPP TS 38.214). i1 and i2 are mapped to W based on the following pre-specified table: [Table 2] k1 and k2 are determined based on the following table: 1,3 is determined based on the [Table 3] Therefore, the precoder matrix defined by Equation 6 is: TIFF2025528111000017.tif18136
[0151] The first column of the matrix effectively corresponds to a first transmission layer for transmission via a first beam from a first CSI-RS port, i 1,1 and i 1,2 The second column of the matrix effectively corresponds to a second transmission layer for transmission from the second CSI-RS port via the second beam, i 1,1 +k1 and i 1,2 Defined by +k2.
[0152] For each rank (number of transmission layers), UE3 may attempt to determine the i1 and i2 parameters based on reception of CSI-RS that results in the best performance and therefore indicates the values to the base station.
[0153] The base station 5 can configure limits on the reported values. For example, the base station 5 can use a bitmap (e.g., in a Codebook Configuration IE) to 1,1 and i 1,2Similarly, the base station 5 can indicate which rank values are restricted using a bitmap (e.g., in the Codebook Configuration IE).
[0154] Uplink Power Control In communication system 1, UL communications by UE 3 (e.g., PUSCH, PUCCH, SRS, and PRACH transmissions) are subject to power control (e.g., as specified in 3GPP TS 38.213 for 5G communication systems). The communication system supports multiple power states for both PUSCH transmit power and PUCCH transmit power (e.g., to support multiple transmit reception points per cell).
[0155] For example, for PUSCH, if UE3 transmits PUSCH on active UL BWP b of carrier f of serving cell c using a parameter set configuration with index j and a PUSCH power control adjustment state with index l, UE3 may calculate the PUSCH transmit power P PUSCH,b,f,c (i,j,q d ,l) determine: P CMAX,f,c (i) is the maximum output power configured by the UE for carrier f of serving cell c on PUSCH transmission opportunity i; P O_PUSCH,b,f,c (j) is the two components P O_NOMINAL_PUSCH,f,c (j) and component P O_UE_PUSCH,b,f,c (j), where j∈{0,1,...,J-1}-UE3 is the parameter P O_PUSCH,b,f,c (j) may be effectively configured with any of a plurality of values, for example, one of the values may be indicated by a scheduling request indicator (SRI) field of the DCI for the PUSCH; · TIFF2025528111000018.tif933 is the bandwidth of the PUSCH resource allocation expressed in number of resource blocks for PUSCH transmission opportunity i in the active UL BWP b of carrier f of serving cell c, and μ is the SCS configuration; α b,f,c (j) is a parameter that is generally configured by the network (or equal to 1 if not configured by the network, j=0); PL b,f,c (q d ) is the reference signal (RS) index q of the active DL BWP of carrier f of serving cell c as described in Clause 12. d where the path loss is calculated based on the RS. The UE 3 may be configured with multiple RS indices for determining the path loss, and one of the RS indices may be indicated by an SRI field in the DCI for the PUSCH; Δ TF,b,f,c (i) is the PUSCH transmit power adjustment component of the active UL BWP b of carrier f in primary cell c; and f b,f,c (i,l) is the current PUSCH power control adjustment state for the active UL BWP b of carrier f of serving cell c at PUSCH transmission opportunity i, which includes the component from the transmit power control (TPC) command. There are typically two possible states, and the state value to use is indicated by the SRI field of the DCI for the PUSCH.
[0156] Regarding PUCCH, if UE3 uses a PUCCH power control adjustment state with index l to transmit PUCCH on the active UL BWP b of carrier f in primary cell c, the UE shall adjust the PUCCH transmit power P at PUCCH transmission opportunity i based on the formula shown in FIG. 17B. PUCCH,b,f,c (i,q u ,qd ,l) is determined. P CMAX,f,c (i) is the maximum output power configured by the UE for carrier f of serving cell c on PUCCH transmission opportunity i; P O_PUCCH,b,f,c (q u ) is the component P of the carrier f of the primary cell c O_NOMINAL_PUCCH (which may be network configured or 0 if not network configured) and another component P of the active UL BWP b of carrier f of primary cell c O_UE_PUCCH (q u ) (which may be configured as a network, or 0 if not configured as a network), and 0≦q u u Q u HA P O_UE_PUCCH The configured size of the set of values, and UE3 O_PUCCH,b,f,c (q u ) may be configured with one of a number of values, one of which may be indicated by the PUCCH spatial relationship MAC CE;
[0157] The UE 3 has a PUCCH spatial relationship information identifier (e.g., pucch-SpatialRelationInfoId IE) associated with the PUCCH spatial relationship information identifier. O_UE_PUCCH (q u ) UE3 may provide PUCCH spatial relationship information (e.g., PUCCH-SpatialRelationInfo IE) including a set of potential values of PUCCH-SpatialRelationInfo. O_UE_PUCCH (q u ) can be mapped to the corresponding value in · TIFF2025528111000019.tif933 is the bandwidth of the PUCCH resource allocation expressed in number of resource blocks for PUCCH transmission opportunity i in the active UL BWP b of carrier f of serving cell c, and μ is the SCS configuration; PL b,f,c (q d ) is the RS resource index q d where the path loss is calculated based on the RS. The UE 3 may be configured with multiple RS indices for determining the path loss, one of which may be indicated by the PUCCH spatial relationship MAC CE; Δ F_PUCCH (F) is a parameter that is configured based on the PUCCH format or is 0; Δ TF,b,f,c (i) is the PUCCH transmit power adjustment component of the active UL BWP b of carrier f in primary cell c; and -g b,f,c (i,l) is the current PUCCH power control adjustment state l for the active UL BWP b of carrier f of serving cell c and the PUCCH transmission opportunity, which includes a component from the transmit power control (TPC) command. There are typically two possible states, and the state value to use is indicated by the PUCCH spatial relationship MAC CE.
[0158] Similar to the PUCCH and PUSCH SRS, multiple states can be configured for power control.
[0159] The PRACH power is determined purely based on the power ramp-up procedure (e.g., as defined in 3GPP TS 38.321), and the path loss is calculated based on the SSB used for random access channel (RACH) resource selection. Power scaling factors are defined in 3GPP TS 38.321 that are primarily applicable to two-stage RACH or RACH prioritization.
[0160] Separation of different antenna elements into UL and DL Beneficially, in the communication system 1, a base station 5 is configured to transmit to a UE 3 on the downlink via a first set (or group) of antenna elements and receive from another UE 3 on the uplink via a second set (or group) of antenna elements that is spatially separated from the first set of antenna elements in the same SBFD slot or slots (or symbols). This spatial separation between the antenna elements used for the UL and DL can result in lower interference observed during UL reception at the base station 5.
[0161] Referring to Figure 18, which is a simplified diagram of an antenna panel configuration for full duplex communication in communication system 1, spatial separation can be achieved by using antenna panels for DL communication that are different from the antenna panels used for UL communication.
[0162] During a legacy TDD slot / symbol (e.g., a dedicated UL-only slot / symbol or a dedicated DL-only slot / symbol), both antenna elements 712 of the first and second sets of antenna elements may still be used for the same transmit direction (e.g., receive in the UL / transmit in the downlink).
[0163] As noted above, the base station 5 (or other similar base stations 5 in the communication system 1) may have a single panel. In the case of a base station 5 that communicates through a single antenna panel, the base station 5 may be beneficially configured for panel separation of the antenna elements. One such arrangement is shown in Figure 19, which is a simplified diagram of another antenna panel configuration for full-duplex communication in the communication system 1.
[0164] As shown in Figure 19, the base station 5 is configured to transmit to a UE 3 on the downlink via a first set (or group) of antenna elements in a first region of the antenna panel and receive from another UE 3 on the uplink via a second set (or group) in the first region of the antenna panel during the same SBFD slot or symbols. The spatial separation between the antenna elements of the first set and the antenna elements of the second set can be further enhanced in this example by configuring the third set of antenna elements not to transmit (e.g., beyond the half signal wavelength typically provided between the antenna elements). It will be appreciated that this enhanced spatial separation between the antenna elements between the UL and DL groups can beneficially help reduce interference, but is not required for successful full-duplex operation.
[0165] It will be appreciated that the number of antenna elements in each group (UL / DL) may vary depending on requirements, for example, the number of antenna elements may depend on DL / UL subband sizes and / or UL / DL coverage requirements.
[0166] However, it will be appreciated that separating antenna elements as described in connection with Figures 18 and / or 19 effectively reduces the number of operational antenna elements for DL and UL. Reducing the number of DL antenna elements in this manner effectively reduces the number of CSI-RS ports and can result in different values of N1 and N2 defining the logical downlink antenna array. This, in turn, can result in changes to the codebook parameters required for precoding / beamforming, affecting several related procedures.
[0167] As described in more detail below, communication system 5 advantageously employs one or more mechanisms to mitigate the impact of a reduced number of antenna elements, including, for example, mechanisms for mitigating the impact in the context of UE measurement procedures, provision of DL and / or UL transmission parameters (e.g., codebook parameters, ports, etc.) for data transmission / reception during SBFD slots, and potential degradation in UL decoding performance resulting from a reduced number of antenna elements used during SBFD slots.
[0168] These mechanisms are introduced and described in more detail below. While several beneficial mechanisms are described, it will be understood that a communication system need not use all of them to achieve a technical benefit. Furthermore, while some of the mechanisms include techniques that may be used as alternatives to another described technique to achieve a similar technical benefit, it will be understood that such techniques are not mutually exclusive. For example, a communication system may implement multiple such "alternative" techniques to increase the flexibility of the communication system (e.g., for use at different times or in different situations).
[0169] UE measurement procedure The change in the number of antenna elements may result in changes in the transmission characteristics (e.g., beam pattern / number of ports / antenna gain, etc.) of different reference signals (CSI-RS and / or SSB) between SBFD slots / symbols and legacy TDD DL slots / symbols.
[0170] Therefore, if different transmission characteristics are applicable to SBFD and legacy TDD slots, communication system 1 may implement one or more techniques to mitigate the impact of this on CSI-RS and / or SSB measurements.
[0171] Measurements on Channel State Information Reference Signal (CSI-RS) The presence of different numbers of ports / frequency resources / transmission powers in SBFD slots / symbols may lead to unreliable CSI-RS measurement results from UE 3.
[0172] Therefore, the communication system 1 may employ one or more mechanisms that may indicate to the network how the CSI-RS is being transmitted in the context of SBFD.
[0173] It will be appreciated that the described techniques are particularly applicable to dynamic SBFD slot scheduling. In the case of RRC-configured SBFD occurrences, the network can potentially avoid problems by using appropriate RRC configuration of CSI-RS resources.
