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20242026
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cs.AI2026

Efficient bias mitigation in T2I diffusion models using Concept Graphs

Mansi, Avinash Kori, Francesco Leofante

Text-to-Image diffusion models often propagate harmful bias inherited from the training data. Existing bias mitigation techniques typically intervene only at the text encoder or pr…

cs.AI2026

Selective Fine-Tuning for Targeted and Robust Concept Unlearning

Mansi, Avinash Kori, Francesca Toni +1

Text guided diffusion models are used by millions of users, but can be easily exploited to produce harmful content. Concept unlearning methods aim at reducing the models' likelihoo…

cs.AI2025

Object-Centric Case-Based Reasoning via Argumentation

Gabriel de Olim Gaul, Adam Gould, Avinash Kori +1

We introduce Slot Attention Argumentation for Case-Based Reasoning (SAA-CBR), a novel neuro-symbolic pipeline for image classification that integrates object-centric learning via a…

cs.AI2025

Transparent Visual Reasoning via Object-Centric Agent Collaboration

Benjamin Teoh, Ben Glocker, Francesca Toni +1

A central challenge in explainable AI, particularly in the visual domain, is producing explanations grounded in human-understandable concepts. To tackle this, we introduce OCEAN (O…

cs.AI2025

Free Argumentative Exchanges for Explaining Image Classifiers

Avinash Kori, Antonio Rago, Francesca Toni

Deep learning models are powerful image classifiers but their opacity hinders their trustworthiness. Explanation methods for capturing the reasoning process within these classifier…