IP Library Granted Patent US 12,629,062
Granted Patent B2
US 12,629,062 · App. 18/671,696 · Granted May 19, 2026

Time domain-based optical measurement systems and methods configured to measure absolute properties of tissue

Inventors: Husam Katnani (Braintree, MA); Katherine Perdue (Los Angeles, CA); Ryan Field (Culver City, CA); Isai Olvera (South Portland, ME)
Assignee: HI LLC
A61B5/14553A61B5/6803A61B5/4088A61B2090/306A61B2090/3614A61B2562/0238
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,629,062
App. No.
18/671,696
Granted
May 19, 2026
Kind
B2
Abstract

An optical measurement system includes a detector configured to detect signal photons included in a light pulse after the signal photons enter a body of a user and are scattered by a target within the body and reference photons included in the light pulse, the reference photons being diverted to the detector without entering the body. The optical measurement system further includes a processing unit configured to determine a temporal distribution of the signal photons detected by the detector, determine a temporal distribution of the reference photons detected by the detector, and generate measurement data based on the temporal distribution of the signal photons and the temporal distribution of the reference photons.

Claims (40)

1 . An optical measurement system comprising:

a detector configured to detect:

signal photons included in a light pulse after the signal photons enter a body of a user and are scattered by a target within the body, and

reference photons included in the light pulse, the reference photons being diverted to the detector without entering the body; and

a processing unit configured to:

determine a temporal distribution of the signal photons detected by the detector,

determine a temporal distribution of the reference photons detected by the detector, and

generate measurement data based on the temporal distribution of the signal photons and the temporal distribution of the reference photons.

2 . The optical measurement system of claim 1 , wherein the processing unit is further configured to determine, based on the measurement data, when the signal photons entered the body.

3 . The optical measurement system of claim 1 , wherein the measurement data comprises a histogram.

4 . The optical measurement system of claim 1 , wherein the processing unit is further configured to determine, based on the measurement data, at least one of an absolute value of a reduced scattering coefficient μs' of the target and an absolute value of an absorption coefficient μa of the target.

5 . The optical measurement system of claim 1 , wherein the processing unit is further configured to determine, based on the measurement data, an absolute optical pathlength of the signal photons through the body.

6 . The optical measurement system of claim 1 , wherein the processing unit is further configured to determine, based on the measurement data, an oxidation state of cytochrome-c-oxidase present in the target.

7 . The optical measurement system of claim 1 , further comprising a wearable module, the wearable module comprising:

a light guide configured to receive the light pulse emitted by a light source and guide the signal photons included in the light pulse toward the body;

a light diverter configured to divert the reference photons included in the light pulse to the detector; and

a housing that houses both the light diverter and at least a portion of the light guide.

8 . The optical measurement system of claim 7 , wherein the processing unit is housed in the housing.

9 . The optical measurement system of claim 7 , further comprising an additional housing separate from the housing,

wherein the processing unit is housed in the additional housing and communicatively coupled with the detector by way of a wired or wireless communication link.

10 . The optical measurement system of claim 9 , wherein the additional housing is wearable by the user.

11 . The optical measurement system of claim 7 , further comprising a head-mountable component configured to be worn on a head of the user,

wherein the wearable module is included in the head-mountable component.

12 . The optical measurement system of claim 11 , wherein the head-mountable component comprises a plurality of wearable modules.

13 . The optical measurement system of claim 7 , wherein the wearable module further comprises the detector.

14 . The optical measurement system of claim 13 , wherein the detector comprises a plurality of single-photon avalanche diode (SPAD) circuits.

15 . The optical measurement system of claim 7 , wherein the wearable module further comprises the light source.

16 . The optical measurement system of claim 1 , wherein the target comprises a brain of the user.

17 . A method comprising:

determining, by a processing unit included in an optical measurement system, a temporal distribution of signal photons included in a light pulse and detected by a detector after the signal photons enter a body of a user and are scattered by a target within the body;

determining, by the processing unit, a temporal distribution of reference photons included in the light pulse and detected by the detector, the reference photons being diverted to the detector without entering the body; and

generating measurement data based on the temporal distribution of the signal photons and the temporal distribution of the reference photons.

18 . The method of claim 17 , further comprising:

determining, by the processing unit based on the measurement data, when the signal photons entered the body.

