IP Library › Granted Patent US 12,255,710
Granted Patent B2
US 12,255,710 · App. 18/384,036 · Granted Mar 18, 2025

Signal generation method, transmission device, reception method, and reception device

Inventors: Yutaka Murakami (Kanagawa, JP); Tomohiro Kimura (Osaka, JP); Mikihiro Ouchi (Osaka, JP)
Assignee: SUN PATENT TRUST
H04B7/0469H04B7/04H04B7/0413H04B7/0697H04L23/00H04L25/03H04L27/12H04L27/14H04L27/26H04L27/36H04L27/2601H04W72/30H04W72/542
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Quick Facts
Patent No.
US 12,255,710
App. No.
18/384,036
Granted
Mar 18, 2025
Kind
B2
Abstract

A signal generation method is used in a transmission device that transmits a plurality of transmission signals from a plurality of antennas at the same frequency and at the same time, in the case where larger power change is performed on a first transmission signal than on a second transmission signal during generation process of the first transmission signal and the second transmission signal, the first transmission signal and the second transmission signal are mapped before the power change such that a minimum Euclidian distance between possible signal points for the first signal is longer than a minimum Euclidian distance between possible signal points for the second signal.

Claims (40)

1. A transmission method used in a transmission system that includes a first transmission station and a second transmission station, the transmission method comprising:

performing, by the first transmission station, first phase changing on signals included in a first orthogonal frequency-division multiplexing (OFDM) frame according to a first phase changing pattern or a second phase changing pattern;

performing, by the second transmission station, second phase changing on signals included in a second OFDM frame according to a third phase changing pattern or a fourth phase changing pattern, the second OFDM frame being identical to the first OFDM frame;

converting, by the first transmission station, a first control information modulated signals to generate a first preamble, and converting, by a first inverse fast fourier transform (IFFT) unit of the first transmission station, the first OFDM frame to generate a first OFDM signal, the first control information modulated signals being generated from control information;

converting, by the second transmission station, a second control information modulated signals to generate a second preamble, and converting, by a second inverse fast fourier transform (IFFT) unit of the second transmission station, the second OFDM frame to generate a second OFDM signal, the second control information modulated signals being identical to the first control information modulated signals;

transmitting, by the first transmission station, the first preamble and the first OFDM signal; and

transmitting, by the second transmission station, the second preamble and the second OFDM signal,

wherein the control information includes information indicating the phase changing patterns used for the first phase changing and the second phase changing, and the first preamble is generated without undergoing the first phase changing, and

the second preamble is generated without undergoing the second phase changing, and the first OFDM frame includes modulated signals generated by using a non-uniform 256 quadrature amplitude modulation scheme having 256 candidate signal points, a real component value of each candidate signal point is one from among 16 candidate values, an imaginary component value of each candidate signal point is one from among the 16 candidate values.

2. A transmission system that includes a first transmission station and a second transmission station, wherein

the first transmission station comprises:

a first phase changer that, in operation, performs first phase changing on signals included in a first orthogonal frequency-division multiplexing (OFDM) frame according to a first phase changing pattern or a second phase changing pattern;

a first inverse fourier transform (IFT) unit that, in operation, converts a first control information modulated signals to generate a first preamble, and converts the first OFDM frame to generate a first OFDM signal, the first control information modulated signals being generated from control information; and

a first antenna that, in operation, transmits the first preamble and the first OFDM signal;

the second transmission station comprises:

a second phase changer that, in operation, performs second phase changing on signals included in a second OFDM frame according to a third phase changing pattern or a fourth phase changing pattern, the second OFDM frame being identical to the first OFDM frame;

a second IFT unit that, in operation, converts a second control information modulated signals to generate a second preamble, and converts the second OFDM frame to generate a second OFDM signal, the second control information modulated signals being identical to the first control information modulated signals; and

a first antenna that, in operation, transmits the second preamble and the second OFDM signal, wherein

the control information includes information indicating the phase changing patterns used for the first phase changing and the second phase changing, and

the first preamble is generated without undergoing the first phase changing, and the second preamble is generated without undergoing the second phase changing, and the first OFDM frame includes modulated signals generated by using a non-uniform 256 quadrature amplitude modulation scheme having 256 candidate signal points, a real component value of each candidate signal point is one from among 16 candidate values, an imaginary component value of each candidate signal point is one from among the 16 candidate values.

