Ananye Agarwal
6 Papers
Ananye Agarwal is an academic researcher. The author has contributed to research in topics: Computer science & Engineering. The author has an hindex of 1, co-authored 4 publications.
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Papers
Legged Locomotion in Challenging Terrains using Egocentric Vision
Ananye Agarwal,Ashish Kumar,Jitendra Malik,Deepak Pathak +3 more
- 14 Nov 2022
TL;DR: This paper presents the first end-to-end locomotion system capable of traversing stairs, curbs, stepping stones, and gaps on a medium-sized quadruped robot using a single front-facing depth camera.
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Extreme Parkour with Legged Robots
Xuxin Cheng,Kexin Shi,Ananye Agarwal,Deepak Pathak +3 more
TL;DR: This paper shows how a single neural net policy operating directly from a camera image, trained in simulation with large-scale RL, can overcome imprecise sensing and actuation to output highly precise control behavior end-to-end.
Coupling Vision and Proprioception for Navigation of Legged Robots
Zipeng Fu,Ashish Kumar,Ananye Agarwal,Haozhi Qi,Jitendra Malik,Deepak Pathak +5 more
- 01 Jun 2022
TL;DR: This work exploits the complementary strengths of vision and pro-prioception to develop a point-goal navigation system for legged robots, called VP-Nav, which shows superior performance compared to wheeled robot baselines, and ablation studies which have disjoint high-level planning and low-level control.
Coupling Vision and Proprioception for Navigation of Legged Robots
Zipeng Fu,Ashish Kumar,Ananye Agarwal,Haozhi Qi,Jitendra Malik,Deepak Pathak +5 more
- 01 Jun 2022
TL;DR: This work exploits the complementary strengths of vision and proprioception to develop a point-goal navigation system for legged robots, called VP-Nav, which shows superior performance compared to wheeled robot baselines, and ablation studies which have disjoint high-level planning and low-level control.
LEAP Hand: Low-Cost, Efficient, and Anthropomorphic Hand for Robot Learning
TL;DR: Leap Hand as discussed by the authors is a low-cost dexterous and anthropomorphic hand for machine learning research, which is capable of consistently exerting large torques over long durations of time.