IP Library › Granted Patent US 11,863,301
Granted Patent B2
US 11,863,301 · App. 17/052,780 · Granted Jan 2, 2024

Signal processing device

Inventors: Ken Tanizawa (Tokyo, JP); Fumio Futami (Tokyo, JP)
Assignee: Tamagawa Academy & University
H04K1/02H04B10/40H04B10/548H04B10/70H04B10/85
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Quick Facts
Patent No.
US 11,863,301
App. No.
17/052,780
Granted
Jan 2, 2024
Kind
B2
Abstract

The purpose of the present invention is to improve signal modulation resolution. A coarse phase modulation element 62 A modulates a signal into any of M 1 (M 1 is an arbitrary integer) patterns in a first range. Fine phase modulation elements 62 B- 1 through 62 B-(k−1) respectively modulate the signal into any of M 2 through Mk (M 2 through Mk are arbitrary integers that are independent of each other and M 1 ) patterns in a second range through k-th range (k is an integer of 2 or greater). A coarse DAC 61 A and DACs 61 B- 1 through 61 B-(k−1) perform control such that the second range through k-th range become narrower than the first range.

Claims (78)

1. A signal processing device, comprising:

a first modulation element that modulates a signal to any one of M 1 (M 1 is an arbitrary integer) patterns in a first range;

(k−1) (k is an integer that is greater than or equal to 2) second modulation elements that respectively modulate the signal to any one of M 2 through Mk (M 2 through Mk are arbitrary integers that are mutually independent of each other and M 1 ) respective patterns in a second range through a kth range, respectively; and

a control unit that controls the first range for the first modulation element and the respective second range through the kth range for the (k−1) second modulation elements,

wherein the control unit performs control to make the respective second range through the kth range for the (k−1) second modulation elements narrower than the first range for the first modulation element.

2. The signal processing device according to claim 1 , wherein

the first modulation element and the second modulation elements are elements that cause the phase of the signal to rotate,

a phase rotation amount (peak-to-peak) that represents the first range for the first modulation element is represented by:

2

⁢

π

M

1

×

(

M

1

-

1

)

and the ratio of a phase rotation amount (peak-to-peak) representing an nth (n is any value from 2 through k) range for the nth second modulation element with respect to the phase rotation amount (peak-to-peak) for the first modulation element is represented by:

1

M

1

-

1

×

1

∏

i

=

2

n

-

1

⁢

M

i

×

(

1

-

1

M

n

)

.

3. The signal processing device according to claim 1 , wherein

the first modulation element and the second modulation elements are elements for causing the phase of the signal to rotate, and form an interferometer configuration for performing amplitude modulation, and

the ratio of a modulation amplitude (peak-to-peak) representing an nth (n is any value from 2 through k) range for the nth second modulation element with respect to a modulation amplitude (peak-to-peak) representing a first range for the first modulation element is represented by:

1

M

1

-

1

×

1

∏

i

=

2

n

-

1

⁢

M

i

×

(

1

-

1

M

n

)

.

4. The signal processing device according to claim 1 , wherein

the control unit performs control to turn the signal into a cryptographic signal.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 3, 2020
From: TANIZAWA, KEN; FUTAMI, FUMIO
To: TAMAGAWA ACADEMY & UNIVERSITY
Reel/Frame 054262/0382 →
Priority Claims (1)
JP 2018-091536 · May 10, 2018 · national
Continuity (1)
Related Publication 20210242957A1 · Aug 5, 2021