3. A reception method used in a reception device that receives a signal transmitted from a transmission system, the reception method comprising:

receiving a first reception signal obtained by receiving a first preamble and a second preamble transmitted from a first antenna and a second antenna respectively, and receiving a second reception signal obtained by receiving a first orthogonal frequency-division multiplexing (OFDM) signal and a second OFDM signal transmitted from the first antenna and the second antenna respectively, wherein

the first preamble is generated by converting a first control information modulated signals into the first preamble, the first control information modulated signals being generated from control information, and

the second preamble is generated by converting a second control information modulated signals into the second preamble, the second control information modulated signals are identical to the first control information modulated signals, and

the first OFDM signal is generated by performing first phase changing on signals included in a first OFDM frame according to a first phase changing pattern or a second phase changing pattern, converting the first OFDM frame into the first OFDM signal using a first inverse fast fourier transform, and

the second OFDM signal is generated by performing first phase changing on signals included in a first OFDM frame according to a third phase changing pattern or a fourth phase changing pattern, converting the second OFDM frame into the second OFDM signal using a second inverse fast fourier transform, the second OFDM frame being identical to the first OFDM frame; and

demodulating the second reception signal based on the control information acquired from the first reception signal, wherein

the control information includes information indicating the phase changing patterns used for the first phase changing and the second phase changing, and

the first preamble is generated without undergoing the first phase changing, and the second preamble is generated without undergoing the second phase changing, and

the first OFDM frame includes modulated signals generated by using a non-uniform 256 quadrature amplitude modulation scheme having 256 candidate signal points, a real component value of each candidate signal point is one from among 16 candidate values, an imaginary component value of each candidate signal point is one from among the 16 candidate values.

4. A reception device that receives a signal transmitted from a transmission system, the reception device comprising:

a receiver that, in operation, receives a first reception signal and a second reception signal, the first reception signal being a signal obtained by receiving a first preamble and a

second preamble transmitted from a first antenna and a second antenna respectively, the second reception signal being a signal obtained by receiving a first orthogonal frequency-division multiplexing (OFDM) signal and a second OFDM signal transmitted from the first antenna and the second antenna respectively, wherein

the first preamble is generated by converting a first control information signals into the first preamble, the first control information modulated signals being generated from control information, and

the second preamble is generated by converting a second control information modulated signals into the second preamble, the second control information modulated signals are identical to the first control information modulated signals, and

the first OFDM signal is generated by performing first phase changing on signals included in a first OFDM frame according to a first phase changing pattern or a second phase changing pattern, converting the first OFDM frame into the first OFDM signal using a first inverse fast fourier transform, and

the second OFDM signal is generated by performing first phase changing on signals included in a first OFDM frame according to a third phase changing pattern or a fourth phase changing pattern, converting the second OFDM frame into the second OFDM signal using a second inverse fast fourier transform, the second OFDM frame being identical to the first OFDM frame; and

a demodulator that, in operation, demodulates the second reception signal based on the control information acquired from the first reception signal,

wherein the control information includes information indicating the phase changing patterns used for the first phase changing and the second phase changing, and

the first preamble is generated without undergoing the first phase changing, and the second preamble is generated without undergoing the second phase changing, and the first OFDM frame includes modulated signals generated by using a non-uniform 256 quadrature amplitude modulation scheme having 256 candidate signal points, a real component value of each candidate signal point is one from among 16 candidate values, an imaginary component value of each candidate signal point is one from among the 16 candidates.

Priority Claims (2)
JP 2012-268858 · Dec 7, 2012 · national
JP 2012-268859 · Dec 7, 2012 · national
Continuity (12)
Continuation 18082916 · Dec 16, 2022
Continuation 17728025 · Apr 25, 2022
Continuation 17346624 · Jun 14, 2021
Continuation 17038341 · Sep 30, 2020
Continuation 16729752 · Dec 30, 2019
Continuation 16527583 · Jul 31, 2019
Continuation 16371363 · Apr 1, 2019
Continuation 16164044 · Oct 18, 2018
Continuation 15991349 · May 29, 2018
Continuation 15143681 · May 2, 2016
Continuation 14442899
Related Publication 20240178891A1 · May 30, 2024
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