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Vysvětlitelný hlasovací soubor (Explainable Voting Ensemble)×Hlasovací ansámbl×
OborStrojové učeníStrojové učení
RodinaMachine learningMachine learning
Rok vzniku2016–20201990s–2004
TvůrceComposite: voting ensemble (Dietterich, 2000) + XAI frameworks (Ribeiro et al., 2016; Lundberg & Lee, 2017)Lam & Suen; Kuncheva, L. I. (systematic treatment)
TypEnsemble with post-hoc or ante-hoc interpretabilityEnsemble (combination of multiple classifiers by vote)
Původní zdrojLundberg, S. M., & Lee, S.-I. (2017). A unified approach to interpreting model predictions. Advances in Neural Information Processing Systems, 30, 4765–4774. link ↗Kuncheva, L. I. (2004). Combining Pattern Classifiers: Methods and Algorithms. Wiley-Interscience. ISBN: 978-0-471-21078-8
Další názvyXAI voting ensemble, interpretable voting classifier, transparent voting ensemble, explainable majority vote modelmajority voting classifier, hard voting, soft voting ensemble, plurality voting ensemble
Příbuzné65
ShrnutíAn Explainable Voting Ensemble combines predictions from multiple diverse base models through majority vote (hard voting) or averaged probabilities (soft voting), then applies post-hoc or ante-hoc XAI techniques — such as SHAP values, LIME, or permutation importance — to produce feature-level explanations for the combined model's decisions. The goal is to retain the accuracy gains of ensemble aggregation while meeting interpretability requirements in high-stakes or regulated applications.A voting ensemble trains several diverse classifiers independently and combines their predictions by a vote: hard voting picks the class chosen by the most models, while soft voting averages their class-probability estimates, optionally with per-model weights. The combination usually outperforms any individual member, and requires no additional training after the base models are fitted.
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ScholarGatePorovnat metody: Explainable Voting Ensemble · Voting Ensemble. Získáno 2026-06-15 z https://scholargate.app/cs/compare