IP Library › Granted Patent US 12,200,633
Granted Patent B2
US 12,200,633 · App. 18/491,566 · Granted Jan 14, 2025

Power control method and apparatus

Inventors: Wenting Guo (Shenzhen, CN); Zhengzheng Xiang (Shanghai, CN); Lei Lu (Shanghai, CN)
Assignee: Huawei Technologies Co., Ltd.
H04W52/325H04W52/242H04W52/245H04W52/367
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Quick Facts
Patent No.
US 12,200,633
App. No.
18/491,566
Granted
Jan 14, 2025
Kind
B2
Abstract

A first terminal device determines a transmit power of a data channel, wherein the transmit power of the data channel comprise a first data channel part and a transmit power of a second data channel part, where the first data channel part is a part of the data channel that has a same time domain resource with a control channel, and the second data channel part is another part of the data channel that has a different time domain resource with the control channel. The first terminal device sends data in the first data channel part at the transmit power of the first data channel part, and sends data in the second data channel part at the transmit power of the second data channel part. This application may be applied to internet of vehicles, for example, V2X, LTE-V, and V2V.

Claims (62)

1. A method, comprising:

receiving data in a data channel, wherein the data channel is sent at a transmit power of the data channel, wherein the transmit power of the data channel comprises a transmit power of a first data channel part and a transmit power of a second data channel part, wherein the first data channel part is a part of the data channel and has a same time domain resource as a control channel, and the second data channel part is another part of the data channel and has a different time domain resource than the control channel, wherein the first data channel part does not overlap with the control channel in frequency domain, and wherein the transmit power of the first data channel part and the transmit power of the second data channel part satisfy:

P 1 =P 2 +10 log 10 ( M−N/M )[dBm],

wherein P 2 is the transmit power of the second data channel part, P 1 is the transmit power of the first data channel part, a bandwidth of the control channel is N, a bandwidth of the data channel is M, a bandwidth of the first data channel part is M−N, and a bandwidth of the second data channel part is M, and wherein M is greater than N; and

wherein data in the first data channel part is sent at the transmit power of the first data channel part, and data in the second data channel part is sent at the transmit power of the second data channel part.

2. The method according to claim 1 , wherein the transmit power of the first data channel part is determined based on a maximum transmit power, the bandwidth M−N of the first data channel part, and the bandwidth N of the control channel.

3. The method according to claim 1 , wherein the transmit power of the first data channel part satisfies:

P 1 =min{ P CMAX −f ( N,M−N ), f ( M−N )+ P O +α·PL,P MAX_CBR −f ( N,M−N )},

wherein

P CMAX is a maximum transmit power, f(N, M−N) is a function of the bandwidth M−N of the first data channel part and the bandwidth N of the control channel, f(M−N) is a function of the bandwidth M-N of the first data channel part, P O is a target received power of a second terminal device, PL is a reference link loss, α is a filtering parameter, and P MAX_CBR is a power determined based on a channel busy degree.

4. The method according to claim 3 , wherein:

the reference link loss PL is determined based on an uplink/downlink transmission loss in a serving cell or a sidelink transmission loss; and

the sidelink transmission loss is a link loss from a first terminal device to the second terminal device.

5. The method according to claim 4 , wherein the reference link loss PL satisfies:

PL=min {PL 1 , PL 2 )}[dBm], wherein PL 1 indicates the sidelink transmission loss in sidelink communication, and PL 2 indicates the uplink/downlink transmission loss in the serving cell.

6. The method according to claim 1 , wherein the transmit power of the second data channel part is determined based on a maximum transmit power and a link budget of the second data channel part, and wherein the link budget of the second data channel part is determined based on the bandwidth M of the second data channel part.

