IP Library › Granted Patent US 11,910,413
Granted Patent B2
US 11,910,413 · App. 17/249,404 · Granted Feb 20, 2024

Traffic-aware channel state information feedback

Inventors: Jay Kumar Sundararajan (San Diego, CA); Prashanth Haridas Hande (San Diego, CA); Wanshi Chen (San Diego, CA); Yeliz Tokgoz (San Diego, CA); Naga Bhushan (San Diego, CA); Wei Yang (San Diego, CA)
Assignee: QUALCOMM Incorporated
H04W72/52H04L1/0058H04L5/001H04W24/10
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Quick Facts
Patent No.
US 11,910,413
App. No.
17/249,404
Granted
Feb 20, 2024
Kind
B2
Abstract

Wireless communication devices, systems, and methods relate to selecting transmission parameters that optimize a dimension (e.g., time, frequency, and/or spatial) under a set of constraints. A UE may receive a resource allocation mode indication and a traffic parameter indication from a BS. The resource allocation mode indication informs the UE to optimize along a time dimension, a frequency dimension, and/or a spatial domain. The traffic parameter indication informs the UE what constraints to consider for the transmission parameters. The UE may use this information upon receipt of a reference signal in selecting transmission parameters based on the received reference signal, resource allocation mode indication, and traffic parameter indication. The resource allocation mode may correspond to optimization within a single slot or across multiple slots. Once selected, the UE may transmit the transmission parameters to the BS for use in sending the message to the UE.

Claims (59)

1. A method of wireless communication, comprising:

receiving, by a first wireless communications device, a resource allocation mode indication from a second wireless communications device, wherein the resource allocation mode indication identifies a maximum-payload mode, a minimum-resource block mode, a minimum-carrier mode, a minimum-rank mode, a maximum-reliability mode, a maximum-modulation and coding scheme (MCS) mode, or a maximum-spectral efficiency mode;

receiving, by the first wireless communications device, a traffic parameter indication from the second wireless communications device that identifies one or more targets to meet in selecting a transmission parameter;

selecting, by the first wireless communications device, the transmission parameter based on a reference signal, the resource allocation mode indication, and the traffic parameter indication; and

transmitting, by the first wireless communications device, the transmission parameter to the second wireless communications device as part of a channel state feedback message.

2. The method of claim 1 , wherein the resource allocation mode indication corresponds to a single time frame comprising a single slot.

3. The method of claim 2 , wherein the resource allocation mode indication identifies the maximum-payload mode and the traffic parameter indicator identifies a reliability target, wherein the selecting further comprises:

determining, by the first wireless communications device, a rank and modulation and coding scheme as the transmission parameter that maximizes a payload size subject to the reliability target.

4. The method of claim 2 , wherein the resource allocation mode indication identifies the minimum-resource block mode and the traffic parameter indicator identifies a payload size target and a reliability target, wherein the selecting further comprises:

determining, by the first wireless communications device, a set of resource blocks, a rank, and a modulation and coding scheme as the transmission parameter that minimizes a number of resource blocks selected subject to the payload size target and the reliability target.

5. The method of claim 2 , wherein the resource allocation mode indication identifies the minimum-carrier mode and the traffic parameter indicator identifies a payload size target and a reliability target, wherein the selecting further comprises:

determining, by the first wireless communications device, a set of component carriers as the transmission parameter that minimizes a number of component carriers selected subject to the payload size target and the reliability target.

6. The method of claim 2 , wherein the resource allocation mode indication identifies the minimum-rank mode and the traffic parameter indicator identifies a payload size target and a reliability target, wherein the selecting further comprises:

determining, by the first wireless communications device, a rank and modulation and coding scheme as the transmission parameter that minimizes a rank subject to the payload size target and the reliability target.

7. The method of claim 2 , wherein the resource allocation mode indication identifies the maximum-reliability mode and the traffic parameter indicator identifies a payload size target, wherein the selecting further comprises:

determining, by the first wireless communications device, a set of resource blocks, a rank, and a modulation and coding scheme as the transmission parameter that maximizes a reliability metric, subject to the payload size target.

8. The method of claim 1 , wherein the traffic parameter indication identifies a payload size target, the method further comprising:

determining, by the first wireless communications device, that transmission according to the payload size target is unobtainable within a single time frame;

and transitioning, by the first wireless communications device in response to the determining, to a multi-slot mode, wherein the selecting is based on the multi-slot mode.

9. The method of claim 1 , wherein the resource allocation mode indication and the traffic parameter indication are part of a downlink control information message.

10. The method of claim 1 , wherein the first wireless communications device comprises a user equipment and the second wireless communications device comprises a base station.

11. A method of wireless communication, comprising:

transmitting, by a first wireless communications device, a resource allocation mode indication to a second wireless communications device, wherein the resource allocation mode identifies a maximum-payload mode, a minimum-resource block mode, a minimum-carrier mode, a minimum-rank mode, a maximum-reliability mode, a maximum-modulation and coding scheme (MCS) mode, or a maximum-spectral efficiency mode;

transmitting, by the first wireless communications device, a traffic parameter indication to the second wireless communications device that identifies one or more targets to meet in selecting a transmission parameter;

transmitting, by the first wireless communications device, a reference signal to the second wireless communications device; and

receiving, by the first wireless communications device, the transmission parameter based on the reference signal, the resource allocation mode, and the traffic parameter indication, from the second wireless communications device.

12. The method of claim 11 , wherein the resource allocation mode indication corresponds to a single time frame comprising a single slot.

13. The method of claim 12 , wherein the resource allocation mode indication identifies the maximum-payload mode, the traffic parameter indicator identifies a reliability target, and the transmission parameter comprises a rank and modulation and coding scheme that maximizes a payload size subject to the reliability target.

