IP Library Granted Patent US 12,665,669
Granted Patent B2
US 12,665,669 · App. 18/290,482 · Granted Jun 23, 2026

Wireless communication method and wireless communication system

Inventors: Kota Ito (Musashino, JP); Mizuki Suga (Musashino, JP); Takuto Arai (Musashino, JP); Yushi Shirato (Musashino, JP); Naoki Kita (Musashino, JP)
Assignee: NTT, Inc.
H04B10/2575
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Quick Facts
Patent No.
US 12,665,669
App. No.
18/290,482
Filed
Nov 14, 2023
Granted
Jun 23, 2026
Kind
B2
Art Unit
2634
USPC
398/115
Abstract

A wireless communication method in a wireless communication system including an exchange device and a base station device that performs beamforming according to the control of the exchange device, in which: the exchange device performs beamforming control of the base station device by transmitting an optically modulated signal to the base station device via an optical transmission line, the optically modulated signal being generated by modulating an intensity of an optical signal on a basis of a transmission signal to be transmitted by controlling any combination of an optical wavelength, a frequency, and an optical polarization or controlling the frequency; and the base station device performs beamforming in a direction in which a wireless signal radiated from an antenna to which an electrical signal based on the optically modulated signal has been input is reflected by a reflector or is transmitted through a lens among antennas corresponding to the number of combinations of the optical wavelength, the frequency, and the optical polarization or the number of frequencies.

Claims (28)

1 . A wireless communication method in a wireless communication system including an exchange device and a base station device configured to perform beamforming according to the control of the exchange device, wherein:

the exchange device performs beamforming control of the base station device by transmitting an optically modulated signal to the base station device via an optical transmission line, the optically modulated signal being generated by modulating an intensity of an optical signal on a basis of a transmission signal to be transmitted by controlling any combination of an optical wavelength, a frequency, and an optical polarization or controlling the frequency; and

the base station device performs beamforming in a direction in which a wireless signal radiated from an antenna to which an electrical signal based on the optically modulated signal has been input is reflected by a reflector or is transmitted through a lens among antennas corresponding to the number of combinations of the optical wavelength, the frequency, and the optical polarization or the number of frequencies.

2 . The wireless communication method according to claim 1 , wherein:

the exchange device performs the beamforming control of the base station device by transmitting the optically modulated signal to the base station device, the optically modulated signal being generated by controlling the frequency to convert a frequency of the transmission signal and modulating the intensity of the optical signal on the basis of the transmission signal having the converted frequency; and

the base station device converts the optically modulated signal into an electrical signal, then demultiplexes the electrical signal according to the frequency, and inputs the electrical signal to the antenna to perform beamforming.

3 . The wireless communication method according to claim 1 , wherein:

the exchange device performs the beamforming control of the base station device by transmitting the optically modulated signal to the base station device, the optically modulated signal being generated by controlling the combination of the optical wavelength and the frequency to convert a frequency of the transmission signal and modulating the intensity of the optical signal having the controlled optical wavelength on the basis of the transmission signal having the converted frequency; and

the base station device demultiplexes the optically modulated signal according to the wavelength, converts the optically modulated signal demultiplexed for each wavelength into an electrical signal, demultiplexes the electrical signal according to the frequency, and inputs the electrical signal to the antenna to perform beamforming.

4 . The wireless communication method according to claim 1 , wherein:

the exchange device performs the beamforming control of the base station device by transmitting the optically modulated signal to the base station device, the optically modulated signal being generated by controlling the combination of the optical polarization and the frequency to convert a frequency of the transmission signal and modulating the intensity of the optical signal having the controlled optical polarization on the basis of the transmission signal having the converted frequency; and

the base station device separates an optical polarization component of the optically modulated signal, converts the optically modulated signal separated for each optical polarization component into an electrical signal, demultiplexes the electrical signal according to the frequency, and inputs the electrical signal to the antenna to perform beamforming.

5 . The wireless communication method according to claim 1 , wherein:

the exchange device performs the beamforming control of the base station device by transmitting the optically modulated signal to the base station device, the optically modulated signal being generated by controlling the combination of the optical polarization and the optical wavelength to modulate the intensity of the optical signal having the optical polarization having the controlled optical wavelength by using the transmission signal; and

the base station device demultiplexes the optically modulated signal according to the wavelength and then separates an optical polarization component of the optically modulated signal demultiplexed for each wavelength or separates the optical polarization component of the optically modulated signal and then demultiplexes the optically modulated signal separated for each optical polarization component according to the wavelength, converts the optically modulated signal into an electrical signal, and inputs the electrical signal to the antenna to perform beamforming.

6 . The wireless communication method according to claim 1 , wherein:

the exchange device performs the beamforming control of the base station device by transmitting the optically modulated signal to the base station device, the optically modulated signal being generated by controlling the combination of the optical polarization, the frequency, and the optical wavelength to convert a frequency of the transmission signal and modulating the intensity of the optical signal having the optical polarization having the controlled optical wavelength on the basis of the transmission signal having the converted frequency; and

the base station device inputs the electrical signal obtained on the basis of the optically modulated signal to the antenna to perform beamforming.

7 . The wireless communication method according to claim 1 , wherein:

the base station device receives a wireless signal transmitted from an external device via the reflector or the lens by using the antenna, converts the wireless signal into an electrical signal, outputs the electrical signal, and transmits, to the exchange device, an optical signal whose intensity has been modulated by using the electrical signal; and

the exchange device demodulates the optical signal transmitted from the base station device.

8 . A wireless communication system including an exchange device and a base station device configured to perform beamforming according to control of the exchange device, wherein:

the exchange device includes

a controller configured to control any combination of an optical wavelength, a frequency, and an optical polarization or controls the frequency, and an optical modulator configured to transmit an optically modulated signal to the base station device via an optical transmission line, the optically modulated signal being generated by modulating an intensity of an optical signal on a basis of a transmission signal to be transmitted on a basis of the any combination of the optical wavelength, the frequency, and the optical polarization or the frequency switched by the controller;

the base station device includes

antennas corresponding to the number of combinations of the optical wavelength, the frequency, and the optical polarization or the number of frequencies, and

a reflector or lens configured to reflect or transmits a wireless signal radiated from an antenna to which an electrical signal based on the optically modulated signal has been input; and

the reflector or the lens performs beamforming in a direction in which the reflection or the transmission has been performed.

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 Nov 14, 2023
From: ITO, KOTA; SUGA, MIZUKI; ARAI, TAKUTO; SHIRATO, YUSHI; KITA, NAOKI
To: NIPPON TELEGRAPH AND TELEPHONE CORPORATION
Reel/Frame 065553/0976 →
Continuity (1)
Related Publication 20240259098A1 · Aug 1, 2024
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