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Wolfgang Merkt

18 accepted papers

2024

Gaitor: Learning a Unified Representation Across Gaits for Real-World Quadruped Locomotion

CoRL 2024poster

The current state-of-the-art in quadruped locomotion is able to produce a variety of complex motions. These methods either rely on switching between a discrete set of skills or learn a distribution across gaits using complex black-box models. Alternatively, we present Gaitor, which learns a disentan…

Cited by 3SourceScholar
2024

Momentum-Aware Trajectory Optimisation using Full-Centroidal Dynamics and Implicit Inverse Kinematics

IROS 2024poster

The current state-of-the-art gradient-based optimisation frameworks are able to produce impressive dynamic manoeuvres such as linear and rotational jumps. However, these methods, which optimise over the full rigid-body dynamics of the robot, often require precise foothold locations apriori, while re…

Cited by 3SourceScholar
2024

R-LGP: A Reachability-guided Logic-geometric Programming Framework for Optimal Task and Motion Planning on Mobile Manipulators

ICRA 2024poster

This paper presents an optimization-based solution to task and motion planning (TAMP) on mobile manipulators. Logic-geometric programming (LGP) has shown promising capabilities for optimally dealing with hybrid TAMP problems that involve abstract and geometric constraints. However, LGP does not scal…

Cited by 2SourceScholar
2022

Next Steps: Learning a Disentangled Gait Representation for Versatile Quadruped Locomotion

ICRA 2022poster

Quadruped locomotion is rapidly maturing to a degree where robots now routinely traverse a variety of unstructured terrains. However, while gaits can be varied typically by selecting from a range of pre-computed styles, current planners are unable to vary key gait parameters continuously while the r…

Cited by 6SourceScholar
2022

Where Should I Look? Optimised Gaze Control for Whole-Body Collision Avoidance in Dynamic Environments

RA-L 2022

As robots operate in increasingly complex and dynamic environments, fast motion re-planning has become a widely explored area of research. In a real-world deployment, we often lack the ability to fully observe the environment at all times, giving rise to the challenge of determining how to best perc

Cited by 10SourceScholar
2021

A Passive Navigation Planning Algorithm for Collision-free Control of Mobile Robots

ICRA 2021poster

Path planning and collision avoidance are challenging in complex and highly variable environments due to the limited horizon of events. In literature, there are multiple model- and learning-based approaches that require significant computational resources to be effectively deployed and they may have…

Cited by 12SourceScholar
2021

Inverse Dynamics vs. Forward Dynamics in Direct Transcription Formulations for Trajectory Optimization

ICRA 2021poster

Benchmarks of state-of-the-art rigid-body dynamics libraries report better performance solving the inverse dynamics problem than the forward alternative. Those benchmarks encouraged us to question whether that computational advantage would translate to direct transcription, where calculating rigid-b…

Cited by 22SourceScholar
2021

Rapid Convex Optimization of Centroidal Dynamics using Block Coordinate Descent

IROS 2021poster

In this paper we explore the use of block coordinate descent (BCD) to optimize the centroidal momentum dynamics for dynamically consistent multi-contact behaviors. The centroidal dynamics have recently received a large amount of attention in order to create physically realizable motions for robots w…

Cited by 12SourceScholar
2021

Simultaneous Scene Reconstruction and Whole-Body Motion Planning for Safe Operation in Dynamic Environments

IROS 2021poster

Recent work has demonstrated real-time mapping and reconstruction from dense perception, while motion planning based on distance fields has been shown to achieve fast, collision-free motion synthesis with good convergence properties. However, demonstration of a fully integrated system that can safel…

Cited by 17SourceScholar
2021

Sparsity-Inducing Optimal Control via Differential Dynamic Programming

ICRA 2021poster

Optimal control is a popular approach to synthesize highly dynamic motion. Commonly, L2 regularization is used on the control inputs in order to minimize energy used and to ensure smoothness of the control inputs. However, for some systems, such as satellites, the control needs to be applied in spar…

Cited by 4SourcecodeScholar
2020

Crocoddyl: An Efficient and Versatile Framework for Multi-Contact Optimal Control

ICRA 2020poster

We introduce Crocoddyl (Contact RObot COntrol by Differential DYnamic Library), an open-source framework tailored for efficient multi-contact optimal control. Crocoddyl efficiently computes the state trajectory and the control policy for a given predefined sequence of contacts. Its efficiency is due…

Cited by 381SourcecodeScholar
2020

Modeling and Control of a Hybrid Wheeled Jumping Robot

IROS 2020poster

In this paper, we study a wheeled robot with a prismatic extension joint. This allows the robot to build up momentum to perform jumps over obstacles and to swing up to the upright position after the loss of balance. We propose a template model for the class of such two-wheeled jumping robots. This m…

Cited by 10SourceScholar
2020

Optimizing Dynamic Trajectories for Robustness to Disturbances Using Polytopic Projections

IROS 2020poster

This paper focuses on robustness to disturbance forces and uncertain payloads. We present a novel formulation to optimize the robustness of dynamic trajectories. A straightforward transcription of this formulation into a nonlinear programming problem is not tractable for state-of-the-art solvers, bu…

Cited by 34SourceScholar
2019

Continuous-Time Collision Avoidance for Trajectory Optimization in Dynamic Environments

IROS 2019poster

Common formulations to consider collision avoidance in trajectory optimization often use either preprocessed environments or only check and penalize collisions at discrete time steps. However, when only checking at discrete states, this requires either large margins that prevent manipulation close t…

Cited by 25SourceScholar
2018

HDRM: A Resolution Complete Dynamic Roadmap for Real-Time Motion Planning in Complex Scenes

RA-L 2018

In this letter, we first theoretically prove the conditions and boundaries of resolution completeness for deterministic roadmap methods with a discretized workspace. A novel variant of such methods, the hierarchical dynamic roadmap (HDRM), is then proposed for solving complex planning problems. A un

Cited by 27SourceScholar
2018

Leveraging Precomputation with Problem Encoding for Warm-Starting Trajectory Optimization in Complex Environments

IROS 2018poster

Motion planning through optimization is largely based on locally improving the cost of a trajectory until an optimal solution is found. Choosing the initial trajectory has therefore a significant effect on the performance of the motion planner, especially when the cost landscape contains local minim…

Cited by 25SourceScholar
2017

Efficient Humanoid Motion Planning on Uneven Terrain Using Paired Forward-Inverse Dynamic Reachability Maps

RA-L 2017

A key prerequisite for planning manipulation together with locomotion of humanoids in complex environments is to find a valid end-pose with a feasible stance location and a full-body configuration that is balanced and collision-free. Prior work based on the inverse dynamic reachability map assumed t

Cited by 32SourceScholar