IP Library › Granted Patent US 11,564,577
Granted Patent B2
US 11,564,577 · App. 17/514,778 · Granted Jan 31, 2023

Wearable device coupled to time-of-flight imaging system

Inventor: Mohammed N. Islam (Ann Arbor, MI)
Assignee: OMNI MEDSCI, INC.
A61B5/0088A61B5/0013A61B5/0022A61B5/0075A61B5/0086A61B5/1455A61B5/14532A61B5/14546A61B5/4547A61B5/6801A61B5/7203A61B5/7257A61B5/742A61B5/7405A61C19/04G01J3/02G01J3/0218G01J3/108G01J3/14G01J3/28G01J3/2823G01J3/42G01J3/453G01N21/35G01N21/3504G01N21/359G01N21/3563G01N21/39G01N21/88G01N33/02G01N33/025G01N33/15G01N33/442G01N33/49G16H40/67G16Z99/00A61B5/0024A61B2562/0233A61B2562/0238A61B2562/146A61B2576/02A61C1/0046G01J3/1838G01J2003/104G01J2003/1208G01J2003/2826G01M3/38G01N21/85G01N21/9508G01N2021/3513G01N2021/3595G01N2021/399G01N2201/061G01N2201/062G01N2201/06113G01N2201/08G01N2201/12G01N2201/129H01S3/0092H01S3/06758H01S3/302Y02A90/10
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Quick Facts
Patent No.
US 11,564,577
App. No.
17/514,778
Granted
Jan 31, 2023
Kind
B2
Abstract

An optical system measures one or more physiological parameters with a wearable device that includes a light emitting diode (LED) source including a driver and a plurality of semiconductor sources that generate an output optical light. One or more lenses deliver a lens output light to tissue of a user. A detection system receives at least a portion of the lens output light reflected from the tissue and generates an output signal having a signal-to-noise ratio. The detection system comprises a plurality of spatially separated detectors and an analog to digital converter. The detection system increases the signal-to-noised ratio by comparing a first signal with the LEDs off to a second signal with the LEDs on. An imaging system including a Bragg reflector is pulsed and has a near infrared wavelength. A beam splitter splits the light into a sample arm and a reference arm to measure time-of-flight.

Claims (78)

1. An optical system, comprising:

a wearable device for measuring one or more physiological parameters, the wearable device adapted to be placed on a wrist or an ear of a user, including a light source comprising driver electronics and a plurality of light emitting diodes that are configured to generate an output optical light having one or more optical wavelengths;

the wearable device comprising one or more lenses configured to receive at least a portion of the output optical light and to deliver a lens output light to tissue;

the wearable device further comprising a detection system configured to receive at least a portion of the lens output light reflected from the tissue and to generate an output signal having a signal-to-noise ratio, wherein the detection system is configured to be synchronized to the light source;

wherein the detection system comprises a plurality of detectors that are spatially separated from each other, and wherein at least one analog to digital converter is coupled to at least one of the spatially separated detectors;

wherein the output signal is indicative of one or more of the physiological parameters;

the wearable device configured to increase the signal-to-noise ratio by increasing light intensity of at least one of the plurality of light emitting diodes from an initial light intensity; and

the detection system further configured to:

generate a first signal responsive to light received while the light emitting diodes are off,

generate a second signal responsive to light received while at least one of the light emitting diodes is on, and

increase the signal-to-noise ratio by comparing the first signal and the second signal;

the wearable device further configured to be coupled to an imaging system for remote sensing of the user, the imaging system comprising:

a laser diode configured to be pulsed and to generate light having a wavelength, wherein the wavelength is a near-infrared wavelength between 700 nanometers and 2500 nanometers, and wherein the laser diode comprises one or more Bragg reflectors;

a beam splitter configured to receive at least part of the light from the laser diode and to split the received light into a sample arm light and a reference arm light, at least a portion of the sample arm light being directed to the user;

the imaging system further comprising a second plurality of detectors;

at least one of the second plurality of detectors configured to receive at least a portion of the reference arm light and configured to generate a reference detector output, and at least another of the second plurality of detectors configured to receive from the user at least a portion of reflected sample arm light and configured to generate a sample detector output; and

wherein the imaging system is configured to measure time-of-flight based at least in part on the sample detector output.

2. The optical system of claim 1 , wherein the imaging system is configured to perform a time-of-flight measurement by measuring a time difference between the generated light from the laser diode and the at least a portion of reflected sample arm light.

3. The optical system of claim 2 , wherein the second plurality of detectors comprises one or more detector arrays, wherein the laser diode operates near a 940 nanometer wavelength, and wherein the plurality of light emitting diodes comprises six light emitting diodes.