19 . The method of claim 17 , further comprising:

determining, by the processing unit based on the measurement data, one or more of an absolute value of a reduced scattering coefficient μs' of the target or an absolute value of an absorption coefficient μa of the target.

20 . The method of claim 17 , further comprising:

determining, by the processing unit based on the measurement data, an absolute optical pathlength of the signal photons through the body.

21 . The method of claim 17 , further comprising:

determining, by the processing unit based on the measurement data, an oxidation state of cytochrome-c-oxidase present in the target.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 22, 2024
From: KATNANI, HUSAM; PERDUE, KATHERINE; FIELD, RYAN; OLVERA, ISAI
To: HI LLC
Reel/Frame 067497/0074 →
Continuity (5)
Continuation 17176560 · Feb 16, 2021
Provisional Application 63064688 · Aug 12, 2020
Provisional Application 63012538 · Apr 20, 2020
Provisional Application 62979866 · Feb 21, 2020
Related Publication 20240306958A1 · Sep 19, 2024
References Cited (115)
US 5853370A · Chance et al. · 1998 [cited by applicant]
US 6240309B1 · Yamashita et al. · 2001 [cited by applicant]
US 6384663B2 · Cova et al. · 2002 [cited by applicant]
US 6640133B2 · Yamashita et al. · 2003 [cited by applicant]
US 6683294B1 · Herbert et al. · 2004 [cited by applicant]
US 7356365B2 · Schurman · 2008 [cited by applicant]
US 7547872B2 · Niclass et al. · 2009 [cited by applicant]
US 7774047B2 · Yamashita et al. · 2010 [cited by applicant]
US 8026471B2 · Itzler · 2011 [cited by applicant]
US 8078250B2 · Chen et al. · 2011 [cited by applicant]
US 8082015B2 · Yodh et al. · 2011 [cited by applicant]
US 8518029B2 · Birmingham et al. · 2013 [cited by applicant]
US 8633431B2 · Kim · 2014 [cited by applicant]
US 8817257B2 · Herve · 2014 [cited by applicant]
US 9058081B2 · Baxter · 2015 [cited by applicant]
US 9076707B2 · Harmon · 2015 [cited by applicant]
US 9131861B2 · Ince et al. · 2015 [cited by applicant]
US 9316735B2 · Baxter · 2016 [cited by applicant]
US 9401448B2 · Bienfang et al. · 2016 [cited by applicant]
US 9419635B2 · Kumar et al. · 2016 [cited by applicant]
US 9442201B2 · Schmand et al. · 2016 [cited by applicant]
US 9529079B1 · Droz et al. · 2016 [cited by applicant]
US 9574936B2 · Heinonen · 2017 [cited by applicant]
US 9946344B2 · Ayaz et al. · 2018 [cited by applicant]
US D817553S · Aaskov et al. · 2018 [cited by applicant]
US D825112S · Saez · 2018 [cited by applicant]
US 10158038B1 · Do et al. · 2018 [cited by applicant]
US 10340408B1 · Katnani et al. · 2019 [cited by applicant]
US 10424683B1 · Valle et al. · 2019 [cited by applicant]
US 10515993B2 · Field et al. · 2019 [cited by applicant]
US 10695167B2 · Van Heugten et al. · 2020 [cited by applicant]
US 10697829B2 · Delic · 2020 [cited by applicant]
US 10772561B2 · Donaldson · 2020 [cited by applicant]
US 10809796B2 · Armstrong-Muntner et al. · 2020 [cited by applicant]
US 10912504B2 · Nakaji et al. · 2021 [cited by applicant]
US 11006876B2 · Johnson et al. · 2021 [cited by applicant]
US 11006878B2 · Johnson et al. · 2021 [cited by applicant]
US 11857348B2 · Field et al. · 2024 [cited by applicant]
US 11903676B2 · Sorgenfrei et al. · 2024 [cited by applicant]
US 11950879B2 · Field et al. · 2024 [cited by applicant]
US 20070083097A1 · Fujiwara et al. · 2007 [cited by applicant]
US 20090012402A1 · Mintz et al. · 2009 [cited by applicant]
US 20090054789A1 · Kiguchi et al. · 2009 [cited by applicant]
US 20100249557A1 · Besko et al. · 2010 [cited by applicant]
US 20110208675A1 · Shoureshi et al. · 2011 [cited by applicant]
US 20130342835A1 · Blacksberg · 2013 [cited by applicant]
