IP Library Granted Patent US 10,345,243
Granted Patent B2
US 10,345,243 · App. 15/705,748 · Granted Jul 9, 2019

Apparatus and method for processing bio optical signal using spread spectrum

Inventors: Won Kyoung Lee (Daejeon, KR); Ki-Hun Jeong (Daejeon, KR); Moonseong Park (Daejeon, KR)
Assignees: Electronics and Telecommunications Research Institute; Korea Advanced Institute of Science and Technology
G01N21/658G01N21/6428G01J2003/4424G01N21/274G01N2201/067G01N2201/06113G01N2201/121
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Quick Facts
Patent No.
US 10,345,243
App. No.
15/705,748
Granted
Jul 9, 2019
Kind
B2
Abstract

Disclosed is an apparatus and method for processing a bio optical signal based on a spread spectrum scheme including a demodulator configured to collect a bio optical signal generated in response to an incident beam modulated based on a spreading code being scattered from a target analyte, and remove a noise from the bio optical signal by demodulating the bio optical signal based on the spreading code, wherein the bio optical signal has a correlation with the modulated incident beam.

Claims (25)

1. An optical signal processing apparatus, comprising:

a modulator configured to determine a modulation speed of an incident beam based on a lifetime of an optical signal, modulate the incident beam based on a spreading code and the determined modulation speed, and emit the modulated incident beam to an analyte,

wherein the modulated incident beam is scattered by the analyte to generate the optical signal.

2. The optical signal processing apparatus of claim 1 , wherein the modulator is further configured to modulate the incident beam using a frequency greater than a frequency of an auto-fluorescence signal, in response to the optical signal corresponding to a Raman scattering signal.

3. The optical signal processing apparatus of claim 1 , wherein a width of a wavelength change in the incident beam and a width of an intensity change in the incident beam are determined based on a type of the optical signal.

4. The optical signal processing apparatus of claim 1 , wherein the optical signal, which is demodulated based on the spreading code to remove noise from the bio optical signal, has a signal-to-noise ratio in proportion to a length of the spreading code.

5. The optical signal processing apparatus of claim 1 , wherein

the modulator is further configured to determine a first modulation speed, in response to a Raman scattering signal being used as the optical signal, and determine a second modulation speed, in response to a Rayleigh scattering signal being used as the optical signal, and

the first modulation speed is greater than the second modulation speed.

6. The optical signal processing apparatus of claim 5 , wherein

the modulator is further configured to determine a third modulation speed, in response to a fluorescence scattering signal being used as the optical signal, and

the second modulation speed is greater than the third modulation speed.

7. The optical signal processing method of claim 6 , wherein the fluorescence scattering signal is generated in response to the incident beam being emitted to a fluorescent material.

8. The optical signal processing apparatus of claim 1 , wherein the optical signal is correlated with the modulated incident beam.

9. The optical processing apparatus of claim 1 , wherein the optical signal is demodulated based on the spreading code to remove noise from the optical signal.

10. The optical processing apparatus of claim 1 , wherein the lifetime of the optical signal is based on a time period for a constituent of the analyte to transition from an exited state to a ground state.

11. An optical signal processing apparatus, comprising:

a demodulator configured to collect an optical signal generated by an incident beam being scattered by an analyte, determine a demodulation speed based on a lifetime of the optical signal, and remove noise from the optical signal by demodulating the optical signal based on a spreading code and the determined demodulation speed,

wherein the incident beam is modulated based on the spreading code

wherein the optical signal is correlated with the modulated incident beam.

12. The optical signal processing apparatus of claim 11 , wherein the demodulated optical signal has a signal-to-noise ratio in proportion to a length of the spreading code.

13. An optical signal processing apparatus, comprising:

a modulator configured to determine a modulation speed of an incident beam based on a lifetime of an optical signal, modulate the incident beam based on a spreading code and the determined modulation speed, and emit the modulated incident beam to an analyte; and

a demodulator configured to collect the optical signal, which is generated by the modulated incident beam being scattered from the target analyte, and remove noise from the optical signal by demodulating the optical signal based on the spreading code,

wherein the optical signal is correlated with the modulated incident beam.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 15, 2017
From: LEE, WON KYOUNG; JEONG, KI-HUN; PARK, MOONSEONG
To: ELECTRONICS AND TELECOMMUNICATIONS RESEARCH INSTITUTE; KOREA ADVANCED INSTITUTE OF SCIENCE AND TECHNOLOGY
Reel/Frame 043602/0800 →
Priority Claims (1)
KR 10-2017-0058132 · May 10, 2017 · national
Continuity (1)
Related Publication 20180328851A1 · Nov 15, 2018
Cited By (1)
US 12,320,747