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Pan Li 0005
Person information

- unicode name: 李攀
- affiliation: Purdue University, Department of Computer Science, West Lafayette, IN, USA
- affiliation (former): Stanford University, CA, USA
- affiliation (former): University of Illinois at Urbana-Champaign, Champaign, IL, USA
- affiliation (former): Tsinghua University, China
Other persons with the same name
- Pan Li — disambiguation page
- Pan Li 0001
— Case Western Reserve University, Department of Electrical Engineering and Computer Science, Cleveland, OH, USA (and 2 more)
- Pan Li 0002 — University of Leeds, School of Earth and Environment, UK
- Pan Li 0003 — Henan University of Technology, College of Information Science and Engineering, China
- Pan Li 0004 — University of Washington, Seattle, WA, USA
- Pan Li 0006
— Queen Mary University of London, School of Electronic Engineering and Computer Science, UK (and 1 more)
- Pan Li 0007 — Baidu Talent Intelligence Center, Baidu Inc., China (and 1 more)
- Pan Li 0008
— New York University, NY, USA
- Pan Li 0009 — Johns Hopkins University, Baltimore, USA
- Pan Li 0010 — Tianjin University, Tianjin City, China
- Pan Li 0011 — China University of Mining and Technology, Xuzhou, China
- Pan Li 0012 — Wuhan University, Wuhan, China (and 1 more)
- Pan Li 0013
— Liaoning Technical University, Huludao, China
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2020 – today
- 2023
- [j5]Haoteng Yin, Muhan Zhang, Jianguo Wang, Pan Li:
SUREL+: Moving from Walks to Sets for Scalable Subgraph-based Graph Representation Learning. Proc. VLDB Endow. 16(11): 2939-2948 (2023) - [c40]Susheel Suresh
, Mayank Shrivastava
, Arko Mukherjee
, Jennifer Neville
, Pan Li
:
Expressive and Efficient Representation Learning for Ranking Links in Temporal Graphs. WWW 2023: 567-577 - [i46]Haoteng Yin, Muhan Zhang, Jianguo Wang, Pan Li:
SUREL+: Moving from Walks to Sets for Scalable Subgraph-based Graph Representation Learning. CoRR abs/2303.03379 (2023) - [i45]Xiyuan Wang, Pan Li, Muhan Zhang:
Improving Graph Neural Networks on Multi-node Tasks with Labeling Tricks. CoRR abs/2304.10074 (2023) - [i44]Amit Roy, Juan Shu, Jia Li, Carl Yang, Olivier Elshocht, Jeroen Smeets, Pan Li:
GAD-NR: Graph Anomaly Detection via Neighborhood Reconstruction. CoRR abs/2306.01951 (2023) - [i43]Eli Chien, Wei-Ning Chen, Chao Pan, Pan Li, Ayfer Özgür, Olgica Milenkovic:
Differentially Private Decoupled Graph Convolutions for Multigranular Topology Protection. CoRR abs/2307.06422 (2023) - [i42]Yinan Huang, William Lu, Joshua Robinson, Yu Yang, Muhan Zhang, Stefanie Jegelka, Pan Li:
On the Stability of Expressive Positional Encodings for Graph Neural Networks. CoRR abs/2310.02579 (2023) - 2022
- [j4]Haoteng Yin, Muhan Zhang, Yanbang Wang, Jianguo Wang, Pan Li:
Algorithm and System Co-design for Efficient Subgraph-based Graph Representation Learning. Proc. VLDB Endow. 15(11): 2788-2796 (2022) - [j3]Yubo Shao
, Kaikai Zhao, Zhiwen Cao, Zhehao Peng, Xingang Peng, Pan Li, Yijie Wang, Jianzhu Ma
:
MobilePrune: Neural Network Compression via ℓ0 Sparse Group Lasso on the Mobile System. Sensors 22(11): 4081 (2022) - [c39]Hejie Cui, Zijie Lu, Pan Li, Carl Yang:
