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AutoXAI4Omics: an automated explainable AI tool for omics and tabular data.
James Strudwick1, Laura-Jayne Gardiner1, Kate Denning-James2
1IBM Research Europe, The Hartree Centre - Sci-Tech Daresbury, Keckwick Lane, Daresbury, Warrington WA4 4AD, United Kingdom.
AutoXAI4Omics is an automated, open-source tool that simplifies machine learning (ML) for omics data analysis. It identifies biomarkers and predicts phenotypes, accelerating biological discovery for researchers.
Area of Science:
- Bioinformatics
- Computational Biology
- Artificial Intelligence in Biology
Background:
- Machine learning (ML) methods are increasingly vital for analyzing complex omics data.
- Researchers need user-friendly tools to leverage ML for biomarker identification and phenotype prediction without extensive coding expertise.
Purpose of the Study:
- To introduce AutoXAI4Omics, an automated, open-source explainable AI tool for omics and tabular data analysis.
- To enable researchers to perform classification and regression tasks, accelerating scientific discovery.
Main Methods:
- The tool automates ML pipeline processes, including feature selection, hyper-tuning, and model selection.
- It incorporates omic data-type-specific feature filtering.
- Explainability analysis provides insights into feature-target associations.
Main Results:
- AutoXAI4Omics automates complex ML decisions, saving researchers time.
- It facilitates the identification of novel, actionable insights by highlighting associations between omics features and predicted phenotypes.
- The tool supports both classification and regression tasks on omics and tabular numerical data.
Conclusions:
- AutoXAI4Omics empowers scientists to utilize sophisticated ML models for omics data analysis.
- The tool enhances biological interpretation and validation by providing explainable AI insights.
- It accelerates discovery by streamlining ML workflows and automating expert-level decisions.
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