US 20140046152A1 · Bechtel et al. · 2014 [cited by applicant]
US 20140191115A1 · Webster et al. · 2014 [cited by applicant]
US 20140217264A1 · Shepard et al. · 2014 [cited by applicant]
US 20140275891A1 · Muehlemann et al. · 2014 [cited by applicant]
US 20150038811A1 · Asaka et al. · 2015 [cited by applicant]
US 20150041625A1 · Dutton et al. · 2015 [cited by applicant]
US 20150054111A1 · Niclass et al. · 2015 [cited by applicant]
US 20150077279A1 · Song et al. · 2015 [cited by applicant]
US 20150150505A1 · Kaskoun et al. · 2015 [cited by applicant]
US 20150327777A1 · Kostic et al. · 2015 [cited by applicant]
US 20150364635A1 · Bodlovic et al. · 2015 [cited by applicant]
US 20170030769A1 · Clemens et al. · 2017 [cited by applicant]
US 20170031009A1 · Davidovic et al. · 2017 [cited by applicant]
US 20170052065A1 · Sharma et al. · 2017 [cited by applicant]
US 20170176596A1 · Shpunt et al. · 2017 [cited by applicant]
US 20170179173A1 · Mandai et al. · 2017 [cited by applicant]
US 20170202518A1 · Furman et al. · 2017 [cited by applicant]
US 20170281086A1 · Donaldson · 2017 [cited by applicant]
US 20170343384A1 · Nakazato et al. · 2017 [cited by applicant]
US 20170363467A1 · Clemens et al. · 2017 [cited by applicant]
US 20170367650A1 · Wallois et al. · 2017 [cited by applicant]
US 20180014741A1 · Chou · 2018 [cited by applicant]
US 20180027196A1 · Yang et al. · 2018 [cited by applicant]
US 20180033751A1 · Ban et al. · 2018 [cited by applicant]
US 20180039053A1 · Kremer et al. · 2018 [cited by applicant]
US 20180070830A1 · Sutin et al. · 2018 [cited by applicant]
US 20180070831A1 · Sutin et al. · 2018 [cited by applicant]
US 20180089848A1 · Yang et al. · 2018 [cited by applicant]
US 20190113385A1 · Fukuchi · 2019 [cited by applicant]
US 20190175068A1 · Everdell · 2019 [cited by applicant]
US 20190355861A1 · Katnani et al. · 2019 [cited by applicant]
US 20190363210A1 · Valle et al. · 2019 [cited by applicant]
US 20190388018A1 · Horstmeyer et al. · 2019 [cited by applicant]
US 20200044098A1 · Azuma et al. · 2020 [cited by applicant]
US 20200060542A1 · Alford et al. · 2020 [cited by applicant]
US 20200116838A1 · Erdogan et al. · 2020 [cited by applicant]
US 20200196932A1 · Johnson et al. · 2020 [cited by applicant]
US 20200253479A1 · Nurmikko · 2020 [cited by applicant]
US 20200315510A1 · Johnson et al. · 2020 [cited by applicant]
US 20200337624A1 · Johnson et al. · 2020 [cited by applicant]
US 20200390358A1 · Johnson et al. · 2020 [cited by applicant]
US 20210290066A1 · Field et al. · 2021 [cited by applicant]
WO 2005050156A2 · 2005 [cited by applicant]
WO 2006041997A2 · 2006 [cited by applicant]
WO 2007048039A2 · 2007 [cited by applicant]
Alayed, et al., Characterization of a Time-Resolved Diffuse Optical Spectroscopy Prototype Using Low-Cost, Compact Single Photon Avalanche Detectors for Tissue Optics Applications, Sensors 2018, 18, 3680; doi:10.3390/s1… [cited by applicant]
Ban, et al., Kernel Flow: a high channel count scalable TD-fNIRS system, https://www.spiedigitallibrary.org/conference-proceedings-of-spie Proc. of SPIE vol. 11663, 116630B doi: 10.1117/12.2582888, Mar. 5, 2021. [cited by applicant]
Ban, et al., Kernel Flow: a high channel count scalable time-domain functional near-infrared spectroscopy system, https://www.spiedigitallibrary.org/journals/Journal-of-Biomedical-Optics on Jan. 18, 2022. [cited by applicant]
Contini, et al., Photon migration through a turbid slab described by a model based on diffusion approximation. I. Theory, Appl. Opt. 36(19), 4587 (1997). [cited by applicant]
