Show and Tell: Visually Explainable Deep Neural Nets via Spatially-Aware Concept Bottleneck Models
Itay Benou, Tammy Riklin Raviv
2025年份
2顶会引用
摘要
Input Image "a hat" "long, shaggy hair" "an intelligent expression" SALF-CBM SALF-CBM "a small, dainty dog" "a ball" "a pot" Figure 1. Concept maps generated by our SALF-CBM. Inspired by human visual interpretation, our method first decomposes input images into spatially-localized structures, associated with familiar concepts, independent of a specific task. Explainability of task-specific outputs is obtained by training a final task layer on-top of these maps.
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引用它的顶会 Paper2
- Partially Shared Concept Bottleneck ModelsDelong Zhao, Qiang Huang, Di Yan, Yiqun Sun 等AAAI 2026 · 被引用 2 次
- Rounded or Streamlined Head? Bridging Concept Bottleneck Models and Attribute-Described Object PartsYang Liu, Jiajin Zhang, Yaojun Hu, Bingguang Hao 等CVPR 2026
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