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Sylvain Bertrand

11 accepted papers

2024

Efficient Terrain Map Using Planar Regions for Footstep Planning on Humanoid Robots

ICRA 2024poster

Humanoid robots possess the ability to perform complex tasks in challenging environments. However, they require a model of the surroundings in a representation that is sufficient enough for downstream tasks such as footstep planning. The maps generated by existing mapping algorithms are either spars…

Cited by 6SourceScholar
2024

Efficient, Dynamic Locomotion through Step Placement with Straight Legs and Rolling Contacts

ICRA 2024poster

For humans, fast, efficient walking over flat ground represents the vast majority of locomotion that an individual experiences on a daily basis, and for an effective, real-world humanoid robot the same will likely be the case. In this work, we propose a locomotion controller for efficient walking ov…

Cited by 1SourceScholar
2024

Physically Consistent Online Inertial Adaptation for Humanoid Loco-manipulation

IROS 2024poster

The ability to accomplish manipulation and locomotion tasks in the presence of significant time-varying external loads is a remarkable skill of humans that has yet to be replicated convincingly by humanoid robots. Such an ability will be a key requirement in the environments we envision deploying ou…

Cited by 3SourceScholar
2021

GPU-Accelerated Rapid Planar Region Extraction for Dynamic Behaviors on Legged Robots

IROS 2021poster

Legged robots require fast and accurate representation of their surrounding terrain to achieve behaviors such as running, push recovery, continuous walking, backflips, while also utilizing on-board computational resources efficiently. The desired tasks can be achieved efficiently by representing the…

Cited by 13SourceScholar
2020

Detecting Usable Planar Regions for Legged Robot Locomotion

IROS 2020poster

Awareness of the environment is essential for mobile robots. Perception for legged robots requires high levels of reliability and accuracy in order to walk stably in the types of complex, cluttered environments we are interested in. In this paper, we present a usable environmental perception algorit…

Cited by 27SourceScholar
2020

Non-Linear Trajectory Optimization for Large Step-Ups: Application to the Humanoid Robot Atlas

IROS 2020poster

Performing large step-ups is a challenging task for a humanoid robot. It requires the robot to perform motions at the limit of its reachable workspace while straining to move its body upon the obstacle. This paper presents a non-linear trajectory optimization method for generating step-up motions. W…

Cited by 23SourceScholar
2019

Balancing Using Vertical Center-of-Mass Motion: A 2-D Analysis From Model to Robot

RA-L 2019

Balancing strategies for humanoid robots often include the center-of-pressure control (“ankle” strategies), change of body's angular momentum (e.g., “hip” strategies), and taking a step. In this letter, we propose using vertical center-of-mass motion as an additional input for balance control. First

Cited by 11SourceScholar
2018

Inclusion of Angular Momentum During Planning for Capture Point Based Walking

ICRA 2018poster

When walking at high speeds, the swing legs of robots produce a non-negligible angular momentum rate. To accommodate this, we provide a reference trajectory generator for bipedal walking that incorporates predicted centroidal angular momentum at the planning stage. This can be done efficiently as th…

Cited by 30SourceScholar
2018

Straight-Leg Walking Through Underconstrained Whole-Body Control

ICRA 2018poster

We present an approach for achieving a natural, efficient gait on bipedal robots using straightened legs and toe-off. Our algorithm avoids complex height planning by allowing a whole-body controller to determine the straightest possible leg configuration at run-time. The controller solutions are bia…

Cited by 52SourceScholar
2017

Walking stabilization using step timing and location adjustment on the humanoid robot, Atlas

IROS 2017poster

While humans are highly capable of recovering from external disturbances and uncertainties that result in large tracking errors, humanoid robots have yet to reliably mimic this level of robustness. Essential to this is the ability to combine traditional “ankle strategy” balancing with step timing an…

Cited by 127SourceScholar
2015

Using parallel stiffness to achieve improved locomotive efficiency with the Sandia STEPPR robot

ICRA 2015poster

In this paper we introduce STEPPR (Sandia Transmission-Efficient Prototype Promoting Research), a bipedal robot designed to explore efficient bipedal walking. The initial iteration of this robot achieves efficient motions through powerful electromagnetic actuators and highly back-drivable synthetic…

Cited by 0SourceScholar