[0174] Figure 20 is a simplified sequence diagram illustrating a procedure by which base station 5 configures a different CSI-RS configuration for CSI-RS transmission during SBFD slots / symbols than for CSI-RS transmission during (legacy) TDD DL slots / symbols. Figure 21 shows an example implementation of the procedure of Figure 20.
[0175] As can be seen in FIG. 20, when base station 5 configures a CSI-RS configuration for CSI-RS transmission during SBFD slots / symbols that is different from that for CSI-RS transmission during (legacy) TDD DL slots / symbols, base station 5 provides (at S2010) CSI-RS configuration information including one or more CSI-RS resource configurations for CSI-RS transmission during SBFD slots / symbols that are different from that for CSI-RS transmission during (legacy) TDD slots.
[0176] When UE3 performs CSI-RS measurements and reporting (at S2012), UE3 may perform CSI-RS measurements and reporting based on one or more SBFD-specific CSI-RS resource configurations for SBFD slots / symbols, and may perform CSI-RS measurements and reporting based on one or more TDD-specific CSI-RS resource configurations for other (legacy) TDD slots / symbols.
[0177] One or more CSI-RS resource configurations for SBFD slots / symbols that differ from (legacy) TDD DL slots or symbols may include, for example, power values applicable to CSI-RS resource transmissions in SBFD slots / symbols that differ from power values applicable to CSI-RS resource transmissions in TDD DL slots / symbols.
[0178] One or more SBFD-specific CSI-RS resource configurations for an SBFD slot / symbol may indicate which CSI-RS ports are enabled (or disabled) for the SBFD slot. This may be indicated, for example, as a per-CSI-RS resource configuration indicating a list, range, and / or mask of antenna port numbers; and / or a list, range, and / or mask of antenna panels.
[0179] One or more SBFD-specific CSI-RS resource configurations for an SBFD slot / symbol may indicate specific frequency resources for CSI-RS transmission during the SBFD slot.
[0180] For example, one or more SBFD-specific CSI-RS resource configurations may indicate a subset of frequency resources (among one or more CSI-RS resource configurations) that are punctured (or not punctured) during an SBFD slot / symbol.
[0181] Alternatively or additionally, one or more SBFD-specific CSI-RS resource configurations may indicate a new frequency resource configuration applicable to CSI-RS during SBFD (which may be in the CSI-RS configuration or may be derived from another separate RRC configuration for SBFD). UE 3 may determine the CSI-RS sequences based on normal procedures.
[0182] In another technique, for aperiodic CSI-RS, the network may indicate in the DCI which CSI-RS parameters are applicable.
[0183] FIG. 22 is a simplified sequence diagram illustrating the procedure by which a base station 5 configures two different parameter states (one used for SBFD and the other used for (legacy) TDD DL slots) for the same CSI report and / or reference signal.
[0184] As shown in FIG. 22, the base station 5 configures the UE 3 with two different CSI-RS parameter states (each representing a different respective set of parameters) for a particular CSI reporting configuration (and associated CSI-RS resource configuration) at S2210. The parameter states include an SBFD-specific CSI-RS parameter state and a TDD-specific CSI-RS parameter state. As shown in S2212, when the network sends a trigger to trigger aperiodic CSI reporting (using the DCI), it also indicates which parameter state should be used for a given CSI report. The indication can explicitly indicate which CSI parameters to use or can be implicit (e.g., derived from the SBFD indication in the DCI).
[0185] When UE3 performs CSI-RS measurements and reporting (at S2214), UE3 may perform CSI-RS measurements and reporting based on the set of parameters corresponding to the indicated parameter state.
[0186] It will be appreciated that this is different from the use of an aperiodic triggered DCI, where the network indicates which of multiple CSI reporting configurations to use for reporting, where different parameter states (and associated parameter sets) are for measuring and reporting the same CSI-RS configuration.
[0187] In another technique, the network may indicate a set of time opportunities during which no CSI-RS resources are transmitted.
[0188] FIG. 23 is a simplified sequence diagram illustrating the procedure by which base station 5 configures at least one CSI-RS resource with a full set of ports and frequency resources corresponding to a (legacy) TDD DL slot / symbol.
[0189] In Figure 23, the CSI-RS resource configured in this way for a (legacy) TDD DL slot / symbol is referred to as the TDD DL CSI-RS resource for clarity, although it will be understood that this may not be distinguished from other CSI-RS resources in the CSI-RS resource configuration.
[0190] 23, the base station 5 provides CSI-RS configuration information at S2310, and indicates to the UE 3 that CSI-RS resources will not be used for transmission at a particular set of time opportunities.
[0191] As shown in S2312a, the base station 5 may indicate a time opportunity as part of a DCI indication (e.g., by means of a preemption indication, etc.). The DCI may indicate that one or more CSI-RS resources of a given CSI resource set are to be deactivated during the set of time opportunities.
[0192] As shown in S2312b, base station 5 may indicate (e.g., via RRC configuration signaling / MAC CE / DCI, etc.) that one or more CSI-RS resource transmissions are restricted. In this case, UE 3 may determine the relevant time opportunity based on the SBFD time opportunity signaling (as seen in S2314) (i.e., UE 3 may determine that no CSI-RS will be transmitted using one or more CSI-RS resources during the previously configured SBFD slots / symbols).
[0193] UE3 may then perform CSI-RS measurements and CSI reporting (at S2316) taking into account the opportunity for no transmission using one or more configured CSI-RS resources.
[0194] The UE 3 may be configured with multiple different SBFD configurations (e.g., different SBFD slots / symbol patterns / timings), in which case the base station 5 may also indicate, for each CSI-RS resource on which transmission is restricted, that the restriction is for a particular SBFD configuration.
[0195] It will be appreciated that the base station 5 may also configure two different CSI-RS resource sets, i.e., a first set of CSI-RS resources that are not used for transmissions in SBFD slots, and a second set of CSI-RS resources that are only used for transmissions in SBFD slots.
[0196] FIG. 24 is a simplified sequence diagram illustrating a procedure for implementing another technique in which the network may indicate a set of time opportunities CSI-RS, which is a set of time opportunities at which CSI-RS resources are punctured.
[0197] 24, when the base station 5 configures (at S2410) at least one CSI-RS resource, the base station 5 may indicate one or more ports and / or frequency resources to be punctured during the indicated time opportunity. It will be appreciated that alternatively or additionally, the UE 3 may determine one or more ports and / or frequency resources to be punctured during the indicated time opportunity based on the SBFD configuration.
[0198] As can be seen in FIG. 24, the base station 5 indicates (at S2412) the time opportunities at which one or more CSI resources are to be punctured using appropriate signaling (e.g., DCI, RRC configuration, MAC CE signaling, etc., similar to that described for indicating the time opportunities with reference to FIG. 23).
[0199] UE3 may then perform CSI-RS measurements and CSI reporting, taking into account (at S2414) opportunities for transmissions using one or more configured CSI-RS resources to be punctured, as well as port and / or frequency resources.
[0200] It can be seen that this option is similar to that described with reference to Figure 21, where a subset of frequency resources is shown to be punctured (or not punctured) during SBFD slots / symbols. However, in this case, puncturing does not need to be explicitly associated with SBFD slots and no new configuration for SBFD is provided.
[0201] FIG. 25 is a sequence diagram illustrating procedures for implementing another technique in which, for certain CSI-RS resources (e.g., mobility and / or radio link monitoring (RLM)-based CSI-RS resources), a UE is prevented from performing UL transmissions during SBFD or UL symbols / slots that overlap with a given CSI-RS resource opportunity.
[0202] 25, the base station 5 may configure (at S2510) at least one CSI-RS resource (e.g., a mobility or RLM-based CSI-RS resource) on which UL transmissions are restricted. It will be appreciated that alternatively or additionally, the UE 3 may be pre-configured with a particular CSI-RS resource type (e.g., a mobility or RLM-based CSI-RS resource) on which UL transmissions are restricted.
[0203] As shown in S2512, for those specific CSI-RS resources where UL transmission is restricted (e.g., mobility or RLM-based CSI-RS resources), UE3 will not perform UL transmission during SBFD slots / symbols and / or other UL slots / symbols that overlap with the corresponding configured CSI-RS resource opportunity.
[0204] Another potential problem that may arise regardless of whether the above procedure is implemented is that UE2 may still obtain incorrect or partial CSI measurements during the SBFD slot. This may occur, for example, if a single CSI report may be associated with a CSI-RS transmitted both during SBFD and during legacy DL. If UE3 were to calculate the CSI based on these measurements, this could lead to inaccurate results (e.g., the CQI may be underestimated).
[0205] As mentioned above, the CSI report may be subject to a time limit configured in the CSI reporting configuration. If a time limit is set, the UE 3 derives measurements for calculating the CSI value based on the last measured CSI-RS occasion associated with the CSI report. Therefore, if a time limit is set, the CSI report may be based only on measurements of CSI resources made in SBFD slots / symbols, and therefore some CSI report information (e.g., a subset of ports or a subset of frequency resources for which measurements are required for the configured CSI report) may not be measured by the UE 3.
[0206] If no time limit is configured, the CSI report may be based on a composite measurement of the CSI resources made both during the SBFD slots / symbols and during the legacy TDD DL slots / symbols. In this scenario, the CSI report may also be based on incorrect / partial CSI measurement information.
[0207] Beneficially, the communication system 1 may use one or more techniques to enhance the CSI calculation procedure to take into account situations where the CSI-RS may be measured within an SBFD slot / symbol and / or within a legacy TDD DL slot.
[0208] 26A-26D respectively show different possible techniques that may be adopted for CSI reporting when a time limit is set and the last CSI-RS is measured during the SBFD slot / symbol.
[0209] 26A illustrates a technique in which, for CSI reporting that requires the UE 3 to calculate CSI based on measurements across ports and / or frequency regions where no transmission is received during the SBFD slot, the UE 3 discards / ignores the CSI-RS opportunity that coincides with the SBFD slot for CSI reporting purposes. Instead, the UE 3 uses the CSI-RS measurements performed during the preceding legacy TDD DL slot (i.e., when all ports and frequency regions of the CSI-RS resources are available).
[0210] FIG. 26B illustrates a technique in which UE 3 does not perform CSI reporting for that CSI-RS opportunity for CSI reporting that requires UE 3 to calculate CSI based on port and / or frequency domain measurements on which no transmission is received during the SBFD slot.
[0211] Figure 26C shows a technique in which, for a CSI report that requests UE3 to calculate CSI based on measurements on ports and / or frequency regions where no transmission is received during the SBFD slot, UE3 uses measurements from a previous set of CSI-RS measurements performed during a previous legacy TDD DL slot for ports and / or frequency regions where no transmission is received during the SBFD slot. UE3 uses these measurements in combination with measurements made during the SBFD slot (for ports and / or frequency regions where transmissions can be received during the SBFD slot) when compiling the CSI report.