On Positional and Structural Node Features for Graph Neural Networks on Non-attributed Graphs. CIKM 2022: 3898-3902 - [c38]Nan Wu, Hang Yang, Yuan Xie, Pan Li, Cong Hao:
High-level synthesis performance prediction using GNNs: benchmarking, modeling, and advancing. DAC 2022: 49-54 - [c37]Mingyue Tang, Pan Li, Carl Yang:
Graph Auto-Encoder via Neighborhood Wasserstein Reconstruction. ICLR 2022 - [c36]Haorui Wang, Haoteng Yin, Muhan Zhang, Pan Li:
Equivariant and Stable Positional Encoding for More Powerful Graph Neural Networks. ICLR 2022 - [c35]Yanchao Tan, Chengjun Kong, Leisheng Yu, Pan Li, Chaochao Chen, Xiaolin Zheng, Vicki Hertzberg, Carl Yang:
4SDrug: Symptom-based Set-to-set Small and Safe Drug Recommendation. KDD 2022: 3970-3980 - [c34]Haoyu Wang, Nan Wu, Hang Yang, Cong Hao, Pan Li:
Unsupervised Learning for Combinatorial Optimization with Principled Objective Relaxation. NeurIPS 2022 - [c33]Rongzhe Wei, Haoteng Yin, Junteng Jia, Austin R. Benson, Pan Li:
Understanding Non-linearity in Graph Neural Networks from the Bayesian-Inference Perspective. NeurIPS 2022 - [c32]Yunyu Liu, Jianzhu Ma, Pan Li:
Neural Predicting Higher-order Patterns in Temporal Networks. WWW 2022: 1340-1351 - [i41]Nan Wu, Hang Yang, Yuan Xie, Pan Li, Cong Hao:
High-Level Synthesis Performance Prediction using GNNs: Benchmarking, Modeling, and Advancing. CoRR abs/2201.06848 (2022) - [i40]Mingyue Tang, Carl Yang, Pan Li:
Graph Auto-Encoder Via Neighborhood Wasserstein Reconstruction. CoRR abs/2202.09025 (2022) - [i39]Haoteng Yin, Muhan Zhang, Yanbang Wang, Jianguo Wang, Pan Li:
Algorithm and System Co-design for Efficient Subgraph-based Graph Representation Learning. CoRR abs/2202.13538 (2022) - [i38]Haorui Wang, Haoteng Yin, Muhan Zhang, Pan Li:
Equivariant and Stable Positional Encoding for More Powerful Graph Neural Networks. CoRR abs/2203.00199 (2022) - [i37]Yang Hu, Xiyuan Wang, Zhouchen Lin, Pan Li, Muhan Zhang:
Two-Dimensional Weisfeiler-Lehman Graph Neural Networks for Link Prediction. CoRR abs/2206.09567 (2022) - [i36]Haoyu Wang, Nan Wu, Hang Yang, Cong Hao, Pan Li:
Unsupervised Learning for Combinatorial Optimization with Principled Objective Relaxation. CoRR abs/2207.05984 (2022) - [i35]Rongzhe Wei, Haoteng Yin, Junteng Jia, Austin R. Benson, Pan Li:
Understanding Non-linearity in Graph Neural Networks from the Bayesian-Inference Perspective. CoRR abs/2207.11311 (2022) - [i34]Yuhong Li, Jiajie Li, Cong Han, Pan Li, Jinjun Xiong
, Deming Chen:
Extensible Proxy for Efficient NAS. CoRR abs/2210.09459 (2022) - [i33]Susheel Suresh, Danny Godbout, Arko Mukherjee, Mayank Shrivastava, Jennifer Neville, Pan Li:
Federated Graph Representation Learning using Self-Supervision. CoRR abs/2210.15120 (2022) - [i32]Shuang Wu, Mingxuan Zhang, Yuantong Li, Carl Yang, Pan Li:
Graph Federated Learning with Hidden Representation Sharing. CoRR abs/2212.12158 (2022) - 2021
- [c31]Lixiang Li, Yao Chen
, Zacharie Zirnheld, Pan Li, Cong Hao:
MELOPPR: Software/Hardware Co-design for Memory-efficient Low-latency Personalized PageRank. DAC 2021: 601-606 - [c30]Eli Chien
, Jianhao Peng, Pan Li, Olgica Milenkovic:
