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Romeo Orsolino

9 accepted papers

2025

Stability-Aware Retargeting for Humanoid Multi-Contact Teleoperation

RA-L 2025

Teleoperation is a powerful method to generate reference motions and enable humanoid robots to perform a broad range of tasks. However, teleoperation becomes challenging when using hand contacts and non-coplanar surfaces, often leading to motor torque saturation or loss of stability through slipping

Cited by 0SourceScholar
2021

Rapid Stability Margin Estimation for Contact-Rich Locomotion

IROS 2021poster

The efficient evaluation the dynamic stability of legged robots on non-coplanar terrains is important when developing motion planning and control policies. The inference time of this measure has a strong influence on how fast a robot can react to unexpected events, plan its future footsteps or its b…

Cited by 3SourceScholar
2021

Real-Time Trajectory Adaptation for Quadrupedal Locomotion using Deep Reinforcement Learning

ICRA 2021poster

We present a control architecture for real-time adaptation and tracking of trajectories generated using a terrain-aware trajectory optimization solver. This approach enables us to circumvent the computationally exhaustive task of online trajectory optimization, and further introduces a control solut…

Cited by 42SourceScholar
2021

Receding-Horizon Perceptive Trajectory Optimization for Dynamic Legged Locomotion with Learned Initialization

ICRA 2021poster

To dynamically traverse challenging terrain, legged robots need to continually perceive and reason about upcoming features, adjust the locations and timings of future footfalls and leverage momentum strategically. We present a pipeline that enables flexibly-parametrized trajectories for perceptive a…

Cited by 39SourceScholar
2020

On the Hardware Feasibility of Nonlinear Trajectory Optimization for Legged Locomotion based on a Simplified Dynamics

ICRA 2020poster

Simplified models are useful to increase the computational efficiency of a motion planning algorithm, but their lack of accuracy have to be managed. We propose two feasibility constraints to be included in a Single Rigid Body Dynamics-based trajectory optimizer in order to obtain robust motions in c…

Cited by 14SourceScholar
2019

Online Relative Footstep Optimization for Legged Robots Dynamic Walking Using Discrete-Time Model Predictive Control

IROS 2019poster

We present a unified control framework that generates dynamic walking motions for biped and quadruped robots with online relative footstep optimization. The footstep optimization is formulated as a discrete-time Model Predictive Control problem which determines future footstep locations. The framewo…

Cited by 36SourceScholar
2018

Application of Wrench-Based Feasibility Analysis to the Online Trajectory Optimization of Legged Robots

RA-L 2018

Motion planning in multicontact scenarios has recently gathered interest within the legged robotics community, however actuator force/torque limits are rarely considered. We believe that these limits gain paramount importance when the complexity of the terrains to be traversed increases. We build on

Cited by 53SourceScholar
2017

Online payload identification for quadruped robots

IROS 2017poster

The identification of inertial parameters is crucial to achieve high-performance model-based control of legged robots. The inertial parameters of the legs are typically not altered during expeditions and therefore are best identified offline. On the other hand, the trunk parameters depend on the mod…

Cited by 41SourceScholar
2017

Viscosity-based height reflex for workspace augmentation for quadrupedal locomotion on rough terrain

IROS 2017poster

We propose a reactive locomotion strategy, called height reflex, that is useful to address big elevation changes in the terrain (e.g. when a quadruped robot has to step down from a high platform). In these cases the swing leg can lose mobility creating issues in the subsequent steps. The height refl…

Cited by 14SourceScholar