METHOD FOR BEAM REPORT IN WIRELESS COMMUNICATION SYSTEM WITH BEAMFORMING
20230143724 ยท 2023-05-11
Inventors
Cpc classification
H04L5/0051
ELECTRICITY
International classification
Abstract
A method for beam report associated with one or more antenna group configurations (AGCs) is proposed. The network node configures one or more AGCs. Each AGC may comprise at least one of an AGC index. Each AGC may comprise the number of ports or layers that can be supported by the UE. In addition, each AGC may comprise an active panel state. The active panel state may indicate whether the UE can perform UL transmission to the network node and/or whether the UE can perform DL reception from the network node. The UE may determine one of the AGCs for each CRI or SSBRI in a beam report. The UE may activate and select one or more panels for DL reception and UL transmission and the UE may receive and measure the reference signal corresponding to the CRI or SSBRI in the beam report.
Claims
1. A method, comprising: receiving one or more antenna group configurations (AGCs) configured by a network node by a user equipment (UE) in a beamforming wireless communication network, wherein each AGC comprises at least one of an AGC index; and reporting at least one of the AGC index in a beam report to the network node by the UE.
2. The method of claim 1, wherein each AGC further comprises a number of ports or layers that can be supported by the UE.
3. The method of claim 1, wherein the beam report comprises at least one channel-state-information reference-signal (CSI-RS) resource index (CRI) or synchronization signal block (SSB) resource index (SSBRI), and wherein each CRI or SSBRI corresponds to a reporting quantity and the AGC index in the beam report.
4. The method of claim 3, wherein each AGC further comprises an active panel state that indicates whether the UE can perform uplink (UL) transmission to the network node, can perform downlink (DL) reception from the network node, or can perform UL transmission to the network node and DL reception from the network node.
5. The method of claim 4, further comprising: performing UL transmission to the network node by the UE according to a reference signal that corresponds to a CRI or SSBRI, and wherein the CRI or SSBRI is associated with the AGC that indicates that the UE can perform UL transmission to the network node.
6. The method of claim 4, further comprising: performing DL reception from the network node by the UE according to a reference signal that corresponds to a CRI or SSBRI, and wherein the CRI or SSBRI is associated with the AGC that indicates that the UE can perform DL reception from the network node.
7. The method of claim 3, wherein the CRIs or SSBRIs associated with different AGCs can be received simultaneously by the UE, and wherein the CRIs or SSBRIs associated with the same AGC cannot be received simultaneously by the UE.
8. The method of claim 1, further comprising: selecting and activating a panel by the UE according to the AGC in an event that the beam report is associated with one AGC configured by the network node.
9. The method of claim 7, wherein CRIs or SSBRIs in different beam reports associated with different AGCs can be received simultaneously by the UE, wherein the CRIs or SSBRIs in different beam reports associated with the same AGC cannot be received simultaneously by the UE, and wherein the CRIs or SSBRIs in the same beam report cannot be received simultaneously by the UE.
10. The method of claim 1, further comprising: receiving a set of Transmission Configuration Indicator (TCI) states configured by the network node via a radio resource control (RRC) signaling, wherein each TCI state associates with an AGC.
11. The method of claim 1, further comprising: reporting a panel-related capability to the network node, wherein the panel-related capability comprises at least one of a maximum number of active panels, a maximum number of panels, a maximum number of configured AGCs, a maximum number of ports or layers of a panel, and a supported active panel state of a panel.
12. A user equipment (UE), comprising: a receiver that receives one or more antenna group configurations (AGCs) configured by a network node in a beamforming wireless communication network, wherein each AGC comprises at least one of an AGC index; and a beam report circuit that reports at least one of the AGC index in a beam report to the network node.
13. The UE of claim 12, wherein each AGC further comprises a number of ports or layers that can be supported by the UE.
14. The UE of claim 12, wherein the beam report comprises at least one channel-state-information reference-signal (CSI-RS) resource index (CRI) or synchronization signal block (SSB) resource index (SSBRI), and wherein each CRI or SSBRI corresponds to a reporting quantity and the AGC index in the beam report.
15. The UE of claim 14, wherein each AGC further comprises an active panel state that indicates whether the UE can perform uplink (UL) transmission to the network, can perform downlink (DL) reception from the network node, or can perform UL transmission to the network node and DL reception from the network node.
