IP Library Granted Patent US 12,278,707
Granted Patent B2
US 12,278,707 · App. 17/751,702 · Granted Apr 15, 2025

Method and device in nodes used for wireless communication

Inventors: Lu Wu (Shanghai, CN); Xiaobo Zhang (Shanghai, CN)
Assignee: BUNKER HILL TECHNOLOGIES LLC
H04L1/1861H04L1/1854H04L1/1887H04L1/1893H04W72/1263H04W72/20
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Quick Facts
Patent No.
US 12,278,707
App. No.
17/751,702
Granted
Apr 15, 2025
Kind
B2
Abstract

The present disclosure provides a method and device in a node used for wireless communications. A first node receives a first signaling, receives a first signal in a first time window, and transmits a first bit block in a first radio resource block. The first signaling is used for indicating configuration information for the first signal; the first time window is one of M time windows, and any two time windows of the M time windows are orthogonal, M being a positive integer greater than 1; the first radio resource block belongs to a target time window in time domain, and any of the M time windows is associated with the target time window. The above method not only saves the dynamic signaling overhead, but also avoids the impact of miss detection.

Claims (47)

1. A first node for wireless communications, comprising:

a first receiver, receiving a first signaling; and receiving a first signal in a first time window; and

a first transmitter, transmitting a first bit block in a first radio resource block;

wherein the first signaling is used for indicating configuration information for the first signal; the first time window is one of M time windows, and any two time windows of the M time windows are orthogonal, M being a positive integer greater than 1; the first radio resource block belongs to a target time window in time domain, and any of the M time windows is associated with the target time window; the first bit block comprises a first bit sub-block, the first bit sub-block being used to indicate whether the first signal is correctly received; a position of the first time window in the M time windows is used to determine a size of the first bit block; the first bit block comprises a positive integer number of bit(s), and the first bit sub-block comprises a positive integer number of bit(s).

2. The first node according to claim 1 , wherein the first bit block comprises a positive integer number of bit sub-block(s), the first bit sub-block being a bit sub-block in the first bit block, any bit sub block in the first bit block comprises a positive integer number of bit(s); any bit sub-block in the first bit block corresponds to one of the M time windows; the position of the first time window in the M time windows is used to determine a number of bit sub-block(s) comprised in the first bit block.

3. The first node according to claim 2 , wherein the first time window is a K-th time window in the M time windows, K being a positive integer not greater than the M; the number of the bit sub-block(s) comprised in the first bit block is equal to the K;

or, the size of the first bit block is equal to a product of the size of the first bit sub-block and the number of the bit sub-block(s) comprised in the first bit block;

or, the first time window is a K-th time window in the M time windows, K being a positive integer not greater than the M; the number of the bit sub-block(s) comprised in the first bit block is equal to the K; the size of the first bit block is equal to a product of the size of the first bit sub-block and the number of the bit sub-block(s) comprised in the first bit block.

4. The first node according to claim 1 , wherein the first receiver also receives M1-1 signal(s) respectively in M1-1 time window(s); wherein M1 signals consist of the first signal and the M1-1 signal(s), and M1 time windows consist of the first time window and the M1-1 time window(s), the M1 signals being respectively transmitted in the M1 time windows; the M1 time windows are M1 different time windows in the M time windows, the first time window is a latest one of the M1 time windows, M1 being a positive integer greater than 1 and not greater than M; M1 bit sub-blocks are respectively used for indicating whether the M1 signals are correctly received, the first bit sub-block being one of the M1 bit sub-blocks, the first bit block comprising the M1 bit sub-blocks.

5. The first node according to claim 4 , wherein the first signaling comprises M1 sub-signalings, the M1 sub-signalings being respectively used to indicate configuration information for the M1 signals.

