Method and apparatus for beam management for multi-stream transmission
Methods and apparatuses for measurement information reporting. A method of a user equipment (UE) includes method receiving a configuration for a set of resources comprising non-zero-power channel state information reference signal (NZP CSI-RS) resources or synchronization signal and physical broadcast channel (SS/PBCH) block resources and receiving NZP CSI-RS in the NZP CSI-RS resources or SS/PBCH blocks in the SS/PBCH block resources from the set of resources. The method includes measuring signal-to-interference and noise ratio (SINR) values based on the NZP CSI-RS or the SS/PBCH blocks; and transmitting, for a subset of resources from the set of resources, a largest of the SINR values, differential SINR values relative to the largest SINR value, and NZP CSI-RS resource indexes (CRIs) or SS/PBCH block indexes for at least some of the NZP CSI-RS resources or the SS/PBCH blocks resources from the subset of resources.
1 . A method comprising:
receiving:
information for parameters of a first control resource set (CORESET),
radio resource control (RRC) information indicating a plurality of transmission configuration indication (TCI) states for the first CORESET, wherein a TCI state provides quasi co-location (QCL) information for a demodulation reference signal (DM-RS) of a physical downlink control channel (PDCCH) in a CORESET, and
a medium access control (MAC) control element (CE) indicating first and second TCI states from the plurality of TCI states;
determining, based on the first TCI state, first QCL information for a first DM-RS of a first PDCCH in the first CORESET;
receiving, based on the first QCL information, the first DM-RS of the first PDCCH in the first CORESET;
determining, based on the second TCI state, second QCL information for a second DM-RS of the first PDCCH in the first CORESET; and
receiving, based on the second QCL information, the second DM-RS of the first PDCCH in the first CORESET.
2 . The method of claim 1 , further comprising:
receiving RRC information indicating a same TCI state for all CORESETs with same index in more than one bandwidth parts (BWPs) of a cell,
wherein determining the first TCI state further comprises determining the first TCI state for all CORESETs with same index as the first CORESET in the more than one BWPs of the cell.
3 . The method of claim 1 , further comprising:
receiving information for parameters of a second CORESET, wherein the parameters of the second CORESET include a third TCI state;
determining, based on the third TCI state, second QCL information for a second DM-RS of a second PDCCH in the second CORESET; and
receiving:
the second DM-RS of the second PDCCH in the second CORESET based on the second QCL information,
the first PDCCH and the second PDCCH,
a first physical downlink shared channel (PDSCH) that provides a first transport block (TB), wherein the first PDSCH is scheduled by a first downlink control information (DCI) format provided by the first PDCCH, and
a second PDSCH that provides a second TB, wherein the second PDSCH is scheduled by a second DCI format provided by the second PDCCH and wherein the first and second PDSCH receptions are over same time resources and over same frequency resources.
4 . The method of claim 1 , further comprising:
receiving information for a set of reference signals (RSS);
determining a set of reference signal received power (RSRP) values, wherein the RSRP values in the set of RSRP values correspond to the RSs in the set of RSs, respectively; and
transmitting information for the set of RSRP values, wherein the TCI states in the set of TCI states are associated with the RSs in the set of RSs, respectively.
5 . The method of claim 4 , wherein:
the first QCL information includes an index of an RS, and
the RS is one of:
a synchronization signal and physical broadcast channel (SS/PBCH) block, or
a channel state information RS (CSI-RS).
6 . A user equipment (UE) comprising:
a transceiver configured to receive:
information for parameters of a first control resource set (CORESET),
radio resource control (RRC) information indicating a plurality of transmission configuration indication (TCI) states for the first CORESET, wherein a TCI state provides quasi co-location (QCL) information for a demodulation reference signal (DM-RS) of a physical downlink control channel (PDCCH) in a CORESET, and
a medium access control (MAC) control element (CE) indicating first and second TCI states from the plurality of TCI states; and
a processor operably coupled to the transceiver, the processor configured to:
determine, based on the first TCI state, first QCL information for a first DM-RS of a first PDCCH in the first CORESET, and
determine, based on the second TCI state, second QCL information for a second DM-RS of the first PDCCH in the first CORESET,
wherein the transceiver is further configured to:
receive, based on the first QCL information, the first DM-RS of the first PDCCH in the first CORESET, and
receive, based on the second QCL information, the second DM-RS of the first PDCCH in the first CORESET.