Di Sieno, et al., Probe-hosted large area silicon photomultiplier and high-throughput timing electronics for enhanced performance time-domain functional near-infrared spectroscopy, Biomed. Opt. Express 11(11), 6389 (202… [cited by applicant]
Fishburn, et al., Temporal Derivative Distribution Repair (TDDR): A motion correction method for fNIRS, Neuroimage. Jan. 1, 2019; 184: 171-179. doi:10.1016/j.neuroimage.2018.09.025. [cited by applicant]
Huppert, et al., HomER: a review of time-series analysis methods for near-infrared spectroscopy of the brain, Appl. Opt. 48(10), D280 (2009). [cited by applicant]
Kienle, et al., Improved solutions of the steady-state and the time-resolved diffusion equations for reflectance from a semi-infinite turbid medium, J. Opt. Soc. Am. A 14(1), 246 (1997). [cited by applicant]
Konugolu, et al., Broadband (600-1350 nm) Time-Resolved Diffuse Optical Spectrometer for Clinical Use, IEEE Journal of Selected Topics in Quantum Electronics, vol. 22, No. 3, May/Jun. 2016. [cited by applicant]
Lacerenza, et al., Wearable and wireless time-domain near-infrared spectroscopy system for brain and muscle hemodynamic monitoring, Biomed. Opt. Express 11(10), 5934 (2020). [cited by applicant]
Lange, et al., Clinical Brain Monitoring with Time Domain NIRS: A Review and Future Perspectives, Applied Sciences 9(8), 1612 (2019). [cited by applicant]
Lange, et al., MAESTROS: A Multiwavelength Time-Domain NIRS System to Monitor Changes in Oxygenation and Oxidation State of Cytochrome-C-Oxidase, IEEE J. Select. Topics Quantum Electron. 25(1), 1-12 (2019). [cited by applicant]
Martelli, et al., Optimal estimation reconstruction of the optical properties of a two-layered tissue phantom from time-resolved single-distance measurements, Journal of Biomedical Optics 20(11), 115001 (Nov. 2015). [cited by applicant]
Mora, et al., Fast silicon photomultiplier improves signal harvesting and reduces complexity in time-domain diffuse optics, Opt. Express 23(11), 13937 (2015). [cited by applicant]
Pifferi, et al., Performance assessment of photon migration instruments: the MEDPHOT protocol, Applied Optics, 44 (11), 2104-2114, 2005. [cited by applicant]
Prahl, Optical Absorption of Hemoglobin, http://omlc.ogi.edu/spectra/hemoglobin/index.html, 1999. [cited by applicant]
Re, et al., Multi-channel medical device for time domain functional near infrared spectroscopy based on wavelength space multiplexing, Biomed. Opt. Express 4(10), 2231 (2013). [cited by applicant]
Renna, et al., Eight-Wavelength, Dual Detection Channel Instrument for Near-Infrared Time-Resolved Diffuse Optical Spectroscopy, IEEE J. Select. Topics Quantum Electron. 25(1), 1-11 (2019). [cited by applicant]
Torricelli, et al., Time domain functional NIRS imaging for human brain mapping, NeuroImage 85, 28-50 (2014). [cited by applicant]
Wabnitz, et al., Depth-selective data analysis for time-domain fNIRS: moments vs. time windows, Biomed. Opt. Express 11(8), 4224 (2020). [cited by applicant]
Wabnitz, et al., Performance assessment of time-domain optical brain imagers, part 1: basic instrumental performance protocol, Journal of Biomedical Optics 19(8), 086010 (Aug. 2014). [cited by applicant]
Wabnitz, et al., Performance assessment of time-domain optical brain imagers, part 2: nEUROPt protocol, Journal of Biomedical Optics 19(8), 086012 (Aug. 2014). [cited by applicant]
Wojtkiewicz, et al., Self-calibrating time-resolved near infrared spectroscopy, Biomed. Opt. Express 10(5), 2657 (2019). [cited by applicant]
Zucchelli, et al., Method for the discrimination of superficial and deep absorption variations by time domain fNIRS, 2013 OSA Dec. 1, 2013 | vol. 4, No. 12 | DOI:10.1364/BOE.4.002893 | Biomedical Optics Express 2893, 20… [cited by applicant]