IP Library › Granted Patent US 11,178,655
Granted Patent B2
US 11,178,655 · App. 16/678,809 · Granted Nov 16, 2021

Physical downlink control channel limit for dual connectivity

Inventors: Heechoon Lee (San Diego, CA); Huilin Xu (San Diego, CA); Peter Pui Lok Ang (San Diego, CA); Hari Sankar (San Diego, CA)
Assignee: QUALCOMM Incorporated
H04W72/042H04W72/0453H04W88/06
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Quick Facts
Patent No.
US 11,178,655
App. No.
16/678,809
Granted
Nov 16, 2021
Kind
B2
Abstract

Certain aspects of the present disclosure provide techniques for allocating a number of physical downlink control channel (PDCCH) blind decoding candidates to a user equipment (UE) in dual connectivity mode. An example method generally includes allocating a resource budget among a first cell group and a second cell group, wherein the resource budget includes a number of physical downlink control channel (PDCCH) blind decoding candidates and a number of control channel elements (CCEs) supported by the UE, and monitoring for PDCCH candidates in the first cell group and second cell group in accordance with the allocated resource budget.

Claims (34)

1. A method of wireless communications by a user equipment (UE), comprising:

allocating a resource budget among a first cell group and a second cell group based on a first number of cells in the first cell group and a second number of cells in the second cell group, wherein the resource budget includes a number of physical downlink control channel (PDCCH) blind decoding candidates and a number of control channel elements (CCEs) supported by the UE; and

monitoring the number of PDCCH blind decoding candidates in the first cell group and the second cell group in accordance with the allocated resource budget.

2. The method of claim 1 , further comprising signaling information indicating the number of PDCCH blind decoding candidates and the number of CCEs supported by the UE.

3. The method of claim 1 , wherein the resource budget is allocated among the first cell group and the second cell group based on a first subcarrier spacing used in the first cell group and a second subcarrier spacing used in the second cell group.

4. The method of claim 1 , wherein the resource budget is further allocated among cells in a cell group based on a first subcarrier spacing used in a first cell in the cell group and a second subcarrier spacing used in a second cell in the cell group.

5. The method of claim 1 , wherein the number of PDCCH blind decoding candidates and the number of CCEs are allocated among the first cell group and the second cell group according to a first resource budget configured for the first cell group and a second resource budget configured for the second cell group, wherein the first resource budget includes at least one of a first number of PDCCH blind decoding candidates or a first number of CCEs supported by the UE for the first cell group, and wherein the second resource budget includes at least one of a second number of PDCCH blind decoding candidates or a second number of CCEs supported by the UE for the second cell group.

6. The method of claim 1 , wherein the number of PDCCH blind decoding candidates and the number of CCEs are allocated among the first cell group and the second cell group according to a dynamic ratio proportional to the first number of cells in the first cell group and the second number of cells in the second cell group, wherein the first number of cells in the first cell group is based on a configured number of carriers and an activated number of carriers associated with the first cell group, and wherein the second number of cells in the second cell group is based on a configured number of carriers and an activated number of carriers associated with the second cell group.

7. A method of wireless communications by a network entity, comprising:

allocating a resource budget among a first cell group and a second cell group based on a first number of cells in the first cell group and a second number of cells in the second cell group, wherein the resource budget includes a number of physical downlink control channel (PDCCH) blind decoding candidates and a number of control channel elements (CCEs) supported by a user equipment (UE); and

transmitting a PDCCH using one of the number of PDCCH blind decoding candidates allocated to the first cell group in accordance with the allocated resource budget.

8. The method of claim 7 , further comprising receiving, from the UE, information indicating the number of PDCCH blind decoding candidates and number of CCEs supported by the UE.

9. The method of claim 7 , wherein the resource budget is allocated among the first cell group and the second cell group based on a first subcarrier spacing used in the first cell group and a second subcarrier spacing used in the second cell group.

10. The method of claim 7 , wherein the resource budget is further allocated among cells in a cell group based on a first subcarrier spacing used in a first cell in the cell group and a second subcarrier spacing used in a second cell in the cell group.

11. The method of claim 7 , wherein the number of PDCCH blind decoding candidates and the number of CCEs are allocated among the first cell group and the second cell group according to overbooking rules applied to each of the first cell group and the second cell group.

12. The method of claim 7 , wherein the number of PDCCH blind decoding candidates and the number of CCEs are allocated among the first cell group and the second cell group according to a first resource budget configured for the first cell group and a second resource budget configured for the second cell group, wherein the first resource budget includes at least one of a first number of PDCCH blind decoding candidates or a first number of CCEs supported by the UE for the first cell group, and wherein the second resource budget includes at least one of a second number of PDCCH blind decoding candidates or a second number of CCEs supported by the UE for the second cell group.

