IP Library Granted Patent US 12,438,673
Granted Patent B2
US 12,438,673 · App. 17/926,644 · Granted Oct 7, 2025

Single coreset based PDCCH diversity over multiple TRPs

Inventors: Shiwei Gao (Nepean, CA); Mattias Frenne (Uppsala, SE); Siva Muruganathan (Stittsville, CA)
Assignee: Telefonaktiebolaget LM Ericsson (publ)
H04L5/0053H04L5/0023H04L5/0035H04L5/0091H04W72/232
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Quick Facts
Patent No.
US 12,438,673
App. No.
17/926,644
Granted
Oct 7, 2025
Kind
B2
Abstract

Systems and methods are disclosed for single Control Resource Set (CORESET) based Physical Downlink Control Channel (PDCCH) diversity over multiple Transmission/Reception Points (TRPs). In one embodiment, a method performed by a wireless communication device comprises receiving a message(s) that activates first and second TCI states for a CORESET comprising first and second sets of resource elements (REs) associated to the first and second TCI states, respectively, and receiving a configuration of PDCCH candidates comprising PDCCH candidates for each of one or more aggregation levels (ALs) in a search space (SS) set. Each PDCCH candidate comprises REs in the first and second sets of REs. The method further comprises receiving a Downlink Control Information (DCI) carried by: (a) a single PDCCH in one PDCCH candidate or (b) first and second repetitions of a PDCCH in the first and second set of REs, respectively.

Claims (73)

1. A method of operation of a wireless communication device for Downlink Control Information, DCI, reception using multiple transmission configuration indication, TCI, states, in a wireless network, the method comprising:

receiving, from a radio access node, one or more messages that activate a first TCI state and a second TCI state for a Control Resource Set, CORESET, comprising a first set of resource elements, REs, associated to the first TCI state and a second set of REs associated to the second TCI state;

receiving, from a radio access node, a configuration of:

a search space, SS, set associated with the CORESET;

one or more aggregation levels, ALs; and

a plurality of Physical Downlink Control Channel, PDCCH, candidates comprising PDCCH candidates for each of the one or more ALs in the SS set, wherein each PDCCH candidate comprises REs in the first set of REs and REs in the second set of REs; and

receiving a DCI carried by either:

a single PDCCH in a PDCCH candidate of the plurality of PDCCH candidates, wherein the PDCCH candidate comprises REs in the first set of REs and REs in the second set of REs; or

a first repetition of a PDCCH in the first set of REs and a second repetition of the PDCCH in the second set of REs.

2. The method of claim 1 , wherein only one of the first and second TCI states is used for the purpose of defining a default TCI state for Physical Downlink Shared Channel, PDSCH.

3. The method of claim 1 , wherein only one of the first and second TCI states is used for the purpose of defining a default TCI state for Physical Downlink Shared Channel, PDSCH, when a time offset between reception of a downlink DCI and a corresponding PDSCH is less than a threshold.

4. The method of claim 1 , wherein the wireless communication device assumes that one or more Demodulation Reference Signal, DM-RS, ports of a Physical Downlink Shared Channel, PDSCH, of a serving cell are quasi co-located, QCL, with one or more reference signals with respect to one or more QCL parameters used for PDCCH quasi co-location indication in the first activated TCI state of the CORESET if the CORESET has a lowest CORESET identity, ID, in a latest slot in which one or more CORESETs within an active bandwidth part of the serving cell are monitored by the wireless communication device if a time offset between a downlink DCI scheduling the PDSCH and the PDSCH is less than a threshold.

5. The method of claim 1 , wherein the CORESET further comprises a plurality of Resource Blocks, RBs, in the frequency domain and a number of Orthogonal Frequency Division Multiplexing, OFDM, symbols in the time domain.

6. The method of claim 5 , wherein the CORESET further comprises a plurality of RE groups, REGs, each consisting of twelve REs in an RB in an OFDM symbol in the CORESET and indexed first in ascending order of OFDM symbols and then in ascending order of RBs starting from a lowest RB in the CORESET.

7. The method of claim 6 , wherein the CORESET further comprises a number of REG bundles, REGBs, each consisting of one or more consecutive REGs.

8. The method of claim 7 , wherein the CORESET further comprises a number of control channel elements, CCEs, each consisting of one or more of the plurality of REGBs.

9. The method of claim 1 , wherein the first set of REs and the second set of REs are respectively a first set of REGs and a second set of REGs.

10. The method of claim 9 , wherein a mapping of a REG to the first set of REGs associated to the first TCI state or the second set of REGs associated to the second TCI state is based on:

(a) an index of the REG,

(b) an Orthogonal Frequency Division Multiplexing, OFDM, symbol in which the REG is located,

(c) a location of the REG within a respective REG bundle,

(d) the REG bundle or a CCE to which the REG belongs,

(e) a CORESET configuration of the CORESET on precoding granularity,

(f) a CCE to REG mapping,

(g) number of OFDM symbols; or

(h) a combination of two or more of (a)-(g).

11. The method of claim 9 , wherein the first set of REGs and the second sets of REGs are interleaved such that the first set of REGs are REGs with even numbered indices and the second set of REGs are REGs with odd numbered indices, or vice versa.

