A machine learning framework to analyze hyperspectral stimulated Raman scattering microscopy images of expressed human meibum

被引:26
|
作者
Alfonso-Garcia, Alba [1 ,4 ]
Paugh, Jerry [2 ]
Farid, Marjan [3 ]
Garg, Sumit [3 ]
Jester, James [1 ,3 ]
Potma, Eric [4 ]
机构
[1] Univ Calif Irvine, Dept Biomed Engn, Irvine, CA USA
[2] Marshall B Ketchum Univ, Southern Calif Coll Optometry, Fullerton, CA USA
[3] Univ Calif Irvine, Gavin Herbert Eye Inst, Irvine, CA USA
[4] Univ Calif Irvine, Dept Chem, Irvine, CA 92717 USA
关键词
multi-image analysis; machine learning; hyperspectral stimulated Raman scattering microscopy; human meibum; IMAGING IN-VIVO; SPECTROSCOPY; CANCER; DIAGNOSIS; IR;
D O I
10.1002/jrs.5118
中图分类号
O433 [光谱学];
学科分类号
0703 ; 070302 ;
摘要
We develop and discuss a methodology for batch-level analysis of hyperspectral stimulated Raman scattering (hsSRS) data sets of human meibum in the CH-stretching vibrational range. The analysis consists of two steps. The first step uses a training set (n=19) to determine chemically meaningful reference spectra that jointly constitute a basis set for the sample. This procedure makes use of batch-level vertex component analysis, followed by unsupervised k-means clustering to express the data set in terms of spectra that represent lipid and protein mixtures in changing proportions. The second step uses a random forest classifier to rapidly classify hsSRS stacks in terms of the pre-determined basis set. The overall procedure allows a rapid quantitative analysis of large hsSRS data sets, enabling a direct comparison among samples using a single set of reference spectra. We apply this procedure to assess 50 specimens of expressed human meibum, rich in both protein and lipid, and show that the batch-level analysis reveals marked variation among samples that potentially correlate with meibum health quality. Copyright (c) 2017 John Wiley & Sons, Ltd.
引用
收藏
页码:803 / 812
页数:10
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