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Toward Multilabel Classification for Multiple Disease Prediction Using Gut Microbiota Profiles

  • Zhi An Huang
  • , Pengwei Hu
  • , Lun Hu
  • , Zhu Hong You
  • , Kay Chen Tan
  • , Yu An Huang*
  • *此作品的通讯作者
  • Xinjiang Technical Institute of Physics and Chemistry
  • Northwestern Polytechnical University Xian
  • Hong Kong Polytechnic University

科研成果: 期刊稿件文章同行评审

摘要

Advancements in high-throughput technologies have yielded large-scale human gut microbiota profiles, sparking considerable interest in exploring the relationship between the gut microbiome and complex human diseases. Through extracting and integrating knowledge from complex microbiome data, existing machine learning (ML)-based studies have demonstrated their effectiveness in the precise identification of high-risk individuals. However, these approaches struggle to address the heterogeneity and sparsity of microbial features and explore the intrinsic relatedness among human diseases. In this work, we reframe human gut microbiome-based disease detection as a multilabel classification (MLC) problem and integrate a range of innovative techniques within the proposed MLC framework, aptly named GutMLC. Specifically, the entity semantic similarity as priori knowledge is incorporated into multilabel feature selection and loss functions by capturing the shared attributes and inherent associations among diseases and microbes. To tackle the issue of label imbalance, both within and between labels, we adapt the focal loss (FL) function for MLC using debiased inverse weighting. Extensive experiment results consistently demonstrate the competitive performance of GutMLC in comparison with commonly used MLC and single-label classification (SLC) algorithms. This work seeks to unlock the potential of gut microbiota as robust biomarkers for multiple disease prediction.

源语言英语
页(从-至)12840-12853
页数14
期刊IEEE Transactions on Neural Networks and Learning Systems
36
7
DOI
出版状态已出版 - 2025

联合国可持续发展目标

此成果有助于实现下列可持续发展目标:

  1. 可持续发展目标 3 - 良好健康与福祉
    可持续发展目标 3 良好健康与福祉

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