7. The method according to claim 1 , wherein the transmit power of the second data channel part satisfies:

P 2 =min{P CMAX , f(M)+P O +α·PL, P MAX_CBR }, wherein P CMAX is a maximum transmit power, f(M) is a function of the bandwidth M of the second data channel part, P O is a target received power of a second terminal device, PL is a reference link loss, P MAX_CBR is a power determined based on a channel busy degree, and α is a filtering parameter; and

wherein the transmit power of the first data channel part is determined based on the maximum transmit power, the bandwidth M−N of the first data channel part, and the bandwidth N of the control channel, M is greater than N, and wherein the transmit power of the first data channel part satisfies:

P 1 =min{ P CMAX −f ( N,M−N ), f ( M−N )+ P O +α·PL, P MAX_CBR −f ( N,M−N )},

wherein f(N,M−N) is a function of the bandwidth M−N of the first data channel part and the bandwidth N of the control channel, and f(M−N) is a function of the bandwidth M−N of the first data channel part.

8. An apparatus, comprising:

one or more processors, wherein execution of instructions by the one or more processors causes the apparatus to:

receive data in a data channel, wherein the data channel is sent at a transmit power of the data channel, wherein the transmit power of the data channel comprises a transmit power of a first data channel part and a transmit power of a second data channel part, wherein the first data channel part is a part of the data channel and has a same time domain resource as a control channel, and the second data channel part is another part of the data channel and has a different time domain resource than the control channel, wherein the first data channel part does not overlap with the control channel in frequency domain, and wherein the transmit power of the first data channel part and the transmit power of the second data channel part satisfy:

P 1 =P 2 +10 log 10 ( M−N/M )[dBm]

wherein P 2 is the transmit power of the second data channel part, P 1 is the transmit power of the first data channel part, a bandwidth of the control channel is N, a bandwidth of the data channel is M, a bandwidth of the first data channel part is M−N, and a bandwidth of the second data channel part is M, and wherein M is greater than N; and

wherein data in the first data channel part is sent at the transmit power of the first data channel part, and data in the second data channel part is sent at the transmit power of the second data channel part.

9. The apparatus according to claim 8 , wherein the transmit power of the first data channel part is determined based on a maximum transmit power, the bandwidth M−N of the first data channel part, and the bandwidth N of the control channel.

10. The apparatus according to claim 8 , wherein the transmit power of the first data channel part satisfies:

P 1 =min{ P CMAX −f ( N,M−N ), f ( M−N )+ P O +α·PL, P MAX_CBR −f ( N,M−N )},

wherein P CMAX is a maximum transmit power, f(N,M−N) is a function of the bandwidth M−N of the first data channel part and the bandwidth N of the control channel, f(M−N) is a function of the bandwidth M−N of the first data channel part, P O is a target received power of the apparatus, PL is a reference link loss, α is a filtering parameter, and P MAX_CBR is a power determined based on a channel busy degree.

11. The apparatus according to claim 10 , wherein:

the reference link loss PL is determined based on an uplink/downlink transmission loss in a serving cell or a sidelink transmission loss; and

the sidelink transmission loss is a link loss from a first terminal device to the apparatus.

12. The apparatus according to claim 11 , wherein the reference link loss PL satisfies:

PL=min{PL 1 , PL 2 }[dBm], wherein PL 1 indicates the sidelink transmission loss in sidelink communication, and PL 2 indicates the uplink/downlink transmission loss in the serving cell.

13. The apparatus according to claim 8 , wherein the transmit power of the second data channel part is determined based on a maximum transmit power and a link budget of the second data channel part, and the link budget of the second data channel part is determined based on the bandwidth M of the second data channel part.

14. The apparatus according to claim 8 , wherein the transmit power of the second data channel part satisfies:

P 2 =min{P CMAX , f(M)+P O +α·PL, P MAX_CBR }, wherein P CMAX is a maximum transmit power, f(M) is a function of a bandwidth M of the second data channel part, P O is a target received power of the apparatus, PL is a reference link loss, P MAX_CBR is a power determined based on a channel busy degree, and α is a filtering parameter; and

wherein the transmit power of the first data channel part is determined based on the maximum transmit power, the bandwidth M−N of the first data channel part, and the bandwidth N of the control channel, wherein M is greater than N, and wherein the transmit power of the first data channel part satisfies:

P 1 =min{ P CMAX −f ( N,M−N ), f ( M−N )+ P O +α·PL, P MAX_CBR −f ( N,M−N )},

wherein f(N,M−N) is a function of the bandwidth M−N of the first data channel part and the bandwidth N of the control channel, and f(M−N) is a function of the bandwidth M−N of the first data channel part.

