IP Library › Granted Patent US 11,451,982
Granted Patent B2
US 11,451,982 · App. 16/986,925 · Granted Sep 20, 2022

Receiver beamforming for serving and neighbor cell measurements

Inventors: Sumeeth Nagaraja (Los Altos, CA); Raghu Narayan Challa (San Diego, CA); Ruhua He (San Diego, CA); Arvind Vardarajan Santhanam (San Diego, CA); Yong Li (San Diego, CA); Muhammad Nazmul Islam (Littleton, MA); Bilal Sadiq (Basking Ridge, NJ); Tao Luo (San Diego, CA)
Assignee: QUALCOMM Incorporated
H04W24/02H04B7/0408H04B7/0695H04B7/086H04B7/088H04W36/30H04W72/046H04W72/12
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,451,982
App. No.
16/986,925
Granted
Sep 20, 2022
Kind
B2
Abstract

Aspects of the present disclosure relate to receiver beamforming for serving and neighbor cell measurements. An exemplary method generally includes communicating with one or more base stations using a first beam type, initiating a transition to communicating with at least one of the one or more base stations using a second beam type in response to an indication of a trigger event, and communicating with the at least one of the one or more base stations using the second beam type.

Claims (76)

1. A method of wireless communication at a user equipment (UE), comprising:

communicating with a target base station using an omni-directional or pseudo omni-directional beam type;

receiving an indication of a trigger event comprising an indication of a handoff from a serving base station to the target base station; and

in response to receiving the indication, initiating a transition from communicating with the target base station using the omni-directional or pseudo omni-directional beam type to communicating with the target base station using a directional beam type and

communicating with the target base station using the directional beam type.

2. The method of claim 1 , further comprising

communicating with the serving base station using the omni-directional or pseudo omni-directional beam type,

wherein: communicating with the serving base station and the target base station using the omni-directional or pseudo omni-directional beam type comprises:

measuring reference signals of the serving base station and the target base station using the omni-directional or pseudo omni-directional beam type.

3. The method of claim 2 ,

wherein initiating the transition from communicating with the target base station using the omni-directional or pseudo omni-directional beam type to communicating with the target base station using the directional beam type comprises initiating a beam refinement procedure for communication between the UE and the target base station.

4. The method of claim 3 ,

wherein initiating the beam refinement procedure for communication between the UE and the target base station comprises selecting a first number of beams to perform the refinement procedure on.

5. The method of claim 4 ,

wherein the selecting the first number of beams is based on a signal quality associated with the first number of beams.

6. The method of claim 4 , wherein:

the indication of the handoff comprises beam information indicating a number of beams to perform the beam refinement procedure on, and

the first number of beams is selected based on the beam information.

7. The method of claim 1 , further comprising,

measuring reference signals of the serving base station using the directional beam type,

wherein communicating with the target base station using the omni-directional or pseudo omni-directional beam type comprises measuring reference signals of the target base station using the omni-directional or pseudo omni-directional beam type.

8. The method of claim 7 , further comprising

applying a fixed offset to the measurements of the reference signals of the target base station relative to the measurements of the reference signals of the serving base station.

9. An apparatus for wireless communication by a user equipment (UE), comprising:

at least one processor configured to:

communicate with a target base station using a omni-directional or pseudo omni-directional beam type;

receive an indication of a trigger event comprising an indication of a handoff from a serving base station to the target base station; and

in response to receiving the indication, initiate a transition from communicating with the target base station using the omni-directional or pseudo omni-directional beam type to communicating with the target base station using a directional beam type and communicate with the target base station using the directional beam type; and

a memory coupled with the at least one processor.

10. The apparatus of claim 9 , wherein: the at least one processor is further configured to

communicate with the serving base station using the omni-directional or pseudo omni-directional beam type, and

in order to communicate with the serving base station and the target base station using the omni-directional or pseudo omni-directional beam type, the at least one processor is further configured to measure reference signals of the serving base station and the target base station using the omni-directional or pseudo omni-directional beam type.

11. The apparatus of claim 10 ,

wherein, in order to initiate the transition from communicating with the target base station using the omni-directional or pseudo omni-directional beam type to communicating with the target base station using the directional beam type, the at least one processor is further configured to initiate a beam refinement procedure for communication between the UE and the target base station.

12. The apparatus of claim 11 ,

wherein, in order to initiate the beam refinement procedure for communication between the UE and the target base station, the at least one processor is further configured to select a first number of beams to perform the refinement procedure on.

13. The apparatus of claim 12 ,

wherein the at least one processor is configured to select the first number of beams based on a signal quality of the first number of beams.

14. The apparatus of claim 12 , wherein:

the indication of the handoff comprises beam information indicating a number of beams to perform the beam refinement procedure on, and

the first number of beams is selected based on the beam information.

