IP Library Granted Patent US 10,038,483
Granted Patent B2
US 10,038,483 · App. 15/837,422 · Granted Jul 31, 2018

Signal generation method and signal generation device

Inventors: Yutaka Murakami (Kanagawa, JP); Tomohiro Kimura (Osaka, JP); Mikihiro Ouchi (Osaka, JP)
Assignee: SUN PATENT TRUST
H04B7/0456G06F11/10H04B7/0413H04B7/0482H04B7/0682H04B7/0697H04L1/0058H04L5/005H04L25/0224H04L25/03898H04L25/067H04L27/2627H04L27/2649H04W72/044H04B7/0669
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Quick Facts
Patent No.
US 10,038,483
App. No.
15/837,422
Granted
Jul 31, 2018
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 (59)

1. An OFDM signal generation method of a transmission system, the transmission system having a first transmitter and a second transmitter, the OFDM signal generating method comprising:

modulating, by the first transmitter, each of a plurality of coded blocks to a first modulated signal s 1 , the coded blocks each made up of a plurality of bits by using a determined error correction block coding scheme;

modulating, by the second transmitter, each of the coded blocks to a second modulated signal s 2 , data included in the first modulated signal s 1 being same as data included in the second modulated signal s 2 ;

inserting, by the first transmitter, one or more pilots to the first modulated signal s 1 to obtain a first pilot-inserted signal s 1 ′;

inserting, by the second transmitter, the one or more pilots to the second modulated signal s 2 to obtain a second pilot-inserted signal s 2 ;

phase-changing, by the first transmitter, while regularly varying a first scheme of phase change for each of a plurality of slots, the first pilot-inserted signal s 1 ′ to obtain a first transmission signal z 1 ;

phase-changing, by the second transmitter, while regularly varying a second scheme of phase change for each of the plurality of slots, the second pilot-inserted signal s 2 ′ to obtain a second transmission signal z 2 ;

converting, by the first transmitter, the first transmission signal z 1 to a first OFDM signal;

converting, by the second transmitter, the second transmission signal z 2 to a second OFDM signal;

inserting, by the first transmitter, a part of the first OFDM signal to the first OFDM signal to be transmitted from a first antenna at a first period at a first frequency; and

inserting, by the second transmitter, a part of the second OFDM signal to the second OFDM signal to be transmitted from a second antenna at the first period at the first frequency.

2. An OFDM signal generation system comprising:

a first OFDM signal generator; and

a second OFDM signal generator,

wherein the first OFDM signal generator, in operation,

modulates each of a plurality of coded blocks to a first modulated signal s 1 , the coded blocks each made up of a plurality of bits by using a determined error correction block coding scheme;

inserts one or more pilots to the first modulated signal s 1 to obtain a first pilot-inserted signal s 1 ′;

phase-changes, while regularly varying a first scheme of phase change for each of a plurality of slots, the first pilot-inserted signal s 1 ′ to obtain a first transmission signal z 1 ;

converts the first transmission signal z 1 to a first OFDM signal;

inserts a part of the first OFDM signal to the first OFDM signal to be transmitted from a first antenna at a first period at a first frequency; and

wherein the second OFDM signal generator, in operation,

modulates each of the coded blocks to a second modulated signal s 2 , data included in the first modulated signal s 1 being same as data included in the second modulated signal s 2 ;

inserts the one or more pilots to the second modulated signal s 2 to obtain a second pilot-inserted signal s 2 ;

phase-changes, while regularly varying a second scheme of phase change for each of the plurality of slots, the second pilot-inserted signal s 2 ′ to obtain a second transmission signal z 2 ;

converts the second transmission signal z 2 to a second OFDM signal; and

inserts a part of the second OFDM signal to the second OFDM signal to be transmitted from a second antenna at the first period at the first frequency.

