IP Library Granted Patent US 10,498,412
Granted Patent B2
US 10,498,412 · App. 16/227,410 · Granted Dec 3, 2019

Signal generation method and signal generation device

Inventors: Yutaka Murakami (Kanagawa, JP); Tomohiro Kimura (Osaka, JP); Mikihiro Ouchi (Osaka, JP)
Assignee: SUN PATENT TRUST
H04B7/0456H04B7/0413H04B7/0617
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Quick Facts
Patent No.
US 10,498,412
App. No.
16/227,410
Granted
Dec 3, 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 (60)

1. A broadcast signal generation method by a broadcast apparatus, comprising the steps of:

applying a coding to a set of data bits to generate a first coded signal and a second coded signal;

applying a precoding according to a determined matrix F and a phase change to the first coded signal and the second coded signal;

and

applying a pilot by inserting to the first coded signal and the second coded signal with the precoding and the phase change applied, wherein

the first coded signal and the second coded signal with the phase change, the precoding and the pilot inserting applied are outputted to a plurality of transmission antennas to be transmitted on a same frequency band and at a same time as broadcast signals, the phase change is applied to the first coded signal and the second coded signal using a phase change value sequentially selected from among N phase change values, N being an integer greater than two and greater than the number of coded signals, and each of the N phase change values being selected at least once within a determined period, and

a difference between two adjacent phase change values of the N phase change values is 2π/N.

2. The broadcast signal generation method according to claim 1 , wherein

the precoding satisfies the relation:

( z 1 , z 2) T =F ( s 1 , s 2) T

wherein z 1 and z 2 are signals after the precoding, s 1 and s 2 are signals before the precoding, (z 1 , z 2 ) is a row vector composed of the signals z 1 and z 2 , (z 1 , z 2 ) T is a transpose vector of the row vector (z 1 , z 2 ), (s 1 , s 2 ) is a row vector composed of the signals s 1 and s 2 , (s 1 , s 2 ) T is a transpose vector of the row vector (s 1 , s 2 ), and F(s 1 , s 2 ) T is a matrix product of the determined matrix F and the transpose vector (s 1 , s 2 ) T .

3. The broadcast signal generation method according to claim 1 , wherein the precoding is applied after applying the phase change.

4. The broadcast signal generation method according to claim 1 , wherein the phase change is applied after applying the precoding.

5. A broadcast apparatus comprising:

coding circuitry applying a coding to a set of data bits to generate a first coded signal and a second coded signal;

precoding circuitry applying a precoding according to a determined matrix F and phase changing circuitry applying a phase change to the first coded signal and the second coded signal

and

pilot inserting circuitry applying a pilot by inserting to the first coded signal and the second coded signal with the precoding and the phase change applied,

wherein

the first coded signal and the second coded signal with the phase change, the precoding and the pilot inserting applied are outputted to a plurality of transmission antennas to be transmitted on a same frequency band and at a same time as broadcast signals, wherein

the phase change is continually applied to the first coded signal and the second coded signal using a phase change value sequentially selected from among N phase change values, N being an integer greater than two and greater than the number of coded signals, each of the N phase change values being selected at least once within a determined period, and

a difference between two adjacent phase change values of the N phase change values is 2π/N.

6. The broadcast apparatus according to claim 5 , wherein

the precoding satisfies the relation:

( z 1 , z 2) T =F ( s 1 , s 2) T

wherein z 1 and z 2 are signals after the precoding, s 1 and s 2 are signals before the precoding, (z 1 , z 2 ) is a row vector composed of the signals z 1 and z 2 , (z 1 , z 2 ) T is a transpose vector of the row vector (z 1 , z 2 ), (s 1 , s 2 ) is a row vector composed of the signals s 1 and s 2 , (s 1 , s 2 ) T is a transpose vector of the row vector (s 1 , s 2 ), and F(s 1 , s 2 ) T is a matrix product of the determined matrix F and the transpose vector (s 1 , s 2 ) T .