6. A second node for wireless communications, comprising:

a second transmitter, transmitting a first signaling; and transmitting a first signal in a first time window; and

a second receiver, receiving a first bit block in a first radio resource block;

wherein the first signaling is used for indicating configuration information for the first signal; the first time window is one of M time windows, and any two time windows of the M time windows are orthogonal, M being a positive integer greater than 1; the first radio resource block belongs to a target time window in time domain, and any of the M time windows is associated with the target time window; the first bit block comprises a first bit sub-block, the first bit sub-block being used to indicate whether the first signal is correctly received; a position of the first time window in the M time windows is used to determine a size of the first bit block; the first bit block comprises a positive integer number of bit(s), and the first bit sub-block comprises a positive integer number of bit(s).

7. The second node according to claim 6 , wherein the first bit block comprises a positive integer number of bit sub-block(s), the first bit sub-block being a bit sub-block in the first bit block, any bit sub block in the first bit block comprises a positive integer number of bit(s); any bit sub-block in the first bit block corresponds to one of the M time windows; the position of the first time window in the M time windows is used to determine a number of bit sub-block(s) comprised in the first bit block.

8. The second node according to claim 7 , wherein the first time window is a K-th time window in the M time windows, K being a positive integer not greater than the M; the number of the bit sub-block(s) comprised in the first bit block is equal to the K;

or, the size of the first bit block is equal to a product of the size of the first bit sub-block and the number of the bit sub-block(s) comprised in the first bit block;

or, the first time window is a K-th time window in the M time windows, K being a positive integer not greater than the M; the number of the bit sub-block(s) comprised in the first bit block is equal to the K; the size of the first bit block is equal to a product of the size of the first bit sub-block and the number of the bit sub-block(s) comprised in the first bit block.

9. The second node according to claim 6 , wherein the second transmitter also transmits M1-1 signal(s) respectively in M1-1 time window(s); wherein M1 signals consist of the first signal and the M1-1 signal(s), and M1 time windows consist of the first time window and the M1-1 time window(s), the M1 signals being respectively transmitted in the M1 time windows; the M1 time windows are M1 different time windows in the M time windows, the first time window is a latest one of the M1 time windows, M1 being a positive integer greater than 1 and not greater than M; M1 bit sub-blocks are respectively used for indicating whether the M1 signals are correctly received, the first bit sub-block being one of the M1 bit sub-blocks, the first bit block comprising the M1 bit sub-blocks.

10. The second node according to claim 9 , wherein the first signaling comprises M1 sub-signalings, the M1 sub-signalings being respectively used to indicate configuration information for the M1 signals.

11. A method in a first node for wireless communications, comprising:

receiving a first signaling;

receiving a first signal in a first time window; and

transmitting a first bit block in a first radio resource block;

wherein the first signaling is used for indicating configuration information for the first signal; the first time window is one of M time windows, and any two time windows of the M time windows are orthogonal, M being a positive integer greater than 1; the first radio resource block belongs to a target time window in time domain, and any of the M time windows is associated with the target time window; the first bit block comprises a first bit sub-block, the first bit sub-block being used to indicate whether the first signal is correctly received; a position of the first time window in the M time windows is used to determine a size of the first bit block; the first bit block comprises a positive integer number of bit(s), and the first bit sub-block comprises a positive integer number of bit(s).

12. The method according to claim 11 , wherein the first bit block comprises a positive integer number of bit sub-block(s), the first bit sub-block being a bit sub-block in the first bit block, any bit sub block in the first bit block comprises a positive integer number of bit(s); any bit sub-block in the first bit block corresponds to one of the M time windows; the position of the first time window in the M time windows is used to determine a number of bit sub-block(s) comprised in the first bit block.

13. The method according to claim 12 , wherein the first time window is a K-th time window in the M time windows, K being a positive integer not greater than the M; the number of the bit sub-block(s) comprised in the first bit block is equal to the K;

or, the size of the first bit block is equal to a product of the size of the first bit sub-block and the number of the bit sub-block(s) comprised in the first bit block;

or, the first time window is a K-th time window in the M time windows, K being a positive integer not greater than the M; the number of the bit sub-block(s) comprised in the first bit block is equal to the K; the size of the first bit block is equal to a product of the size of the first bit sub-block and the number of the bit sub-block(s) comprised in the first bit block.

