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תחוםלמידת מכונהלמידת מכונה
משפחהMachine learningMachine learning
שנת המקור1993 (rules); 2010s (XAI framing)1984 (CART); XAI framing formalized 2010s–2020s
הוגה השיטהAgrawal, R., Imielinski, T., & Swami, A. (foundational); XAI framing: broader community (2010s–present)Breiman, L.; Friedman, J.; Olshen, R. A.; Stone, C. J.
סוגInterpretable pattern mining / XAI techniqueInterpretable supervised learning model
מקור מכונןAgrawal, R., Imielinski, T., & Swami, A. (1993). Mining association rules between sets of items in large databases. Proceedings of the 1993 ACM SIGMOD International Conference on Management of Data, 207–216. DOI ↗Breiman, L., Friedman, J., Olshen, R. A., & Stone, C. J. (1984). Classification and Regression Trees. Wadsworth & Brooks/Cole. ISBN: 978-0-412-04841-8
כינוייםXAI association rules, interpretable association rules, rule-based explanation mining, transparent association rule learningXDT, interpretable decision tree, rule-based decision tree, transparent decision tree
קשורות64
תקצירExplainable Association Rules leverages the inherently symbolic, if-then structure of association rule mining to provide human-readable explanations of data patterns or black-box model decisions. Because each rule explicitly states its antecedent and consequent together with support, confidence, and lift, the outputs are natively interpretable without requiring a secondary post-hoc surrogate.An Explainable Decision Tree is a classification or regression tree deliberately grown to be shallow, readable, and auditable — producing a finite set of if-then rules that a human can verify without additional tools. It sits at the intersection of predictive modelling and Explainable AI (XAI), chosen when stakeholders must understand and trust every prediction the model makes.
ScholarGateמערך נתונים
  1. v1
  2. 2 מקורות
  3. PUBLISHED
  1. v1
  2. 2 מקורות
  3. PUBLISHED

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ScholarGateהשוואת שיטות: Explainable Association Rules · Explainable Decision Tree. אוחזר בתאריך 2026-06-15 מתוך https://scholargate.app/he/compare