4. The optical system of claim 3 , wherein the plurality of light emitting diodes and the plurality of spatially separated detectors are located on one or more arcs; and

wherein the output optical light comprises three optical wavelengths for measuring at least a portion of the one or more of the physiological parameters, wherein the output optical light comprises wavelengths between 600 nm and 1000 nm to measure a level of oxy-hemoglobin and deoxy-hemoglobin, and wherein the output signal corresponding to at least one of the optical wavelengths is used to improve measurement of the one or more physiological parameters using the output signal corresponding to the other two optical wavelengths.

5. The optical system of claim 3 , wherein the wearable device is at least in part configured to identify an object.

6. The optical system of claim 3 ,

wherein the imaging system is at least in part configured to identify an object.

7. An optical system, comprising:

a wearable device for measuring one or more physiological parameters, the wearable device adapted to be placed on a wrist or an ear of a user, including a light source comprising a plurality of light emitting diodes that are configured to generate an output optical light having one or more optical wavelengths;

the wearable device comprising one or more lenses configured to receive at least a portion of the output optical light and to deliver a lens output light to tissue;

the wearable device further comprising a detection system configured to receive at least a portion of the lens output light reflected from the tissue and to generate an output signal having a signal-to-noise ratio, wherein the detection system is configured to be synchronized to the light source;

wherein the detection system comprises a plurality of detectors that are spatially separated from each other, and wherein at least one analog to digital converter is coupled to at least one of the spatially separated detectors;

wherein the output signal is indicative of one or more of the physiological parameters;

the wearable device configured to increase the signal-to-noise ratio by increasing light intensity of at least one of the plurality of light emitting diodes from an initial light intensity; and

the detection system further configured to:

generate a first signal responsive to light received while the light emitting diodes are off,

generate a second signal responsive to light received while at least one of the light emitting diodes is on, and

increase the signal-to-noise ratio by comparing the first signal and the second signal;

the wearable device further coupled to an imaging system for optically detecting the user, the imaging system comprising:

a laser diode configured to be pulsed and to generate laser diode generated light having a wavelength, wherein the wavelength is a near-infrared wavelength between 700 nanometers and 2500 nanometers, and wherein the laser diode comprises one or more Bragg reflectors;

at least a portion of the laser diode generated light configured to be directed to the user;

the imaging system further comprising a second plurality of detectors that receive at least a fraction of the laser diode generated light reflected from the user; and

wherein the imaging system is configured to perform a time-of-flight measurement by measuring a time difference between the laser diode generated light and the at least a fraction of the laser diode generated light reflected from the user.

8. The optical system of claim 7 , wherein the second plurality of detectors comprises one or more detector arrays; and

wherein the imaging system further comprises one or more optical filters in front of at least one of the second plurality of detectors.

9. The optical system of claim 8 , wherein the imaging system further comprises a beam splitter configured to receive at least part of the laser diode generated light and to split the received light into a sample arm light and a reference arm light, at least a portion of the sample arm light able to be directed to the user;

wherein at least one of the second plurality of detectors configured to receive at least a portion of the reference arm light and configured to generate a reference detector output, and at least another of the second plurality of detectors configured to receive from the user at least a portion of reflected sample arm light and configured to generate a sample detector output; and

wherein the time-of-flight measurement is based at least in part on the sample detector output.

10. The optical system of claim 9 , wherein the optical system further comprises a smart phone or tablet and is configured to use artificial intelligence in making decisions associated with some of the at least a portion of the output signal; and

wherein the optical system is configured to perform pattern identification or classification, or wherein the optical system is configured to apply one or more regression signal processing methodologies to at least a part of the output signal.

11. The optical system of claim 10 , wherein the plurality of light emitting diodes comprises six light emitting diodes; and

wherein the plurality of light emitting diodes, or the plurality of spatially separated detectors are located on one or more arcs.

12. The optical system of claim 11 , wherein the output optical light comprises three optical wavelengths for measuring at least a portion of the one or more of the physiological parameters, wherein the output optical light comprises wavelengths between 600 nm and 1000 nm to measure a level of oxy-hemoglobin and deoxy-hemoglobin, and wherein the output signal corresponding to at least one of the optical wavelengths is used to improve measurement of the one or more physiological parameters using the output signal corresponding to the other two optical wavelengths.