[0212] 26D shows a technique in which the UE 3 calculates the CSI report based on the last CSI-RS opportunity during the SBFD slot, regardless of any ports and / or frequency regions for which no transmission is received during the SBFD slot. In this case, the base station 5 derives the required CSI information based on both the CSI report received for this CSI-RS opportunity and the CSI report received for the previous valid CSI-RS opportunity.
[0213] In the technique illustrated in FIG. 26D, CSI reporting may be compiled based on measurements of a reduced number of ports using one of the following derivation methods:
[0214] In a first method for CSI derivation based on a reduced number of ports, the UE 3 derives CSI based on a smaller number of ports assumed for the CSI calculation. For example, the indication of the PMI may correspond to a smaller number of ports than would otherwise be the case.
[0215] In a second method for CSI derivation based on a reduced number of ports, the UE 3 derives the CSI based on the assumption that all ports are available. The PMI is determined, in part, based on receiving the CSI using the available number of ports. For the portion of the PMI that cannot be determined in this way because it depends on ports on which transmissions are not received, the UE selects either a random value or a previously reported value (if available).
[0216] In the technique illustrated in FIG. 26D, a CSI report may be compiled based on measurements for a reduced number of frequency resources using one of the following derivation methods:
[0217] In a first method for CSI derivation based on a reduced number of frequency resources, the UE 3 simply does not calculate and report CSI (PMI and / or CQI) for one or more frequency resources for which no CSI-RS is transmitted during the SBFD slot.
[0218] In a second method for CSI derivation based on a reduced number of frequency resources, UE3 reports a random value or one of the previously reported values for CQI and / or PMI for subbands where CSI-RS is not transmitted during SBFD.
[0219] In a third method for CSI derivation based on a reduced number of frequency resources, UE3 reports reserved values or values of 0 for CQI and / or PMI for subbands where CSI-RS is not transmitted during SBFD.
[0220] For other CSI numbers (eg, wideband CQI, SINR), the number is determined based solely on the frequency resource or port on which the CSI-RS transmission occurs during the SBFD slot.
[0221] 26A-26D are not mutually exclusive. For example, different techniques (and / or different CSI derivation methods) may be used for different scenarios.
[0222] For example, if UE 3 is configured with an RRC configuration that indicates when some CSI-RS resources are not transmitted / punctured, UE 3 can use the technique shown in Figure 26C. If the base station provides SBFD slot information to UE 3 using DCI, UE 3 can use the technique shown in Figure 26C with the second method for CSI derivation based on the reduced number of ports. On the other hand, for aperiodic CSI triggering, UE 3 may use the technique illustrated in Figure 26C with the first method for CSI derivation based on the reduced number of ports.
[0223] It will be appreciated that a similar solution to that described with reference to Figures 26A to 26D may be applied for the purpose of radio link monitoring using CSI-RS.
[0224] Figures 27A and 27B each illustrate different possible techniques that may be applied for CSI reporting when no time limit is set and therefore the CSI report may be compiled based on measurements from both the CSI-RS transmitted in the SBFD slot and the CSI-RS transmitted in the legacy TDD DL slot.
[0225] 27A illustrates a technique in which, for CSI reporting that requires the UE 3 to calculate CSI based on measurements on ports and / or frequency regions where no transmission is received during the SBFD slot, the UE 3 discards / ignores CSI-RS opportunities that coincide with the SBFD slot for CSI reporting purposes. Instead, the UE 3 uses CSI-RS measurements performed during one or more preceding legacy TDD DL slots (i.e., when all ports and frequency regions of the CSI-RS resources are available).
[0226] Figure 27B shows a technique in which UE3 uses both measurements performed for the SBFD slot (for ports and / or frequency regions that can receive transmissions during the SBFD slot) and one or more previous sets of CSI-RS measurements made during one or more previous non-SBFD slots when calculating CSI. However, when using measurements from the SBFD slot, measurements corresponding to frequency resources and ports not transmitted during SBFD are not used in the CSI calculation. This example technique is similar to the technique shown in Figure 26(c), except that in this example, the CSI reporting performed by UE3 is based on measurements performed on the full set of ports and frequency resources corresponding to the CSI-RS resources of one or more legacy TDD DL slots (albeit in combination with reduced set of ports / reduced frequency region measurements made for the SBFD slot).
[0227] It will be appreciated that a similar solution to that described with reference to Figures 27A and 27B may be applied for the purpose of radio link monitoring using CSI-RS.
[0228] Update of DL and UL transmission parameters Beneficially, the communication system 1 may also implement one or more techniques for updating DL and / or UL transmission parameters (e.g., codebook parameters, ports, etc.) for transmitting and / or receiving data during an SBFD slot.
[0229] As described above, UE 3 can indicate a DL codebook to base station 5 (e.g., via a CSI report), which is determined for the full set of ports / antenna elements available for CSI-RS in non-SBFD slots / symbols. Similarly, the base station can determine a UL codebook based on SRS transmissions from UE 3 in non-SBFD slots / symbols. However, during SBFD slots, some CSI-RS ports are likely to be disabled for data transmission and / or reception (e.g., on the PDSCH and / or PUSCH). Therefore, transmission parameters for DL data (e.g., on the PDSCH) transmitted by base station 5 in SBFD slots may be based on a CSI report derived from CSI-RS transmitted in non-SBFD DL slots / symbols. This is shown in Figure 28, a simplified timing diagram illustrating the potential relationship between CSI reports and downlink data transmissions.
[0230] Techniques for updating DL and / or UL transmission parameters will now be described in more detail with reference to Figure 29, which is a simplified sequence diagram illustrating several different procedures that may be employed in a communication system to update transmission parameters.
[0231] As seen in S2910, for example, for UL (e.g., PUSCH) transmission, base station 5 can determine (at S2912) optimal transmission parameters (e.g., precoding, rank, port, etc.) for SBFD and non-SBFD slots based on the SRS transmission from UE 3. Thus, in one technique, the base station can prepare different sets of codebooks, including one set for legacy TDD UL slots and another set for SBFD slots, based on the assumption that certain sets of antenna elements are unavailable for UL transmission at UE 3 during those slots. Thus, base station 5 can appropriately set PUSCH transmission parameters for SBFD slots and non-SBFD slots.
[0232] However, as described with reference to Figure 28, for DL (e.g., PDSCH) transmission, the transmission parameters (e.g., precoding, rank, CQI, beam weights) may need to be determined by base station 5 based on the CSI report received in the previous legacy TDD UL slot / symbol derived from the CSI-RS transmitted in the previous legacy TDD DL slot / symbol.
[0233] 29, (at S2914a), for PDSCH transmission parameters, the base station 5 may simply continue to use (legacy) CSI reporting based on measurements at legacy TDD DL slots for the full set of antenna ports and / or frequency ranges. For example, the UE 3 may provide CSI reporting (including PMI, rank indication, etc.) corresponding to all CSI ports, and the base station may predict transmission parameters for the reduced set of antennas from this legacy CSI reporting. Thus, the base station 5 may configure PDSCH transmission parameters for SBFD slots based on the prediction, and may configure PDSCH transmission parameters for non-SBFD slots based on the full CSI reporting for the full set of antennas.
[0234] However, it will be appreciated that while this technique has the advantage of simplicity, if the prediction by the base station 5 is incorrect it may result in an incorrect setting of parameters (e.g. the rank applicable to the reduced set of antenna elements may be smaller than the rank identified for the full set).
[0235] In another technique illustrated in FIG. 29, (at S2914b) the base station 5 may configure (e.g., in a CSI report configuration) different (sets) of CSI reports to be provided based on different measurements of CSI-RS transmitted in the same legacy TDD slot. Specifically, one set of CSI-RS resources and associated CSI-RS reports may be configured for use with respect to non-SBFD (legacy TDD DL) slots, and another set of CSI-RS resources and associated CSI-RS reports may be configured for use with respect to SBFD slots. For example, one set of CSI-RS resources (and associated CSI-RS reports) may be for the full antenna set, and another set of CSI-RS resources (and associated CSI-RS reports) may be configured for the reduced antenna set. Thus, the base station 5 may configure PDSCH transmission parameters for SBFD slots based on the CSI reports for the reduced antenna set, and may configure PDSCH transmission parameters for non-SBFD slots based on the CSI reports for the full antenna set.
[0236] It will be appreciated that this technique can be beneficially implemented using current signaling capabilities that already enable the possibility of configuring multiple (sets of) CSI-RS resources and associated CSI-RS reports. Furthermore, this technique can reduce the risk of incorrect transmission parameter settings. Nevertheless, this technique has the potential to increase signaling overhead in terms of both CSI resource transmission and CSI report transmission.
[0237] Beneficially, the communication system 1 may employ one or more techniques to reduce CSI-RS transmission overhead.
[0238] FIG. 30 is a simplified timing diagram illustrating one technique that may be used to reduce CSI-RS transmission overhead.
[0239] In this technique, a single CSI-RS resource 3002 is configured for associated CSI reports for both the PDSCH in the legacy TDD DL slot (shown in 3010a) and the PDSCH in the SBFD slot (shown in 3010b). Each CSI-RS report based on a single CSI-RS can then be used to configure corresponding transmission parameters for the PDSCH in the legacy TDD DL slot (shown in 3012a) and the PDSCH in the SBFD slot (shown in 3012b), respectively. In this technique, the base station 5 can configure additional parameters, such as parameters identifying which antenna port and / or frequency resource to measure for each CSI report. This configuration of the additional parameters can be done using the CSI-RS configuration (e.g., as described with reference to FIG. 9) or using the associated CSI report configuration.
[0240] FIG. 31 is another simplified timing diagram illustrating one technique that may be used to reduce CSI-RS transmission overhead.
[0241] In this technique, separate CSI-RS resources are configured for CSI reporting for the PDSCH in the legacy TDD DL slot (as illustrated at 3110a) and for CSI reporting for the PDSCH in the SBFD slot (as illustrated at 3110b). Each CSI-RS report based on a different respective CSI-RS can be used to configure corresponding transmission parameters for the PDSCH in the legacy TDD DL slot (as illustrated at 3112a) and for the PDSCH in the SBFD slot (as illustrated at 3112b), respectively. In this technique, the base station 5 can configure additional parameters, such as parameters identifying which antenna port and / or frequency resource to measure for each CSI report. This configuration of the additional parameters can be performed using the CSI-RS configuration (e.g., as described with reference to FIG. 9) or using an associated CSI reporting configuration. It will be appreciated that the two CSI-RS resources may overlap in the radio resources to reduce the signaling overhead of transmitting essentially the same CSI-RS resource twice. Beneficially, in this example, UE3 may assume quasi co-located (QCL) antenna ports (of all types) for both CSI-RS resources in order to simplify the UE's decoding attempts - i.e., it assumes that transmissions from one or more respective antenna ports for each of the CSI-RS resources share the same channel characteristics.
