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Updated: May 26, 2026

Characterization of Neuronal Lysosome Interactome with Proximity Labeling Proteomics
Published on: June 23, 2022
Predicting viral protein subcellular localization with Chou's pseudo amino acid composition and imbalance-weighted
Jun-Zhe Cao1, Wen-Qi Liu, Hong Gu
1School of Control Science and Engineering, Dalian University of Technology, Dalian, Liaoning, China.
Abstract:
Machine learning is a kind of reliable technology for automated subcellular localization of viral proteins within a host cell or virus-infected cell. One challenge is that the viral protein samples are not only with multiple location sites, but also class-imbalanced. The imbalanced dataset often decreases the prediction performance. In order to accomplish this challenge, this paper proposes a novel approach named imbalance-weighted multi-label K-nearest neighbor to predict viral protein subcellular location with multiple sites. The experimental results by jackknife test indicate that the presented algorithm achieves a better performance than the existing methods and has great potentials in protein science.
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