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Discrimination of inflammatory bowel disease using Raman spectroscopy and linear discriminant analysis methods

Authors :
Andrew W. Dupont
Shashideep Singhal
Isaac J. Pence
Alan J. Herline
Sushovan Guha
Mamoun Younes
Anita Mahadevan-Jansen
Hao Ding
Larry D. Scott
David A. Schwartz
Ming Cao
Xiaohong Bi
Hua Xu
Source :
Biomedical Vibrational Spectroscopy 2016: Advances in Research and Industry.
Publication Year :
2016
Publisher :
SPIE, 2016.

Abstract

Inflammatory bowel disease (IBD) is an idiopathic disease that is typically characterized by chronic inflammation of the gastrointestinal tract. Recently much effort has been devoted to the development of novel diagnostic tools that can assist physicians for fast, accurate, and automated diagnosis of the disease. Previous research based on Raman spectroscopy has shown promising results in differentiating IBD patients from normal screening cases. In the current study, we examined IBD patients in vivo through a colonoscope-coupled Raman system. Optical diagnosis for IBD discrimination was conducted based on full-range spectra using multivariate statistical methods. Further, we incorporated several feature selection methods in machine learning into the classification model. The diagnostic performance for disease differentiation was significantly improved after feature selection. Our results showed that improved IBD diagnosis can be achieved using Raman spectroscopy in combination with multivariate analysis and feature selection.

Details

ISSN :
0277786X
Database :
OpenAIRE
Journal :
Biomedical Vibrational Spectroscopy 2016: Advances in Research and Industry
Accession number :
edsair.doi...........9076f461b6fb29ee3e8cd0b016ae75df
Full Text :
https://doi.org/10.1117/12.2225299