Federico Tessari

dblp:240/9775 · DBLP profile ↗
← Back
5ranked-venue papers
1as first author
4since 2021 · last 2024
0000-0002-3079-0643ORCID · corroborated

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

Artificial intelligence and machine learning · 4 · 1 first-author · 3 since 2021Systems, architecture and hardware · 4 · 1 first-author · 3 since 2021Human-computer interaction and ubiquitous computing · 1 · 1 since 2021Applied, interdisciplinary, general and emerging computing · 1 · 1 since 2021
YearPublicationVenuePosition
2024 Design Improvements to the Float Upper-Limb Exoskeleton Better Mimics the Glenohumeral Complex Kinematics
abstract
The shoulder glenohumeral complex stands out as one of the most complex structures within the human body. Designing a system that can effectively interface with it poses a significant challenge for researchers. In this study, we propose a methodology based on evaluating various metrics to assess the performance of new kinematic solutions for mimicking the glenohumeral complex. The proposed method is demonstrated on an existing design (Float) of an upper-limb exoskeleton. The results show a successful expansion of the reachable workspace and enhancement of the shoulder internal-external rotation. The improvements ensure the necessary range-of-motion for the patient’s natural use of the exoskeleton. Specifically, the existing Eulerian wrist architecture is replaced with a 3-degree-of-freedom RPY wrist to better resemble the glenohumeral shoulder joint complex. This study also explores the trade-offs between these enhancements and the desired system manipulability.
Giulia Bodo, Federico Tessari, Gianluca Capitta, Luca De Guglielmo, Stefano Buccelli, Matteo Laffranchi
IROS2
2024 On the Modularity of Elementary Dynamic Actions
abstract
In this paper, a kinematically modular approach to robot control is presented. The method involves structures called Elementary Dynamic Actions and a network model combining these elements. With this control framework, a rich repertoire of movements can be generated by combination of basic modules. The problems of solving inverse kinematics, managing kinematic singularity and kinematic redundancy are avoided. The modular approach is robust against contact and physical interaction, which makes it particularly effective for contact-rich manipulation. Each kinematic module can be learned by Imitation Learning, thereby resulting in a modular learning strategy for robot control. The theoretical foundations and their implementation on a real robot are presented. Using a KUKA LBR iiwa robot, three tasks were considered: (1) generating a sequence of discrete movements, (2) generating a combination of discrete and rhythmic movements, and (3) a drawing and erasing task. The results obtained show that this modular approach has the potential to simplify the generation of a diverse range of robot actions.
Moses C. Nah, Johannes Lachner, Federico Tessari, Neville Hogan
IROS3
2023 An Augmented Cooperative Setting for Training the Embodiment of an Artificial Lower Limb
abstract
Literature highlights how virtual and augmented settings offer engaging solutions to improve one's feeling of an artificial limb embodiment. In this paper, we explored the potential of a setting for Spatial Augmented Reality (SAR, where a display augments a surface without making the user wear any visor) in two conditions of a lower limb ownership training involving subjects without disabilities. In the first condition, the subject must contract the quadriceps of a leg for commanding (through electromyography, EMG) a virtual leg (a 3D model of the Hybrid Knee prosthesis) to kick a virtual wall: each collision corresponds to a vibratory feedback on the thigh (a position defined for upcoming tests with transfemural amputees). The second condition adds a social context to engage the user: the subject is asked to cooperate with another (fictional) player to kick on the same virtual wall. Subjective (through questionnaires) and objective (according to the number of kicks as a performance index, and the proprioceptive drift as an embodiment index) assessments have been performed before a rubber leg illusion test. Overall, we observed how the cooperative task can engage the subject to be more active. However, this condition can reduce the impact of the training on the embodiment itself, probably because the social task generates a distraction. Nevertheless, such findings suggest the possibility to alternate these two tasks in the same session to increase the duration of a prosthetic embodiment training.
Giulia Mariani, Federico Tessari, Carlo Ferraresi, Elena Lucania, Rebecca Lo Tauro, Marco Freddolini, Simone Traverso, Andrea Cherubini, Emanuele Gruppioni, Matteo Laffranchi, Lorenzo De Michieli, Giacinto Barresi
SMC2
2022 An Over-Actuated Bionic Knee Prosthesis: Modeling, Design and Preliminary Experimental Characterization
abstract
A pressing challenge in the design of actuated knee prostheses is the ability to address the high variation of speed and torque requirements for the different types and phases of locomotion. This manuscript presents a novel over-actuated knee prosthesis which makes use of a dual motor actuation architecture to address this issue. It utilizes a high speed/low torque motor to enable natural and highly dynamical motion, as required for swing phases of walking, which is permanently engaged. In addition to this motor, a clutchable uni-directional low dynamics high torque motor is present to assist during the execution of tasks which demand active torque. Preliminary experimental validations have been performed on a healthy subject provided with an able-bodied adapter to demonstrate natural walk patterns and power-assisted sit-to-stand activities.
Lorenzo Guercini, Federico Tessari, Josephus Driessen, Stefano Buccelli, Anna Pace, Samuele De Giuseppe, Simone Traverso, Lorenzo De Michieli, Matteo Laffranchi
ICRA2
2020 Analysis, Development and Evaluation of Electro-Hydrostatic Technology for Lower Limb Prostheses Applications*
abstract
This paper presents electro-hydrostatic actuation as a valid substitute of electro-mechanical devices for powered knee prostheses. The work covers the design of a test rig exploiting linear electro-hydrostatic actuation. Typical control laws for prosthesis actuators are discussed, implemented and validated experimentally. Particularly, this work focuses on position and admittance control syntheses enhanced with feed-forward friction compensation. Finally, the efficiency of the test rig is characterized experimentally and compared to that of classical electro-mechanical designs. It is demonstrated that the electro-hydrostatic prototype is able to fulfill its targets from a control perspective, while also having the potential to outperform electro-mechanical actuation in efficiency.
Federico Tessari, Renato Galluzzi, Andrea Tonoli, Nicola Amati, Matteo Laffranchi, Lorenzo De Michieli
IROS1