Bridging Vision and Language Concepts through Optimal Transport Semantic Flow
Concept Bottleneck Models (CBMs) promise transparent reasoning by predicting through human-interpretable concepts, yet their effectiveness fundamentally depends on how well visual and textual representations are aligned or matched. Existing vision-language CBMs often rely on pre-aligned encoders or global cosine similarity, which obscures fine-grained concept localization and fails to reflect true semantic geometry. In this work, we rethink concept alignment as a dynamic cross-modal transport pr
Record details
Published: 25 June 2026
Source: arXiv
Category: Research
Topics: Safety & alignment · Transparency
Retrieved: 14 July 2026
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ethics.ai (25 June 2026), “Bridging Vision and Language Concepts through Optimal Transport Semantic Flow,” evidence record 569, https://ethics.ai/record/569 (originally published by arXiv).
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