[0242] Beneficially, the communication system 1 may also employ one or more techniques to reduce CSI reporting overhead.
[0243] These techniques take advantage of the fact that when one antenna panel is effectively turned off (e.g., for DL transmission purposes), some parameters for CSI reporting are less likely to change than others. For example, CQI (both subband and wideband) may be affected due to changes in overall antenna gain. On the other hand, subband PMI values may or may not change depending on channel variations between different antenna panels. Similarly, RI values may or may not change depending on channel variations between different antenna panels.
[0244] Therefore, given that some parameters may remain common between PDSCH transmissions in SBFD and non-SBFD slots, UE 3 does not need to transmit the entire CSI report for the PDSCH associated with the SBFD slot and the PDSCH associated with the legacy DL slot separately. For the sake of discussion, hereafter we will use "SBFD PDSCH" to mean "PDSCH transmission in an SBFD slot" and "legacy DL PDSCH" to mean "PDSCH transmission in a legacy DL slot."
[0245] Therefore, the communication system 12 may advantageously use one or more mechanisms for joint coding of CSI reports corresponding to the SBFD PDSCH and the legacy DL PDSCH, respectively, to reduce CSI reporting overhead. Specifically, a CSI report corresponding to the SBFD PDSCH may be interpreted (decoded) based on an associated CSI report corresponding to the legacy DL PDSCH (or vice versa).
[0246] For example, with reference to CQI, a wideband CQI would ideally be reported for both one or more SBFD PDSCHs and one or more legacy DL PDSCHs, but the number of bits required for wideband CQI encoding of the SBFD PDSCHs may be reduced by indicating a delta value compared to the wideband CQI of the legacy DL PDSCHs.
[0247] With reference to subband CQI, there are several different ways to reduce the CSI reporting overhead for SBFD operation. For example, the UE 3 may simply not report subband CQI for the SBFD PDSCH. Alternatively, the subband CQI for the SBFD PDSCH may be conditionally reported by the UE 3, e.g., based on the condition that a predetermined number of subband CQIs for the SBFD PDSCH are different (or possibly smaller) than the corresponding subband CQI for the legacy DL PDSCH (e.g., by not falling below a threshold). To support this, it will be appreciated that the UE 3 may include an indication in the CSI report for the SBFD PDSCH to indicate whether subband CQI is included.
[0248] In a variation of this, the UE 3 may indicate in its CSI report a number of subband CQIs for the SBFD PDSCH that differ from (or possibly be smaller than) the corresponding subband CQIs for the legacy DL PDSCH (e.g., by not being below a threshold). In this case, the base station 5 may decide to trigger additional aperiodic CSI reporting (e.g., based on the reported number of subband CQIs for the SBFD PDSCH) to obtain reports for the subbands from the UE 3.
[0249] In another variation, the UE 3 may indicate in the CSI report the respective subband CQI for the SBFD PDSCH for a subset of subbands (eg, only every N subbands, etc.).
[0250] With reference to subband PMI, there are several different ways to reduce the CSI reporting overhead for the SBFD PDSCH. Specifically, any of the techniques described with respect to subband CQI for the SBFD PDSCH can be applied with respect to subband PMI for the SBFD PDSCH.
[0251] Referring to the encoding of the rank indicator, an additional value may need to be indicated for the SBFD PDSCH. Nevertheless, to reduce CSI reporting overhead, the UE 3 may conditionally indicate a valid PMI column (or layer) for the RI value of the SBFD PDSCH if the RI value of the SBFD PDSCH differs from the RI value of the legacy TDD DL PDSCH.
[0252] It will be appreciated that if a full CSI report cannot be transmitted by UE 3, the base station may need to trigger an aperiodic report to obtain a full report. Beneficially, to avoid retransmission of the associated CSI-RS (and thus requiring additional resource overhead for such retransmission), base station 5 may be configured to trigger an aperiodic CSI report that is not associated with a new CSI-RS transmission. When such an aperiodic CSI report is triggered, UE 3 may compile a CSI report based on already performed measurements rather than new measurements of the newly transmitted CSI-RS.
[0253] It will also be recognized that a reduction in resource overhead can be achieved by avoiding repeated transmission of a full CSI report for the SBFD PDSCH. For example, rather than reporting all CSI information for the SBFD PDSCH in a single high-priority report, one or more of the CSI report fields for the SBFD PDSCH described above can be reported as part of a “lower priority” (e.g., “part 2”) CSI report. Thus, the priority of transmitting the information represented by these fields can be reduced, and the associated “part 2” CSI report can be transmitted less frequently than other “higher priority” fields of the CSI report.
[0254] It will be understood that the CSI information for the SBFD PDSCH may be transmitted as part of the same CSI report as the CSI information for the legacy TDD DL PDSCH, or may be transmitted as part of a different CSI report. For the same CSI report, if additional fields (e.g., including codebooks, ports, frequency resources measured for the SBFD PDSCH, etc.) are configured in the same CSI report, the base station 5 may indicate (e.g., in the CSI report configuration) which additional quantities should be reported.
[0255] When different CSI reports are configured by the base station 5, some amount of CSI reporting for the SBFD PDSCH may be determined based on parameters of the CSI reporting for the legacy TDD DL PDSCH. In this case, the base station may indicate an association between the two CSI reports.
[0256] UL Decryption It will be appreciated that if a base station has a small number of antenna elements present for UL reception in the SBFD slot, the UL decoding performed at the base station 5 may be degraded during the SBFD slot.
[0257] We will now describe in more detail, by way of example only, some techniques that may be implemented in the communications system 1 to improve UL decoding performance in the context of an SBFD implementation.
[0258] Beneficially, techniques for improving UL decoding performance include enhancements to UL transmission parameters (eg, UL power).
[0259] For example, as described above, in the case of PUSCH / PUCCH power control, multiple power control states may be defined, and one state may be indicated using DCI for the PUSCH or MAC CE for the PUCCH. Therefore, the communication system 1 may implement a mechanism for the base station 5 to switch between different power control states for SBFD slots and non-SBFD slots based on this. Nevertheless, while having the advantage of simple implementation, such a power state change mechanism needs to be triggered using DCI or MAC CE, which may result in additional signaling overhead (especially when SBFD opportunities occur frequently).
[0260] Beneficially, techniques that may be implemented in communication system 1 may include additional power control enhancements.
[0261] For example, in one technique, SBFD-specific power states are defined for UL transmissions during SBFD operation, which may be implemented, for example, by defining one or more SBFD-specific power offsets to be applied to UL transmissions during SBFD opportunities and / or by configuring additional SBFD-specific values for existing power control values in spatial relationship information (e.g., PUCCH spatial relationship information) that have corresponding spatial relationship information identifiers (e.g., PUCCH spatial relationship information identifiers) mapped to SBFD.
[0262] The UE 3 can then apply the appropriate parameters / power offset values associated with SBFD whenever the UE 3 performs an UL transmission during the SBFD slot / symbol without the need for additional signaling.
[0263] It will be appreciated that these extensions are applicable to any uplink communication (including, for example, PUSCH / PUCCH / PRACH and / or SRS). It will also be appreciated that different power configuration values may be configured for different channels.
[0264] Beneficially, techniques for improving UL decoding performance include extensions for UL coding and / or UL communication repetitions for the control channel when the UE 3 performs UL transmission during an SBFD slot / symbol.
[0265] Specifically, in one technique, UE 3 is (pre-)configured with different coding rules and / or different coding parameter sets for uplink (e.g., PUCCH) transmissions in SBFD slots / symbols than for uplink (e.g., PUCCH) transmissions in legacy TDD UL slots / symbols. UE 3 can then apply a specific coding rule and / or a specific set of coding parameters for SBFD in SBFD slots / symbols and another coding rule and / or set of coding parameters in legacy TDD UL slots / symbols to enable enhanced decoding for UL transmissions in SBFD slots / symbols.
[0266] In another technique, the UE 3 is configured (in advance) with a different number of repetitions for each uplink (e.g., PUCCH / PRACH and / or SRS) transmission in the SBFD slots / symbols than for uplink (e.g., PUCCH / PRACH and / or SRS) transmission in the legacy TDD UL slots / symbols. For example, a larger number of repetitions may be used for the SBFD slots / symbols than for the legacy TDD UL slots / symbols. The UE 3 may then use a particular number of repetitions for SBFD UL communications in the SBFD slots / symbols and another number of repetitions for UL communications in the non-SBFD slots / symbols to enable enhanced decoding for the UL transmission in the SBFD slots / symbols.
[0267] In another technique, UE 3 is (pre-)configured with a different set of UL communication (e.g., PUCCH) resources for uplink (e.g., PUCCH) transmissions in SBFD slots / symbols than for uplink (e.g., PUCCH) transmissions in legacy TDD UL slots / symbols. UE 3 can then use a particular resource configuration for SBFD UL communication in SBFD slots / symbols and another resource configuration for UL communication in legacy TDD UL slots / symbols to enable enhanced decoding for UL transmissions in SBFD slots / symbols. In another technique, the UE 3 is configured to apply a different respective RACH format (and associated parameters) for the SBFD slots / symbols than for the legacy TDD UL slots / symbols to enable enhanced decoding for RACH transmissions in the SBFD slots / symbols.
[0268] User Equipment FIG. 32 is a schematic block diagram showing the main components of the UE 3 shown in FIG.
[0269] As shown, the UE 3 includes transceiver circuitry 31 operable to transmit signals to and receive signals from a base station 5 via one or more antennas 33 (e.g., comprising one or more antenna elements). The UE 3 includes a controller 37 that controls the operation of the UE 3. The controller 37 is associated with a memory 39 and couples to the transceiver circuitry 31. Although not necessary for its operation, the UE 3 may of course have all the usual functionality of a conventional UE 3 (e.g., a user interface 35 such as a touchscreen / keypad / microphone / speaker to allow direct control and interaction by a user), which may be provided by any one or any combination of hardware, software, and firmware, as appropriate. Software may be pre-installed in memory 39 and / or downloaded, for example, over a telecommunications network or from a removable data storage device (RMD).
[0270] Controller 37, in this example, is configured to control the overall operation of UE 3 via program or software instructions stored in memory 39. As shown, these software instructions include, among other things, an operating system 41, a communications control module 43, a measurement signal management module 45, and an uplink power control module 51.
