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Je Min Hwangbo

Korea Advanced Institute of Science and Technology · Engineering

About the Lab

Professor Je Min Hwangbo's research lab specializes in robotics, with a focus on legged locomotion, reinforcement learning for dynamic control, and real-world deployment of agile robotic systems. The lab develops advanced quadruped robots like ANYmal, emphasizing torque-controlled, compliant actuation for robustness in dynamic and unstructured environments. Key research directions include contact-rich simulation, exteroceptive perception for terrain adaptation, and efficient learning-based control policies that enable autonomous operation in real-world scenarios.

legged robotsreinforcement learningcontact dynamicsquadruped locomotionrobotic simulation

Research Overview

Papers
62
Total Citations
5,732
Papers (5y)
37
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
37total
2022
2023
2024
2025
2026
Citations per year (5y)
1,369total
20222023202420252026

Selected Papers

15
1
Article|1,404 citations·2019
Learning agile and dynamic motor skills for legged robots
Jemin Hwangbo, Joonho Lee, Alexey Dosovitskiy, C. Dario Bellicoso, Vassilios Tsounis, Vladlen Koltun, Marco Hutter
SJR Q1Science RoboticsOA

Legged robots pose one of the greatest challenges in robotics. Dynamic and agile maneuvers of animals cannot be imitated by existing methods that are crafted by humans. A compelling alternative is reinforcement learning, which requires minimal craftsmanship and promotes the natural evolution of a control policy. However, so far, reinforcement learning research for legged robots is mainly limited to simulation, and only few and comparably simple examples have been deployed on real systems. The pr

Biomedical EngineeringEngineering
2
Article|847 citations·2016
ANYmal - a highly mobile and dynamic quadrupedal robot
Marco Hutter, Christian Gehring, Dominic Jud, Andreas Lauber, C. Dario Bellicoso, Vassilios Tsounis, Jemin Hwangbo, Karen Bodie, Péter Fankhauser, Michael Bloesch, Remo Diethelm, S. Bachmann

This paper introduces ANYmal, a quadrupedal robot that features outstanding mobility and dynamic motion capability. Thanks to novel, compliant joint modules with integrated electronics, the 30 kg, 0.5 m tall robotic dog is torque controllable and very robust against impulsive loads during running or jumping. The presented machine was designed with a focus on outdoor suitability, simple maintenance, and user-friendly handling to enable future operation in real world scenarios. Performance tests w

Biomedical EngineeringEngineering
3
Article|786 citations·2020
Learning quadrupedal locomotion over challenging terrain
Joonho Lee, Jemin Hwangbo, Lorenz Wellhausen, Vladlen Koltun, Marco Hutter
Repository for Publications and Research Data (ETH Zurich)OA

ISSN:2470-9476

Biomedical EngineeringEngineering
4
Article|733 citations·2022
Learning robust perceptive locomotion for quadrupedal robots in the wild
Takahiro Miki, Joonho Lee, Jemin Hwangbo, Lorenz Wellhausen, Vladlen Koltun, Marco Hutter
SJR Q1Science RoboticsOA

Legged robots that can operate autonomously in remote and hazardous environments will greatly increase opportunities for exploration into underexplored areas. Exteroceptive perception is crucial for fast and energy-efficient locomotion: Perceiving the terrain before making contact with it enables planning and adaptation of the gait ahead of time to maintain speed and stability. However, using exteroceptive perception robustly for locomotion has remained a grand challenge in robotics. Snow, veget

Biomedical EngineeringEngineering
5
Article|267 citations·2016
ANYmal - A Highly Mobile and Dynamic Quadrupedal Robot
Marco Hutter, Christian Gehring, Dominic Jud, Andreas Lauber, C. Dario Bellicoso, Vassilios Tsounis, Jemin Hwangbo, Karen Bodie, Péter Fankhauser, Michael Bloesch, Remo Diethelm, S. Bachmann
Repository for Publications and Research Data (ETH Zurich)OA

This paper introduces ANYmal, a quadrupedal robot that features outstanding mobility and dynamic motion capability. Thanks to novel, compliant joint modules with integrated electronics, the 30 kg, 0.5m tall robotic dog is torque controllable and very robust against impulsive loads during running or jumping. The presented machine was designed with a focus on outdoor suitability, simple maintenance, and user-friendly handling to enable future operation in real world scenarios. Performance tests wi

Biomedical EngineeringEngineering
6
Article|231 citations·2018
Per-Contact Iteration Method for Solving Contact Dynamics
Jemin Hwangbo, Joonho Lee, Marco Hutter
SJR Q1IEEE Robotics and Automation LettersOA

This letter introduces a new iterative method for contact dynamics problems. The proposed method is based on an efficient bisection method which iterates over each contact. We compared our approach to two existing ones for the same model and found that it is about twice as fast as the existing ones. We also introduce four different robotic simulation experiments and compare the proposed method to the most common contact solver, the projected Gauss-Seidel (PGS) method. We show that, while both me

Control and Systems EngineeringEngineering
7
Article|180 citations·2022
Concurrent Training of a Control Policy and a State Estimator for Dynamic and Robust Legged Locomotion
Gwanghyeon Ji, Juhyeok Mun, Hyeongjun Kim, Jemin Hwangbo
SJR Q1IEEE Robotics and Automation LettersOA

In this letter, we propose a locomotion training framework where a control policy and a state estimator are trained concurrently. The framework consists of a policy network which outputs the desired joint positions and a state estimation network which outputs estimates of the robot’s states such as the base linear velocity, foot height, and contact probability. We exploit a fast simulation environment to train the networks and the trained networks are transferred to the real robot. The trained p

