IP Library Granted Patent US 10,225,123
Granted Patent B2
US 10,225,123 · App. 15/987,016 · Granted Mar 5, 2019

Method of signal generation and signal generating device

Inventors: Yutaka Murakami (Kanagawa, JP); Tomohiro Kimura (Osaka, JP); Mikihiro Ouchi (Osaka, JP)
Assignee: SUN PATENT TRUST
H04L27/2628H04B7/0667H04B7/0682H04B7/0697H04B7/0842H04L1/0048H04L1/0071H04L5/0023H04L5/0082H04L5/12H04L27/20H04L27/265H04L27/368
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Quick Facts
Patent No.
US 10,225,123
App. No.
15/987,016
Granted
Mar 5, 2019
Kind
B2
Abstract

A transmission method simultaneously transmitting a first modulated signal and a second modulated signal at a common frequency performs precoding on both signals using a fixed precoding matrix and regularly changes the phase of at least one of the signals, thereby improving received data signal quality for a reception device.

Claims (27)

1. A signal generation method comprising:

phase-changing all of a plurality of baseband signals using each of a plurality of phase changing patterns, each of the plurality of phase changing patterns being different from each other;

inverse-fast-Fourier-transforming each of the plurality of baseband signals to which the phase change is applied, to each of a plurality of orthogonal frequency-division multiplexing (OFDM) transmission signals; and

applying peak to average power ratio (PAPR) reduction processing to each of the plurality of OFDM transmission signals for transmission on a same frequency band and at a same time, wherein

the phase of each of the plurality of baseband signals is regularly changed according to each of the plurality of phase changing patterns for each subcarrier of the plurality of OFDM transmission signals,

each of the plurality of phase changing patterns having N phase change value candidates,

N being an integer greater than two, and

each candidate of the N phase change value candidates being selected at least once within a determined period.

2. A signal generation apparatus comprising:

phase change circuitry phase-changing all of a plurality of baseband signals using each of a plurality of phase changing patterns, each of the plurality of phase changing patterns being different from each other;

inverse fast Fourier transform circuitry inverse-fast-Fourier-transforming each of the plurality of baseband signals to which the phase change is applied, to each of a plurality of orthogonal frequency-division multiplexing (OFDM) transmission signals; and

peak to average power ratio (PAPR) reduction circuitry applying PAPR reduction processing to each of the plurality of OFDM transmission signals for transmission on a same frequency band and at a same time, wherein

the phase of each of the plurality of baseband signals is regularly changed according to each of the plurality of phase changing patterns for each subcarrier of the plurality of OFDM transmission signals,

each of the plurality of phase changing patterns having N phase change value candidates,

N being an integer greater than two, and

each candidate of the N phase change value candidates being selected at least once within a determined period.

3. A signal demodulation method for demodulating a reception signal obtained by receiving a plurality of orthogonal frequency-division multiplexing (OFDM) transmission signals, the signal demodulation method comprising:

obtaining the plurality of OFDM transmission signals, wherein

the plurality of OFDM transmission signals are generated by phase-changing all of a plurality of baseband signals using each of a plurality of phase changing patterns, inverse-fast-Fourier-transforming each of the plurality of baseband signals to which the phase change is applied, to each of the plurality of OFDM transmission signals, and

applying peak to average power ratio (PAPR) reduction processing to each of the plurality of OFDM transmission signals for transmission on a same frequency band and at a same time, each of the plurality of phase changing patterns being different from each other, and

the phase of each of the plurality of baseband signals is regularly changed according to each of the plurality of phase changing patterns for each subcarrier of the plurality of OFDM transmission signals, each of the plurality of phase changing patterns having N phase change value candidates, N being an integer greater than two, and each candidate of the N phase change value candidates being selected at least once within a determined period; and

demodulating the reception signal from the plurality of OFDM transmission signals.

4. A signal demodulation apparatus for demodulating a reception signal obtained by receiving a plurality of orthogonal frequency-division multiplexing (OFDM) transmission signals, the signal demodulation apparatus comprising:

reception circuitry obtaining the plurality of OFDM transmission signals, wherein

the plurality of OFDM transmission signals are generated by phase-changing all of a plurality of baseband signals using each of a plurality of phase changing patterns, inverse-fast-Fourier-transforming each of the plurality of baseband signals to which the phase change is applied, to each of the plurality of OFDM transmission signals, and applying peak to average power ratio (PAPR) reduction processing to each of the plurality of OFDM transmission signals for transmission on a same frequency band and at a same time, each of the plurality of phase changing patterns being different from each other, and

the phase of each of the plurality of baseband signals is regularly changed according to each of the plurality of phase changing patterns for each subcarrier of the plurality of OFDM transmission signals, each of the plurality of phase changing patterns having N phase change value candidates, N being an integer greater than two, and each candidate of the N phase change value candidates being selected at least once within a determined period; and

demodulate circuitry demodulating the reception signal from the plurality of OFDM transmission signals.

Priority Claims (4)
JP 2011-033771 · Feb 18, 2011 · national
JP 2011-051842 · Mar 9, 2011 · national
JP 2011-093544 · Apr 19, 2011 · national
JP 2011-102101 · Apr 28, 2011 · national
Continuity (4)
Continuation 15496406 · Apr 25, 2017
Continuation 14501780 · Sep 30, 2014
Continuation 13811064
Related Publication 20180270096A1 · Sep 20, 2018
Cited By (1)
US 12,658,988