[0271] The communications control module 43 is operable to control overall communications between the UE 3 and its one or more serving base stations 5 (as well as other communications devices connected to the base stations 5, such as further UEs and / or core network nodes). The communications control module 43 is configured for overall processing of uplink communications over associated uplink channels (e.g., physical uplink control channel (PUCCH), random access channel (RACH), and / or physical uplink shared channel (PUSCH)), including both dynamic and quasi-static signaling (e.g., SRS). The communications control module 43 is also configured for overall processing of reception of downlink communications over associated downlink channels (e.g., physical downlink control channel (PDCCH) and / or physical downlink shared channel (PDSCH)), including both dynamic and quasi-static signaling (e.g., CSI-RS). The communications control module 43 is responsible for, for example, determining the resources to be used by the UE 3, determining how the slots / symbols are configured (e.g., for UL, DL or SBFD communications, etc.), determining which one or more bandwidth portions are configured for the UE 3, determining how uplink transmissions should be coded, appropriately applying any SBFD-specific communications configurations, etc.
[0272] The measurement signal management module 45, under overall control by the communication control module 43, is responsible for managing tasks related to the reception and measurement of downlink signals for measurement at the UE 3, such as reference signals and / or synchronization signals (e.g., SSB, CSI-RS, DMRS, etc.), and the transmission of uplink signals (e.g., SRS) for measurement at the base station 5. The measurement signal management module 45 is also responsible for generating appropriate reports based on measurements (e.g., CSI reports carrying appropriate information such as CQI, PMI, RI, LI, CRI, cri-RSRP, cri-SINR, etc., depending on appropriate configuration from the base station 5). The measurement signal management module 45 is also responsible for deriving propagation channel parameters (e.g., from the DMRS) for the purpose of accurately decoding the PDSCH.
[0273] The uplink power control module 51 is responsible for performing power control for uplink transmissions (such as PUSCH / PUCCH / PRACH / SRS) based on power control parameters preconfigured by the UE 3 and / or parameters configured by the base station 5, subject to overall control by the communication control module 43.
[0274] base station Figure 33 is a schematic block diagram illustrating the main components of a base station 5 for the communication system 1 shown in Figure 2. As shown, the base station 5 has transceiver circuitry 51 for transmitting signals to and receiving signals from communication devices (such as UE 3) via one or more antennas 53 (e.g., single or multi-panel antenna arrays / large-scale antennas), and a core network interface 55 (e.g., including N2, N3, and other reference points / interfaces) for transmitting signals to and receiving signals from network nodes in the core network 7. Although not shown, the base station 5 may also connect to other base stations via appropriate interfaces (e.g., so-called "Xn" interfaces in NR). The base station 5 has a controller 57 for controlling the operation of the base station 5. The controller 57 is associated with a memory 59. Software may be pre-installed in the memory 59 and / or may be downloaded, for example, via the communication network 1 or from a removable data storage device (RMD). The controller 57 is configured, in this example, to control the overall operation of the base station 5 by means of program or software instructions stored in the memory 59.
[0275] As shown, these software instructions include, among other things, an operating system 61, a communications control module 63, a measurement signal management module 65, a transmission parameter management module 71, and a system information module 73.
[0276] The communication control module 63 is operable to control communications between the base station 5 and the UEs 3 and other network entities connected to the base station 5. The communication control module 63 is configured for overall control of reception and decoding of uplink communications over associated uplink channels (e.g., physical uplink control channel (PUCCH), random-access channel (RACH), and / or physical uplink shared channel (PUSCH)), including both dynamic and semi-static signaling (e.g., SRS). The communications control module 63 is also configured for overall handling of the transmission of downlink communications over associated downlink channels (e.g., physical downlink control channel (PDCCH) and / or physical downlink shared channel (PDSCH)), including both dynamic and quasi-static signaling (e.g., CSI-RS). The communications control module 63 is responsible for managing full-duplex (e.g., SBFD) communications, including, where appropriate, separation of communications in the UL and DL over different physical antenna elements. The communications control module 63 is responsible, for example, for managing the mapping of downlink communications to the appropriate logical antenna port / antenna element configurations and applying appropriate precoding and / or beamforming. The communication control module 63 is also responsible for, for example, determining and scheduling resources to be used by the UE3 for receiving on the DL / transmitting on the UL, configuring slots / symbols appropriately (e.g., for UL, DL or SBFD communication, etc.), configuring one or more bandwidth portions for the UE3, and providing related configuration signaling to the UE3.
[0277] The measurement signal management module 65 is responsible for managing tasks related to the transmission of downlink signals for measurement at the UE 3, such as reference signals (e.g., SSB, CSI-RS, DMRS, etc.) and / or synchronization signals, as well as the reception and measurement of uplink signals (e.g., SRS) for measurement at the base station 5, under overall control by the communication control module 63. The measurement signal management module 65 is also responsible for configuring appropriate resources (e.g., CSI-RS resources) for such measurement signals and for UE reporting related to the measurement signals (e.g., configuring CSI reports carrying appropriate information such as CQI, PMI, RI, LI, CRI, cri-RSRP, cri-SINR, etc., in response to appropriate configuration from the base station 5). The measurement signal management module 65 is also responsible for triggering reports (e.g., aperiodic CSI-RS reports, etc.) on the measurement signals, when appropriate.
[0278] The transmission parameter management module is responsible for managing the downlink transmission parameters applied by the base station 5 and the uplink transmission parameters applied by the UE 3, including precoding (codebook) parameters, logical antenna port parameters, rank parameters, power control parameters, etc., under the overall control of the communication control module 63.
[0279] Variations and Alternatives Although detailed embodiments have been described above, those skilled in the art will appreciate that several modifications and alternatives can be made to the above embodiments while still benefiting from the present disclosure embodied therein.
[0280] For example, for clarity, terminology specific to a cellular communication generation (2G, 3G, 4G, 5G, 6G, etc.) may be used to refer to a particular communication entity, but it will be understood that technical features described with respect to a given entity are not limited to devices of that particular communication generation. Technical features may be implemented in any functionally equivalent communication entity regardless of the terminology used to refer to it.
[0281] In the above description, for ease of understanding, the UE and base station are described as having several separate functional components or modules. While these modules may be provided in this manner in certain applications, for example, where an existing system is modified to implement the present disclosure, in other applications, for example, a system designed from the beginning with the features of the present invention in mind, these modules may be incorporated into an overall operating system or code such that they may not be identifiable as separate entities.
[0282] In the above embodiments, several software modules have been described. As will be appreciated by those skilled in the art, the software modules may be provided in compiled or uncompiled form and may be supplied to the base station, mobility management entity, or UE via a computer network or as a signal 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 base station or UE to update their functions.
[0283] 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) facilities, hardware or software-implemented counters, pointers and / or timers, etc. Various other modifications will be apparent to those skilled in the art and will not be described in further detail herein.
[0284] The base station may comprise a "distributed" base station having a central unit (CU) and one or more separate distributed units (DUs).
[0285] User equipment (or "UE," "mobile station," "mobile device," or "wireless device") in this disclosure is an entity that connects to a network via an air interface.
[0286] It should be noted that the present disclosure is not limited to dedicated communication devices, but can be applied to any device having communication capabilities as described in the following paragraphs.
[0287] The terms "User Equipment" or "UE" (as that term is used in 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 recognized that the terms "mobile station" and "mobile device" also encompass devices that remain stationary for extended periods of time.
[0288] The 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.).
[0289] A UE may be, for example, an item of transportation equipment (e.g., rail cars, automobiles, motorcycles, bicycles, trains, buses, karts, skating shows, ships and other watercraft, aircraft, rockets, satellites, drones, balloons, and other transportation equipment). A UE may be, for example, an item of information and communications equipment (e.g., information and communications equipment such as electronic computers and related equipment, communications and related equipment, electronic components, etc.).
[0290] The UE may be, for example, a refrigerator, a refrigerator-applied product, an item of goods and / or service industry equipment, a vending machine, an automated service machine, an office machine or appliance, a consumer electronic device and an electronic appliance (e.g., a consumer electronic device such as an audio device, a video device, a speaker, a radio, a television, a microwave oven, a rice cooker, a coffee machine, a dishwasher, a washing machine, a dryer, an electronic fan or related appliance, a vacuum cleaner, etc.).
[0291] 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 motorized application device, etc.).
[0292] 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 surveying or sensing device such as a smoke alarm, a motion sensor, a radio frequency tag, etc.), a watch or clock, an inspection device, an optical device, a medical device and / or system, a weapon, an item of cutlery, a hand tool, etc.
[0293] The UE may be, for example, a wireless-equipped personal digital assistant or related equipment (e.g., a wireless card or module designed to be attached to or inserted into another electronic device (e.g., a personal computer, electrical measuring instrument)).
[0294] The UE may be part of a device or system that uses various wired and / or wireless communication technologies to provide the applications, services, and solutions described below with respect to the "internet of things (IoT)."
[0295] Internet of Things devices (or "Things") can be equipped with appropriate electronics, software, sensors, network connectivity, 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 extended periods of time. IoT devices may be implemented as part of (generally) stationary equipment. IoT devices may also be embedded in non-stationary equipment (e.g., vehicles) or attached to animals or people being monitored / tracked. 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.
[0296] It will be appreciated that IoT devices may also be referred to as Machine-Type Communication (MTC) communication devices or Machine-to-Machine (M2M) communication devices. It will be appreciated that a UE may support one or more IoT or MTC applications. Some examples of MTC applications are listed in the table below. This list is not exhaustive and is intended to illustrate some examples of machine-type communication applications. [Table 4]
[0297] 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 telecommunications systems, Point of sale (POS) systems, incoming advertising 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.
[0298] 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.
[0299] In summary, in one example above, a method performed by a user equipment (UE) (and corresponding UE, access network node, and method performed by the access network node) is disclosed, the method comprising: communicating with the access network node in at least one time resource of a plurality of time resources, the plurality of time resources including at least one time resource configured for downlink communication and at least one time resource configured for full-duplex communication; receiving from the access network node configuration information for at least one downlink reference signal to be reported, the configuration information including information indicating a configuration of the at least one downlink reference signal resource for the at least one downlink reference signal to be reported; and, based on the configuration information, transmitting at least one physical downlink shared reference signal in the at least one time resource configured for downlink communication. and reporting to an access network node first information based on at least one measurement of the at least one downlink reference signal transmitted using the at least one downlink reference signal resource for configuring a first transmitter parameter configuration for a PDSCH, the first information being based on at least one measurement of the at least one downlink reference signal transmitted using the at least one downlink reference signal resource, and second information based on the at least one measurement of the at least one downlink reference signal transmitted using the at least one downlink reference signal resource for configuring a second transmitter parameter configuration for the at least one PDSCH transmitted in the at least one time resource configured for full-duplex communication; receiving the at least one PDSCH from the access network node in at least one time resource of the plurality of time resources, and determining that if the at least one PDSCH is received in the at least one time resource configured for downlink communication, the at least one PDSCH is to be transmitted using the first transmitter parameter configuration, and if the at least one PDSCH is received in the at least one time resource configured for full-duplex communication, the at least one PDSCH is to be transmitted using the second transmitter parameter configuration.