13. The method of claim 7 , wherein the number of PDCCH blind decoding candidates and the number of CCEs are allocated among the first cell group and the second cell group according to a dynamic ratio proportional to the first number of cells in the first cell group and the second number of cells in the second cell group, wherein the first number of cells in the first cell group is based on a configured number of carriers and an activated number of carriers associated with the first cell group, and wherein the second number of cells in the second cell group is based on a configured number of carriers and an activated number of carriers associated with the second cell group.

14. An apparatus for wireless communication, comprising:

a processing system configured to allocate a resource budget among a first cell group and a second cell group based on a first number of cells in the first cell group and a second number of cells in the second cell group, wherein the resource budget includes a number of physical downlink control channel (PDCCH) blind decoding candidates and a number of control channel elements (CCEs) supported by a user equipment (UE); and

a receiver configured to monitor the number of PDCCH blind decoding candidates in the first cell group and the second cell group in accordance with the allocated resource budget.

15. The apparatus of claim 14 , further comprising signaling information indicating the number of PDCCH blind decoding candidates and the number of CCEs supported by the UE.

16. The apparatus of claim 14 , wherein the resource budget is allocated among the first cell group and the second cell group based on a first subcarrier spacing used in the first cell group and a second subcarrier spacing used in the second cell group.

17. The apparatus of claim 14 , wherein the resource budget is further allocated among cells in a cell group based on a first subcarrier spacing used in a first cell in the cell group and a second subcarrier spacing used in a second cell in the cell group.

18. The apparatus of claim 14 , wherein the number of PDCCH blind decoding candidates and the number of CCEs are allocated among the first cell group and the second cell group according to a first resource budget configured for the first cell group and second resource budget configured for the second cell group, wherein the first resource budget includes at least one of a first number of PDCCH blind decoding candidates or a first number of CCEs supported by the UE for the first cell group, and wherein the second resource budget includes at least one of a second number of PDCCH blind decoding candidates or a second number of CCEs supported by the UE for the second cell group.

19. The apparatus of claim 14 , wherein the number of PDCCH blind decoding candidates and the number of CCEs are allocated among the first cell group and the second cell group according to a dynamic ratio proportional to the first number of cells in the first cell group and the second number of cells in the second cell group, wherein the first number of cells in the first cell group is based on a configured number of carriers and an activated number of carriers associated with the first cell group, and wherein the second number of cells in the second cell group is based on a configured number of carriers and an activated number of carriers associated with the second cell group.

20. An apparatus for wireless communication, comprising:

a processing system configured to allocate a resource budget among a first cell group and a second cell group based on a first number of cells in the first cell group and a second number of cells in the second cell group, wherein the resource budget includes a number of physical downlink control channel (PDCCH) blind decoding candidates and a number of control channel elements (CCEs) supported by a user equipment (UE); and

a transmitter configured to transmit a PDCCH using one of the number of PDCCH blind decoding candidates allocated to the first cell group in accordance with the allocated resource budget.

21. The apparatus of claim 20 , further comprising receiving, from the UE, information indicating the number of PDCCH blind decoding candidates and number of CCEs supported by the UE.

22. The apparatus of claim 20 , wherein the resource budget is allocated among the first cell group and the second cell group based on a first subcarrier spacing used in the first cell group and a second subcarrier spacing used in the second cell group.

23. The apparatus of claim 20 , wherein the resource budget is further allocated among cells in a cell group based on a first subcarrier spacing used in a first cell in the cell group and a second subcarrier spacing used in a second cell in the cell group.

24. The apparatus of claim 20 , wherein the number of PDCCH blind decoding candidates and the number of CCEs are allocated among the first cell group and the second cell group according to overbooking rules applied to each of the first cell group and the second cell group.

25. The apparatus of claim 20 , wherein the number of PDCCH blind decoding candidates and the number of CCEs are allocated among the first cell group and the second cell group according to a first resource budget configured for the first cell group and a second resource budget configured for the second cell group, wherein the first resource budget includes at least one of a first number of PDCCH blind decoding candidates or a first number of CCEs supported by the UE for the first cell group, and wherein the second resource budget includes at least one of a second number of PDCCH blind decoding candidates or a second number of CCEs supported by the UE for the second cell group.

26. The apparatus of claim 20 , wherein the number of PDCCH blind decoding candidates and the number of CCEs are allocated among the first cell group and the second cell group according to a dynamic ratio proportional to the first number of cells in the first cell group and the second number of cells in the second cell group, wherein the first number of cells in the first cell group is based on a configured number of carriers and an activated number of carriers associated with the first cell group, and wherein the second number of cells in the second cell group is based on a configured number of carriers and an activated number of carriers associated with the second cell group.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 12, 2020
From: LEE, HEECHOON; XU, HUILIN; ANG, PETER PUI LOK; SANKAR, HARI
To: QUALCOMM INCORPORATED
Reel/Frame 051791/0811 →
Continuity (2)
Provisional Application 62760899 · Nov 13, 2018
Related Publication 20200154412A1 · May 14, 2020
Cited By (1)
US 12,490,278