IP Library Granted Patent US 11,374,639
Granted Patent B2
US 11,374,639 · App. 16/225,292 · Granted Jun 28, 2022

Method and apparatus for transmission and reception in backhaul link in a wireless communication system

Inventors: Ming-Che Li (Taipei, TW); Yu-Hsuan Guo (Taipei, TW); Meng-Hui Ou (Taipei, TW)
Assignee: ASUSTek Computer Inc.
H04B7/0695H04B7/04H04B7/0408H04B7/0617H04L5/0023H04L5/0032H04L5/0082H04W16/28H04W72/046H04W72/0446H04W72/1273H04B7/0413H04L5/0048H04L5/0055H04W92/20
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Quick Facts
Patent No.
US 11,374,639
App. No.
16/225,292
Granted
Jun 28, 2022
Kind
B2
Abstract

A method and apparatus are disclosed from the perspective of a first network node. In one embodiment, the method includes the first network node transmitting a second transmission to a UE (User Equipment) in at least a first symbol of a first TTI (Transmission Time Interval). The method further includes the first network node transmitting a first transmission to a second network node in at least a second symbol of a second TTI, wherein the first TTI is TTI-level aligned to the second TTI and the first symbol is at least partially overlapped with the second symbol in time domain.

Claims (39)

1. A method for a first network node in a wireless communication system, comprising:

the first network node transmits a second transmission to a UE (User Equipment) in at least a first symbol of a first TTI (Transmission Time Interval); and

the first network node transmits, via a backhaul link, a first transmission to a second network node in at least a second symbol of a second TTI,

wherein the first TTI associated with the second transmission from the first network node to the UE is TTI-level aligned to the second TTI associated with the first transmission from the first network node to the second network node,

wherein the first symbol is at least partially overlapped with the second symbol in time domain,

wherein the first symbol is set to downlink in the first network node,

wherein the second symbol is set to uplink in the second network node, and

wherein a starting boundary of the first TTI associated with the second transmission from the first network node to the UE is aligned to a starting boundary of the second TTI associated with the first transmission from the first network node to the second network node.

2. The method of claim 1 , wherein the first TTI is set to a first direction in the first network node, and the second TTI is set to a second direction in the second network node.

3. The method of claim 2 , wherein the second direction is opposite to the first direction.

4. The method of claim 1 , wherein the first network node transmits the first transmission to the second network node and transmits the second transmission to the UE on the same beam.

5. The method of claim 1 , wherein there is a gap or time-interval between the starting boundary of the second TTI and a starting timing of the first transmission to the second network node.

6. The method of claim 1 , wherein at least one of the first TTI or the second TTI means a slot.

7. The method of claim 1 , wherein the first network node is a relay node, and the second network node is a donor node or parent node of the first network node.

8. The method of claim 1 , where the UE is served by the first network node.

9. A first network node in a wireless communication system, comprising:

a processor; and

a memory coupled to the processor;

wherein the processor is configured to execute a program code stored in the memory to:

transmit a second transmission to a UE (User Equipment) in at least a first symbol of a first TTI (Transmission Time Interval); and

transmit, via a backhaul link, a first transmission to a second network node in at least a second symbol of a second TTI;

wherein the first TTI associated with the second transmission from the first network node to the UE is TTI-level aligned to the second TTI associated with the first transmission from the first network node to the second network node,

wherein the first symbol is at least partially overlapped with the second symbol in time domain,

wherein the first symbol is set to downlink in the first network node,

wherein the second symbol is set to uplink in the second network node, and

wherein a starting boundary of the first TTI associated with the second transmission from the first network node to the UE is aligned to a starting boundary of the second TTI associated with the first transmission from the first network node to the second network node.

10. The first network node of claim 9 wherein the first TTI is set to a first direction in the first network node, and the second TTI is set to a second direction in the second network node.

11. The first network node of claim 10 , wherein the second direction is opposite to the first direction.

12. The first network node of claim 9 , wherein the UE is served by the first network node.

13. The first network node of claim 9 , wherein the first network node transmits the first transmission to the second network node and transmits the second transmission to the UE on the same beam.

14. The first network node of claim 9 , wherein there is a gap or time-interval between the starting boundary of the second TTI and a starting timing of the first transmission to the second network node.

15. The first network node of claim 9 , wherein at least one of the first TTI or the second TTI means a slot.

16. The first network node of claim 9 , wherein the first network node is a relay node, and the second network node is a donor node or parent node of the first network node.

17. The method of claim 1 , wherein the first TTI and the second TTI are the same TTI.

18. The first network node of claim 9 , wherein the first TTI and the second TTI are the same TTI.

19. The method of claim 1 , wherein the TTI-level alignment of the first TTI to the second TTI corresponds to a boundary time distance of the first TTI and the second TTI being integer times of TTI length.

20. The method of claim 19 , wherein the integer is zero.

21. The first network node of claim 9 , wherein the TTI-level alignment of the first TTI to the second TTI corresponds to a boundary time distance of the first TTI and the second TTI being integer times of TTI length.

22. The first network node of claim 21 , wherein the integer is zero.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 19, 2018
From: LI, MING-CHE; GUO, YU-HSUAN; OU, MENG-HUI
To: ASUSTEK COMPUTER INC.
Reel/Frame 047815/0879 →
Continuity (3)
Provisional Application 62609061 · Dec 21, 2017
Provisional Application 62609216 · Dec 21, 2017
Related Publication 20190199422A1 · Jun 27, 2019
Cited By (1)
US 12,495,424