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Zhengquan Luo

4 accepted papers

2026

GeoDM: Geometry-aware Distribution Matching for Dataset Distillation

ICML 2026poster

Dataset distillation aims to synthesize a compact subset of the original data, enabling models trained on it to achieve performance comparable to those trained on the original large dataset. Existing distribution-matching methods are confined to Euclidean spaces, making them only capture linear stru…

Cited by 0SourceScholar
2026

KGOT: Unified Knowledge Graph and Optimal Transport Pseudo-Labeling for Molecule-Protein Interaction Prediction

ICLR 2026poster

Predicting molecule-protein interactions (MPIs) is a fundamental task in computational biology, with crucial applications in drug discovery and molecular function annotation. However, existing MPI models face two major challenges. First, the scarcity of labeled molecule-protein pairs significantly l…

Cited by 0SourceScholar
2022

Disentangled Federated Learning for Tackling Attributes Skew via Invariant Aggregation and Diversity Transferring

ICML 2022spotlight

Attributes skew hinders the current federated learning (FL) frameworks from consistent optimization directions among the clients, which inevitably leads to performance reduction and unstable convergence. The core problems lie in that: 1) Domain-specific attributes, which are non-causal and only loca…