[0300] In summary, it can also be seen that in the above example, a method performed by a user equipment (UE) (and corresponding UE, access network node, and method performed by the access network node) is disclosed, the method comprising: communicating with the access network node in at least one time resource of a plurality of time resources, the plurality of time resources including at least one time resource configured for downlink communication and at least one time resource configured for full-duplex communication; receiving from the access network node first information indicating a first configuration associated with transmission of at least one downlink reference signal in the at least one time resource configured for downlink communication, a second configuration associated with transmission of the at least one downlink reference signal in the at least one time resource configured for full-duplex communication, or second information indicating at least one of: that the at least one downlink reference signal is not transmitted in the at least one time resource of the plurality of time resources; performing at least one measurement of the at least one downlink reference signal transmitted in the at least one time resource of the plurality of time resources; and transmitting at least one report to the at least one access network node based on the at least one measurement, the at least one report including information based on at least one of the first information or the second information.
[0301] The first information may indicate a first resource configuration for transmission of at least one downlink reference signal in at least one time resource configured for downlink communication, and the second information indicates a second resource configuration for transmission of at least one downlink reference signal in at least one time resource configured for full-duplex communication.
[0302] The second information may indicate a power value to be applied for transmission of at least one downlink reference signal in at least one time resource configured for full-duplex communication, the power value being different from another power value to be applied for transmission of at least one downlink reference signal in at least one time resource configured for downlink communication. The second information may indicate an antenna port configuration used for transmission of the at least one downlink reference signal in at least one time resource configured for full-duplex communication, the antenna port configuration being different from another antenna port configuration used for transmission of the at least one downlink reference signal in at least one time resource configured for downlink communication. The second information may indicate an antenna port configuration for each resource of the at least one downlink reference signal. The second information may indicate the antenna port configuration by indicating at least one of a list of antenna port numbers; a range; or a mask. The second information may indicate the antenna port configuration by indicating at least one of a list of antenna panels for a multi-panel antenna; a range; or a mask. The second information may indicate a frequency resource configuration used for transmitting at least one downlink reference signal in at least one time resource configured for full-duplex communication, the frequency resource configuration being different from another frequency resource configuration used for transmitting at least one downlink reference signal in the at least one time resource configured for downlink communication. The second information may indicate the frequency resource configuration by indicating a subset of the at least one frequency resource configured by the first configuration to be punctured or not punctured during the at least one time resource configured for full-duplex communication. The second information may indicate the frequency resource configuration by indicating at least one frequency resource to use in place of the at least one frequency resource configured by the first configuration.
[0303] The first information may indicate a first configuration including a first parameter set including at least one first parameter related to transmission of at least one downlink reference signal in at least one time resource configured for downlink communication, and may indicate a second parameter set including at least one second parameter related to transmission of at least one downlink reference signal in at least one time resource configured for full-duplex communication, and the second information may indicate the at least one second parameter by referencing the first information.
[0304] The first parameter set may be associated with a first reporting configuration for reporting information regarding transmission of at least one downlink reference signal in at least one time resource configured for downlink communication, and the second parameter set is associated with a second reporting configuration for reporting information regarding transmission of at least one downlink reference signal in at least one time resource configured for full-duplex communication. The second information may be received from the access network node in downlink control information for triggering reporting of information related to transmission of the at least one downlink reference signal. The second information may indicate, for the at least one time opportunity, that the at least one downlink reference signal will not be transmitted on the at least one downlink reference signal resource during the at least one time opportunity.
[0305] The second information may identify at least one time opportunity during which at least one downlink reference signal is not transmitted. The second information may indicate at least one downlink reference signal resource of the resource set that is deactivated during the at least one time opportunity. The second information may define at least one downlink reference signal resource during which transmission is restricted during the at least one time opportunity, and the method may further include determining the at least one time opportunity during which transmission is restricted based on the at least one time resource configured for full-duplex communication. The at least one time resource configured for full-duplex communication may be configured based on at least one time resource configuration of a plurality of possible time resource configurations for full-duplex communication, and the at least one time opportunity at which transmission is restricted is determined based on the at least one time resource configuration on which the at least one time resource configured for full-duplex communication is configured.
[0306] The second information may indicate at least one first downlink reference signal resource in which at least one downlink reference transmission does not occur in the at least one time resource configured for full-duplex communication and at least one second downlink reference signal resource in which at least one downlink reference transmission occurs in the at least one time resource configured for full-duplex communication. The second information may indicate at least one time opportunity, at least one downlink reference signal resource, to be punctured. The second information may indicate at least one of an antenna port or a frequency resource to be punctured. The first information may define at least one downlink reference signal resource for at least one downlink reference signal, and the method further includes inhibiting uplink communication in at least one time resource configured for uplink communication or at least one time resource configured for full-duplex communication that overlaps in time with the at least one time opportunity associated with the at least one downlink reference signal resource.
[0307] In summary, it can also be seen that in the above example, a method performed by a user equipment (UE) (and corresponding UE, access network node, and method performed by the access network node) is disclosed, the method comprising: communicating with the access network node in at least one time resource of a plurality of time resources, the plurality of time resources including at least one time resource configured for downlink communication and at least one time resource configured for full-duplex communication; receiving from the access network node a reporting configuration for at least one downlink reference signal to be reported; and reporting to the access network node, based on the reporting configuration, information based on at least one measurement of the at least one downlink reference signal transmitted in the at least one time resource of the plurality of time resources; and, if the at least one downlink reference signal to be reported is transmitted in the at least one time resource configured for full-duplex communication, reporting information based on at least one of measurements on the at least one downlink reference signal transmitted in the at least one time resource configured for downlink communication or partial measurements on the at least one downlink reference signal transmitted in the at least one time resource configured for full-duplex communication.
[0308] The reporting configuration may indicate whether the measurement of the at least one downlink reference signal should be limited to the at least one downlink reference signal transmitted within a time window.
[0309] If the reporting configuration indicates that the measurement of at least one downlink reference should be limited to at least one downlink reference signal transmitted within the time window, and the at least one downlink reference signal being reported is transmitted on at least one time resource configured for full-duplex communication occurring within the time window, the following may occur: The report may report measurement-based information for at least one downlink reference signal transmitted on at least one time resource configured for downlink communication outside the time window and omit reporting measurement-based information for at least one downlink reference signal transmitted on at least one time resource configured for full-duplex communication occurring within the time window. The report may omit reporting for that time window. The report may report information based in part on measurements for at least one downlink reference signal transmitted on at least one time resource configured for full-duplex communication occurring within the time window, and information based in part on measurements for at least one downlink reference signal transmitted on at least one time resource configured for downlink communication not occurring within the time window. The report may report partial measurement-based information for at least one downlink reference signal transmitted on at least one time resource configured for full-duplex communication occurring within the time window, and omit reporting measurement-based information for any downlink reference signal transmitted on time resources occurring outside the time window.
[0310] If the reporting configuration indicates that the measurement of at least one downlink reference should not be limited to at least one downlink reference signal transmitted within a time window, and the at least one downlink reference signal being reported is transmitted on at least one time resource configured for full-duplex communication, the following may occur: The report may report measurement-based information for at least one downlink reference signal transmitted on at least one time resource configured for downlink communication and may omit reporting measurement-based information for at least one downlink reference signal transmitted on at least one time resource configured for full-duplex communication. The report may report measurement-based information for at least one downlink reference signal transmitted on at least one time resource configured for full-duplex communication and measurement-based information for at least one downlink reference signal transmitted on at least one time resource configured for downlink communication.
[0311] In summary, in the above example, a method performed by a user equipment (UE) (and corresponding UE, access network node, and methods performed by the access network node) is disclosed, the method communicating with the access network node in at least one time resource of a plurality of time resources, the plurality of time resources including at least one time resource configured for uplink communication and at least one time resource configured for full-duplex communication, and it is also understood that the communicating includes performing at least one uplink transmission of the at least one time resource configured for full-duplex communication based on a first uplink transmission configuration defined for the uplink transmission of the at least one time resource configured for full-duplex communication, and the first uplink transmission configuration is different from a second uplink transmission configuration defined for the uplink transmission of the at least one time resource configured for uplink communication.
[0312] The first uplink transmission configuration may include at least one power value to be applied for uplink transmission in the at least one time resource configured for full-duplex communication, the at least one power value being different from at least one corresponding power value included in the second uplink transmission configuration to be applied for uplink transmission in the at least one time resource configured for uplink communication. The method may further include receiving an indication from the access network node indicating at least one power value. The indication indicating the at least one power value may indicate at least one power state of a plurality of different possible power states to be applied for uplink transmissions in at least one time resource configured for full-duplex communication. The at least one power value may indicate at least one power offset to be applied for uplink transmissions in at least one time resource configured for full-duplex communication. The indication of the at least one power value may indicate at least one particular power value to be applied for uplink transmissions in at least one time resource configured for full-duplex communication. The indication of the at least one power value from the access network node may indicate a different respective power value to be applied for uplink transmissions in each of a plurality of uplink channels. The first uplink transmission configuration may include an encoding rule to be applied for uplink transmissions in the at least one time resource configured for full-duplex communication, the encoding rule being different from another encoding rule included in the second uplink transmission configuration to be applied for uplink transmissions in the at least one time resource configured for uplink communication. The first uplink transmission configuration may include a repetition count to be applied for uplink transmissions in the at least one time resource configured for full-duplex communication, the repetition count being different from another repetition count included in the second uplink transmission configuration to be applied for uplink transmissions in the at least one time resource configured for uplink communication. The first uplink transmission configuration may include a random access channel (RACH) format to be applied for uplink transmissions in the at least one time resource configured for full-duplex communication, the RACH format being different from another (RACH) format included in the second uplink transmission configuration to be applied for uplink transmissions in the at least one time resource configured for uplink communication.
[0313] In summary, it can also be seen that in the above example, a method performed by a user equipment (UE) (and corresponding UE, access network node, and method performed by the access network node) is disclosed, the method including: receiving, from the access network node, first information indicating a first configuration for transmission of at least one downlink reference signal in at least one time resource configured for a first communication scheme, a second configuration for transmission of at least one downlink reference signal in at least one time resource configured for a second communication scheme, or second information indicating at least one of: that the at least one downlink reference signal is not transmitted in the at least one time resource; performing at least one measurement of the at least one downlink reference signal transmitted in the at least one time resource based on at least one of the first information or the second information; and transmitting at least one report to the access network node based on the at least one measurement, wherein the at least one report includes information based on at least one of the first information or the second information.
