IP Library Granted Patent US 11,405,124
Granted Patent B2
US 11,405,124 · App. 17/311,665 · Granted Aug 2, 2022

Wireless communication system, parent station apparatus and wireless communication method

Inventors: Kota Ito (Musashino, JP); Nobuaki Otsuki (Musashino, JP); Mizuki Suga (Musashino, JP); Naoki Kita (Musashino, JP)
Assignee: NIPPON TELEGRAPH AND TELEPHONE CORPORATION
H04J14/02H04B10/11H04B10/2575H04B10/548
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Quick Facts
Patent No.
US 11,405,124
App. No.
17/311,665
Granted
Aug 2, 2022
Kind
B2
Abstract

A master station device is connected to a slave station device that emits a transmission signal received by light via an optical transmission path from a plurality of antenna elements. The master station device includes an optical signal output unit that outputs optical signals of a plurality of wavelengths, a phase adjustment unit that adjusts, for each wavelength, a phase of the transmission signal based on phase rotation that the optical signal is to undergo while being transmitted through the optical transmission path and a phase in one of the antenna elements corresponding to the wavelength of the optical signal, an optical modulation unit that modulates, for each wavelength, the optical signal output by the optical signal output unit with the transmission signal the phase of which is adjusted in accordance with the wavelength of the optical signal, and an optical combining unit that multiplexes the optical modulated signal of each wavelength and outputs the multiplexed signal to the optical transmission path. The slave station device includes an optical demultiplexing unit that demultiplexes the optical modulated signal transmitted through the optical transmission path and an optical/electric conversion unit that outputs the transmission signal obtained by converting the optical modulated signal of each wavelength into an electric signal to one of the plurality of the antenna elements corresponding to the wavelength.

Claims (27)

1. A wireless communication system comprising:

a master station device; and

a slave station device configured to emit, from a plurality of antenna elements, transmission signals received using light from the master station device via an optical transmission path, wherein

the master station device includes:

an optical signal output unit configured to output optical signals of a plurality of different wavelengths;

a phase adjustment unit configured to adjust, for each wavelength, a phase of a corresponding one of the transmission signals based on phase rotation that the optical signal of the wavelength is to undergo while being transmitted through the optical transmission path and a phase in one of the antenna elements corresponding to the wavelength;

an optical modulation unit configured to modulate, for each wavelength, the optical signal of the wavelength output by the optical signal output unit with the transmission signal the phase of which is adjusted by the phase adjustment unit in accordance with the wavelength, thereby generating an optical modulated signal; and

an optical combining unit configured to multiplex the optical modulated signal of each wavelength generated by the optical modulation unit and output the multiplexed signal to the optical transmission path, and

the slave station device includes:

an optical demultiplexing unit configured to demultiplex, for each wavelength, the optical modulated signal transmitted through the optical transmission path; and

an optical/electric conversion unit configured to output the transmission signal obtained by converting the optical modulated signal of each wavelength demultiplexed by the optical demultiplexing unit into an electric signal to one of the plurality of antenna elements corresponding to the wavelength.

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

the optical signal output unit includes a multi-wavelength light source and an optical demultiplexer configured to split, for each wavelength, the optical signal output by the multi-wavelength light source or includes a plurality of light sources configured to output optical signals of the wavelengths different from each other.

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

the phase rotation that the optical signal of each wavelength is to undergo while being transmitted through the optical transmission path is obtained from a difference between an amount of phase rotation that an optical signal of any of the plurality of wavelengths is to undergo while being transmitted through the optical transmission path and an amount of the phase rotation that an optical signal of each of the plurality of wavelengths different from each other is to undergo while being transmitted through the optical transmission path.

4. A master station device connected to a slave station device configured to emit, from a plurality of antenna elements, transmission signals received using light via an optical transmission path, the master station device comprising:

an optical signal output unit configured to output optical signals of a plurality of different wavelengths;

a phase adjustment unit configured to adjust, for each wavelength, a phase of a corresponding one of the transmission signals based on phase rotation that the optical signal of the wavelength is to undergo while being transmitted through the optical transmission path and a phase in one of the antenna elements corresponding to the wavelength;

an optical modulation unit configured to modulate, for each wavelength, the optical signal of the wavelength output by the optical signal output unit with the transmission signal the phase of which is adjusted by the phase adjustment unit in accordance with the wavelength, thereby generating an optical modulated signal; and

an optical combining unit configured to multiplex the optical modulated signal of each wavelength generated by the optical modulation unit and output the multiplexed signal to the optical transmission path.

5. A wireless communication method executed by a wireless communication system including a master station device; and a slave station device configured to emit, from a plurality of antenna elements, transmission signals received using light from the master station device via an optical transmission path, the wireless communication method comprising:

by the master station device, outputting optical signals of a plurality of different wavelengths;

by the master station device, adjusting, for each wavelength, a phase of a corresponding one of the transmission signals based on phase rotation that the optical signal of the wavelength is to undergo while being transmitted through the optical transmission path and a phase in one of the plurality of antenna elements corresponding to the wavelength;

by the master station device, modulating, for each wavelength, the optical signal of the wavelength output in the outputting with the transmission signal the phase of which is adjusted in the adjusting in accordance with the wavelength, thereby generating an optical modulated signal;

by the master station device, multiplexing the optical modulated signal of each wavelength generated in the modulating and outputting the multiplexed signal to the optical transmission path;

by the slave station, demultiplexing, for each wavelength, the optical modulated signal transmitted through the optical transmission path; and

by the slave station, outputting the transmission signal obtained by converting the optical modulated signal of each wavelength demultiplexed in the demultiplexing into an electric signal to one of the plurality of antenna elements corresponding to the wavelength.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2021
From: ITO, KOTA; OTSUKI, NOBUAKI; SUGA, MIZUKI; KITA, NAOKI
To: NIPPON TELEGRAPH AND TELEPHONE CORPORATION
Reel/Frame 056460/0035 →
Priority Claims (1)
JP JP2018-231144 · Dec 10, 2018 · national
Continuity (1)
Related Publication 20220109518A1 · Apr 7, 2022