Adaptive Universal Generalized PageRank Graph Neural Network. ICLR 2021 - [c29]Yanbang Wang, Yen-Yu Chang, Yunyu Liu, Jure Leskovec, Pan Li:
Inductive Representation Learning in Temporal Networks via Causal Anonymous Walks. ICLR 2021 - [c28]Eli Chien, Pan Li, Olgica Milenkovic:
Landing Probabilities of Random Walks for Seed-Set Expansion in Hypergraphs. ITW 2021: 1-6 - [c27]Susheel Suresh, Vinith Budde, Jennifer Neville, Pan Li, Jianzhu Ma:
Breaking the Limit of Graph Neural Networks by Improving the Assortativity of Graphs with Local Mixing Patterns. KDD 2021: 1541-1551 - [c26]Andrew Z. Wang, Rex Ying, Pan Li, Nikhil Rao, Karthik Subbian, Jure Leskovec
:
Bipartite Dynamic Representations for Abuse Detection. KDD 2021: 3638-3648 - [c25]Muhan Zhang, Pan Li, Yinglong Xia, Kai Wang, Long Jin:
Labeling Trick: A Theory of Using Graph Neural Networks for Multi-Node Representation Learning. NeurIPS 2021: 9061-9073 - [c24]Muhan Zhang, Pan Li:
Nested Graph Neural Networks. NeurIPS 2021: 15734-15747 - [c23]Susheel Suresh, Pan Li, Cong Hao, Jennifer Neville:
Adversarial Graph Augmentation to Improve Graph Contrastive Learning. NeurIPS 2021: 15920-15933 - [c22]Yuhong Li, Cong Hao, Pan Li, Jinjun Xiong, Deming Chen:
Generic Neural Architecture Search via Regression. NeurIPS 2021: 20476-20490 - [c21]Yen-Yu Chang, Pan Li, Rok Sosic, M. H. Afifi, Marco Schweighauser, Jure Leskovec
:
F-FADE: Frequency Factorization for Anomaly Detection in Edge Streams. WSDM 2021: 589-597 - [c20]Yanbang Wang, Pan Li, Chongyang Bai, Jure Leskovec
:
TEDIC: Neural Modeling of Behavioral Patterns in Dynamic Social Interaction Networks. WWW 2021: 693-705 - [c19]Meng Liu, Nate Veldt, Haoyu Song, Pan Li, David F. Gleich:
Strongly Local Hypergraph Diffusions for Clustering and Semi-supervised Learning. WWW 2021: 2092-2103 - [c18]Siddharth Bhatia, Arjit Jain, Pan Li, Ritesh Kumar, Bryan Hooi:
MStream: Fast Anomaly Detection in Multi-Aspect Streams. WWW 2021: 3371-3382 - [i31]Yanbang Wang, Yen-Yu Chang, Yunyu Liu, Jure Leskovec, Pan Li:
Inductive Representation Learning in Temporal Networks via Causal Anonymous Walks. CoRR abs/2101.05974 (2021) - [i30]Lixiang Li, Yao Chen, Zacharie Zirnheld, Pan Li, Cong Hao:
MELOPPR: Software/Hardware Co-design for Memory-efficient Low-latency Personalized PageRank. CoRR abs/2104.09616 (2021) - [i29]Changlin Wan, Muhan Zhang, Wei Hao, Sha Cao, Pan Li, Chi Zhang:
Principled Hyperedge Prediction with Structural Spectral Features and Neural Networks. CoRR abs/2106.04292 (2021) - [i28]Susheel Suresh, Pan Li, Cong Hao, Jennifer Neville:
Adversarial Graph Augmentation to Improve Graph Contrastive Learning. CoRR abs/2106.05819 (2021) - [i27]Yunyu Liu, Jianzhu Ma, Pan Li:
Neural Higher-order Pattern (Motif) Prediction in Temporal Networks. CoRR abs/2106.06039 (2021) - [i26]Susheel Suresh, Vinith Budde, Jennifer Neville, Pan Li, Jianzhu Ma:
Breaking the Limit of Graph Neural Networks by Improving the Assortativity of Graphs with Local Mixing Patterns. CoRR abs/2106.06586 (2021) - [i25]Hejie Cui, Zijie Lu, Pan Li, Carl Yang:
On Positional and Structural Node Features for Graph Neural Networks on Non-attributed Graphs. CoRR abs/2107.01495 (2021) - [i24]Yuhong Li, Cong Hao, Pan Li, Jinjun Xiong, Deming Chen:
