Követés
Yujun Yan
Yujun Yan
Assistant Professor @ Dartmouth; PhD from U Michigan
E-mail megerősítve itt: dartmouth.edu - Kezdőlap
Cím
Hivatkozott rá
Hivatkozott rá
Év
Beyond Homophily in Graph Neural Networks: Current Limitations and Effective Designs
J Zhu, Y Yan, L Zhao, M Heimann, L Akoglu, D Koutra
(NeurIPS 2020) Advances in Neural Information Processing Systems 33, 2020
11502020
Two sides of the same coin: Heterophily and oversmoothing in graph convolutional neural networks
Y Yan, M Hashemi, K Swersky, Y Yang, D Koutra
2022 IEEE International Conference on Data Mining (ICDM), 1287-1292, 2022
3362022
Improving Semi-supervised Federated Learning by Reducing the Gradient Diversity of Models
Z Zhang, Z Yao, Y Yang, Y Yan, JE Gonzalez, MW Mahoney
(BigData 2021) IEEE International Conference on Big Data (regular paper), 2020
132*2020
GroupINN: Grouping-based Interpretable Neural Network for Classification of Limited, Noisy Brain Data
Y Yan, J Zhu, M Duda, E Solarz, C Sripada, D Koutra
(KDD 2019, ORAL) Proceedings of the 25th ACM SIGKDD International Conference …, 2019
1062019
Augmentations in Graph Contrastive Learning: Current Methodological Flaws & Towards Better Practices
P Trivedi, ES Lubana, Y Yan, Y Yang, D Koutra
(WWW 2022) The Web Conference 2022, 2021
572021
Neural execution engines: Learning to execute subroutines
Y Yan, K Swersky, D Koutra, P Ranganathan, M Hashemi
(NeurIPS 2020) Advances in Neural Information Processing Systems 33, 2020
502020
Heterophily and Graph Neural Networks: Past, Present and Future
J Zhu, Y Yan, M Heimann, L Zhao, L Akoglu, D Koutra
Data Engineering, 10, 2023
172023
Interpretable Sparsification of Brain Graphs: Better Practices and Effective Designs for Graph Neural Networks
G Li, M Duda, X Zhang, D Koutra, Y Yan
(KDD 2023) Proceedings of the 29th ACM SIGKDD International Conference on …, 2023
122023
EvoluNet: Advancing Dynamic Non-IID Transfer Learning on Graphs
H Wang, Y Mao, Y Yan, Y Yang, J Sun, K Choi, B Veeramani, A Hu, ...
(ICML 2024) Forty-first International Conference on Machine Learning, 2024
11*2024
Size Generalizability of Graph Neural Networks on Biological Data: Insights and Practices from the Spectral Perspective
Y Yan, G Li, D Koutra
arXiv preprint arXiv:2305.15611, 2023
82023
Medformer: A Multi-Granularity Patching Transformer for Medical Time-Series Classification
Y Wang, N Huang, T Li, Y Yan, X Zhang
NeurIPS 2024, 2024
72024
Fast flow-based random walk with restart in a multi-query setting
Y Yan, M Heimann, D Jin, D Koutra
(SDM 2018) Proceedings of the 2018 SIAM International Conference on Data …, 2018
42018
Enhancing Size Generalization in Graph Neural Networks through Disentangled Representation Learning
Z Huang, Q Yang, D Zhou, Y Yan
(ICML 2024) Forty-first International Conference on Machine Learning, 2024
22024
A Dataset-Dispersion Perspective on Reconstruction Versus Recognition in Single-View 3D Reconstruction Networks
Y Zhou, Y Shen, Y Yan, C Feng, Y Yang
(3DV 2021) The 9th International Conference on 3D Vision, 2021
22021
Sharpness-diversity tradeoff: improving flat ensembles with SharpBalance
H Lu, X Liu, Y Zhou, Q Li, K Keutzer, MW Mahoney, Y Yan, H Yang, ...
NeurIPS 2024, 2024
12024
Towards Agentic AI for Science: Hypothesis Generation, Comprehension, Quantification, and Validation
D Koutra, L Huang, A Kulkarni, T Prioleau, BWY Soh, Q Wu, Y Yan, ...
ICLR 2025 Workshop Proposals, 2025
2025
How to evaluate your medical time series classification?
Y Wang, T Li, Y Yan, W Song, X Zhang
arXiv preprint arXiv:2410.03057, 2024
2024
GraphScale: A Framework to Enable Machine Learning over Billion-node Graphs
V Gupta, X Chen, R Huang, F Meng, J Chen, Y Yan
(CIKM 2024) 33rd ACM International Conference on Information and Knowledge …, 2024
2024
Evaluating the Structural Awareness of Large Language Models on Graphs: Can They Count Substructures?
L Nguyen, Y Yan
KDD Undergraduate Consortium, 2024
2024
Exploring Consistency in Graph Representations: from Graph Kernels to Graph Neural Networks.
X Liu, Y Cai, Q Yang, Y Yan
NeurIPS 2024, 2024
2024
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Cikkek 1–20