16. The UE of claim 15, wherein a processor of the UE performs UL transmission to the network node according to a reference signal that corresponds to a CRI or a SSBRI, and wherein the CRI or the SSBRI is associated with the AGC that indicates the UE can perform UL transmission to the network node.
17. The UE of claim 15, wherein a processor of the UE performs DL reception from the network node according to a reference signal that corresponds to a CRI or SSBRI, and wherein the CRI or SSBRI is associated with the AGC that indicates that the UE can perform DL reception from the network node.
18. The UE of claim 14, wherein the receiver can receive the CRIs or SSBRIs associated with different AGCs simultaneously and wherein the receiver cannot receive the CRIs or SSBRIs associated with the same AGC simultaneously.
19. The UE of claim 12, wherein the receiver receives a set of Transmission Configuration Indicator (TCI) states configured by the network node via a radio resource control (RRC) signaling, and wherein each TCI state associates with an AGC.
20. The UE of claim 12, wherein a transmitter of the UE reports a panel-related capability to the network node, wherein the panel-related capability comprises at least one of a maximum number of active panels, a maximum number of panels, a maximum number of configured AGCs, a maximum number of ports or layers of a panel and a supported active panel state of a panel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] The accompanying drawings, where like numerals indicate like components, illustrate embodiments of the invention.
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DETAILED DESCRIPTION
[0019] Reference will now be made in detail to some embodiments of the invention, examples of which are illustrated in the accompanying drawings.
[0020]
[0021] Network node 101 has an antenna array 111 having multiple antenna elements that transmits and receives radio signals, one or more RF transceiver modules 112, coupled with the antenna array, receives RF signals from antenna 111, converts them to baseband signal, and sends them to processor 113. RF transceiver 112 also converts received baseband signals from processor 113, converts them to RF signals, and sends out to antenna 111. Processor 113 processes the received baseband signals and invokes different functional modules to perform features in network node 101. Memory 114 stores program instructions and data 115 to control the operations of network node 101. Network node 101 also includes multiple function modules that carry out different tasks in accordance with embodiments of the current invention.
[0022] Similarly, UE 102 has an antenna 131, which transmits and receives radio signals. A RF transceiver module 132, coupled with the antenna, receives RF signals from antenna 131, converts them to baseband signals and sends them to processor 133. RF transceiver 132 also converts received baseband signals from processor 133, converts them to RF signals, and sends out to antenna 131. Processor 133 processes the received baseband signals and invokes different functional modules to perform features in UE 102. Memory 134 stores program instructions and data 135 to control the operations of UE 102. UE 102 also includes multiple function modules and circuits that carry out different tasks in accordance with embodiments of the current invention.
[0023] The functional modules and circuits can be implemented and configured by hardware, firmware, software, and any combination thereof. For example, network node 101 comprises a beam management module 120, which further comprises a beamforming circuit 121, a beam monitor 122, a resource allocation circuit 123, and a beam reporting circuit 124. Beamforming circuit 121 may belong to part of the RF chain, which applies various beamforming weights to multiple antenna elements of antenna 111 and thereby forming various beams. Beam monitor 122 monitors received radio signals and performs measurements of the radio signals over the various UE beams. Resource allocation circuit 123 allocates one or more antenna group configurations (AGCs). Beam reporting circuit 124 reports the beam monitoring results for each received UE beam.
[0024] Similarly, UE 102 comprises a beam management module 140, which further comprises a beamforming circuit 141, a beam monitor 142, a beam grouping circuit 143, and a beam report circuit 144. Beamforming circuit 141 may belong to part of the RF chain, which applies various beamforming weights to multiple antenna elements of antenna 131 and thereby forming various beams. Beam monitor 142 monitors received radio signals and performs measurements of the radio signals over the various beams. Beam grouping circuit 143 groups different BS beams into beam groups based on RS resource configuration. Beam report circuit 144 provide beam quality metric and send report to network node 101 in beam groups based on the beam monitoring results for each BS beam.
[0025] In accordance with one novel aspect, a beamforming wireless communication network or a beamforming wireless communication network system comprises the network node 101 and the UE 102. The beamforming wireless communication network uses directional communication with narrow beams and can support multi-gigabit data rate. Directional communication is achieved via digital and/or analog beamforming, wherein multiple antenna elements are applied with multiple sets of beamforming weights to form multiple beams.