Generic Neural Architecture Search via Regression. CoRR abs/2108.01899 (2021) - [i23]Nan Wu, Huake He, Yuan Xie, Pan Li, Cong Hao:
Program-to-Circuit: Exploiting GNNs for Program Representation and Circuit Translation. CoRR abs/2109.06265 (2021) - [i22]Muhan Zhang, Pan Li:
Nested Graph Neural Networks. CoRR abs/2110.13197 (2021) - 2020
- [j2]Pan Li, Niao He, Olgica Milenkovic:
Quadratic Decomposable Submodular Function Minimization: Theory and Practice. J. Mach. Learn. Res. 21: 106:1-106:49 (2020) - [j1]Pan Li
, Gregory J. Puleo
, Olgica Milenkovic:
Motif and Hypergraph Correlation Clustering. IEEE Trans. Inf. Theory 66(5): 3065-3078 (2020) - [c17]Pan Li, Yanbang Wang, Hongwei Wang, Jure Leskovec:
Distance Encoding: Design Provably More Powerful Neural Networks for Graph Representation Learning. NeurIPS 2020 - [c16]Tailin Wu, Hongyu Ren, Pan Li, Jure Leskovec:
Graph Information Bottleneck. NeurIPS 2020 - [i21]Eli Chien, Jianhao Peng, Pan Li, Olgica Milenkovic:
Joint Adaptive Feature Smoothing and Topology Extraction via Generalized PageRank GNNs. CoRR abs/2006.07988 (2020) - [i20]Pan Li, Yanbang Wang, Hongwei Wang, Jure Leskovec:
Distance Encoding - Design Provably More Powerful Graph Neural Networks for Structural Representation Learning. CoRR abs/2009.00142 (2020) - [i19]Siddharth Bhatia, Arjit Jain, Pan Li, Ritesh Kumar, Bryan Hooi:
MStream: Fast Streaming Multi-Aspect Group Anomaly Detection. CoRR abs/2009.08451 (2020) - [i18]Tailin Wu, Hongyu Ren, Pan Li, Jure Leskovec:
Graph Information Bottleneck. CoRR abs/2010.12811 (2020) - [i17]Muhan Zhang, Pan Li, Yinglong Xia, Kai Wang, Long Jin:
Revisiting Graph Neural Networks for Link Prediction. CoRR abs/2010.16103 (2020) - [i16]Yen-Yu Chang, Pan Li, Rok Sosic, M. H. Afifi, Marco Schweighauser, Jure Leskovec:
F-FADE: Frequency Factorization for Anomaly Detection in Edge Streams. CoRR abs/2011.04723 (2020) - [i15]Meng Liu, Nate Veldt, Haoyu Song, Pan Li, David F. Gleich:
Strongly Local Hypergraph Diffusions for Clustering and Semi-supervised Learning. CoRR abs/2011.07752 (2020) - [i14]Haoteng Yin, Yanbang Wang, Pan Li:
Revisit graph neural networks and distance encoding in a practical view. CoRR abs/2011.12228 (2020)
2010 – 2019
- 2019
- [b1]Pan Li:
Learning on graphs with high-order relations: spectral methods, optimization and applications. University of Illinois Urbana-Champaign, USA, 2019 - [c15]I (Eli) Chien, Huozhi Zhou, Pan Li:
HS2: Active learning over hypergraphs with pointwise and pairwise queries. AISTATS 2019: 2466-2475 - [c14]Pan Li, Zhen Qin, Xuanhui Wang, Donald Metzler:
Combining Decision Trees and Neural Networks for Learning-to-Rank in Personal Search. KDD 2019: 2032-2040 - [c13]Carl Yang, Peiye Zhuang, Wenhan Shi, Alan Luu, Pan Li:
Conditional Structure Generation through Graph Variational Generative Adversarial Nets. NeurIPS 2019: 1338-1349 - [c12]Pan Li, I (Eli) Chien, Olgica Milenkovic:
Optimizing Generalized PageRank Methods for Seed-Expansion Community Detection. NeurIPS 2019: 11705-11716 - [i13]Pan Li, Niao He, Olgica Milenkovic:
Quadratic Decomposable Submodular Function Minimization: Theory and Practice. CoRR abs/1902.10132 (2019) - [i12]Pan Li, I (Eli) Chien, Olgica Milenkovic:
