IP Library Granted Patent US 12,603,696
Granted Patent B2
US 12,603,696 · App. 18/268,579 · Granted Apr 14, 2026

Wireless communication technique of reducing influence of an interference signal on a radio signal

Inventors: Kazumitsu Sakamoto (Musashino, JP); Yosuke Fujino (Musashino, JP); Daisuke Goto (Musashino, JP); Yasuyoshi Kojima (Musashino, JP); Kiyohiko Itokawa (Musashino, JP)
Assignee: NTT, Inc.
H04B7/18513G16Y10/75G16Y40/10H04B7/18517H04B7/18519H04B7/1858
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Quick Facts
Patent No.
US 12,603,696
App. No.
18/268,579
Granted
Apr 14, 2026
Kind
B2
Abstract

The receiving apparatus includes a signal receiver, a second signal reception processor, a first signal reception processor, and a controller. The signal receiver receives the second signal indicating the reception time and the waveform data indicating the waveform of the first signal received from the transmission apparatus by each of the plurality of receiving antennas of the relay apparatus. The second signal reception processor performs reception processing of the second signal to acquire waveform data. The first signal reception processor performs reception processing of the first signal indicated by the waveform data to acquire data set to the first signal by the transmission apparatus. The controller calculates a generation time and a generation position of the interference signal with respect to the first signal on the basis of the observation result of the radio signal in the observation apparatus. The controller instructs the first signal reception processor to perform, in the reception processing, an operation of suppressing an interference signal arriving at the relay apparatus from a generation position at the generation time on the first signal at the reception time corresponding to the generation time.

Claims (46)

1 . A wireless communication system comprising a transmission apparatus, a relay apparatus, and a receiving apparatus,

wherein

the relay apparatus includes:

a first signal receiver that receives a radio first signal transmitted from the transmission apparatus by a plurality of receiving antennas;

a reception waveform recorder that generates waveform data indicating a waveform of the first signal received by each of the plurality of receiving antennas; and

a second signal transmitter that transmits the waveform data and a second signal indicating a reception time of the first signal to the receiving apparatus, and

the receiving apparatus includes:

a second signal receiver that receives the second signal transmitted from the relay apparatus;

a second signal reception processor that performs reception processing of the second signal received by the second signal receiver to acquire the waveform data;

a first signal reception processor that performs reception processing of the first signal indicated by the waveform data acquired by the second signal reception processor to acquire data that is set to the first signal by the transmission apparatus; and

a controller that calculates a generation time and a generation position of an interference signal with respect to the first signal on a basis of an observation result of a radio signal in at least one observation apparatus, and instructs the first signal reception processor to perform, in the reception processing, an operation of suppressing an interference signal arriving at the relay apparatus from the generation position at the generation time on the first signal at the reception time corresponding to the generation time.

2 . The wireless communication system according to claim 1 , wherein

the relay apparatus is provided in a mobile body, and

the controller calculates an arrival direction of an interference signal with respect to the relay apparatus on a basis of the generation time and the generation position of the interference signal and a position of the mobile body at the generation time, and instructs the first signal reception processor to perform, in the reception processing, an operation of suppressing an interference signal arriving at the relay apparatus from the arrival direction at the generation time on the first signal at the reception time corresponding to the generation time.

3 . The wireless communication system according to claim 2 ,

wherein the relay apparatus is provided in a flying object.

4 . The wireless communication system according to claim 3 ,

wherein

the relay apparatus is provided in a low orbit satellite, and

the transmission apparatus, the receiving apparatus, and the at least one observation apparatus are installed on an earth.

5 . The wireless communication system according to claim 3 ,

wherein the operation is multiplication of the first signal received by each of the plurality of receiving antennas by a weight.

6 . The wireless communication system according to claim 2 ,

wherein

the relay apparatus is provided in a low orbit satellite, and

the transmission apparatus, the receiving apparatus, and the at least one observation apparatus are installed on an earth.

7 . The wireless communication system according to claim 6 ,

wherein the operation is multiplication of the first signal received by each of the plurality of receiving antennas by a weight.

8 . The wireless communication system according to claim 2 ,

wherein the operation is multiplication of the first signal received by each of the plurality of receiving antennas by a weight.

9 . The wireless communication system according to claim 1 ,

wherein the operation is multiplication of the first signal received by each of the plurality of receiving antennas by a weight.

10 . The wireless communication system according to claim 1 ,

wherein the receiving apparatus is a different apparatus from the relay apparatus or the at least one observation apparatus.

11 . The wireless communication system according to claim 1 ,

wherein the at least one observation apparatus are at least three observation apparatuses, and

the controller calculates the generation position of the interference signal by three-point positioning on a basis of the positions of the at least three observation apparatuses and the relationship between reception levels in the at least three observation apparatuses.

12 . A control apparatus comprising:

a calculator that calculates a generation time and a generation position of an interference signal with respect to a first signal transmitted by a transmission apparatus on a basis of an observation result of a radio signal in at least one observation apparatus; and

an instructor that receives a second signal indicating waveform data indicating a waveform of the first signal received from the transmission apparatus by each of a plurality of receiving antennas of a relay apparatus and a reception time of the first signal in the relay apparatus, performs reception processing of the received second signal to acquire the waveform data, and instructs a receiving apparatus that performs reception processing of the first signal indicated by the acquired waveform data to acquire data that is set to the first signal by the transmission apparatus to perform, in the reception processing, an operation of suppressing an interference signal arriving at the relay apparatus from the generation position at the generation time on the first signal at the reception time corresponding to the generation time.

13 . A non-transitory computer-readable storage medium storing a program for causing a computer to function as the control apparatus according to claim 7 .

14 . A receiving apparatus comprising:

a signal receiver that receives a second signal indicating waveform data indicating a waveform of a first signal received from a transmission apparatus by each of a plurality of receiving antennas of a relay apparatus and a reception time of the first signal in the relay apparatus;

a second signal reception processor that performs reception processing of the second signal received by the signal receiver to acquire the waveform data;

a first signal reception processor that performs reception processing of the first signal indicated by the waveform data acquired by the second signal reception processor to acquire data that is set to the first signal by the transmission apparatus; and

a controller that calculates a generation time and a generation position of an interference signal with respect to the first signal on a basis of an observation result of a radio signal in at least one observation apparatus, and instructs the first signal reception processor to perform, in the reception processing, an operation of suppressing an interference signal arriving at the relay apparatus from the generation position at the generation time on the first signal at the reception time corresponding to the generation time.

Assignments (2)
CHANGE OF NAME Recorded Oct 3, 2025
From: NIPPON TELEGRAPH AND TELEPHONE CORPORATION
To: NTT, INC.
Reel/Frame 072997/0702 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 20, 2023
From: SAKAMOTO, KAZUMITSU; FUJINO, YOSUKE; GOTO, DAISUKE; KOJIMA, YASUYOSHI; ITOKAWA, KIYOHIKO
To: NIPPON TELEGRAPH AND TELEPHONE CORPORATION
Reel/Frame 064002/0180 →
Continuity (1)
Related Publication 20240048226A1 · Feb 8, 2024
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