[0026] In accordance with one novel aspect, the network node 101 configures one or more antenna group configurations (AGCs). Each AGC may comprise at least one of an AGC index. Each AGC may further comprise the number of ports or layers that can be supported by the UE 102. In addition, each AGC may further comprise an active panel state. Each panel may comprise one or more antennas and/or ports (e.g., a group of antennas). The active panel state may indicate whether the UE 102 can perform uplink (UL) transmission to the network node 101 and/or whether the UE 102 can perform downlink (DL) reception from the network node 101.
[0027] In accordance with one novel aspect, the UE 102 may determine one of the AGCs for each channel-state-information reference-signal (CSI-RS) resource index (CRI) or synchronization signal block (SSB) resource index (SSBRI) in a beam report. In the beam report, each CRI or SSBRI may correspond to an AGC index of the AGCs and a reporting quantity (e.g. L1-reference symbol received power (RSRP) or L1-signal to interference plus noise ratio (SINR)). In addition, the CRI or the SSBRI may be associated with the active panel state of the AGC that indicates the UE 102 can perform UL transmission to the network node 101 and/or the UE 102 can perform downlink (DL) reception from the network node 101. The UE 102 may activate and select one or more panels for DL reception and UL transmission and the UE 102 may receive and measure the reference signal (RS) corresponding to the CRI or SSBRI in the beam report on the activated panel(s). The processor 233 of the UE 102 may perform the UL transmission to the network node 101 according to the RS and/or perform the DL reception from the network node 101 according to the RS. Each panel activated by the processor 233 of the UE 102 is associated with an AGC. The UE 102 may transmit the beam report associated with the AGCs to the network node 101. The UE 102 may report at least one of the AGC index in the beam report to the network node 101.
[0028] In accordance with one novel aspect, the receiver of UE 102 can receive the CRIs or SSBRIs associated with different AGCs simultaneously but cannot receive the CRIs or SSBRIs associated with the same AGC simultaneously.
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[0033] In accordance with one novel aspect, the network node may configure only one AGC. The UE selects and activates a panel according to the AGC configured by the network node and reports a beam report associated with the AGC. In an example, if the network node configures an AGC with AGC index#0 and the active panel state of this AGC indicates that an active panel is selected for UL transmission and DL reception. The UE may select and activate one panel for DL reception and UL transmission and the UE may receive and measure the reference signal (RS) corresponding to the CRI or SSBRI in the beam report associated with the AGC on the activated panel(s). If the network node configures another AGC with AGC index#2 and the active panel state of this AGC indicates that an active panel is selected only for DL reception. The UE may select and activate another panel for DL reception and the UE may receive and measure the reference signal (RS) corresponding to the CRI or SSBRI in the beam report associated with the AGC on the activated panel(s). In an embodiment of the novel aspect, the receiver of the UE can receive CRIs or SSBRIs in different beam reports associated with different AGCs simultaneously; the receiver of the UE cannot receive the CRIs or SSBRIs in different beam reports associated with the same AGC simultaneously; and the receiver of the UE cannot receive the CRIs or SSBRIs in the same beam report simultaneously.
[0034] In accordance with one novel aspect, the receiver of the UE receives a set of Transmission Configuration Indicator (TCI) states configured by the network node via a radio resource control (RRC) signaling. The network node activates one or more TCI states through an MAC control element (MAC-CE). If more than one TCI state is activated by the network node, the network node may indicate one of the activated TCI states for determining spatial Tx filter for UL transmission. If only one TCI state is activated by the network node, the network node may use this activated TCI states for determining spatial Tx filter for UL transmission. In an embodiment, each TCI state associates with an AGC. In another embodiment, each TCI state can be configured with an AGC.
[0035] In accordance with one novel aspect, the transmitter of the UE reports a panel-related capability to the network node. The panel-related capability comprises at least one of the maximum number of active panels, the maximum number of panels, the maximum number of configured AGCs, the maximum number of ports or layers of a panel and the supported active panel state of a panel.
[0036]
[0037] Although the present invention has been described in connection with certain specific embodiments for instructional purposes, the present invention is not limited thereto. Accordingly, various modifications, adaptations, and combinations of various features of the described embodiments can be practiced without departing from the scope of the invention as set forth in the claims.