15. A non-transitory computer-readable storage medium comprising instructions which, when executed by at least one processor of a computer, cause the computer to:

receive data in a data channel, wherein the data channel is sent at a transmit power of the data channel, wherein the transmit power of the data channel comprises a transmit power of a first data channel part and a transmit power of a second data channel part, wherein the first data channel part is a part of the data channel and has a same time domain resource as a control channel, and the second data channel part is another part of the data channel and has a different time domain resource than the control channel, wherein the first data channel part does not overlap with the control channel in frequency domain, and wherein the transmit power of the first data channel part and the transmit power of the second data channel part satisfy:

P 1 =P 2 +10 log 10 ( M−N/M )[dBm]

wherein P 2 is the transmit power of the second data channel part, P 1 is the transmit power of the first data channel part, a bandwidth of the control channel is N, a bandwidth of the data channel is M, a bandwidth of the first data channel part is M−N, and a bandwidth of the second data channel part is M, and wherein M is greater than N; and

wherein data in the first data channel part is sent at the transmit power of the first data channel part, and data in the second data channel part is sent at the transmit power of the second data channel part.

16. The non-transitory computer-readable storage medium according to claim 15 , wherein the transmit power of the first data channel part is determined based on a maximum transmit power, the bandwidth M−N of the first data channel part, and the bandwidth N of the control channel.

17. The non-transitory computer-readable storage medium according to claim 15 , wherein the transmit power of the first data channel part satisfies:

P 1 =min{ P CMAX −f ( N, M−N ), f ( M−N )+ P O +α·PL, P MAX_CBR −f ( N,M−N )},

wherein P CMAX is a maximum transmit power, f(N, M−N) is a function of the bandwidth M−N of the first data channel part and the bandwidth N of the control channel, f(M−N) is a function of the bandwidth M−N of the first data channel part, P O is a target received power of a second terminal device, PL is a reference link loss, α is a filtering parameter, and P MAX_CBR is a power determined based on a channel busy degree.

18. The non-transitory computer-readable storage medium according to claim 17 , wherein:

the reference link loss PL is determined based on an uplink/downlink transmission loss in a serving cell or a sidelink transmission loss;

the sidelink transmission loss is a link loss from a first terminal device to the second terminal device; and

the reference link loss PL satisfies:

PL=min{PL 1 , PL 2 }[dBm], wherein PL 1 indicates the sidelink transmission loss in sidelink communication, and PL 2 indicates the uplink/downlink transmission loss in the serving cell.

19. The non-transitory computer-readable storage medium according to claim 15 , wherein the transmit power of the second data channel part is determined based on a maximum transmit power and a link budget of the second data channel part, and wherein the link budget of the second data channel part is determined based on the bandwidth M of the second data channel part.

20. The non-transitory computer-readable storage medium according to claim 15 , wherein the transmit power of the second data channel part satisfies:

P 2 =min{P CMAX , f(M)+P O +α·PL, P MAX_CBR }, wherein PCMAX is a maximum transmit power, f(M) is a function of a bandwidth M of the second data channel part, P O is a target received power of a second terminal device, PL is a reference link loss, P MAX_CBR is a power determined based on a channel busy degree, and α is a filtering parameter; and

wherein the transmit power of the first data channel part is determined based on the maximum transmit power, the bandwidth M−N of the first data channel part, and the bandwidth N of the control channel, M is greater than N, and wherein the transmit power of the first data channel part satisfies:

P 1 =min{ P CMAX −f ( N, M−N ), f ( M−N )+ P O +α·PL, P MAX_CBR −f ( N,M−N )},

wherein f(N,M−N) is a function of the bandwidth M−N of the first data channel part and the bandwidth N of the control channel, and f(M−N) is a function of the bandwidth M−N of the first data channel part.

Priority Claims (1)
CN 201811588371.0 · Dec 24, 2018 · national
Continuity (3)
Continuation 17356150 · Jun 23, 2021
Continuation PCTCN2019126243 · Dec 18, 2019
Related Publication 20240064655A1 · Feb 22, 2024
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