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المجالالمعلوماتية الحيويةتعلم الآلة
العائلةProcess / pipelineMachine learning
سنة النشأة2010s–present2001
صاحب الطريقةMultiple groups; early integration of ML with PEA circa 2010s (e.g., Ma'ayan Lab, Greene Lab)Breiman, L.
النوعComputational pipeline combining statistical enrichment with machine learningEnsemble (bagging of decision trees)
المصدر التأسيسيChen, E. Y., Tan, C. M., Kou, Y., Duan, Q., Wang, Z., Meirelles, G. V., Clark, N. R., & Ma'ayan, A. (2013). Enrichr: interactive and collaborative HTML5 gene list enrichment analysis tool. BMC Bioinformatics, 14, 128. link ↗Breiman, L. (2001). Random Forests. Machine Learning, 45, 5–32. DOI ↗
الأسماء البديلةML-assisted PEA, ML-based pathway analysis, machine learning pathway enrichment, ML-enhanced gene set enrichmentRastgele Orman (Random Forest), rastgele orman, random decision forest, bagged tree ensemble
ذات صلة24
الملخصMachine learning-assisted pathway enrichment analysis integrates classical statistical pathway enrichment methods — such as over-representation analysis or gene set enrichment analysis — with machine learning algorithms to improve sensitivity, handle high-dimensional omics data, and uncover non-linear biological patterns. The approach moves beyond ranking pathways by p-value alone, using ML models to weight gene contributions, distinguish signal from noise across many samples, and prioritize biologically meaningful pathways in complex datasets.Random Forest is an ensemble learning method, introduced by Leo Breiman in 2001, that grows many decision trees on bootstrap samples of the data and combines their votes to produce strong classification and regression. By pooling many slightly different trees, it produces more accurate and more stable predictions than any single tree.
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  1. v1
  2. 2 المصادر
  3. PUBLISHED

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ScholarGateقارن الطرق: Machine learning-assisted pathway enrichment analysis · Random Forest. استُرجع بتاريخ 2026-06-18 من https://scholargate.app/ar/compare