IP Library › Granted Patent US 10,009,210
Granted Patent B2
US 10,009,210 · App. 15/861,921 · Granted Jun 26, 2018

Transmission method, transmitter apparatus, reception method and receiver apparatus

Inventors: Yutaka Murakami (Kanagawa, JP); Tomohiro Kimura (Osaka, JP); Mikihiro Ouchi (Osaka, JP)
Assignee: SUN PATENT TRUST
H04L27/265H04B7/0456H04L1/005H04L1/0061H04L1/0071H04L27/2602
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Quick Facts
Patent No.
US 10,009,210
App. No.
15/861,921
Granted
Jun 26, 2018
Kind
B2
Abstract

Transmission quality is improved in an environment in which direct waves dominate in a transmission method for transmitting a plurality of modulated signals from a plurality of antennas at the same time. All data symbols used in data transmission of a modulated signal are precoded by hopping between precoding matrices so that the precoding matrix used to precode each data symbol and the precoding matrices used to precode data symbols that are adjacent to the data symbol in the frequency domain and the time domain all differ. A modulated signal with such data symbols arranged therein is transmitted.

Claims (52)

1. A transmission method comprising:

inserting a plurality of pilot symbols into each of a first modulated symbol sequence and a second modulated symbol sequence in accordance with a determined timing, the first modulated symbol sequence and the second modulated symbol sequence each including a video signal or an audio signal, the video signal being to be displayed on a monitor of a reception device, and the audio signal being to be output from a speaker of the reception device;

performing phase shift on the first modulated symbol sequence and the second modulated symbol sequence, each into which the plurality of pilot symbols are inserted, using a phase shift coefficient that is regularly switched between a plurality of phase shift coefficients to generate a first phase-shifted symbol sequence and a second phase-shifted symbol sequence, respectively;

generating a first Orthogonal Frequency-Division Multiplexing (OFDM) signal and a second OFDM signal using the first phase-shifted symbol sequence and the second phase-shifted symbol sequence, respectively; and

transmitting the first OFDM signal from a first transmission branch at a first frequency and at a first time, and transmitting the second OFDM signal from a second transmission branch at the first frequency and at the first time, wherein

the plurality of phase shift coefficients include a first phase amount that regularly varies,

the first OFDM signal includes a first subcarrier signal, a second subcarrier signal, and a third subcarrier signal that are consecutive in a frequency domain,

the second OFDM signal includes a fourth subcarrier signal, a fifth subcarrier signal, and a sixth subcarrier signal that are consecutive in the frequency domain,

the second subcarrier signal and the fifth subcarrier signal include the plurality of pilot symbols arranged at the same frequency, and

a difference in terms of phase amount included in a phase shift coefficient between a first symbol arranged in the first subcarrier signal and a second symbol arranged in the third subcarrier signal is twice the first phase amount.

2. A transmission device comprising:

signal generation circuitry which, in operation, inserts a plurality of pilot symbols into each of a first modulated symbol sequence and a second modulated symbol sequence in accordance with a determined timing, the first modulated symbol sequence and the second modulated symbol sequence each including a video signal or an audio signal, the video signal being to be displayed on a monitor of a reception device, and the audio signal being to be output from a speaker of the reception device;

phase shift circuitry which, in operation, performs phase shift on the first modulated symbol sequence and the second modulated symbol sequence, each into which the plurality of pilot symbols are inserted, using a phase shift coefficient that is regularly switched between a plurality of phase shift coefficients to generate a first phase-shifted symbol sequence and a second phase-shifted symbol sequence, respectively;

Orthogonal Frequency-Division Multiplexing (OFDM) signal generation circuitry which, in operation, generates a first OFDM signal and a second OFDM signal using the first phase-shifted symbol sequence and the second phase-shifted symbol sequence, respectively; and

transmission circuitry which, in operation, transmits the first OFDM signal from a first transmission branch at a first frequency and at a first time, and transmits the second OFDM signal from a second transmission branch at the first frequency and at the first time, wherein

the plurality of phase shift coefficients include a first phase amount that regularly varies,

the first OFDM signal includes a first subcarrier signal, a second subcarrier signal, and a third subcarrier signal that are consecutive in a frequency domain,

the second OFDM signal includes a fourth subcarrier signal, a fifth subcarrier signal, and a sixth subcarrier signal that are consecutive in the frequency domain,

the second subcarrier signal and the fifth subcarrier signal include the plurality of pilot symbols arranged at the same frequency, and

a difference in terms of phase amount included in a phase shift coefficient between a first symbol arranged in the first subcarrier signal and a second symbol arranged in the third subcarrier signal is twice the first phase amount.

