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Jianguo Chen

2 accepted papers

2025

Pruning for GNNs: Lower Complexity with Comparable Expressiveness

ICML 2025poster

In recent years, the pursuit of higher expressive power in graph neural networks (GNNs) has often led to more complex aggregation mechanisms and deeper architectures. To address these issues, we have identified redundant structures in GNNs, and by pruning them, we propose Pruned MP-GNNs, K-Path GNNs…

Cited by 0SourcePDFScholar
2024

Communication-Oriented Automatic Assessment System for Accented Spoken Chinese in Read-Aloud Tasks

ICASSP 2024accepted

The development of speech signal processing and deep learning has brought in many intelligent language learning tools. However, non-native Chinese learners (second-language or L2 learners) are often discouraged by language assessment applications on the market because of their accent. By contrast to…

Cited by 0SourceScholar