7 . The UE of claim 6 , wherein:
the transceiver is further configured to receive RRC information indicating a same TCI state for all CORESETs with same index in more than one bandwidth parts (BWPs) of a cell; and
the processor is further configured to determine the first TCI state for all CORESETs with same index as the first CORESET in the more than one BWPs of the cell.
8 . The UE of claim 6 , wherein:
the transceiver is further configured to receive information for parameters of a second CORESET, wherein the parameters of the second CORESET include a third TCI state;
the processor is further configured to determine, based on the third TCI state, second QCL information for a second DM-RS of a second PDCCH in the second CORESET; and
the transceiver is further configured to receive:
the second DM-RS of the second PDCCH in the second CORESET based on the second QCL information,
the first PDCCH and the second PDCCH,
a first physical downlink shared channel (PDSCH) that provides a first transport block (TB), wherein the first PDSCH is scheduled by a first downlink control information (DCI) format provided by the first PDCCH, and
a second PDSCH that provides a second TB, wherein the second PDSCH is scheduled by a second DCI format provided by the second PDCCH and wherein the first and second PDSCH receptions are over same time resources and over same frequency resources.
9 . The UE of claim 6 , wherein:
the transceiver is further configured to receive information for a set of reference signals (RSs);
the processor is further configured to determine a set of reference signal received power (RSRP) values, wherein the RSRP values in the set of RSRP values correspond to the RSs in the set of RSs, respectively; and
the transceiver is further configured to transmit information for the set of RSRP values, wherein the TCI states in the set of TCI states are associated with the RSs in the set of RSs, respectively.
10 . The UE of claim 9 , wherein:
the first QCL information includes an index of an RS, and
the RS is one of:
a synchronization signal and physical broadcast channel (SS/PBCH) block, or
a channel state information RS (CSI-RS).
11 . A base station comprising:
a transceiver configured to transmit:
information for parameters of a first control resource set (CORESET),
radio resource control (RRC) information indicating a plurality of transmission configuration indication (TCI) states for the first CORESET, wherein a TCI state provides quasi co-location (QCL) information for a demodulation reference signal (DM-RS) of a physical downlink control channel (PDCCH) in a CORESET, and
a medium access control (MAC) control element (CE) indicating first and second TCI states from the plurality of TCI states; and
a processor, operably coupled to the transceiver, the processor configured to:
determine, based on the first TCI state, first QCL information for a first DM-RS of a first PDCCH in the first CORESET, and
determine, based on the second TCI state, second QCL information for a second DM-RS of the first PDCCH in the first CORESET,
wherein the transceiver is further configured to:
transmit, based on the first QCL information, the first DM-RS of the first PDCCH in the first CORESET, and
transmit, based on the second QCL information, the second DM-RS of the first PDCCH in the first CORESET.
12 . The base station of claim 11 , wherein:
the transceiver is further configured to transmit RRC information indicating a same TCI state for all CORESETs with same index in more than one bandwidth parts (BWPs) of a cell; and
the processor is further configured to determine the first TCI state for all CORESETs with same index as the first CORESET in the more than one BWPs of the cell.
13 . The base station of claim 11 , wherein:
the transceiver is further configured to transmit information for parameters of a second CORESET, wherein the parameters of the second CORESET include a third TCI state;
the processor is further configured to determine, based on the third TCI state, second QCL information for a second DM-RS of a second PDCCH in the second CORESET; and
the transceiver is further configured to transmit:
the second DM-RS of the second PDCCH in the second CORESET based on the second QCL information,
the first PDCCH and the second PDCCH,
a first physical downlink shared channel (PDSCH) that provides a first transport block (TB), wherein the first PDSCH is scheduled by a first downlink control information (DCI) format provided by the first PDCCH, and
a second PDSCH that provides a second TB, wherein the second PDSCH is scheduled by a second DCI format provided by the second PDCCH and wherein the first and second PDSCH transmissions are over same time resources and over same frequency resources.
14 . The base station of claim 11 , wherein the transceiver is further configured to:
transmit information for a set of reference signals (RSS); and
receive information for a set of reference signal received power (RSRP) values, wherein:
the RSRP values in the set of RSRP values correspond to the RSs in the set of RSs, respectively, and
the TCI states in the set of TCI states are associated with the RSs in the set of RSs, respectively.