3. A reception data generation method of a reception apparatus, the method comprising:

acquiring a reception signal obtained by converting a first OFDM signal transmitted from a first antenna of a first transmitter at a first period at a first frequency and a second OFDM signal transmitted from a second antenna of a second transmitter at the first period at the first frequency, the first OFDM signal and the second OFDM signal having been generated through a determined generation process; and

demodulating the reception signal to reception data, through a demodulation process corresponding to the determined generation process, wherein

at least one of the acquiring and the demodulating is performed by the reception apparatus, and

the determined generation process is a process of:

modulating, by the first transmitter, each of a plurality of coded blocks to a first modulated signal s 1 , the coded blocks each made up of a plurality of bits by using a determined error correction block coding scheme;

modulating, by the second transmitter, each of the coded blocks to a second modulated signal s 2 , data included in the first modulated signal s 1 being same as data included in the second modulated signal s 2 ;

inserting, by the first transmitter, one or more pilots to the first modulated signal s 1 to obtain a first pilot-inserted signal s 1 ′;

inserting, by the second transmitter, the one or more pilots to the second modulated signal s 2 to obtain a second pilot-inserted signal s 2 ′;

phase-changing, by the first transmitter, while regularly varying a first scheme of phase change for each of a plurality of slots, the first pilot-inserted signal s 1 ′ to obtain a first transmission signal z 1 ;

phase-changing, by the second transmitter, while regularly varying a second scheme of phase change for each of the plurality of slots, the second pilot-inserted signal s 2 ′ to obtain a second transmission signal z 2 ;

converting, by the first transmitter, the first transmission signal z 1 to the first OFDM signal;

converting, by the second transmitter, the second transmission signal z 2 to the second OFDM signal;

inserting, by the first transmitter, a part of the first OFDM signal to the first OFDM signal to be transmitted from the first antenna at the first period at the first frequency; and

inserting, by the second transmitter, a part of the second OFDM signal to the second OFDM signal to be transmitted from the second antenna at the first period at the first frequency.

4. A reception data generation apparatus comprising:

a memory; and

control circuitry,

wherein the control circuitry, in operation, performs the steps of:

acquiring a reception signal obtained by converting a first OFDM signal transmitted from a first antenna of a first transmitter at a first period at a first frequency and a second OFDM signal transmitted from a second antenna of a second transmitter at the first period at the first frequency, the first OFDM signal and the second OFDM signal having been generated through a determined generation process; and

demodulating the reception signal to reception data, through a demodulation process corresponding to the determined generation process, wherein

at least one of the acquiring and the demodulating is performed by the control circuitry, and

the determined generation process is a process of:

modulating, by the first transmitter, each of a plurality of coded blocks to a first modulated signal s 1 , the coded blocks each made up of a plurality of bits by using a determined error correction block coding scheme;

modulating, by the second transmitter, each of the coded blocks to a second modulated signal s 2 , data included in the first modulated signal s 1 being same as data included in the second modulated signal s 2 ;

inserting, by the first transmitter, one or more pilots to the first modulated signal s 1 to obtain a first pilot-inserted signal s 1 ′;

inserting, by the second transmitter, the one or more pilots to the second modulated signal s 2 to obtain a second pilot-inserted signal s 2 ′;

phase-changing, by the first transmitter, while regularly varying a first scheme of phase change for each of a plurality of slots, the first pilot-inserted signal s 1 ′ to obtain a first transmission signal z 1 ;

phase-changing, by the second transmitter, while regularly varying a second scheme of phase change for each of the plurality of slots, the second pilot-inserted signal s 2 ′ to obtain a second transmission signal z 2 ;

converting, by the first transmitter, the first transmission signal z 1 to the first OFDM signal;

converting, by the second transmitter, the second transmission signal z 2 to the second OFDM signal;

inserting, by the first transmitter, a part of the first OFDM signal to the first OFDM signal to be transmitted from the first antenna at the first period at the first frequency; and

inserting, by the second transmitter, a part of the second OFDM signal to the second OFDM signal to be transmitted from the second antenna at the first period at the first frequency.

Priority Claims (4)
JP 2010-276448 · Dec 10, 2010 · national
JP 2011-026422 · Feb 9, 2011 · national
JP 2011-033770 · Feb 18, 2011 · national
JP 2011-051841 · Mar 9, 2011 · national
Continuity (7)
Continuation 15240187 · Aug 18, 2016
Continuation 15003419 · Jan 21, 2016
Continuation 14848936 · Sep 9, 2015
Continuation 14617292 · Feb 9, 2015
Continuation 14487696 · Sep 16, 2014
Division 13811044
Related Publication 20180102820A1 · Apr 12, 2018