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Yidan Cui

1 accepted papers

2026

Revisiting Sparsity Constraint Under High-Rank Property in Partial Multi-Label Learning

CVPR 2026

Partial Multi-Label Learning (PML) extends the multi-label learning paradigm to scenarios where each sample is associated with a candidate label set containing both ground-truth labels and noisy labels. Existing PML methods commonly rely on two assumptions: sparsity of the noise label matrix and low

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