IP Library Patent Application 18970980
Patent Application
App. No. 18/970,980

METHOD AND DEVICE USED FOR WIRELESS COMMUNICATION

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Patent No.
US None
App. No.
18/970,980
Abstract

The present application discloses a method and a device for wireless communications. A first node receives a first signaling, the first signaling configuring a first RS resource and multiple time-frequency resources; and performs a first channel measurement for the first RS resource, and performs a first interference measurement for at least one time-frequency resource among the multiple time-frequency resources; and transmits a first CSI; where calculation of the first CSI is dependent on the first channel measurement and the first interference measurement; the at least one time-frequency resource is determined by the first node itself. This application can guarantee the performance of channel information and introduce better scheduling flexibility.

Claims (33)

1 . A first node for wireless communications, comprising:

a first receiver, receiving a first signaling, the first signaling configuring a first RS resource and multiple time-frequency resources; and performing a first channel measurement for the first RS resource, and performing a first interference measurement for at least one time-frequency resource among the multiple time-frequency resources; and

a first transmitter, transmitting a first CSI;

wherein calculation of the first CSI is dependent on the first channel measurement and the first interference measurement; the at least one time-frequency resource is determined by the first node itself.

2 . The first node according to claim 1 , characterized in that an interference corresponding to each time-frequency resource among the multiple time-frequency resources and other than the at least one time-frequency resource does not exceed an interference corresponding to any time-frequency resource of the at least one time-frequency resource.

3 . The first node according to claim 1 , characterized in that the first signaling configures a second RS resource to be used for an interference measurement, the second RS resource being different from any one of the multiple time-frequency resources, the first interference measurement including a measurement of the second RS resource.

4 . The first node according to claim 1 , characterized in that the at least one time-frequency resource means L time-frequency resource(s), and the first CSI includes a first CQI; assuming that any L time-frequency resource(s) among the multiple time-frequency resources is(are) applied in an interference measurement, a spectral efficiency of an obtained CQI is not lower than a spectral efficiency of the first CQI.

5 . The first node according to claim 1 , characterized in that the at least one time-frequency resource means L time-frequency resource(s), and the first CSI includes a first SINR; assuming that any L time-frequency resource(s) among the multiple time-frequency resources is(are) applied in an interference measurement, an obtained SINR is not lower than the first SINR.

6 . The first node according to claim 1 , characterized in that the at least one time-frequency resource means L time-frequency resource(s), and the first CSI includes a first interference power value; assuming that any L time-frequency resource(s) among the multiple time-frequency resources is(are) applied in an interference measurement, an obtained interference power value is not greater than the first interference power value.

7 . The first node according to claim 1 , characterized in that each time-frequency resource of the at least one time-frequency resource occupies Q subcarrier(s) in one multicarrier symbol: location(s) of the Q subcarrier(s) is(are) dependent on a first sensing waveform.

8 . The first node according to claim 7 , characterized in comprising:

the first receiver, receiving a second signaling, the second signaling indicating a frequency of the first sensing waveform;

wherein the first sensing waveform is a frequency modulated wave, and the location(s) of the Q subcarrier(s) is(are) dependent on the frequency of the first sensing waveform.

9 . A second node for wireless communications, comprising:

a second transmitter, transmitting a first signaling, the first signaling configuring a first RS resource and multiple time-frequency resources; and

a second receiver, receiving a first CSI;

wherein calculation of the first CSI is dependent on a first channel measurement and a first interference measurement; the at least one time-frequency resource is unknown to the second node; the first channel measurement is performed based on the first RS resource, and the first interference measurement is performed based on at least one time-frequency resource among the multiple time-frequency resources.

10 . The second node according to claim 9 , characterized in that an interference corresponding to each time-frequency resource among the multiple time-frequency resources and other than the at least one time-frequency resource does not exceed an interference corresponding to any time-frequency resource of the at least one time-frequency resource.

11 . The second node according to claim 9 , characterized in that the first signaling configures a second RS resource to be used for an interference measurement, the second RS resource being different from any one of the multiple time-frequency resources, the first interference measurement including a measurement of the second RS resource.

12 . The second node according to claim 9 , characterized in that the at least one time-frequency resource means L time-frequency resource(s), and the first CSI includes a first CQI; assuming that any L time-frequency resource(s) among the multiple time-frequency resources is(are) applied in an interference measurement, a spectral efficiency of an obtained CQI is not lower than a spectral efficiency of the first CQI.

13 . The second node according to claim 9 , characterized in that the at least one time-frequency resource means L time-frequency resource(s), and the first CSI includes a first SINR; assuming that any L time-frequency resource(s) among the multiple time-frequency resources is(are) applied in an interference measurement, an obtained SINR is not lower than the first SINR.

14 . The second node according to claim 9 , characterized in that the at least one time-frequency resource means L time-frequency resource(s), and the first CSI includes a first interference power value; assuming that any L time-frequency resource(s) among the multiple time-frequency resources is(are) applied in an interference measurement, an obtained interference power value is not greater than the first interference power value.

15 . The second node according to claim 9 , characterized in that each time-frequency resource of the at least one time-frequency resource occupies Q subcarrier(s) in one multicarrier symbol: location(s) of the Q subcarrier(s) is(are) dependent on a first sensing waveform.

16 . The second node according to claim 9 , characterized in comprising:

the second transmitter, transmitting a second signaling, the second signaling indicating a frequency of the first sensing waveform;

wherein the first sensing waveform is a frequency modulated wave, and the location(s) of the Q subcarrier(s) is(are) dependent on the frequency of the first sensing waveform.

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

receiving a first signaling, the first signaling configuring a first RS resource and multiple time-frequency resources; and performing a first channel measurement for the first RS resource, and performing a first interference measurement for at least one time-frequency resource among the multiple time-frequency resources; and

transmitting a first CSI;

wherein calculation of the first CSI is dependent on the first channel measurement and the first interference measurement; the at least one time-frequency resource is determined by the first node itself.

18 . The method in the first node according to claim 17 , characterized in that an interference corresponding to each time-frequency resource among the multiple time-frequency resources and other than the at least one time-frequency resource does not exceed an interference corresponding to any time-frequency resource of the at least one time-frequency resource.

19 . The method in the first node according to claim 17 , characterized in that the first signaling configures a second RS resource to be used for an interference measurement, the second RS resource being different from any one of the multiple time-frequency resources, the first interference measurement including a measurement of the second RS resource.

20 . The method in the first node according to claim 17 , characterized in that the at least one time-frequency resource means L time-frequency resource(s), and the first CSI includes a first CQI; assuming that any L time-frequency resource(s) among the multiple time-frequency resources is(are) applied in an interference measurement, a spectral efficiency of an obtained CQI is not lower than a spectral efficiency of the first CQI.

Assignments (3)
CHANGE OF NAME Recorded Apr 7, 2026
From: APOGEE NETWORKS, LLC
To: APOGEE 5G GLOBAL, LLC
Reel/Frame 075372/0055 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 4, 2025
From: SHANGHAI LANGBO COMMUNICATION TECHNOLOGY COMPANY LIMITED
To: APOGEE NETWORKS, LLC
Reel/Frame 070741/0575 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 13, 2025
From: ZHANG, XIAOBO; JIANG, QI
To: SHANGHAI LANGYAO COMMUNICATION TECHNOLOGY COMPANY LIMITED
Reel/Frame 069831/0578 →