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Machine Learning Enabled Multiple Illumination Quantitative Optoacoustic Oximetry Imaging in Humans

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Specialty Radiology
Date 2022 Jul 1
PMID 35774340
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Abstract

Optoacoustic (OA) imaging is a promising modality for quantifying blood oxygen saturation (sO) in various biomedical applications - in diagnosis, monitoring of organ function, or even tumor treatment planning. We present an accurate and practically feasible real-time capable method for quantitative imaging of sO based on combining multispectral (MS) and multiple illumination (MI) OA imaging with learned spectral decoloring (LSD). For this purpose we developed a hybrid real-time MI MS OA imaging setup with ultrasound (US) imaging capability; we trained gradient boosting machines on MI spectrally colored absorbed energy spectra generated by generic Monte Carlo simulations and used the trained models to estimate sO on real OA measurements. We validated MI-LSD and on image sequences of radial arteries and accompanying veins of five healthy human volunteers. We compared the performance of the method to prior LSD work and conventional linear unmixing. MI-LSD provided highly accurate results and consistently plausible results . This preliminary study shows a potentially high applicability of quantitative OA oximetry imaging, using our method.

Citing Articles

Machine learning enabled multiple illumination quantitative optoacoustic oximetry imaging in humans.

Kirchner T, Jaeger M, Frenz M Biomed Opt Express. 2022; 13(5):2655-2667.

PMID: 35774340 PMC: 9203099. DOI: 10.1364/BOE.455514.

References
1.
Alaluf S, Atkins D, Barrett K, Blount M, Carter N, Heath A . Ethnic variation in melanin content and composition in photoexposed and photoprotected human skin. Pigment Cell Res. 2002; 15(2):112-8. DOI: 10.1034/j.1600-0749.2002.1o071.x. View

2.
Shao P, Cox B, Zemp R . Estimating optical absorption, scattering, and Grueneisen distributions with multiple-illumination photoacoustic tomography. Appl Opt. 2011; 50(19):3145-54. DOI: 10.1364/AO.50.003145. View

3.
Zemp R . Quantitative photoacoustic tomography with multiple optical sources. Appl Opt. 2010; 49(18):3566-72. DOI: 10.1364/AO.49.003566. View

4.
Jacques S . Optical properties of biological tissues: a review. Phys Med Biol. 2013; 58(11):R37-61. DOI: 10.1088/0031-9155/58/11/R37. View

5.
Mallidi S, Luke G, Emelianov S . Photoacoustic imaging in cancer detection, diagnosis, and treatment guidance. Trends Biotechnol. 2011; 29(5):213-21. PMC: 3080445. DOI: 10.1016/j.tibtech.2011.01.006. View