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Deep learning classification of lipid droplets in quantitative phase images

Author(s)
Sheneman, Luke; Stephanopoulos, Gregory; Vasdekis, Andreas E
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Creative Commons Attribution 4.0 International license https://creativecommons.org/licenses/by/4.0/
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Abstract
<jats:p>We report the application of supervised machine learning to the automated classification of lipid droplets in label-free, quantitative-phase images. By comparing various machine learning methods commonly used in biomedical imaging and remote sensing, we found convolutional neural networks to outperform others, both quantitatively and qualitatively. We describe our imaging approach, all implemented machine learning methods, and their performance with respect to computational efficiency, required training resources, and relative method performance measured across multiple metrics. Overall, our results indicate that quantitative-phase imaging coupled to machine learning enables accurate lipid droplet classification in single living cells. As such, the present paradigm presents an excellent alternative of the more common fluorescent and Raman imaging modalities by enabling label-free, ultra-low phototoxicity, and deeper insight into the thermodynamics of metabolism of single cells.</jats:p>
Date issued
2021
URI
https://hdl.handle.net/1721.1/135310
Department
Massachusetts Institute of Technology. Department of Chemical Engineering
Journal
PLOS ONE
Publisher
Public Library of Science (PLoS)

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