Optimizing Generalized PageRank Methods for Seed-Expansion Community Detection. CoRR abs/1905.10881 (2019) - [i11]Carl Yang, Yichen Feng, Pan Li, Yu Shi, Jiawei Han:
Meta-Graph Based HIN Spectral Embedding: Methods, Analyses, and Insights. CoRR abs/1910.00004 (2019) - [i10]Eli Chien, Pan Li, Olgica Milenkovic:
Landing Probabilities of Random Walks for Seed-Set Expansion in Hypergraphs. CoRR abs/1910.09040 (2019) - 2018
- [c11]Carl Yang, Yichen Feng, Pan Li, Yu Shi, Jiawei Han:
Meta-Graph Based HIN Spectral Embedding: Methods, Analyses, and Insights. ICDM 2018: 657-666 - [c10]Pan Li, Olgica Milenkovic:
Submodular Hypergraphs: p-Laplacians, Cheeger Inequalities and Spectral Clustering. ICML 2018: 3020-3029 - [c9]Pan Li, Niao He, Olgica Milenkovic:
Quadratic Decomposable Submodular Function Minimization. NeurIPS 2018: 1062-1072 - [c8]Pan Li, Olgica Milenkovic:
Revisiting Decomposable Submodular Function Minimization with Incidence Relations. NeurIPS 2018: 2242-2252 - [i9]Pan Li, Olgica Milenkovic:
Submodular Hypergraphs: p-Laplacians, Cheeger Inequalities and Spectral Clustering. CoRR abs/1803.03833 (2018) - [i8]Pan Li, Olgica Milenkovic:
Revisiting Decomposable Submodular Function Minimization with Incidence Relations. CoRR abs/1803.03851 (2018) - [i7]Pan Li, Niao He, Olgica Milenkovic:
Quadratic Decomposable Submodular Function Minimization. CoRR abs/1806.09842 (2018) - [i6]Pan Li, Gregory J. Puleo, Olgica Milenkovic:
Motif and Hypergraph Correlation Clustering. CoRR abs/1811.02089 (2018) - [i5]I (Eli) Chien, Huozhi Zhou, Pan Li:
HS2: Active Learning over Hypergraphs. CoRR abs/1811.11549 (2018) - 2017
- [c7]Pan Li, Arya Mazumdar, Olgica Milenkovic:
Efficient Rank Aggregation via Lehmer Codes. AISTATS 2017: 450-459 - [c6]Pan Li, Hoang Dau
, Gregory J. Puleo, Olgica Milenkovic:
Motif clustering and overlapping clustering for social network analysis. INFOCOM 2017: 1-9 - [c5]Pan Li, Olgica Milenkovic:
Multiclass MinMax rank aggregation. ISIT 2017: 3000-3004 - [c4]Pan Li, Olgica Milenkovic:
Inhomogeneous Hypergraph Clustering with Applications. NIPS 2017: 2308-2318 - [i4]Pan Li, Olgica Milenkovic:
Multiclass MinMax Rank Aggregation. CoRR abs/1701.08305 (2017) - [i3]Pan Li, Arya Mazumdar, Olgica Milenkovic:
Efficient Rank Aggregation via Lehmer Codes. CoRR abs/1701.09083 (2017) - [i2]Pan Li, Olgica Milenkovic:
Inhomogeneous Hypergraph Clustering with Applications. CoRR abs/1709.01249 (2017) - 2016
- [i1]Pan Li, Son Hoang Dau, Gregory J. Puleo, Olgica Milenkovic:
Motif Clustering and Overlapping Clustering for Social Network Analysis. CoRR abs/1612.00895 (2016) - 2015
- [c3]Pan Li, Wei Dai, Huadong Meng, Xiqin Wang:
On recovery of sparse signals with block structures. ISIT 2015: 546-550 - 2014
- [c2]Pan Li, Huadong Meng, Xiqin Wang:
A Feature Selection Method Based on the Sparse Multi-Class SVM for Fingerprinting Localization. VTC Fall 2014: 1-5 - 2013
- [c1]Chundi Zheng, Gang Li, Pan Li, Xiqin Wang:
Hyperparameter-free DOA estimation under power constraints. ICASSP 2013: 3991-3995
Coauthor Index

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last updated on 2023-11-29 20:26 CET by the dblp team
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