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A-PETE: Adaptive Prototype Explanations of Tree Ensembles
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Abstract
The need for interpreting machine learning models is addressed through prototype explanations within the context of tree ensembles. An algorithm named Adaptive Prototype Explanations of Tree Ensembles (A-PETE) is proposed to automatise the selection of prototypes for these classifiers. Its unique characteristics is using a specialised distance measure and a modified k-medoid approach. Experiments demonstrated its competitive predictive accuracy with respect to earlier explanation algorithms. It also provides a a sufficient number of prototypes for the purpose of interpreting the random forest classifier.
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Publication details
- DOI
- 10.48550/arxiv.2405.21036
- OpenAlex
- W4399317976
- Document type
- preprint
- Language
- EN
- Source
- arXiv (Cornell University)
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