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Jonathan Ho
Jonathan Ho
Unknown affiliation
Verified email at berkeley.edu - Homepage
Title
Cited by
Cited by
Year
Generative adversarial imitation learning
J Ho, S Ermon
Advances in Neural Information Processing Systems, 4565-4573, 2016
25212016
Denoising diffusion probabilistic models
J Ho, A Jain, P Abbeel
Advances in Neural Information Processing Systems 33, 6840-6851, 2020
23412020
Evolution strategies as a scalable alternative to reinforcement learning
T Salimans, J Ho, X Chen, S Sidor, I Sutskever
arXiv preprint arXiv:1703.03864, 2017
14132017
Photorealistic text-to-image diffusion models with deep language understanding
C Saharia, W Chan, S Saxena, L Li, J Whang, EL Denton, K Ghasemipour, ...
Advances in Neural Information Processing Systems 35, 36479-36494, 2022
9332022
Motion planning with sequential convex optimization and convex collision checking
J Schulman, Y Duan, J Ho, A Lee, I Awwal, H Bradlow, J Pan, S Patil, ...
The International Journal of Robotics Research 33 (9), 1251-1270, 2014
6852014
One-shot imitation learning
Y Duan, M Andrychowicz, B Stadie, J Ho, J Schneider, I Sutskever, ...
Advances in Neural Information Processing Systems, 1087-1098, 2017
6602017
Finding locally optimal, collision-free trajectories with sequential convex optimization.
J Schulman, J Ho, AX Lee, I Awwal, H Bradlow, P Abbeel
Robotics: science and systems 9 (1), 1-10, 2013
5222013
Classifier-free diffusion guidance
J Ho, T Salimans
arXiv preprint arXiv:2207.12598, 2022
4632022
Image super-resolution via iterative refinement
C Saharia, J Ho, W Chan, T Salimans, DJ Fleet, M Norouzi
IEEE Transactions on Pattern Analysis and Machine Intelligence, 2022
3702022
Meta learning shared hierarchies
K Frans, J Ho, X Chen, P Abbeel, J Schulman
arXiv preprint arXiv:1710.09767, 2017
3592017
Flow++: Improving flow-based generative models with variational dequantization and architecture design
J Ho, X Chen, A Srinivas, Y Duan, P Abbeel
International Conference on Machine Learning, 2019
3512019
Axial attention in multidimensional transformers
J Ho, N Kalchbrenner, D Weissenborn, T Salimans
arXiv preprint arXiv:1912.12180, 2019
3242019
Palette: Image-to-image diffusion models
C Saharia, W Chan, H Chang, C Lee, J Ho, T Salimans, D Fleet, ...
ACM SIGGRAPH 2022 Conference Proceedings, 1-10, 2022
2972022
Cascaded Diffusion Models for High Fidelity Image Generation
J Ho, C Saharia, W Chan, DJ Fleet, M Norouzi, T Salimans
arXiv preprint arXiv:2106.15282, 2021
2852021
Variational diffusion models
D Kingma, T Salimans, B Poole, J Ho
Advances in neural information processing systems 34, 21696-21707, 2021
2812021
Video diffusion models
J Ho, T Salimans, A Gritsenko, W Chan, M Norouzi, DJ Fleet
arXiv preprint arXiv:2204.03458, 2022
2332022
Evolved policy gradients
R Houthooft, Y Chen, P Isola, B Stadie, F Wolski, J Ho, P Abbeel
Advances in Neural Information Processing Systems, 5405-5414, 2018
2252018
Tracking deformable objects with point clouds
J Schulman, A Lee, J Ho, P Abbeel
2013 IEEE International Conference on Robotics and Automation, 1130-1137, 2013
1872013
Structured denoising diffusion models in discrete state-spaces
J Austin, DD Johnson, J Ho, D Tarlow, R van den Berg
Advances in Neural Information Processing Systems 34, 17981-17993, 2021
1852021
Progressive distillation for fast sampling of diffusion models
T Salimans, J Ho
arXiv preprint arXiv:2202.00512, 2022
1642022
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