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Open access Jul 2026

Uncertainty Generation Meta-training for Cross-domain Few-shot Learning

An innovative meta-learning framework augmented by uncertainty generation is proposed that improves the current state-of-the-art by an average of 3.11%, with key innovations in using probabilistic feature statistics, gradient-based uncertainty modeling, and causal feature extraction that enhance cross-domain knowledge transfer more effectively than existing techniques.

Keyang Cheng, Yuze Sun, Yue Yu et al. · 0 citations