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Jonah Siekmann

4 papers here

Matching runs newest-first, so older work may not be attached to this profile yet.

author position
  • first author3
  • middle author1

Across the 4 of 4 papers where every author was matched, so the position is known.

fields
  • cs.RO4

identity via Semantic Scholar / OpenAlex

activity
20202022
most citedSim-to-Real Learning of All Common Bipedal Gaits via Periodic Reward Composition

1 citations · 1 across the 2 of their papers we have counts for

collaborators
Showing cs.ROShow all

4 papers · 1 filter

cs.RO2022

Sim-to-Real Learning of Footstep-Constrained Bipedal Dynamic Walking

Helei Duan, Ashish Malik, Jeremy Dao +5

Recently, work on reinforcement learning (RL) for bipedal robots has successfully learned controllers for a variety of dynamic gaits with robust sim-to-real demonstrations. In orde…

cs.RO2021

Blind Bipedal Stair Traversal via Sim-to-Real Reinforcement Learning

Jonah Siekmann, Kevin Green, John Warila +2

Accurate and precise terrain estimation is a difficult problem for robot locomotion in real-world environments. Thus, it is useful to have systems that do not depend on accurate es…

cs.RO2020★ 1 cited

Sim-to-Real Learning of All Common Bipedal Gaits via Periodic Reward Composition

Jonah Siekmann, Yesh Godse, Alan Fern +1

We study the problem of realizing the full spectrum of bipedal locomotion on a real robot with sim-to-real reinforcement learning (RL). A key challenge of learning legged locomotio…

cs.RO2020

Learning Memory-Based Control for Human-Scale Bipedal Locomotion

Jonah Siekmann, Srikar Valluri, Jeremy Dao +4

Controlling a non-statically stable biped is a difficult problem largely due to the complex hybrid dynamics involved. Recent work has demonstrated the effectiveness of reinforcemen…

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