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Benchmarking Machine Learning Models for Multi-Omics-Based Breast Cancer Prediction

arXiv cs.LG · 20h ago Cached

This paper systematically benchmarks classical machine learning models (Random Forest, XGBoost, etc.) for ER status prediction using multi-omics data from TCGA-BRCA, finding that RNA expression provides the strongest predictive signal and that Random Forest achieves 90.3% balanced accuracy in the integrated multi-omic setting.

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