[0314] The first communication scheme may correspond to downlink communication. The second communication scheme may correspond to full-duplex communication. The second information may indicate at least one of a power value or an antenna port configuration for transmission of the at least one downlink reference signal in the at least one time resource configured for the second communication scheme, the at least one power value or antenna port configuration being different from a corresponding at least one of a power value or an antenna port configuration for transmission of the at least one downlink reference signal in the at least one time resource configured for the first communication scheme. The second information may indicate an antenna port configuration used for transmission of the at least one downlink reference signal in the at least one time resource configured for the second communication scheme, the antenna port configuration being different from another antenna port configuration used for transmission of the at least one reference signal in the at least one time resource configured for the first communication scheme. The second information may indicate a frequency resource configuration used for transmission of the at least one downlink reference signal in the at least one time resource configured for the second communication scheme, the frequency resource configuration being different from another frequency resource configuration used for transmission of the at least one reference signal in the at least one time resource configured for the first communication scheme. The second information may indicate the frequency resource configuration by indicating a subset of the at least one frequency resource configured by the first configuration that is punctured or not punctured during the at least one time resource configured for the second communication scheme.
[0315] The first configuration may include a first parameter set including at least one first parameter related to transmission of at least one downlink reference signal in at least one time resource configured for the first communication scheme and a second parameter set including at least one second parameter related to transmission of the at least one downlink reference signal in at least one time resource configured for the second communication scheme, and the second information may indicate the at least one second parameter by referencing the first information.
[0316] The first parameter set may be associated with a first reporting configuration for transmitting at least one report on transmission of at least one downlink reference signal in at least one time resource configured for a first communication scheme, and the second parameter set may be associated with a second reporting configuration for transmitting at least one report on transmission of at least one downlink reference signal in at least one time resource configured for a second communication scheme.
[0317] The second information may be received from the access network node in downlink control information for transmitting at least one report related to transmission of the at least one downlink reference signal, and the second information may indicate, for at least one time opportunity, that the at least one downlink reference signal will not be transmitted on the at least one downlink reference signal resource for the at least one time opportunity.
[0318] The second information may define at least one downlink reference signal resource during which no transmission is performed at least one time opportunity, and the method may further include determining the at least one time opportunity during which transmission is restricted based on the at least one time resource configured for the second communication scheme.
[0319] The at least one time resource configured for the second communication scheme may be configured based on at least one time resource configuration of a plurality of possible time resource configurations for the second communication scheme, and the at least one time opportunity at which transmission is restricted may be determined based on the at least one time resource configuration on which the at least one time resource configured for the second communication scheme is based.
[0320] In one aspect, a method performed by a user equipment (UE) is provided, the method including receiving, from an access network node, a reporting configuration for at least one downlink reference signal transmitted within a time window; if at least one time resource within the time window is configured for a second communication scheme, transmitting, to the access network node based on the reporting configuration, information based on at least one of measurements on the at least one downlink reference signal configured for the first communication scheme or partial measurements on the at least one downlink reference signal transmitted in the at least one time resource configured for the second communication scheme, or omitting transmitting information to the access network node based on the reporting configuration.
[0321] The first communication method may correspond to downlink communication, and the second communication method may correspond to full-duplex communication.
[0322] If at least one time resource in the time window is configured for a second communication scheme, the method may include transmitting, to the access network node, measurement-based information for the at least one downlink reference signal configured for the first communication scheme without partial measurement-based information for the at least one downlink reference signal transmitted on the at least one time resource configured for the second communication scheme.
[0323] If at least one time resource within the time window is configured for a second communication scheme, the method may include transmitting, to the access network node, information based in part on measurements for at least one downlink reference signal configured for the first communication scheme and information based in part on measurements for at least one downlink reference signal transmitted on the at least one time resource configured for the second communication scheme.
[0324] If at least one time resource within the time window is configured for a second communication scheme, the method may include transmitting, to the access network node, partial measurement-based information for the at least one downlink reference signal transmitted on the at least one time resource configured for the second communication scheme without the measurement-based information for the at least one downlink reference signal transmitted on the at least one time resource configured for the first communication scheme.
[0325] If at least one time resource within the time window is configured for a second communication scheme, the method may include transmitting information to the access network node based on full measurements for the at least one downlink reference signal configured for the first communication scheme and based on partial measurements for the at least one downlink reference signal transmitted in the at least one time resource configured for the second communication scheme in accordance with the reporting configuration.
[0326] In one aspect, a method performed by a user equipment (UE) is provided, the method including performing at least one uplink transmission in at least one time resource configured for a second communication scheme based on a first uplink transmission configuration defined for the uplink transmission in the at least one time resource configured for the second communication scheme, the first uplink transmission configuration being different from a second uplink transmission configuration defined for the uplink transmission in the at least one time resource configured for a third communication scheme.
[0327] The second communication method may correspond to full-duplex communication, and the third communication method may correspond to uplink communication.
[0328] The first uplink transmission configuration may include at least one power value to be applied for uplink transmission in at least one time resource configured for the second communication scheme, the at least one power value being different from at least one corresponding power value included in the second uplink transmission configuration to be applied for uplink transmission in at least one time resource configured for the third communication scheme.
[0329] The method may further include receiving, from the access network node, an indication of at least one power value. The indication of the at least one power value may indicate at least one particular power value to be applied for uplink transmissions in at least one time resource configured for the second communication scheme. The first uplink transmission configuration may include an encoding rule to be applied for uplink transmissions in at least one time resource configured for the second communication scheme, which encoding rule is different from another encoding rule included in the second uplink transmission configuration to be applied for uplink transmissions in at least one time resource configured for the third communication scheme. The first uplink transmission configuration may include a number of repetitions to be applied for uplink transmissions in the at least one time resource configured for the second communication scheme, which number of repetitions is different from another number of repetitions included in the second uplink transmission configuration to be applied for uplink transmissions in the at least one time resource configured for the third communication scheme.
[0330] The first uplink transmission configuration may include a random access channel (RACH) format applied for uplink transmissions in at least one time resource configured for the second communication scheme, which differs from another RACH format included in the second uplink transmission configuration applied for uplink transmissions in at least one time resource configured for a third communication scheme.
[0331] Various other modifications will be apparent to those skilled in the art and will not be described in further detail here.
[0332] All or part of the above-disclosed embodiments can be described as follows, but are not limited to: (Appendix 1) 1. A method performed by a user equipment (UE), the method comprising: receiving, from an access network node, configuration information of resources for at least one downlink reference signal; performing at least one measurement of at least one downlink reference signal based on the configuration information; transmitting, to the access network node based on the configuration information and the at least one measurement, first information for configuring a first transmitter parameter configuration for at least one physical downlink shared channel (PDSCH) to be transmitted on the at least one time resource configured for the communication scheme and second information for configuring a second transmitter parameter configuration for the at least one PDSCH to be transmitted on the at least one time resource configured for another communication scheme; receiving at least one PDSCH from an access network node; Including, If the at least one PDSCH is received on the at least one time resource configured for the communication scheme, the at least one PDSCH is transmitted using the first transmitter parameter configuration; If the at least one PDSCH is received on at least one time resource configured for another communication scheme, the at least one PDSCH is transmitted using a second transmitter parameter configuration. (Appendix 2) The communication method corresponds to downlink communication, Another communication method is a full-duplex communication method. The method described in Appendix 1. (Appendix 3) the configuration information includes information indicating a configuration of a single downlink reference signal resource; both the first transmitter parameter configuration and the second transmitter parameter configuration are based on at least one measurement on a single downlink reference signal resource; 10. The method according to claim 1 or 2. (Appendix 4) The configuration information may include, for a configuration of a single downlink reference signal resource: at least one of a first port or a first frequency resource for reporting first information; at least one of a second port or a second frequency resource for reporting second information; The method according to claim 3, (Appendix 5) the configuration information includes information indicating a first configuration of at least one first downlink reference signal resource and a second configuration of at least one second downlink reference signal resource; the first transmitter parameter configuration is based on at least one measurement related to at least one first downlink reference signal resource; the second transmitter parameter configuration is based on at least one measurement on at least one second downlink reference signal resource; The method described in Appendix 1. (Appendix 6) the first configuration of the at least one first downlink reference signal resource is based on the first set of at least one resource; the second configuration is based on a second set of at least one resource, and at least one resource of the first set and at least one resource of the second set overlap; The method described in Appendix 5. (Appendix 7) the first information includes an indication of at least one first wideband cell quality indicator (CQI); the second information includes an indication of at least one second wideband CQI; the indication of the at least one second wideband CQI indicates the at least one second wideband CQI relative to the first CQI; 7. The method of any one of appendixes 1 to 6. (Appendix 8) the first information includes an indication of at least one subband cell quality indicator (CQI); The second information does not include any indication of subband CQI. 8. The method of any one of appendices 1 to 7. (Appendix 9) the first information includes an indication of at least one first subband cell quality indicator (CQI); the second information includes an indication of at least one second subband CQI based on a condition that the number of second subband CQIs for the indication in the second information differs from the corresponding first subband CQI by at least a threshold value; 8. The method of any one of appendices 1 to 7. (Appendix 10) the first information includes an indication of at least one first subband cell quality indicator (CQI); the second information includes an indication of how many second subband CQIs differ from corresponding first subband CQIs by at least a threshold value; The method described in Appendix 9. (Appendix 11) the first information includes an indication of at least one first subband cell quality indicator (CQI); the second information includes an indication of at least one second subband CQI for the subset of subbands; The method described in Appendix 9. (Appendix 12) the first information includes an indication of at least one subband precoding matrix indicator (PMI); The second information does not include any indication of subband PMI. 12. The method of any one of appendixes 1 to 11. (Appendix 13) the first information includes an indication of at least one first subband precoding matrix indicator (PMI); the second information includes an indication of at least one second subband PMI based on a condition that the number of second subband PMIs for the indication in the second information differs from the corresponding first subband PMI by at least a threshold value; 12. The method of any one of appendixes 1 to 11. (Appendix 14) the first information includes an indication of at least one first precoding matrix indicator (PMI); the second information includes an indication of how many second subband PMIs differ from corresponding first subband CQIs by at least a threshold value; 12. The method of any one of appendixes 1 to 11. (Appendix 15) the first information includes an indication of at least one first precoding matrix indicator (PMI); the second information includes an indication of at least one second subband PMI for the subset of subbands; 12. The method of any one of appendixes 1 to 11. (Appendix 16) the first information includes at least one first rank indicator (RI) indication; the second information includes at least one second RI; If the at least one second RI value is different from the corresponding at least one first RI value, the second information includes an indication of at least one precoding matrix indicator (PMI) column or layer that is valid