Biomedical EngineeringEngineering
8
Article|162 citations·2016
Perception-less terrain adaptation through whole body control and hierarchical optimization
C. Dario Bellicoso, Christian Gehring, Jemin Hwangbo, Péter Fankhauser, Marco Hutter
OA

This paper presents a control approach based on a whole body control framework combined with hierarchical optimization. Locomotion is formulated as multiple tasks (e.g. maintaining balance or tracking a desired motion of one of the limbs) which are solved in a prioritized way using QP solvers. It is shown how complex locomotion behaviors can purely emerge from robot-specific inequality tasks (i.e. torque or reaching limits) together with the optimization of balance and system manipulability. Wit

Biomedical EngineeringEngineering
9
Article|152 citations·2017
Dynamic locomotion and whole-body control for quadrupedal robots
C. Dario Bellicoso, Fabian Jenelten, Péter Fankhauser, Christian Gehring, Jemin Hwangbo, Marco Hutter
OA

This paper presents a framework which allows a quadrupedal robot to execute dynamic gaits including trot, pace and dynamic lateral walk, as well as a smooth transition between them. Our method relies on an online ZMP based motion planner which continuously updates the reference motion trajectory as a function of the contact schedule and the state of the robot. The planner is coupled with a hierarchical whole-body controller which optimizes the whole-body motion and contact forces by solving a ca

Biomedical EngineeringEngineering
10
Article|147 citations·2023
Learning quadrupedal locomotion on deformable terrain
Suyoung Choi, Gwanghyeon Ji, Jeongsoo Park, Hyeongjun Kim, Juhyeok Mun, Jeong Hyun Lee, Jemin Hwangbo
SJR Q1Science Robotics

Simulation-based reinforcement learning approaches are leading the next innovations in legged robot control. However, the resulting control policies are still not applicable on soft and deformable terrains, especially at high speed. The primary reason is that reinforcement learning approaches, in general, are not effective beyond the data distribution: The agent cannot perform well in environments that it has not experienced. To this end, we introduce a versatile and computationally efficient gr

Biomedical EngineeringEngineering
11
Article|116 citations·2016
Practice Makes Perfect: An Optimization-Based Approach to Controlling Agile Motions for a Quadruped Robot
Christian Gehring, Mark A. Hoepflinger, Roland Siegwart, Stelian Coros, Marco Hutter, C. Dario Bellicoso, Huub Heijnen, Remo Diethelm, Michael Bloesch, Péter Fankhauser, Jemin Hwangbo
SJR Q1IEEE Robotics & Automation Magazine

This article approaches the problem of controlling quadrupedal running and jumping motions with a parameterized, model-based, state-feedback controller. Inspired by the motor learning principles observed in nature, our method automatically fine tunes the parameters of our controller by repeatedly executing slight variations of the same motion task. This learn-through-practice process is performed in simulation to best exploit computational resources and to prevent the robot from damaging itself.

Biomedical EngineeringEngineering
12
Article|79 citations·2019
Dynamic Locomotion on Slippery Ground
Fabian Jenelten, Jemin Hwangbo, Fabian Tresoldi, C. Dario Bellicoso, Marco Hutter
SJR Q1IEEE Robotics and Automation LettersOA

Dynamic locomotion on unstructured and uneven terrain is a challenging task in legged robotics. Especially when it comes to slippery ground conditions, common state estimation and control algorithms suffer from the usual no-slip assumption. In fact, there has been only little research on this subject. This paper addresses the problem of slipping by treating slip detection and recovery tasks separately. Our contribution to the former is a probabilistic slip estimator based on aHidden Markov Model

Biomedical EngineeringEngineering
13
Article|55 citations·2016
Probabilistic foot contact estimation by fusing information from dynamics and differential/forward kinematics
Jemin Hwangbo, C. Dario Bellicoso, Péter Fankhauser, Marco Hutter

Legged robots require a robust and fast responding feet contact detection strategy. Common force sensors are often too heavy and can be easily damaged during impacts with the terrain. Therefore, it is desirable to detect a contact without a force sensor. This paper introduces a probabilistic contact detection strategy which considers full dynamics and differential/forward kinematics to maximize the use of available information for contact estimation. This papers shows that such strategy is much

Biomedical EngineeringEngineering
14
Preprint|21 citations·2018
Cable-Driven Actuation for Highly Dynamic Robotic Systems
Jemin Hwangbo, Vassilios Tsounis, Hendrik Kolvenbach, Marco Hutter
OA

This paper presents the design and experimental evaluations of an articulated robotic limb called Capler-Leg. The key element of Capler-Leg is its single-stage cable-pulley transmission combined with a high-gap radius motor. Our cable-pulley system is designed to be as light-weight as possible and to additionally serve as the primary cooling element, thus significantly increasing the power density and efficiency of the overall system. The total weight of active elements on the leg, i.e. the stat

Biomedical EngineeringEngineering
15
Article|14 citations·2016
Probabilistic Foot Contact Estimation by Fusing Information from Dynamics and Differential/Forward Kinematics
Jemin Hwangbo, C. Dario Bellicoso, Péter Fankhauser, Marco Huttery
Repository for Publications and Research Data (ETH Zurich)OA

Legged robots require a robust and fast responding feet contact detection strategy. Common force sensors are often too heavy and can be easily damaged during impacts with the terrain. Therefore, it is desirable to detect a contact without a force sensor. This paper introduces a probabilistic contact detection strategy which considers full dynamics and differential/forward kinematics to maximize the use of available information for contact estimation. This papers shows that such strategy is much

Biomedical EngineeringEngineering

Research Areas

Biomedical EngineeringControl and Systems EngineeringComputer Vision and Pattern RecognitionArtificial IntelligenceMechanical EngineeringHuman-Computer Interaction

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