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Cheng Li 0003
Person information
- affiliation: Deakin University, Center for Pattern Recognition and Data Analytics (PRaDA), Geelong, Australia
Other persons with the same name
- Cheng Li — disambiguation page
- Cheng Li 0001 — University of Science and Technology of China (USTC), China (and 1 more)
- Cheng Li 0002 — Hong Kong University of Science and Technology, Department of Electronic and Computer Engineering, Clear Water Bay, Hong Kong
- Cheng Li 0004 — Shanghai Jiao Tong University, Department of Electronic Engineering, Institute of Wireless Communications Technology, China
- Cheng Li 0005 — Memorial University of Newfoundland, Department of Electrical and Computer Engineering, St. John's, NL, Canada
- Cheng Li 0006 — College of William and Mary, Department of Computer Science, Williamsburg, VA, USA
- Cheng Li 0007 — Beihang University, School of Instrumentation Science and Opto-electronics Engineering, Beijing, China
- Cheng Li 0008 — Chinese Academy of Sciences, Shenzhen Institutes of Advanced Technology, Paul C. Lauterbur Research Center for Biomedical Imaging, China
- Cheng Li 0009 — SenseTime Research, Beijing, China (and 1 more)
- Cheng Li 0010 — University of California, Davis, CA, USA (and 1 more)
- Cheng Li 0011 — University of Rochester, Department of Electrical and Computer Engineering, NY, USA (and 1 more)
- Cheng Li 0012 — Google, Mountain View, CA, USA (and 1 more)
- Cheng Li 0013 — University of Kent, UK
- Cheng Li 0014 — University of Illinois Urbana-Champaign, IL, USA
- Cheng Li 0015 — Harbin Institute of Technology, Department of Control Science and Engineering, China (and 1 more)
- Cheng Li 0016 — Peking University, Center For Biolnformatics, Beijing, China (and 3 more)
- Cheng Li 0017 — Xidian University, Institute of Intelligent Control and Image Engineering, Xi'an, China
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2020 – today
- 2021
- [c20]Ang Yang, Cheng Li, Santu Rana, Sunil Gupta, Svetha Venkatesh:
Sparse Spectrum Gaussian Process for Bayesian Optimization. PAKDD (2) 2021: 257-268 - 2020
- [j4]Anil Ramachandran, Sunil Gupta, Santu Rana, Cheng Li, Svetha Venkatesh:
Incorporating expert prior in Bayesian optimisation via space warping. Knowl. Based Syst. 195: 105663 (2020) - [c19]Alistair Shilton, Sunil Gupta, Santu Rana, Pratibha Vellanki, Cheng Li, Svetha Venkatesh, Laurence Park, Alessandra Sutti, David Rubin, Thomas Dorin, Alireza Vahid, Murray Height, Teo Slezak:
Accelerated Bayesian Optimisation through Weight-Prior Tuning. AISTATS 2020: 635-645 - [c18]Cheng Li, Santu Rana, Andrew Gill, Dang Nguyen, Sunil Gupta, Svetha Venkatesh:
Factor Screening using Bayesian Active Learning and Gaussian Process Meta-Modelling. ICPR 2020: 3288-3295 - [i8]Cheng Li, Sunil Gupta, Santu Rana, Vu Nguyen, Antonio Robles-Kelly, Svetha Venkatesh:
Incorporating Expert Prior Knowledge into Experimental Design via Posterior Sampling. CoRR abs/2002.11256 (2020) - [i7]Anil Ramachandran, Sunil Gupta, Santu Rana, Cheng Li, Svetha Venkatesh:
Incorporating Expert Prior in Bayesian Optimisation via Space Warping. CoRR abs/2003.12250 (2020) - [i6]Jingfeng Zhang, Cheng Li, Antonio Robles-Kelly, Mohan S. Kankanhalli:
Hierarchically Fair Federated Learning. CoRR abs/2004.10386 (2020)
2010 – 2019
- 2019
- [j3]Vu Nguyen, Sunil Gupta, Santu Rana, Cheng Li, Svetha Venkatesh:
Filtering Bayesian optimization approach in weakly specified search space. Knowl. Inf. Syst. 60(1): 385-413 (2019) - [c17]Vu Nguyen, Sunil Gupta, Santu Rana, My T. Thai, Cheng Li, Svetha Venkatesh:
Efficient Bayesian Optimization for Uncertainty Reduction Over Perceived Optima Locations. ICDM 2019: 1270-1275 - [c16]Deepthi Praveenlal Kuttichira, Sunil Gupta, Cheng Li, Santu Rana, Svetha Venkatesh:
Explaining Black-Box Models Using Interpretable Surrogates. PRICAI (1) 2019: 3-15 - [i5]Ang Yang, Cheng Li, Santu Rana, Sunil Gupta, Svetha Venkatesh:
