IP Library Granted Patent US 11,128,355
Granted Patent B2
US 11,128,355 · App. 16/837,546 · Granted Sep 21, 2021

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 11,128,355
App. No.
16/837,546
Granted
Sep 21, 2021
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 (129)

1. A transmission method comprising:

coding information to generate coded data blocks;

performing modulation, precoding, and phase-change on the coded data blocks to generate a first transmission signal and a second transmission signal; and

transmitting the first transmission signal and the second transmission signal from a first antenna and a second antenna, respectively, at a same frequency band and a same time, wherein

the precoding is performed according to a fixed matrix F expressed as:

1

α

2

+

1

(

e

j

0

α

×

e

j

0

α

×

e

j

0

e

j

π

)

,

and

the phase-change is performed such that a phase change amount regularly varies for every slot and the phase change amount is initialized for every coded data block,

wherein α in the fixed matrix F is equal to 0, e is a base of a natural logarithm, j is an imaginary unit, and π is the constant pi.

2. The transmission method according to claim 1 , wherein the phase change amount is initialized to be equal to 0 radian at the first slot.

3. A reception method comprising:

receiving a first transmission signal and a second transmission signal that have been transmitted from a first antenna and a second antenna, respectively, at a same frequency band and a same time, the first transmission signal and the second transmission signal having been generated by a generation process; and

demodulating the first transmission signal and the second transmission signal to obtain information, wherein

the generation process comprises:

coding the information to generate coded data blocks; and

performing modulation, precoding, and phase-change on the coded data blocks to generate a first transmission signal and a second transmission signal,

the precoding is performed according to a fixed matrix F expressed as:

1

α

2

+

1

(

e

j

0

α

×

e

j

0

α

×

e

j

0

e

j

π

)

,

and

the phase-change is performed such that a phase change amount regularly varies for every slot and the phase change amount is initialized for every coded data block

wherein α in the fixed matrix F is equal to 0, e is a base of a natural logarithm, j is an imaginary unit, and π is the constant pi.

4. The reception method according to claim 3 , wherein the phase change amount is initialized to be equal to 0 radian at the first slot.

5. A transmission method comprising:

coding information to generate coded data blocks;

performing modulation, precoding, and phase-change on the coded data blocks to generate a first transmission signal and a second transmission signal; and

transmitting the first transmission signal and the second transmission signal from a first antenna and a second antenna, respectively, at a same frequency band and a same time, wherein

the precoding is performed according to a fixed matrix F expressed as:

1

α

2

+

1

(

e

j

0

α

×

e

j

0

α

×

e

j

0

e

j

π

)

,

the phase-change is performed on first symbols and second symbols on which the modulation and the precoding have been performed and which are provided in respective slots, and

the phase-change is performed such that:

a phase change amount regularly varies for every pair of a first symbol and a second symbol in a corresponding slot; and

the phase change amount is initialized for every coded data block, wherein α in the fixed matrix F is equal to 0, e is a base of a natural logarithm, j is an imaginary unit, and π is the constant pi.

6. The transmission method according to claim 5 , wherein the phase change amount is initialized to be equal to 0 radian at the first slot.

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 (10)
Continuation 16373119 · Apr 2, 2019
Continuation 15970397 · May 3, 2018
Continuation 15837422 · Dec 11, 2017
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
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