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Prohlédněte si vybrané metody vedle sebe; řádky, které se liší, jsou zvýrazněny.

Explainable Support Vector Machine×Vysvětlitelný rozhodovací strom×
OborStrojové učeníStrojové učení
RodinaMachine learningMachine learning
Rok vzniku2016–2017 (XAI layer)1984 (CART); XAI framing formalized 2010s–2020s
TvůrceCortes & Vapnik (SVM); explainability layer via Lundberg & Lee (SHAP, 2017) and Ribeiro et al. (LIME, 2016)Breiman, L.; Friedman, J.; Olshen, R. A.; Stone, C. J.
TypPost-hoc explainability applied to SVMInterpretable supervised learning model
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 ↗Breiman, L., Friedman, J., Olshen, R. A., & Stone, C. J. (1984). Classification and Regression Trees. Wadsworth & Brooks/Cole. ISBN: 978-0-412-04841-8
Další názvyExplainable SVM, Interpretable SVM, XAI-SVM, Transparent Support Vector MachineXDT, interpretable decision tree, rule-based decision tree, transparent decision tree
Příbuzné44
ShrnutíExplainable SVM combines a trained Support Vector Machine with a post-hoc interpretability layer — typically SHAP or LIME — to produce feature-level explanations for individual predictions and global importance rankings. It retains the discriminative power of SVM while meeting transparency requirements in high-stakes domains such as medicine, finance, and law.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.
ScholarGateDatová sada
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  3. PUBLISHED

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ScholarGatePorovnat metody: Explainable Support Vector Machine · Explainable Decision Tree. Získáno 2026-06-15 z https://scholargate.app/cs/compare