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PiPS: Post-Hoc Prototypical Explanations for Interpretable Semantic Segmentation

arXiv · AI, language, vision and robotics · article · Sep 15, 2026 · UTC

With the increasing deployment of deep neural networks in critical systems, such as medical diagnostics and autonomous vehicles, ensuring their interpretability is crucial to building trust in decision-making systems. In the field of explainable artificial intelligence, prototype-based reasoning has gained particular popularity, as it mimics human cognitive processes by explaining model decisions based on visual similarity under the looks like this paradigm. While this paradigm has been thoroughly investigated in the context of global image classification, the interpretability of dense predict

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Evidence & attribution

First collected: 2026-09-20T08:40:59.508Z. This is not the publication date.