14. The method of claim 12 , wherein the resource allocation mode indication identifies the minimum-resource block mode, the traffic parameter indicator identifies a payload size target and a reliability target, and the transmission parameter comprises a set of resource blocks, a rank, and a modulation and coding scheme that minimizes a number of resource blocks selected subject to the payload size target and the reliability target.

15. The method of claim 12 , wherein the resource allocation mode indication identifies the minimum-carrier mode, the traffic parameter indicator identifies a payload size target and a reliability target, and the transmission parameter comprises a set of component carriers as the transmission parameter that minimizes a number of component carriers selected subject to the payload size target and the reliability target.

16. The method of claim 12 , wherein the resource allocation mode indication identifies the minimum-rank mode, the traffic parameter indicator identifies a payload size target and a reliability target, and the transmission parameter comprises a rank and modulation and coding scheme that minimizes a rank subject to the payload size target and the reliability target.

17. The method of claim 12 , wherein the resource allocation mode indication identifies the maximum-reliability mode, the traffic parameter indicator identifies a payload size target, and the transmission parameter comprises a set of resource blocks, a rank, and a modulation and coding scheme that maximizes a reliability metric, subject to the payload size target.

18. The method of claim 11 , wherein the traffic parameter indication identifies a payload size target, and the transmission parameter is further based on a determination that the payload size target is unobtainable within in a single time frame.

19. The method of claim 18 , wherein the resource allocation mode indication identifies a minimum-transport block mode, the traffic parameter indicator identifies a payload size target and a reliability target, and the transmission parameter comprises a set of resource blocks, a rank, and a modulation and coding scheme for multiple transport blocks that minimizes a number of transport blocks, subject to the payload size target and the reliability target.

20. The method of claim 18 , wherein the resource allocation mode indication identifies a minimum-delay mode, the traffic parameter indicator identifies a payload size target and a payload error rate target, and the transmission parameter comprises a set of resource blocks, a rank, and a modulation and coding scheme for multiple transport blocks that minimizes a number of slots used for transmissions, subject to the payload size target and the payload error rate target.

21. The method of claim 11 , wherein the resource allocation mode indication and the traffic parameter indication are part of a downlink control information message.

22. The method of claim 11 , wherein the first wireless communications device comprises a base station and the second wireless communications device comprises a user equipment.

23. A wireless communications device, comprising:

a transceiver configured to:

receive a resource allocation mode indication from a second wireless communications device, wherein the resource allocation mode identifies a maximum-payload mode, a minimum-resource block mode, a minimum-carrier mode, a minimum-rank mode, a maximum-reliability mode, a maximum-modulation and coding scheme (MCS) mode, or a maximum-spectral efficiency mode;

receive a traffic parameter indication from the second wireless communications device that identifies one or more targets to meet in selecting a transmission parameter; and

transmit the transmission parameter to the second wireless communications device as part of a channel state feedback message; and

a processor configured to:

select the transmission parameter based on a reference signal, the resource allocation mode indication, and the traffic parameter indication.

24. The wireless communications device of claim 23 , wherein the resource allocation mode indication corresponds to a single time frame comprising a single slot.

25. The wireless communications device of claim 24 , wherein the resource allocation mode indication identifies the maximum-payload mode, the traffic parameter indicator identifies a reliability target, and the processor is configured to select the transmission parameter by:

determining a rank and modulation and coding scheme as the transmission parameter that maximizes a payload size subject to the reliability target.

26. The wireless communications device of claim 24 , wherein the resource allocation mode indication identifies the minimum-resource block mode, the traffic parameter indicator identifies a payload size target and a reliability target, and the processor is configured to select the transmission parameter by:

determining a set of resource blocks, a rank, and a modulation and coding scheme as the transmission parameter that minimizes a number of resource blocks selected subject to the payload size target and the reliability target.

27. A wireless communications device, comprising:

a processor; and

a transceiver configured to:

transmit a resource allocation mode indication to a second wireless communications device, wherein the resource allocation mode identifies a maximum-payload mode, a minimum-resource block mode, a minimum-carrier mode, a minimum-rank mode, a maximum-reliability mode, a maximum-modulation and coding scheme (MCS) mode, or a maximum-spectral efficiency mode;

transmit a traffic parameter indication to the second wireless communications device that identifies one or more targets to meet in selecting a transmission parameter;

transmit a reference signal to the second wireless communications device; and

receive the transmission parameter based on the reference signal, the resource allocation mode, and the traffic parameter indication, from the second wireless communications device.

28. The wireless communications device of claim 27 , wherein the resource allocation mode indication corresponds to a single time frame comprising a single slot.

29. The wireless communications device of claim 28 , wherein the resource allocation mode indication identifies the maximum-payload mode, the traffic parameter indicator identifies a reliability target, and the transmission parameter comprises a rank and modulation and coding scheme that maximizes a payload size subject to the reliability target.

30. The wireless communications device of claim 28 , wherein the resource allocation mode indication identifies the minimum-resource block mode, the traffic parameter indicator identifies a payload size target and a reliability target, and the transmission parameter comprises a set of resource blocks, a rank, and a modulation and coding scheme that minimizes a number of resource blocks selected subject to the payload size target and the reliability target.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 8, 2021
From: SUNDARARAJAN, JAY KUMAR; HANDE, PRASHANTH HARIDAS; CHEN, WANSHI; TOKGOZ, YELIZ; BHUSHAN, NAGA; YANG, WEI
To: QUALCOMM INCORPORATED
Reel/Frame 056472/0259 →
Continuity (2)
Provisional Application 62985246 · Mar 4, 2020
Related Publication 20210282145A1 · Sep 9, 2021