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FP-Growth מוסבר×FP-growth מונחה-למחצה×
תחוםלמידת מכונהלמידת מכונה
משפחהMachine learningMachine learning
שנת המקור2000 (FP-Growth); XAI augmentation emerged ~2018–present2000s–2010s
הוגה השיטהHan, J., Pei, J., & Yin, Y. (FP-Growth); XAI augmentation from the interpretable ML communityExtensions of Han, Pei & Yin (2000); semi-supervised variants developed by various authors in the 2000s–2010s
סוגExplainable frequent pattern miningSemi-supervised frequent pattern mining
מקור מכונןHan, J., Pei, J., & Yin, Y. (2000). Mining frequent patterns without candidate generation. ACM SIGMOD Record, 29(2), 1–12. DOI ↗Han, J., Pei, J., & Yin, Y. (2000). Mining frequent patterns without candidate generation. Proceedings of the 2000 ACM SIGMOD International Conference on Management of Data, 1–12. DOI ↗
כינוייםXAI-FP-Growth, interpretable frequent pattern mining, explainable frequent itemset mining, transparent FP-GrowthSS-FP-growth, constrained FP-growth, label-guided frequent pattern mining, semi-supervised frequent itemset mining
קשורות53
תקצירExplainable FP-Growth augments the classic FP-Growth frequent-pattern mining algorithm with post-hoc interpretability tools — such as rule importance scores, visual pattern trees, and counterfactual explanations — so analysts can not only discover frequent itemsets and association rules but also understand why specific patterns matter, which items drive rule confidence, and how to communicate findings transparently to stakeholders.Semi-supervised FP-growth extends the classical Frequent Pattern growth algorithm by incorporating partial labels, user-defined constraints, or class-level information to guide frequent itemset discovery. Instead of mining all patterns indiscriminately, it focuses on patterns that are both statistically frequent and semantically meaningful given the available supervision signal.
ScholarGateמערך נתונים
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  1. v1
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  3. PUBLISHED

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ScholarGateהשוואת שיטות: Explainable FP-Growth · Semi-supervised FP-growth. אוחזר בתאריך 2026-06-18 מתוך https://scholargate.app/he/compare