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[ARTICLE · art-76377] src=arxiv.org ↗ pub= topic=artificial-intelligence verified=true sentiment=↑ positive

Concept-based Visual Counterfactual Explanations with Diffusion Models

Researchers introduce C-VCE, a diffusion framework that builds a classifier directly into the generative model via a concept bottleneck layer to produce visual counterfactual explanations without relying on external noise-robust classifiers. On CelebA benchmarks, C-VCE matches or improves flip rates while generating counterfactuals that are visually closer to the input and less distorted than baselines. The method allows users to toggle semantic concepts during sampling and uses a probabilistic regularizer and gradient-based mask to keep edits minimal and controlled.

read1 min views1 publishedJul 28, 2026

arXiv:2607.22544v1 Announce Type: new Abstract: Visual counterfactual explanations aim to answer "what minimal change to this image would flip the model's prediction?", and are increasingly important as vision models are deployed in safety-critical domains (e.g., medicine). Existing diffusion-based methods can produce realistic edits, but they rely on external classifiers that must work reliably on noisy images, which makes them fragile and hard to deploy for robust explanations. We introduce C-VCE, a new diffusion framework that builds the classifier directly into the generative model via a concept bottleneck layer, so that counterfactuals are guided by human-interpretable features (concepts) instead of a separate noise robust classifier that works with pixel-level edits. Our model lets users to toggle on/off semantic concepts during sampling, then minimally adjusts relevant image regions, while preserving the rest of the image, respecting feature correlations. To keep edits small and controlled, we add a simple probabilistic regularizer that balances "change the prediction" against "stay close to the original", plus a gradient-based mask that confines modifications to the most relevant regions. On benchmarks such as CelebA, C-VCE matches or improves flip rates while producing counterfactuals that are visually closer to the input and less distorted than baselines that depend on separate noisy-image classifiers. These properties make C-VCE a practical tool for vision systems where users need concrete "what-if" images without having to trust an additional, noise-robust classifier. More broadly, our results suggest that exposing and controlling an internal concept layer is a promising way to make powerful generative models easier to understand and safer to use.

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