DeepQuality: Mass Spectra Quality Assessment via Compressed Sensing and Deep Learning
Chunwei Ma

TL;DR
DeepQuality is a novel software that combines compressed sensing and deep learning to accurately assess mass spectra quality, significantly outperforming existing methods in proteomics research.
Contribution
The paper introduces DeepQuality, a new mass spectra quality assessment tool leveraging compressed sensing and deep learning, improving accuracy over previous handcrafted feature-based methods.
Findings
Achieved AUC of 0.96 and 0.92 on two datasets.
Significantly outperformed SpectrumQuality v2.0.
Demonstrated robustness and adaptability in spectra quality assessment.
Abstract
Motivation: Mass spectrometry-based proteomics is among the most commonly used methods for scrutinizing proteomic profiles in different organs for biological or medical researches. All the proteomic analyses including peptide/protein identification and quantification, differential expression analysis, biomarker discovery and so on are all based on the matching of mass spectra with peptide sequences, which is significantly influenced by the quality of the spectra, such as the peak numbers, noisy peaks, signal-to-noise ratios, etc. Hence, it is crucial to assess the quality of the spectra in order for filtering and/or post-processing after identification. The handcrafted features representing spectra quality, however, need human expertise to design and are difficult to optimize, and thus the existing assessing algorithms are still lacking in accuracy. Thus, there is a critical need for…
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Taxonomy
TopicsAdvanced Proteomics Techniques and Applications · Spectroscopy Techniques in Biomedical and Chemical Research · Metabolomics and Mass Spectrometry Studies
