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Towards Human-Understandable Multi-Dimensional Concept Discovery

Grobrügge, Arne; Kühl, Niklas ORCID iD icon; Satzger, Gerhard ORCID iD icon 1; Spitzer, Philipp ORCID iD icon 1
1 Karlsruhe Service Research Institute (KSRI), Karlsruher Institut für Technologie (KIT)

Abstract:

Concept-based eXplainable AI (C-XAI) aims to overcome the limitations of traditional saliency maps by converting pixels into human-understandable concepts that are consistent across an entire dataset. A crucial aspect of C-XAI is completeness, which measures how well a set of concepts explains a model's decisions. Among C-XAI methods, Multi-Dimensional Concept Discovery (MCD) effectively improves completeness by breaking down the CNN latent space into distinct and interpretable concept subspaces. However, MCD's explanations can be difficult for humans to understand, raising concerns about their practical utility. To address this, we propose Human-Understandable Multi-dimensional Concept Discovery (HU-MCD). HU-MCD uses the Segment Anything Model for concept identification and implements a CNN-specific input masking technique to reduce noise introduced by traditional masking methods. These changes to MCD, paired with the completeness relation, enable HU-MCD to enhance concept understandability while maintaining explanation faithfulness. Our experiments, including human subject studies, show that HU-MCD provides more precise and reliable explanations than existing C-XAI methods. ... mehr


Zugehörige Institution(en) am KIT Institut für Wirtschaftsinformatik (WIN)
Karlsruhe Service Research Institute (KSRI)
Publikationstyp Proceedingsbeitrag
Publikationsjahr 2025
Sprache Englisch
Identifikator KITopen-ID: 1000182349
Erschienen in Proceedings of the Computer Vision and Pattern Recognition Conference (CVPR) 2025
Veranstaltung 41nd IEEE / CVF Computer Vision and Pattern Recognition Conference (CVPR 2025), Nashville, TN, USA, 11.06.2025 – 15.06.2025
Verlag Institute of Electrical and Electronics Engineers (IEEE)
Externe Relationen Siehe auch
Schlagwörter Computer Vision, Explainable AI, Concept-Based Explanations
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