14. The method according to claim 11 , comprising:

receiving M1-1 signal(s) respectively in M1-1 time window(s);

wherein M1 signals consist of the first signal and the M1-1 signal(s), and M1 time windows consist of the first time window and the M1-1 time window(s), the M1 signals being respectively transmitted in the M1 time windows;

the M1 time windows are M1 different time windows in the M time windows, the first time window is a latest one of the M1 time windows, M1 being a positive integer greater than 1 and not greater than M; M1 bit sub-blocks are respectively used for indicating whether the M1 signals are correctly received, the first bit sub-block being one of the M1 bit sub-blocks, the first bit block comprising the M1 bit sub-blocks.

15. The method according to claim 14 , wherein the first signaling comprises M1 sub-signalings, the M1 sub-signalings being respectively used to indicate configuration information for the M1 signals.

16. A method in a second node for wireless communications, comprising:

transmitting a first signaling;

transmitting a first signal in a first time window; and

receiving a first bit block in a first radio resource block;

wherein the first signaling is used for indicating configuration information for the first signal; the first time window is one of M time windows, and any two time windows of the M time windows are orthogonal, M being a positive integer greater than 1; the first radio resource block belongs to a target time window in time domain, and any of the M time windows is associated with the target time window; the first bit block comprises a first bit sub-block, the first bit sub-block being used to indicate whether the first signal is correctly received; a position of the first time window in the M time windows is used to determine a size of the first bit block; the first bit block comprises a positive integer number of bit(s), and the first bit sub-block comprises a positive integer number of bit(s).

17. The method according to claim 16 , wherein the first bit block comprises a positive integer number of bit sub-block(s), the first bit sub-block being a bit sub-block in the first bit block, any bit sub-block in the first bit block comprises a positive integer number of bit(s); any bit sub-block in the first bit block corresponds to one of the M time windows; the position of the first time window in the M time windows is used to determine a number of bit sub-block(s) comprised in the first bit block.

18. The method according to claim 17 , wherein the first time window is a K-th time window in the M time windows, K being a positive integer not greater than the M; the number of the bit sub-block(s) comprised in the first bit block is equal to the K;

or, the size of the first bit block is equal to a product of the size of the first bit sub-block and the number of the bit sub-block(s) comprised in the first bit block;

or, the first time window is a K-th time window in the M time windows, K being a positive integer not greater than the M; the number of the bit sub-block(s) comprised in the first bit block is equal to the K; the size of the first bit block is equal to a product of the size of the first bit sub-block and the number of the bit sub-block(s) comprised in the first bit block.

19. The method according to claim 16 , comprising:

transmitting M1-1 signal(s) respectively in M1-1 time window(s);

wherein M1 signals consist of the first signal and the M1-1 signal(s), and M1 time windows consist of the first time window and the M1-1 time window(s), the M1 signals being respectively transmitted in the M1 time windows; the M1 time windows are M1 different time windows in the M time windows, the first time window is a latest one of the M1 time windows, M1 being a positive integer greater than 1 and not greater than M; M1 bit sub-blocks are respectively used for indicating whether the M1 signals are correctly received, the first bit sub-block being one of the M1 bit sub-blocks, the first bit block comprising the M1 bit sub-blocks.

20. The method according to claim 19 , wherein the first signaling comprises M1 sub-signalings, the M1 sub-signalings being respectively used to indicate configuration information for the M1 signals.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 13, 2024
From: SHANGHAI LANGBO COMMUNICATION TECHNOLOGY CO., LTD.
To: BUNKER HILL TECHNOLOGIES LLC
Reel/Frame 069352/0528 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 7, 2023
From: WU, LU; ZHANG, XIAOBO
To: SHANGHAI LANGBO COMMUNICATION TECHNOLOGY COMPANY LIMITED
Reel/Frame 064503/0837 →
Priority Claims (1)
CN 201911161946.5 · Nov 25, 2019 · national
Continuity (2)
Continuation PCTCN2020125055 · Oct 30, 2020
Related Publication 20220286241A1 · Sep 8, 2022
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