Benjamin Beiter

dblp:328/7450 · also Benjamin C. Beiter · DBLP profile ↗
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2ranked-venue papers
0as first author
2since 2021 · last 2025
0000-0003-2149-7741ORCID · verified

Domains — the database's venue-derived domains; a paper can count in several

Artificial intelligence and machine learning · 2 · 2 since 2021Systems, architecture and hardware · 2 · 2 since 2021

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Artificial intelligence
2 papers
Legged, aerial and field robots · 52% Motion planning and robot control · 48%
Human-computer interaction and pervasive computing
1 paper
Human-robot interaction · 100%

Topics — the 7 heaviest of 7, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Robotics › Motion planning and robot control
robot control
1.722025
Angular Divergent Component of Motion: A Step Towards Planning Spatial DCM Objectives for Legged Robots · ICRA 2025
A Novel Telelocomotion Framework with CoM Estimation for Scalable Locomotion on Humanoid Robots · ICRA 2025
Robotics › Legged, aerial and field robots › walking control
divergent component of motion
0.912025
Angular Divergent Component of Motion: A Step Towards Planning Spatial DCM Objectives for Legged Robots · ICRA 2025
Robotics › Legged, aerial and field robots › legged robots
humanoid locomotion
0.912025
A Novel Telelocomotion Framework with CoM Estimation for Scalable Locomotion on Humanoid Robots · ICRA 2025
Robotics › Legged, aerial and field robots
legged robots
0.912025
Angular Divergent Component of Motion: A Step Towards Planning Spatial DCM Objectives for Legged Robots · ICRA 2025
Robotics › Motion planning and robot control › motion planning › legged locomotion planning
locomotion planning
0.912025
Angular Divergent Component of Motion: A Step Towards Planning Spatial DCM Objectives for Legged Robots · ICRA 2025
Robotics › Legged, aerial and field robots
humanoid robot
0.312025
Angular Divergent Component of Motion: A Step Towards Planning Spatial DCM Objectives for Legged Robots · ICRA 2025
Human-robot interaction
teleoperation
0.312025
A Novel Telelocomotion Framework with CoM Estimation for Scalable Locomotion on Humanoid Robots · ICRA 2025

Methods — techniques the papers use, named apart from their topics

reduced-order single rigid body model · 1.7model predictive control · 1.7center of mass estimation · 1.7single rigid body model · 0.9linear inverted pendulum model · 0.9flywheel model · 0.9
YearPublicationVenuePosition
2025 A Novel Telelocomotion Framework with CoM Estimation for Scalable Locomotion on Humanoid Robots
abstract
Teleoperated humanoid robot systems have made substantial advancements in recent years, offering a physical avatar that harnesses human skills and decision-making while safeguarding users from hazardous environments. However, current telelocomotion interfaces often fail to accurately represent the robot's environment, limiting the user's ability to effectively navigate the robot through unstructured terrain. This paper presents an initial telelocomotion framework that integrates the ForceBot locomotion interface with the small-sized humanoid robot, HECTOR V2. The framework utilizes ForceBot to simulate walking motion and estimate the user's Center of Mass (CoM) trajectory, which serves as a tracking reference for the robot. On the robot side, a model predictive control (MPC) approach, based on a reduced-order single rigid body model, is employed to track the user's scaled trajectory. We present experimental results on ForceBot's CoM estimation and the robot's tracking performance, demonstrating the feasibility of this approach.
An-Chi He, Junheng Li, Jungsoo Park, Omar Kolt, Benjamin Beiter, Alexander Leonessa, Quan Nguyen 0004, Kaveh Akbari Hamed
ICRA5
2025 Angular Divergent Component of Motion: A Step Towards Planning Spatial DCM Objectives for Legged Robots
abstract
In this work, the Divergent Component of Motion (DCM) method is expanded to include angular coordinates for the first time. This work introduces the idea of spatial DCM, which adds an angular objective to the existing linear DCM theory. To incorporate the angular component into the framework, a discussion is provided on extending beyond the linear motion of the Linear Inverted Pendulum model (LIPM) towards the Single Rigid Body model (SRBM) for DCM. This work presents the angular DCM theory for a 1D rotation, simplifying the SRBM rotational dynamics to a flywheel to satisfy necessary linearity constraints. The 1D angular DCM is mathematically identical to the linear DCM and defined as an angle which is ahead of the current body rotation based on the angular velocity. This theory is combined into a 3D linear and 1D angular DCM framework, with discussion on the feasibility of simultaneously achieving both sets of objectives. A simulation in MATLAB and hardware results on the TORO humanoid are presented to validate the framework's performance.
Connor W. Herron, Robert Schuller, Benjamin Beiter, Robert J. Griffin, Alexander Leonessa, Johannes Englsberger
ICRA3