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Target-to-Background Separation for Spectral Unmixing in In-Vivo Fluorescence Imaging 被引量:1
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作者 赵勇 胡程 +1 位作者 彭金良 秦斌杰 《Journal of Shanghai Jiaotong university(Science)》 EI 2014年第5期600-611,共12页
We present a novel fluorescence spectral unmixing based on target-to-background separation preprocessing, which effectively separates the multi-target fluorescence from all background autofluorescence(BF)without any h... We present a novel fluorescence spectral unmixing based on target-to-background separation preprocessing, which effectively separates the multi-target fluorescence from all background autofluorescence(BF)without any hardware-based BF acquisition and tissue specific BF estimation. Specifically, we first enhance the intrinsic accumulation contrast in target-to-background fluorescence using h-dome transformation; then separate multi-target fluorescence areas from the background in sparse multispectral data utilizing kernel maximum autocorrelation factor analysis; we further use fast marching-based image inpainting method to patch up the removed target fluorescence areas and reconstruct the multispectral BF; with the BF matrix being subtracted from the original data, the multi-target fluorophores are easily unmixed from the subtracted data using multivariate curve resolution-alternating least squares method. In two preliminary in-vivo experiments, the proposed method demonstrated excellent performance to unmix multi-target fluorescences while other state-of-art unmixing methods failed to get desired results. 展开更多
关键词 fluorescence imaging spectral unmixing autofluorescence removal target detection kernel maximum autocorrelation factor target-to-background separation
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