13. The optical system of claim 8 , wherein the wearable device is at least in part configured to identify an object.

14. An optical system, comprising:

a wearable device for measuring one or more physiological parameters, the wearable device adapted to be placed on a wrist or an ear of a user, including a light source comprising a plurality of light emitting diodes that are configured to generate an output optical light having one or more optical wavelengths;

the wearable device comprising one or more lenses configured to receive at least a portion of the output optical light and to deliver a lens output light to tissue;

the wearable device further comprising a detection system configured to receive at least a portion of the lens output light reflected from the tissue and to generate an output signal having a signal-to-noise ratio, wherein the detection system is configured to be synchronized to the light source;

wherein the detection system comprises a plurality of detectors that are spatially separated from each other, and wherein at least one analog to digital converter is coupled to at least one of the spatially separated detectors;

wherein the output signal is indicative of one or more of the physiological parameters;

the wearable device configured to increase the signal-to-noise ratio by increasing light intensity of at least one of the plurality of light emitting diodes from an initial light intensity; and

the detection system further configured to:

generate a first signal responsive to light received while the light emitting diodes are off,

generate a second signal responsive to light received while at least one of the light emitting diodes is on, and

increase the signal-to-noise ratio by comparing the first signal and the second signal;

the wearable device further configured to be coupled to an imaging system for remote sensing of the user, the imaging system comprising:

a laser diode configured to be pulsed and to generate light having a wavelength, wherein the wavelength is a near-infrared wavelength between 700 nanometers and 2500 nanometers, and wherein the laser diode comprises one or more Bragg reflectors;

at least a portion of the laser diode generated light configured to be directed to the user;

the imaging system further comprising a second plurality of detectors that receive at least a fraction of the laser diode generated light reflected from the user; and

wherein the imaging system is configured to perform a time-of-flight measurement by measuring a time difference between the laser diode generated light and the at least a fraction of the laser diode generated light reflected from the user.

15. The optical system of claim 14 , wherein the second plurality of detectors comprises one or more detector arrays, and wherein the laser diode operates near a 940 nanometer wavelength.

16. The optical system of claim 15 , wherein the imaging system further comprises a beam splitter configured to receive at least part of the laser diode generated light and to split the received light into a sample arm light and a reference arm light, at least a portion of the sample arm light able to be directed to the user;

wherein at least one of the second plurality of detectors configured to receive at least a portion of the reference arm light and configured to generate a reference detector output, and at least another of the second plurality of detectors configured to receive from the user at least a portion of reflected sample arm light and configured to generate a sample detector output; and

wherein the time-of-flight measurement compares the reference detector output and the sample detector output.

17. The optical system of claim 16 , wherein the optical system further comprises a smart phone or tablet and is configured to use artificial intelligence in making decisions associated with some of the at least a portion of the output signal; and

wherein the optical system is configured to perform pattern identification or classification, or wherein the optical system is configured to apply one or more regression signal processing methodologies to at least a part of the output signal.

18. The optical system of claim 17 , wherein the wearable device is at least in part configured to identify an object.

19. The optical system of claim 18 , wherein the plurality of light emitting diodes and the plurality of spatially separated detectors are located on one or more arcs; and

wherein the output optical light comprises three optical wavelengths for measuring at least a portion of the one or more of the physiological parameters, wherein the output optical light comprises wavelengths between 600 nm and 1000 nm to measure a level of oxy-hemoglobin and deoxy-hemoglobin, and wherein the output signal corresponding to at least one of the optical wavelengths is used to improve measurement of the one or more physiological parameters using the output signal corresponding to the other two optical wavelengths.

20. The optical system of claim 17 ,

wherein the imaging system is at least in part configured to identify an object.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 7, 2022
From: ISLAM, MOHAMMED N.
To: OMNI MEDSCI, INC.
Reel/Frame 062016/0341 →
Continuity (34)
Continuation 17078771 · Oct 23, 2020
Continuation 16722188 · Dec 20, 2019
Continuation 16506885 · Jul 9, 2019
Continuation 16272069 · Feb 11, 2019
Continuation 16029611 · Jul 8, 2018
Continuation 15888052 · Feb 4, 2018
Continuation 15212549 · Jul 18, 2016
Continuation 14650897
Continuation 16004359 · Jun 9, 2018
Continuation 14109007 · Dec 17, 2013
Continuation 16188194 · Nov 12, 2018
Continuation 16004154 · Jun 8, 2018
Continuation 15855201 · Dec 27, 2017
Continuation 15711907 · Sep 21, 2017
Division 15357225 · Nov 21, 2016
Continuation 14650981
Continuation 16241628 · Jan 7, 2019
Continuation 16015737 · Jun 22, 2018
Continuation 15594053 · May 12, 2017
Continuation 14875709 · Oct 6, 2015
Continuation 14108986 · Dec 17, 2013
Continuation 16284514 · Feb 25, 2019
Continuation 16016649 · Jun 24, 2018
Continuation 15860065 · Jan 2, 2018
Continuation 15686198 · Aug 25, 2017
Continuation 15357136 · Nov 21, 2016
Continuation 14651367
Provisional Application 61747472 · Dec 31, 2012
Provisional Application 61747553 · Dec 31, 2012
Provisional Application 61747485 · Dec 31, 2012
Provisional Application 61747487 · Dec 31, 2012
Provisional Application 61747477 · Dec 31, 2012
Provisional Application 61754698 · Jan 21, 2013
Related Publication 20220047167A1 · Feb 17, 2022
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