Interface in English. Medical references retain their original language; bilingual names and selected translations are provided.
工具说明
原始资料可追溯英文登记说明
Subtyping via Consensus Factor Analysis (SCFA) can efficiently remove noisy signals from consistent molecular patterns in multi-omics data. SCFA first uses an autoencoder to select only important features and then repeatedly performs factor analysis to represent the data with different numbers of factors. Using these representations, it can reliably identify cancer subtypes and accurately predict risk scores of patients.
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方法与适用范围
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