Alert button
Picture for Scott Delp

Scott Delp

Alert button

Wild2Avatar: Rendering Humans Behind Occlusions

Add code
Bookmark button
Alert button
Dec 31, 2023
Tiange Xiang, Adam Sun, Scott Delp, Kazuki Kozuka, Li Fei-Fei, Ehsan Adeli

Viaarxiv icon

Diffusion Inertial Poser: Human Motion Reconstruction from Arbitrary Sparse IMU Configurations

Add code
Bookmark button
Alert button
Aug 31, 2023
Tom Van Wouwe, Seunghwan Lee, Antoine Falisse, Scott Delp, C. Karen Liu

Figure 1 for Diffusion Inertial Poser: Human Motion Reconstruction from Arbitrary Sparse IMU Configurations
Figure 2 for Diffusion Inertial Poser: Human Motion Reconstruction from Arbitrary Sparse IMU Configurations
Figure 3 for Diffusion Inertial Poser: Human Motion Reconstruction from Arbitrary Sparse IMU Configurations
Figure 4 for Diffusion Inertial Poser: Human Motion Reconstruction from Arbitrary Sparse IMU Configurations
Viaarxiv icon

Medical device surveillance with electronic health records

Add code
Bookmark button
Alert button
Apr 03, 2019
Alison Callahan, Jason A Fries, Christopher Ré, James I Huddleston III, Nicholas J Giori, Scott Delp, Nigam H Shah

Figure 1 for Medical device surveillance with electronic health records
Figure 2 for Medical device surveillance with electronic health records
Figure 3 for Medical device surveillance with electronic health records
Figure 4 for Medical device surveillance with electronic health records
Viaarxiv icon

Artificial Intelligence for Prosthetics - challenge solutions

Add code
Bookmark button
Alert button
Feb 07, 2019
Łukasz Kidziński, Carmichael Ong, Sharada Prasanna Mohanty, Jennifer Hicks, Sean F. Carroll, Bo Zhou, Hongsheng Zeng, Fan Wang, Rongzhong Lian, Hao Tian, Wojciech Jaśkowski, Garrett Andersen, Odd Rune Lykkebø, Nihat Engin Toklu, Pranav Shyam, Rupesh Kumar Srivastava, Sergey Kolesnikov, Oleksii Hrinchuk, Anton Pechenko, Mattias Ljungström, Zhen Wang, Xu Hu, Zehong Hu, Minghui Qiu, Jun Huang, Aleksei Shpilman, Ivan Sosin, Oleg Svidchenko, Aleksandra Malysheva, Daniel Kudenko, Lance Rane, Aditya Bhatt, Zhengfei Wang, Penghui Qi, Zeyang Yu, Peng Peng, Quan Yuan, Wenxin Li, Yunsheng Tian, Ruihan Yang, Pingchuan Ma, Shauharda Khadka, Somdeb Majumdar, Zach Dwiel, Yinyin Liu, Evren Tumer, Jeremy Watson, Marcel Salathé, Sergey Levine, Scott Delp

Figure 1 for Artificial Intelligence for Prosthetics - challenge solutions
Figure 2 for Artificial Intelligence for Prosthetics - challenge solutions
Figure 3 for Artificial Intelligence for Prosthetics - challenge solutions
Figure 4 for Artificial Intelligence for Prosthetics - challenge solutions
Viaarxiv icon

Learning to Run challenge solutions: Adapting reinforcement learning methods for neuromusculoskeletal environments

Add code
Bookmark button
Alert button
Apr 02, 2018
Łukasz Kidziński, Sharada Prasanna Mohanty, Carmichael Ong, Zhewei Huang, Shuchang Zhou, Anton Pechenko, Adam Stelmaszczyk, Piotr Jarosik, Mikhail Pavlov, Sergey Kolesnikov, Sergey Plis, Zhibo Chen, Zhizheng Zhang, Jiale Chen, Jun Shi, Zhuobin Zheng, Chun Yuan, Zhihui Lin, Henryk Michalewski, Piotr Miłoś, Błażej Osiński, Andrew Melnik, Malte Schilling, Helge Ritter, Sean Carroll, Jennifer Hicks, Sergey Levine, Marcel Salathé, Scott Delp

Figure 1 for Learning to Run challenge solutions: Adapting reinforcement learning methods for neuromusculoskeletal environments
Figure 2 for Learning to Run challenge solutions: Adapting reinforcement learning methods for neuromusculoskeletal environments
Figure 3 for Learning to Run challenge solutions: Adapting reinforcement learning methods for neuromusculoskeletal environments
Figure 4 for Learning to Run challenge solutions: Adapting reinforcement learning methods for neuromusculoskeletal environments
Viaarxiv icon

ShortFuse: Biomedical Time Series Representations in the Presence of Structured Information

Add code
Bookmark button
Alert button
May 16, 2017
Madalina Fiterau, Suvrat Bhooshan, Jason Fries, Charles Bournhonesque, Jennifer Hicks, Eni Halilaj, Christopher Ré, Scott Delp

Figure 1 for ShortFuse: Biomedical Time Series Representations in the Presence of Structured Information
Figure 2 for ShortFuse: Biomedical Time Series Representations in the Presence of Structured Information
Figure 3 for ShortFuse: Biomedical Time Series Representations in the Presence of Structured Information
Figure 4 for ShortFuse: Biomedical Time Series Representations in the Presence of Structured Information
Viaarxiv icon