12. The method of claim 9 , wherein:

the CORESET further comprises a plurality of REG bundles, REGBs, each consisting of two or more REGs;

the first set of REGs consists of a first REG in each of the REGBs; and

the second set of REGs consists of a second REG in each of the REGBs.

13. The method of claim 12 , wherein the first REG and the second REG in each REGB are REGs in a first OFDM symbol and a second OFDM symbol, respectively, wherein the first OFDM symbol and the second OFDM symbols are different OFDM symbols.

14. The method of claim 12 , wherein the first REG and the second REG in each REGB are REGs in a same OFDM symbol.

15. The method of claim 12 , wherein the first REGs in the plurality of REG bundles and the second REGs in the plurality of REG bundles are a first half and a second half of a plurality of consecutive REGs, respectively.

16. The method of claim 9 , wherein:

the CORESET further comprises a plurality of REG bundles, REGBs, each consisting of two or more REGs;

the first set of REGs consists of a first k REGs in each of the REGBs; and

the second set of REGs consists of a second k REGs in each of the REGBs;

where k is an integer number equal to a number of REG bundles in the plurality of REG bundles divided by a number of activated TCI states for the CORESET.

17. The method of claim 9 , wherein:

the CORESET further comprises a plurality of REG bundles, REGBs, each consisting of two or more REGs;

the first set of REGs consists of REGs in a first number of OFDM symbols of the CORESET; and

the second set of REGs consists of a remaining number of OFDM symbols of the CORESET.

18. A wireless communication device for Downlink Control Information, DCI, reception using multiple transmission configuration indication, TCI, states, in a wireless network, the wireless communication device comprising:

one or more transmitters;

one or more receivers; and

processing circuitry associated with the one or more transmitters and the one or more receivers, the processing circuitry configured to cause the wireless communication device to:

receive, from a radio access node, one or more messages that activate a first TCI state and a second TCI state for a Control Resource Set, CORESET, comprising a first set of resource elements, REs, associated to the first TCI state and a second set of REs associated to the second TCI state;

receive, from a radio access node, a configuration of:

a search space, SS, set associated with the CORESET;

one or more aggregation levels, ALs; and

a plurality of Physical Downlink Control Channel, PDCCH, candidates comprising PDCCH candidates for each of the one or more ALs in the SS set, wherein each PDCCH candidate comprises REs in the first set of REs and REs in the second set of REs; and

receive a DCI carried by either:

a single PDCCH in a PDCCH candidate of the plurality of PDCCH candidates, wherein the PDCCH candidate comprises REs in the first set of REs and REs in the second set of REs; or

a first repetition of a PDCCH in the first set of REs and a second repetition of the PDCCH in the second set of REs.

19. A method of operation of a radio access node for Downlink Control Information, DCI, transmission using multiple transmission configuration indication, TCI, states, in a wireless network, the method comprising:

providing, to a wireless communication device, one or more messages that activate a first TCI state and a second TCI state for a Control Resource Set, CORESET, comprising a first set of resource elements, REs, associated to the first TCI state and a second set of REs associated to the second TCI state;

sending, to the wireless communication device, a configuration of:

a search space, SS, set associated with the CORESET;

one or more aggregation levels, ALs; and

a plurality of Physical Downlink Control Channel, PDCCH, candidates comprising PDCCH candidates for each of the one or more ALs in the SS set, wherein each PDCCH candidate comprises REs in the first set of REs and REs in the second set of REs; and

wherein a DCI is transmitted to the wireless communication device, and the DCI is carried by either:

a single PDCCH in a PDCCH candidate of the plurality of PDCCH candidates, wherein the PDCCH candidate comprises REs in the first set of REs and REs in the second set of REs; or

a first repetition of a PDCCH in the first set of REs and a second PDCCH a second repetition of the PDCCH in the second set of REs.

20. A radio access node for Downlink Control Information, DCI, transmission using multiple transmission configuration indication, TCI, states, in a wireless network, the radio access node comprising processing circuitry configured to cause the radio access node to:

provide, to a wireless communication device, one or more messages that activate a first TCI state and a second TCI state for a Control Resource Set, CORESET, comprising a first set of resource elements, REs, associated to the first TCI state and a second set of REs associated to the second TCI state;

send, to the wireless communication device, a configuration of:

a search space, SS, set associated with the CORESET;

one or more aggregation levels, ALs; and

a plurality of Physical Downlink Control Channel, PDCCH, candidates comprising PDCCH candidates for each of the one or more ALs in the SS set, wherein each PDCCH candidate comprises REs in the first set of REs and REs in the second set of REs; and

wherein a DCI is transmitted to the wireless communication device, and the DCI is carried by either:

a single PDCCH in a PDCCH candidate of the plurality of PDCCH candidates, wherein the PDCCH candidate comprises REs in the first set of REs and REs in the second set of REs; or

a first repetition of a PDCCH in the first set of REs and a second PDCCH a second repetition of the PDCCH in the second set of REs.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 21, 2022
From: GAO, SHIWEI; FRENNE, MATTIAS; MURUGANATHAN, SIVA
To: TELEFONAKTIEBOLAGET LM ERICSSON (PUBL)
Reel/Frame 061835/0420 →
Continuity (2)
Provisional Application 63029050 · May 22, 2020
Related Publication 20230198721A1 · Jun 22, 2023
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