3. A reception method comprising:

demultiplexing a multiplexed signal including a first Orthogonal Frequency-Division Multiplexing (OFDM) signal and a second OFDM signal that are multiplexed, to generate a first modulated symbol sequence and a second modulated symbol sequence each corresponding to a determined channel,

decoding each of the first modulated symbol sequence and the second modulated symbol sequence to generate a video signal or an audio signal;

displaying the video signal on a monitor; and

outputting the audio signal from a speaker, wherein

a plurality of pilot symbols are inserted into each of the first modulated symbol sequence and the second modulated symbol sequence in accordance with a determined timing,

the first modulated symbol sequence and the second modulated symbol sequence, each into which the plurality of pilot symbols are inserted, are phase-shifted using a phase shift coefficient that is regularly switched between a plurality of phase shift coefficients to generate a first phase-shifted symbol sequence and a second phase-shifted symbol sequence, respectively,

the first phase-shifted symbol sequence is converted into the first OFDM signal,

the second phase-shifted symbol sequence is converted into the second OFDM signal,

the first OFDM signal is transmitted from a first transmission branch at a first frequency and a first time,

the second OFDM signal is transmitted from a second transmission branch at the first frequency and at the first time,

the plurality of phase shift coefficients include a first phase amount that regularly varies,

the first OFDM signal includes a first subcarrier signal, a second subcarrier signal, and a third subcarrier signal that are consecutive in a frequency domain,

the second OFDM signal includes a fourth subcarrier signal, a fifth subcarrier signal, and a sixth subcarrier signal that are consecutive in the frequency domain,

the second subcarrier signal and the fifth subcarrier signal include the plurality of pilot symbols arranged at the same frequency, and

a difference in terms of phase amount included in a phase shift coefficient between a first symbol arranged in the first subcarrier signal and a second symbol arranged in the third subcarrier signal is twice the first phase amount.

4. A reception device comprising:

tuner circuitry which, in operation, demultiplexes a multiplexed signal including a first Orthogonal Frequency-Division Multiplexing (OFDM) signal and a second OFDM signal that are multiplexed, to generate a first modulated symbol sequence and a second modulated symbol sequence each corresponding to a determined channel,

decoding circuitry which, in operation, decodes each of the first modulated symbol sequence and the second modulated symbol sequence to generate a video signal or an audio signal;

displaying the video signal on a monitor; and

outputting the audio signal from a speaker, wherein

a plurality of pilot symbols are inserted into each of the first modulated symbol sequence and the second modulated symbol sequence in accordance with a determined timing,

the first modulated symbol sequence and the second modulated symbol sequence, each into which the plurality of pilot symbols are inserted, are phase-shifted using a phase shift coefficient that is regularly switched between a plurality of phase shift coefficients to generate a first phase-shifted symbol sequence and a second phase-shifted symbol sequence, respectively,

the first phase-shifted symbol sequence is converted into the first OFDM signal,

the second phase-shifted symbol sequence is converted into the second OFDM signal,

the first OFDM signal is transmitted from a first transmission branch at a first frequency and a first time,

the second OFDM signal is transmitted from a second transmission branch at the first frequency and at the first time,

the plurality of phase shift coefficients include a first phase amount that regularly varies,

the first OFDM signal includes a first subcarrier signal, a second subcarrier signal, and a third subcarrier signal that are consecutive in a frequency domain,

the second OFDM signal includes a fourth subcarrier signal, a fifth subcarrier signal, and a sixth subcarrier signal that are consecutive in the frequency domain,

the second subcarrier signal and the fifth subcarrier signal include the plurality of pilot symbols arranged at the same frequency, and

a difference in terms of phase amount included in a phase shift coefficient between a first symbol arranged in the first subcarrier signal and a second symbol arranged in the third subcarrier signal is twice the first phase amount.

Priority Claims (2)
JP 2010-203710 · Sep 10, 2010 · national
JP 2010-252335 · Nov 10, 2010 · national
Continuity (11)
Continuation 15680383 · Aug 18, 2017
Continuation 15496230 · Apr 25, 2017
Continuation 15362074 · Nov 28, 2016
Continuation 15207744 · Jul 12, 2016
Continuation 15044432 · Feb 16, 2016
Continuation 14876866 · Oct 7, 2015
Continuation 14697882 · Apr 28, 2015
Continuation 14576317 · Dec 19, 2014
Continuation 14469769 · Aug 27, 2014
Continuation 13809830
Related Publication 20180131551A1 · May 10, 2018