作者
Gregory M Palmer, Changfang Zhu, Tara M Breslin, Fushen Xu, Kennedy W Gilchrist, Nirmala Ramanujam
发表日期
2003/10/20
期刊
IEEE Transactions on Biomedical engineering
卷号
50
期号
11
页码范围
1233-1242
出版商
IEEE
简介
Nonmalignant (n = 36) and malignant (n = 20) tissue samples were obtained from breast cancer and breast reduction surgeries. These tissues were characterized using multiple excitation wavelength fluorescence spectroscopy and diffuse reflectance spectroscopy in the ultraviolet-visible wavelength range, immediately after excision. Spectra were then analyzed using principal component analysis (PCA) as a data reduction technique. PCA was performed on each fluorescence spectrum, as well as on the diffuse reflectance spectrum individually, to establish a set of principal components for each spectrum. A Wilcoxon rank-sum test was used to determine which principal components show statistically significant differences between malignant and nonmalignant tissues. Finally, a support vector machine (SVM) algorithm was utilized to classify the samples based on the diagnostically useful principal components …
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