7. The broadcast apparatus according to claim 5 , wherein the precoding is applied after applying the phase change.

8. The broadcast apparatus according to claim 5 , wherein the phase change is applied after applying the precoding.

9. A broadcast signal reception method comprising the steps of:

obtaining a reception signal, the reception signal being obtained by receiving a plurality of broadcast signals with a reception antenna, the plurality of broadcast signals being transmitted on a same frequency band and at a same time from a broadcast apparatus with a plurality of transmission antennas; and

decoding the reception signal, the decoded reception signal being output to a display, wherein

the plurality of broadcast signals are generated by

applying a coding to a set of data bits to generate a first coded signal and a second coded signal,

applying a precoding according to a determined matrix F and a phase change to the first coded signal and the second coded signal,

and

applying a pilot by inserting to the first coded signal and the second coded signal with the precoding and the phase change applied, and

wherein the phase change is applied to the first coded signal and the second coded signal using the sequentially selected phase change value, N being an integer greater than two and greater than the number of coded signals, each of the N phase change values being selected at least once within a determined period, and

a difference between two adjacent phase change values of the N phase change values is 2π/N.

10. The broadcast signal reception method according to claim 9 , wherein

the precoding satisfies the relation:

( z 1 , z 2) T =F ( s 1 , s 2) T

wherein z 1 and z 2 are signals after the precoding, s 1 and s 2 are signals before the precoding, (z 1 , z 2 ) is a row vector composed of the signals z 1 and z 2 , (z 1 , z 2 ) T is a transpose vector of the row vector (z 1 , z 2 ), (s 1 , s 2 ) is a row vector composed of the signals s 1 and s 2 , (s 1 , s 2 ) T is a transpose vector of the row vector (s 1 , s 2 ), and F(s 1 , s 2 ) T is a matrix product of the determined matrix F and the transpose vector (s 1 , s 2 ) T .

11. The broadcast signal reception method according to claim 9 , wherein the precoding is applied after applying the phase change.

12. The broadcast signal reception method according to claim 9 , wherein the phase change is applied after applying the precoding.

13. A broadcast signal reception apparatus comprising:

obtaining circuitry obtaining a reception signal, the reception signal being obtained by receiving a plurality of broadcast signals with a reception antenna, the plurality of broadcast signals being transmitted on a same frequency band and at a same time from a broadcast apparatus with a plurality of transmission antennas; and

decoding circuitry decoding the reception signal, the decoded reception signal being outputted to a display, wherein

the plurality of broadcast signals are generated by

applying a coding to a set of data bits to generate a first coded signal and a second coded signal,

applying a precoding according to a determined matrix F and a phase change to the first coded signal and the second coded signal according to a determined matrix F,

and

applying a pilot by inserting to the first coded signal and the second coded signal with the precoding and the phase change applied, and

wherein the phase change is applied to the first coded signal and the second coded signal using the sequentially selected phase change value, N being an integer greater than two and greater than the number of coded signals, each of the N phase change values being selected at least once within a determined period, and

a difference between two adjacent phase change values of the N phase change values is 2π/N.

14. The broadcast signal reception apparatus according to claim 13 , wherein

the precoding satisfies the relation:

( z 1 , z 2) T =F ( s 1 , s 2) T

wherein z 1 and z 2 are signals after the precoding, s 1 and s 2 are signals before the precoding, (z 1 , z 2 ) is a row vector composed of the signals z 1 and z 2 , (z 1 , z 2 ) T is a transpose vector of the row vector (z 1 , z 2 ), (s 1 , s 2 ) is a row vector composed of the signals s 1 and s 2 , (s 1 , s 2 ) T is a transpose vector of the row vector (s 1 , s 2 ), and F(s 1 , s 2 ) T is a matrix product of the determined matrix F and the transpose vector (s 1 , s 2 ) T .

15. The broadcast signal reception apparatus according to claim 13 , wherein the precoding is applied after applying the phase change.

16. The broadcast signal reception apparatus according to claim 13 , wherein the phase change is applied after applying the precoding.

Priority Claims (1)
JP 2010-276447 · Dec 10, 2010 · national
Continuity (7)
Continuation 15921807 · Mar 15, 2018
Continuation 15805240 · Nov 7, 2017
Continuation 15450452 · Mar 6, 2017
Continuation 14980186 · Dec 28, 2015
Continuation 14502447 · Sep 30, 2014
Continuation 13810721
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