for the at least one second RI value; 12. The method of any one of appendixes 1 to 11. (Appendix 17) The second information forms part of a partial report of information based on at least one measurement of at least one downlink reference signal transmitted using at least one downlink reference signal resource, and the method comprises: receiving trigger information from the access network node for triggering transmission of a further report; Submitting further reports and 17. The method of any of claims 1 to 16, further comprising: (Appendix 18) 18. The method of claim 17, wherein the trigger information indicates that further reporting should be based on previously performed measurements. (Appendix 19) 19. The method of any of claims 1 to 18, wherein the second information is transmitted as part of the same report as the first information. (Appendix 20) 20. The method of claim 19, wherein the configuration information indicates at least one parameter to be reported as part of the second information. (Appendix 21) the first information is transmitted as part of the first report; the second information is transmitted as part of a second report that is different from the first report; at least one parameter reported as part of the second report is determined based on at least one parameter reported as part of the first report; 21. The method of any one of appendixes 1 to 20. (Appendix 22) 22. The method of claim 21, wherein the configuration information indicates an association between the first report and the second report. (Appendix 23) the first information and the second information are based on respective measurements on at least one first downlink reference signal resource and at least one second downlink reference signal resource; the at least one first downlink reference signal resource and the at least one second downlink reference signal resource at least partially overlap; 23. The method of any one of appendices 1 to 22. (Appendix 24) 24. The method of any of claims 1 to 23, wherein the first information and the second information are jointly encoded. (Appendix 25) 1. A method performed by an access network node, the method comprising: transmitting, to a user equipment (UE), resource configuration information for at least one downlink reference signal; receiving, from the UE, first information for configuring a first transmitter parameter configuration for at least one physical downlink shared channel (PDSCH) transmitted on the at least one time resource configured for the communication scheme and second information for configuring a second transmitter parameter configuration for the at least one PDSCH transmitted on the at least one time resource configured for another communication scheme, based on the configuration information and at least one measurement of the at least one downlink reference signal based on the configuration information; transmitting at least one PDSCH to the UE; Including, If the at least one PDSCH is received on the at least one time resource configured for the communication scheme, the at least one PDSCH is transmitted using the first transmitter parameter configuration; If the at least one PDSCH is received on at least one time resource configured for another communication scheme, the at least one PDSCH is transmitted using a second transmitter parameter configuration. (Appendix 26) A user equipment (UE), means for receiving, from an access network node, resource configuration information for at least one downlink reference signal; means for performing at least one measurement of at least one downlink reference signal based on the configuration information; means for transmitting, to an access network node based on the configuration information and the at least one measurement, first information for configuring a first transmitter parameter configuration of at least one physical downlink shared channel (PDSCH) to be transmitted on at least one time resource configured for the communication method and second information for configuring a second transmitter parameter configuration of at least one PDSCH to be transmitted on at least one time resource configured for another communication method; means for receiving at least one PDSCH from an access network node; Equipped with If the at least one PDSCH is received on the at least one time resource configured for the communication scheme, the at least one PDSCH is transmitted using the first transmitter parameter configuration; If the at least one PDSCH is received on at least one time resource configured for another communication scheme, the at least one PDSCH is transmitted using a second transmitter parameter configuration, user equipment (UE). (Appendix 27) an access network node, means for transmitting, to a user equipment (UE), resource configuration information for at least one downlink reference signal; means for receiving, from the UE, first information for configuring a first transmitter parameter configuration for at least one physical downlink shared channel (PDSCH) transmitted on at least one time resource configured for the communication scheme and second information for configuring a second transmitter parameter configuration for the at least one PDSCH transmitted on at least one time resource configured for another communication scheme, based on the configuration information and at least one measurement of the at least one downlink reference signal based on the configuration information; means for transmitting at least one PDSCH to a UE; Equipped with If the at least one PDSCH is received on the at least one time resource configured for the communication scheme, the at least one PDSCH is transmitted using the first transmitter parameter configuration; If the at least one PDSCH is received on at least one time resource configured for another communication scheme, the at least one PDSCH is transmitted using a second transmitter parameter configuration, the access network node.
[0333] This application is based on and claims the benefit of priority from UK Patent Application No. 2211856.6, filed August 12, 2022, the disclosure of which is incorporated herein by reference in its entirety. [Explanation of symbols]
[0334] 3 User Equipment (UE) 5 Radio Access Network (RAN) Nodes 7 Core Network 10 Control Plane Function (CPF) 11 User Plane Function (UPF)
Claims
1. 1. A method performed by a user equipment (UE), the method comprising: receiving configuration information for measurements of at least one reference signal from an access network node; performing the measurement of the at least one reference signal based on the configuration information; The configuration information is common resources for the at least one reference signal; or a common quasi co-location (QCL) for each resource of the at least one reference signal; indicates, The method, wherein the configuration information includes a plurality of spatial transmission characteristics of the at least one reference signal.
2. the configuration information indicates a first measurement configuration for a first communication method and a second measurement configuration for a second communication method; the first measurement configuration indicates a first spatial transmission characteristic of the first communication method; the second measurement configuration indicating a second spatial transmission characteristic for the second communication method; The method of claim 1.
3. the first communication method corresponds to time division duplex communication, the second communication method corresponds to full-duplex communication; The method of claim 2.
4. the first measurement configuration and the second measurement configuration indicate a common resource for the at least one reference signal; The configuration information is at least one of a first number of ports, a first beam pattern, a first antenna gain, or a first frequency resource for the measurement; and At least one of a second number of ports, a second beam pattern, a second antenna gain, or a second frequency resource for the measurement. The method according to claim 2 or 3, wherein
5. the at least one of the number of the first ports, the first beam pattern, the first antenna gain, or the first frequency resource is for the first communication scheme; the at least one of the number of the second ports, the second beam pattern, the second antenna gain, or the second frequency resource is for the second communication scheme. The method of claim 4.
6. the first measurement configuration and the second measurement configuration indicate a common quasi co-location (QCL) for respective resources of the at least one reference signal; the first measurement configuration indicates at least one first reference signal resource; the second measurement configuration indicates at least one second reference signal resource; the at least one first reference signal resource and the at least one second reference signal resource overlap. The method according to claim 2 or 3.
7. The method further comprises: based on said configuration information and said measurements, to said access network node; First configuration information of a physical downlink shared channel (PDSCH) transmitted in a first time resource configured for the first communication scheme; Second configuration information of a PDSCH transmitted in a second time resource configured for the second communication method. Send receiving a PDSCH from the access network node based on either the first configuration information or the second configuration information; 7. The method according to any one of claims 1 to 6.
8. the first configuration information includes an indication of a first wideband cell quality indicator (CQI); the second configuration information includes an indication of a second wideband CQI; the indication of the second wideband CQI indicates the second wideband CQI relative to the first wideband CQI. The method of claim 7.
9. the first configuration information includes an indication of a subband cell quality indicator (CQI); the second configuration information does not include any indication of subband CQI; 9. The method according to claim 7 or 8.
10. the first configuration information includes an indication of at least one first subband cell quality indicator (CQI); the second configuration information includes an indication of at least one second subband CQI based on a condition that the number of second subband CQIs for the indication in the second configuration information differs from the corresponding first subband CQI by at least a threshold value; 9. The method according to claim 7 or 8.
11. the first configuration information includes an indication of at least one first subband cell quality indicator (CQI); the second configuration information includes an indication of how many second subband CQIs differ from corresponding first subband CQIs by at least a threshold value; 9. The method according to claim 7 or 8.
12. the first configuration information includes an indication of at least one first subband cell quality indicator (CQI); the second configuration information includes an indication of at least one second subband CQI for a subset of subbands.
9. The method according to claim 7 or 8.
13. the first configuration information includes an indication of at least one subband precoding matrix indicator (PMI); the second configuration information does not include any indication of subband PMI; 13. The method according to any one of claims 7 to 12.
14. the first configuration information includes an indication of at least one first subband precoding matrix indicator (PMI); the second configuration information includes an indication of at least one second subband PMI based on a condition that the number of second subband PMIs for the indication in the second information differs from the corresponding first subband PMI by at least a threshold value.
13. The method according to any one of claims 7 to 12.
15. the first configuration information includes an indication of at least one first precoding matrix indicator (PMI); the second configuration information includes an indication of how many second subband PMIs differ from corresponding first subband CQIs by at least a threshold value.
13. The method according to any one of claims 7 to 12.
16. the first configuration information includes an indication of at least one first precoding matrix indicator (PMI); the second configuration information includes an indication of at least one second subband PMI for a subset of subbands.
13. The method according to any one of claims 7 to 12.
17. the first configuration information includes an indication of at least one first rank indicator (RI); the second configuration information includes at least one second RI; If the value of the at least one second RI is different from a corresponding value of the at least one first RI, the second information includes an indication of at least one precoding matrix indicator (PMI) column or layer that is valid for the value of the at least one second RI.
17. The method according to any one of claims 7 to 16.
18. The second configuration information forms part of a partial report of the measurement-based information of the at least one reference signal transmitted using the at least one reference signal resource, and the method further comprises: receiving trigger information from the access network node for triggering the transmission of a further report; transmitting said further report; 18. The method of any one of claims 7 to 17.
19. The method of claim 18 , wherein the trigger information indicates that the further reporting should be based on previously performed measurements.
20. 20. The method of claim 7, wherein the second configuration information is transmitted as part of the same report as the first configuration information.
21. The method of claim 20 , wherein the configuration information indicates parameters to be reported as part of the second configuration information.
22. the first configuration information is transmitted as part of a first report; the second configuration information is transmitted as part of a second report that is different from the first report; the parameters reported as part of the second report are determined based on the parameters reported as part of the first report.
22. The method of any one of claims 7 to 21.
23. The method of claim 22 , wherein the configuration information indicates an association between the first report and the second report.
24. the first configuration information and the second configuration information are based on respective measurements on at least one first reference signal resource and at least one second reference signal resource; the at least one first reference signal resource and the at least one second reference signal resource at least partially overlap.
24. The method of any one of claims 7 to 23.
25. 25. The method of claim 7, wherein the first configuration information and the second configuration information are jointly encoded.
26. 1. A method performed by an access network node, the method comprising: transmitting, to a user equipment (UE), configuration information for measurements of at least one reference signal; the configuration information is used by the UE for the measurements; The configuration information is Common resources for common reference signals, or a common quasi colocation (QCL) for each resource of the at least one reference signal; indicates, The method, wherein the configuration information includes a plurality of spatial transmission characteristics of the at least one reference signal.
27. A user equipment (UE), means for receiving configuration information for measurements of at least one reference signal from an access network node; means for performing the measurement of the at least one reference signal based on the configuration information; Equipped with The configuration information is Common resources for common reference signals, or a common quasi colocation (QCL) for each resource of the at least one reference signal; indicates, The configuration information includes a plurality of spatial transmission characteristics of the at least one reference signal.
28. an access network node, means for transmitting, to a user equipment (UE), configuration information for measurements of at least one reference signal; Equipped with the configuration information is used by the UE for the measurements; The configuration information is Common resources for common reference signals, or a common quasi colocation (QCL) for each resource of the at least one reference signal; indicates, The configuration information comprises a plurality of spatial transmission characteristics of the at least one reference signal.