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Ke Sun 0013
Person information
- unicode name: 孙科
- affiliation: University of Alberta, Department of Mathematical and Statistical Sciences, Edmonton, Canada
- affiliation: Peking University, Center for Data Science, Beijing, China
Other persons with the same name
- Ke Sun — disambiguation page
- Ke Sun 0001 — CSIRO, Data61, Sydney, Australia (and 6 more)
- Ke Sun 0002 — Carnegie Mellon University, Pittsburgh, PA, USA
- Ke Sun 0003 — Tsinghua University, Beijing, China
- Ke Sun 0004 — Guangxi Normal University, Guilin, China
- Ke Sun 0005 — Baidu, Beijing, China
- Ke Sun 0006 — Shenzhen University, College of Computer Science and Software Engineering, China (and 1 more)
- Ke Sun 0007 — Harbin Institute of Technology, China
- Ke Sun 0008 — University of Pennsylvania, GRASP Lab, Philadelphia, PA, USA
- Ke Sun 0009 — University of Science and Technology of China, CAS Key Laboratory of Technology in Geo-Spatial Information Processing and Application System, Hefei, China
- Ke Sun 0010 — Wuhan University, China
- Ke Sun 0011 — Dalian University of Technology, School of Software, China
- Ke Sun 0012 — University of California San Diego, Department of Computer Science and Engineering, San Diego, CA, USA (and 1 more)
- Ke Sun 0014 — University of Sheffield, Department of Automatic Control and Systems Engineering, Sheffield, UK (and 1 more)
- Ke Sun 0015 — Shenyang Normal University, Software College, Shenyang , China (and 1 more)
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2020 – today
- 2023
- [c7]Ke Sun, Bing Yu, Zhouchen Lin, Zhanxing Zhu:
Patch-level Neighborhood Interpolation: A General and Effective Graph-based Regularization Strategy. ACML 2023: 1276-1291 - [c6]Ke Sun, Yingnan Zhao, Shangling Jui, Linglong Kong:
Exploring the Training Robustness of Distributional Reinforcement Learning Against Noisy State Observations. ECML/PKDD (5) 2023: 36-51 - [i16]Vahid Partovi Nia, Guojun Zhang, Ivan Kobyzev, Michael R. Metel, Xinlin Li, Ke Sun, Sobhan Hemati, Masoud Asgharian, Linglong Kong, Wulong Liu, Boxing Chen:
Mathematical Challenges in Deep Learning. CoRR abs/2303.15464 (2023) - 2022
- [c5]Yi Liu, Ke Sun, Bei Jiang, Linglong Kong:
Identification, Amplification and Measurement: A bridge to Gaussian Differential Privacy. NeurIPS 2022 - [i15]Ke Sun, Yingnan Zhao, Yi Liu, Bei Jiang, Linglong Kong:
Distributional Reinforcement Learning via Sinkhorn Iterations. CoRR abs/2202.00769 (2022) - [i14]Ke Sun, Bei Jiang, Linglong Kong:
How Does Value Distribution in Distributional Reinforcement Learning Help Optimization? CoRR abs/2209.14513 (2022) - [i13]Yi Liu, Ke Sun, Linglong Kong, Bei Jiang:
Identification, Amplification and Measurement: A bridge to Gaussian Differential Privacy. CoRR abs/2210.09269 (2022) - 2021
- [c4]Ke Sun, Zhanxing Zhu, Zhouchen Lin:
AdaGCN: Adaboosting Graph Convolutional Networks into Deep Models. ICLR 2021 - [c3]Ke Sun, Yafei Wang, Yi Liu, Yingnan Zhao, Bo Pan, Shangling Jui, Bei Jiang, Linglong Kong:
Damped Anderson Mixing for Deep Reinforcement Learning: Acceleration, Convergence, and Stabilization. NeurIPS 2021: 3732-3743 - [i12]Ke Sun, Yi Liu, Yingnan Zhao, Hengshuai Yao, Shangling Jui, Linglong Kong:
Exploring the Robustness of Distributional Reinforcement Learning against Noisy State Observations. CoRR abs/2109.08776 (2021) - [i11]Hongming Zhang, Ke Sun, Bo Xu, Linglong Kong, Martin Müller:
A Simple Unified Framework for Anomaly Detection in Deep Reinforcement Learning. CoRR abs/2109.09889 (2021) - [i10]Ke Sun, Yingnan Zhao, Yi Liu, Enze Shi, Yafei Wang, Aref Sadeghi, Xiaodong Yan, Bei Jiang, Linglong Kong:
Towards Understanding Distributional Reinforcement Learning: Regularization, Optimization, Acceleration and Sinkhorn Algorithm. CoRR abs/2110.03155 (2021) - [i9]Ke Sun, Yafei Wang, Yi Liu, Yingnan Zhao, Bo Pan, Shangling Jui, Bei Jiang, Linglong Kong:
Damped Anderson Mixing for Deep Reinforcement Learning: Acceleration, Convergence, and Stabilization. CoRR abs/2110.08896 (2021) - [i8]Ke Sun, Mingjie Li, Zhouchen Lin:
Pareto Adversarial Robustness: Balancing Spatial Robustness and Sensitivity-based Robustness. CoRR abs/2111.01996 (2021) - 2020
- [c2]Ke Sun, Zhouchen Lin, Zhanxing Zhu:
Multi-Stage Self-Supervised Learning for Graph Convolutional Networks on Graphs with Few Labeled Nodes. AAAI 2020: 5892-5899 - [i7]Bing Yu, Ke Sun, He Wang, Zhouchen Lin, Zhanxing Zhu:
Classify and Generate Reciprocally: Simultaneous Positive-Unlabelled Learning and Conditional Generation with Extra Data. CoRR abs/2006.07841 (2020)
2010 – 2019
- 2019
- [c1]Ke Sun, Zhouchen Lin, Hantao Guo, Zhanxing Zhu:
Virtual Adversarial Training on Graph Convolutional Networks in Node Classification. PRCV (1) 2019: 431-443 - [i6]Ke Sun, Zhanxing Zhu, Zhouchen Lin:
Towards Understanding Adversarial Examples Systematically: Exploring Data Size, Task and Model Factors. CoRR abs/1902.11019 (2019) - [i5]Ke Sun, Zhanxing Zhu, Zhouchen Lin:
Enhancing the Robustness of Deep Neural Networks by Boundary Conditional GAN. CoRR abs/1902.11029 (2019) - [i4]Ke Sun, Zhanxing Zhu, Zhouchen Lin:
Multi-Stage Self-Supervised Learning for Graph Convolutional Networks. CoRR abs/1902.11038 (2019) - [i3]Ke Sun, Hantao Guo, Zhanxing Zhu, Zhouchen Lin:
Virtual Adversarial Training on Graph Convolutional Networks in Node Classification. CoRR abs/1902.11045 (2019) - [i2]Ke Sun, Zhouchen Lin, Zhanxing Zhu:
AdaGCN: Adaboosting Graph Convolutional Networks into Deep Models. CoRR abs/1908.05081 (2019) - [i1]Ke Sun, Bing Yu, Zhouchen Lin, Zhanxing Zhu:
Patch-level Neighborhood Interpolation: A General and Effective Graph-based Regularization Strategy. CoRR abs/1911.09307 (2019)
Coauthor Index
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last updated on 2024-11-04 20:44 CET by the dblp team
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