15. The apparatus of claim 9 , wherein: the at least one processor is further configured to

measure reference signals of the serving base station using the omni-directional or pseudo omni-directional beam type, and

in order to communicate with the target base station using the directional beam type, the at least one processor is further configured to measure reference signals of the target base station using the directional beam type.

16. The apparatus of claim 15 , wherein the at least one processor is further configured to apply a fixed offset to the measurements of the reference signals of the target base station relative to the measurements of the reference signals of the serving base station.

17. An apparatus for wireless communication by a user equipment (UE), comprising:

means for communicating with a target base station using a omni-directional or pseudo omni-directional beam type;

means for receiving an indication of a trigger event comprising an indication of a handoff from a serving base station to the target base station; and

means for, in response to receiving the indication, initiating a transition from communicating with the target base station using the omni-directional or pseudo omni-directional beam type to communicating with the target base station using a directional beam type and communicating with the target base station using the directional beam type.

18. The apparatus of claim 17 , further comprising

means for communicating with the serving base station using the omni-directional or pseudo omni-directional beam type,

wherein the means for communicating with the serving base station using the omni-directional or pseudo omni-directional beam type and the means for communicating with target base station using the omni-directional or pseudo omni-directional beam type comprise means for measuring reference signals of the serving base station and the target base station using the omni-directional or pseudo omni-directional beam type.

19. The apparatus of claim 18 ,

wherein the means for initiating the transition from communicating with the target base station using the omni-directional or pseudo omni-directional beam type to communicating with the target base station using the directional beam type comprises means for initiating a beam refinement procedure for communication between the UE and the target base station.

20. The apparatus of claim 19 ,

wherein the means for initiating the beam refinement procedure for communication between the UE and the target base station comprises means for selecting a first number of beams to perform the refinement procedure on.

21. The apparatus of claim 20 ,

wherein the means for selecting the first number of beams is based on a signal quality associated with the first number of beams.

22. The apparatus of claim 20 , wherein:

the indication of the handoff comprises beam information indicating a number of beams to perform the beam refinement procedure on, and

the first number of beams is selected based on the beam information.

23. A non-transitory computer-readable medium for wireless communication by a user equipment (UE), comprising instructions that, when executed by at least one processor, cause the at least one processor to:

communicate with a serving base station and a target base station using a omni-directional or pseudo omni-directional beam type;

receive an indication of a trigger event comprising an indication of a handoff from a serving base station to the target base station; and

in response to receiving the indication, initiate a transition from communicating with the target base station using the omni-directional or pseudo omni-directional beam type to communicating with the target base station using a directional beam type and communicate with the target base station using the directional beam type.

24. The non-transitory computer-readable medium of claim 23 , further comprising instructions that cause the at least one processor to

communicate with the serving base station using the omni-directional or pseudo omni-directional beam type,

wherein the instructions that cause the at least one processor to communicate with the serving base station and the target base station using the omni-directional or pseudo omni-directional beam type comprise instructions that cause the at least one processor to measure reference signals of the serving base station and the target base station using the omni-directional or pseudo omni-directional beam type.

25. The non-transitory computer-readable medium of claim 24 , wherein the instructions that cause the at least one processor to initiate the transition from communicating with the target base station using the omni-directional or pseudo omni-directional beam type to communicating with the target base station using the directional beam type comprise instructions that cause the at least one processor to initiate a beam refinement procedure for communication between the UE and the target base station.

26. The non-transitory computer-readable medium of claim 25 ,

wherein the instructions that cause the at least one processor to initiate the beam refinement procedure for communication between the UE and the target base station comprise instructions that cause the at least one processor to select a first number of beams to perform the refinement procedure on.

27. The non-transitory computer-readable medium of claim 26 ,

wherein the selection of the first number of beams is based on a signal quality associated with the first number of beams.

28. The non-transitory computer-readable medium of claim 26 , wherein:

the indication of the handoff comprises beam information indicating a number of beams to perform the beam refinement procedure on, and

the first number of beams is selected based on the beam information.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 8, 2021
From: NAGARAJA, SUMEETH; CHALLA, RAGHU NARAYAN; HE, RUHUA; SANTHANAM, ARVIND VARDARAJAN; LI, YONG; ISLAM, MUHAMMAD NAZMUL; SADIQ, BILAL; LUO, TAO
To: QUALCOMM INCORPORATED
Reel/Frame 056521/0505 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 6, 2020
From: NAGARAJA, SUMEETH; CHALLA, RAGHU NARAYAN; HE, RUHUA; SANTHANAM, ARVIND VARDARAJAN; LI, YONG; ISLAM, MUHAMMAD NAZMUL; SADIQ, BILAL
To: QUALCOMM INCORPORATED
Reel/Frame 053425/0386 →
Continuity (3)
Division 16013807 · Jun 20, 2018
Provisional Application 62524351 · Jun 23, 2017
Related Publication 20200367075A1 · Nov 19, 2020