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Feilong Tang

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Seeing Through the Shift: Causality-Inspired Robust Generalized Category Discovery

This work proposes CausalGCD, a causality-inspired framework designed to mitigate domain-shift bias in category discovery and proposes a Causal Geometric Manifold Constraint that enforces invariant manifold-level associations between known and unknown categories across domains, thereby facilitating robust discovery of novel classes.

Wei Feng, Yi-Wen Jiang, Sijin Zhou et al. · 1 citation

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