2022
DOI: 10.36227/techrxiv.19435718
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Deep Learning as an Improved Method of Preprocessing Biomedical Raman Spectroscopy Data

Abstract: Machine learning has had a significant impact on the value of spectroscopy-based characterization tools, particularly in biomedical applications, due to its ability to detect latent patterns within complex spectral data. However, it often requires extensive data preprocessing, including baseline correction and denoising, which can lead to unintentional bias during classification. To address this, we present a deep learning-based signal preprocessing method capable of handling all the defects of raw Raman spect… Show more

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