Sparse Spectrum Gaussian Process for Bayesian Optimisation. CoRR abs/1906.08898 (2019) - [i4]Cheng Li, Santu Rana, Sunil Gupta, Vu Nguyen, Svetha Venkatesh, Alessandra Sutti, David Rubin de Celis Leal, Teo Slezak, Murray Height, Mazher Mohammed, Ian Gibson:
Accelerating Experimental Design by Incorporating Experimenter Hunches. CoRR abs/1907.09065 (2019) - 2018
- [c15]Ang Yang, Cheng Li, Santu Rana, Sunil Gupta, Svetha Venkatesh:
Sparse Approximation for Gaussian Process with Derivative Observations. Australasian Conference on Artificial Intelligence 2018: 507-518 - [c14]Cheng Li, Santu Rana, Sunil Gupta, Vu Nguyen, Svetha Venkatesh, Alessandra Sutti, David Rubin de Celis Leal, Teo Slezak, Murray Height, Mazher Mohammed, Ian Gibson:
Accelerating Experimental Design by Incorporating Experimenter Hunches. ICDM 2018: 257-266 - [c13]Ang Yang, Cheng Li, Santu Rana, Sunil Gupta, Svetha Venkatesh:
Efficient Bayesian Optimisation Using Derivative Meta-model. PRICAI 2018: 256-264 - [i3]Alistair Shilton, Sunil Gupta, Santu Rana, Pratibha Vellanki, Cheng Li, Svetha Venkatesh, Laurence Park, Alessandra Sutti, David Rubin, Thomas Dorin, Alireza Vahid, Murray Height, Teo Slezak:
Kernel Pre-Training in Feature Space via m-Kernels. CoRR abs/1805.07852 (2018) - [i2]Vu Nguyen, Sunil Gupta, Santu Rana, Cheng Li, Svetha Venkatesh:
Practical Batch Bayesian Optimization for Less Expensive Functions. CoRR abs/1811.01466 (2018) - 2017
- [c12]Vu Nguyen, Sunil Gupta, Santu Rana, Cheng Li, Svetha Venkatesh:
Regret for Expected Improvement over the Best-Observed Value and Stopping Condition. ACML 2017: 279-294 - [c11]Vu Nguyen, Sunil Gupta, Santu Rana, Cheng Li, Svetha Venkatesh:
Bayesian Optimization in Weakly Specified Search Space. ICDM 2017: 347-356 - [c10]Santu Rana, Cheng Li, Sunil Gupta, Vu Nguyen, Svetha Venkatesh:
High Dimensional Bayesian Optimization with Elastic Gaussian Process. ICML 2017: 2883-2891 - [c9]Cheng Li, Sunil Gupta, Santu Rana, Vu Nguyen, Svetha Venkatesh, Alistair Shilton:
High Dimensional Bayesian Optimization using Dropout. IJCAI 2017: 2096-2102 - [i1]Vu Nguyen, Santu Rana, Sunil Gupta, Cheng Li, Svetha Venkatesh:
Budgeted Batch Bayesian Optimization With Unknown Batch Sizes. CoRR abs/1703.04842 (2017) - 2016
- [j2]Cheng Li, Santu Rana, Dinh Q. Phung, Svetha Venkatesh:
Data clustering using side information dependent Chinese restaurant processes. Knowl. Inf. Syst. 47(2): 463-488 (2016) - [j1]Cheng Li, Santu Rana, Dinh Q. Phung, Svetha Venkatesh:
Hierarchical Bayesian nonparametric models for knowledge discovery from electronic medical records. Knowl. Based Syst. 99: 168-182 (2016) - [c8]Vu Nguyen, Sunil Gupta, Santu Rana, Cheng Li, Svetha Venkatesh:
A Bayesian Nonparametric Approach for Multi-label Classification. ACML 2016: 254-269 - [c7]Vu Nguyen, Santu Rana, Sunil Kumar Gupta, Cheng Li, Svetha Venkatesh:
Budgeted Batch Bayesian Optimization. ICDM 2016: 1107-1112 - [c6]Cheng Li, Sunil Gupta, Santu Rana, Vu Nguyen, Svetha Venkatesh, David Ashely, Trish Livingston:
Multiple adverse effects prediction in longitudinal cancer treatment. ICPR 2016: 3156-3161 - [c5]Iman Kamkar, Sunil Gupta, Cheng Li, Dinh Q. Phung, Svetha Venkatesh:
Stable clinical prediction using graph support vector machines. ICPR 2016: 3332-3337 - [c4]Cheng Li, Sunil Gupta, Santu Rana, Wei Luo, Svetha Venkatesh, David Ashely, Dinh Q. Phung:
Toxicity Prediction in Cancer Using Multiple Instance Learning in a Multi-task Framework. PAKDD (1) 2016: 152-164 - 2015
- [c3]Cheng Li, Santu Rana, Dinh Q. Phung, Svetha Venkatesh:
Small-Variance Asymptotics for Bayesian Nonparametric Models with Constraints. PAKDD (2) 2015: 92-105 - 2014
- [c2]Cheng Li, Santu Rana, Dinh Q. Phung, Svetha Venkatesh:
Regularizing Topic Discovery in EMRs with Side Information by Using Hierarchical Bayesian Models. ICPR 2014: 1307-1312 - 2013
- [c1]Cheng Li, Dinh Q. Phung, Santu Rana, Svetha Venkatesh:
Exploiting side information in distance dependent Chinese restaurant processes for data clustering. ICME 2013: 1-6
Coauthor Index
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