cs.AI updates on arXiv.org 07月10日 12:05
Comprehensive Evaluation of Prototype Neural Networks
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本文深入分析了包括ProtoPNet、ProtoPool和PIPNet在内的原型模型,应用多种评估指标,并在多个数据集上测试其性能,同时提供开源代码库。

arXiv:2507.06819v1 Announce Type: cross Abstract: Prototype models are an important method for explainable artificial intelligence (XAI) and interpretable machine learning. In this paper, we perform an in-depth analysis of a set of prominent prototype models including ProtoPNet, ProtoPool and PIPNet. For their assessment, we apply a comprehensive set of metrics. In addition to applying standard metrics from literature, we propose several new metrics to further complement the analysis of model interpretability. In our experimentation, we apply the set of prototype models on a diverse set of datasets including fine-grained classification, Non-IID settings and multi-label classification to further contrast the performance. Furthermore, we also provide our code as an open-source library, which facilitates simple application of the metrics itself, as well as extensibility - providing the option for easily adding new metrics and models. https://github.com/uos-sis/quanproto

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原型模型 可解释人工智能 评估指标 开源代码
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