Elisabeth Rose Jensen

dblp:330/0782 · DBLP profile ↗
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5ranked-venue papers
0as first author
4since 2021 · last 2023
—ORCID · none

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

Artificial intelligence and machine learning · 4 · 3 since 2021Systems, architecture and hardware · 4 · 3 since 2021Applied, interdisciplinary, general and emerging computing · 1 · 1 since 2021
YearPublicationVenuePosition
2023 A Wearable Force-Sensitive and Body-Aware Exoprosthesis for a Transhumeral Prosthesis Socket
abstract
Upper limb prostheses are commonly mounted to the human residual limb by a passive socket. By this design, the sensitive residual limb is exposed to high reaction wrenches, which can be a source of medical complications. In this article, we introduce an active force-sensitive robotic socket, which carries the prosthesis, offloads the residual limb, and allows guidance via small interaction forces at the same time. We investigate the feasibility of this concept by a force-sensitive and wearable shoulder exoskeleton, calledexoprosthesiswhen being combined with a prosthesis. We provide a first mechatronics prototype, two floating base controllers, and an analysis of the loads acting on the user body. Simulations and experiments confirm the concept and reveal that the wrench at residual limb can be fully compensated for the static case and by$\approx \text{50}\%$for the investigated motions. Human-in-the-loop tests are successfully performed by three able-bodied users showing the later real-world use case in a complex grasping situation. Overall, we believe that a force-sensitive robotic socket has the potential to advance prosthetics to a new level as it provides an intuitive and seamless user control interface.
Alexander Toedtheide, Edmundo Pozo Fortunic, Johannes Kuehn, Elisabeth Rose Jensen, Sami Haddadin
IEEE Trans. Robotics4
2021 ULT-model: Towards a one-legged unified locomotion template model for forward hopping with an upright trunk
abstract
While many advancements have been made in the development of template models for describing upright-trunk locomotion, the majority of the effort has been focused on the stance phase. In this paper, we develop a new compact dynamic model as a first step toward a fully unified locomotion template model (ULT-model) of an upright-trunk forward hopping system, which will also require a unified control law in the next step. We demonstrate that all locomotion subfunctions are enabled by adding just a point foot mass and a parallel leg actuator to the well-known trunk SLIP model and that a stable limit cycle can be achieved. This brings us closer toward the ultimate goal of enabling closed-loop dynamics for anchor matching and thus achieving simple, efficient, robust and stable upright-trunk gait control, as observed in biological systems.
Dennis Ossadnik, Elisabeth Rose Jensen, Sami Haddadin
ICRA2
2021 Nonlinear stiffness allows passive dynamic hopping for one-legged robots with an upright trunk
abstract
Template models are frequently used to simplify the control dynamics for robot hopping or running. Passive limit cycles can emerge for such systems and be exploited for energy-efficient control. A grand challenge in locomotion is trunk stabilization when the hip is offset from the center of mass (CoM). The swing phase plays a major role in this process due to the moment of inertia of the leg; however, many template models ignore the leg mass. In this work, the authors consider a robot hopper model (RHM) with a rigid trunk and leg plus a hip that is displaced from the CoM. It has been previously shown that no passive limit cycle exists for such a model given a linear hip spring. In this work, we show that passive limit cycles can be found when a nonlinear hip spring is used instead. To the authors’ knowledge, this is the first time that a passive limit cycle has been found for this type of system.
Dennis Ossadnik, Elisabeth Rose Jensen, Sami Haddadin
ICRA2
2021 A Dual Doctor-Patient Twin Paradigm for Transparent Remote Examination, Diagnosis, and Rehabilitation
abstract
The need for comprehensive telemedicine solutions is becoming increasingly relevant due to challenges associated with the ageing population, the increasing shortage of health-care providers, and, more recently, the global pandemic. Existing solutions primarily focus on, e.g., electronic medical records, audiovisual connections, and, in some cases, robotic systems with very basic capabilities. Here we present a fundamentally new, holistic approach to a remote doctor visit, which enables transparent remote examination, anomaly detection, diagnosis, and rehabilitation. Our dual doctor-patient twin paradigm involves two robotic systems: one representing the doctor to the patient ("GARMI") and one representing the patient to the doctor ("MUCKI"). Through bidirectional telepresence control, this system enables transparent, natural, remote haptic interaction between doctor and patient. The control, interaction, and knowledge transfer to the doctor is enhanced by AI-based visual motion and facial expression analysis as well as a digital twin of the patient. Thus, each stage of a doctor visit can be replicated in the context of telemedicine and shared autonomy: from first assessment to observation-based and remote physical examination, to a better-informed doctor diagnosis and robot-assisted telerehabilitation.
Mario Tröbinger, Andrei Costinescu, Jean Elsner, Tingli Hu, Abdeldjallil Naceri, Luis Figueredo 0001, Elisabeth Rose Jensen, Darius Burschka, Sami Haddadin
IROS8
2019 Energy-based Adaptive Control and Learning for Patient-Aware Rehabilitation
abstract
In this paper we propose a novel energy-based control scheme for an assist-as-needed rehabilitation strategy, which both adapts the level of support based on patient participation and allows the patient to deviate from the prescribed motion in favor of his/her safety. We build an energy network model, with which we can monitor the energy flow through the system and prescribe a threshold on stored energy. We also develop an adaptive motion control law that shapes the desired trajectory in order to respect the stored energy threshold. Next, we show how adapting the stored energy threshold can be used to change the level of responsiveness to the patient as well as to prevent excessive energy transfer to the human by the system. A criterion is defined for setting this energy threshold, which can be further used for monitoring the patient active participation and for adapting and learning the appropriate assistance level during rehabilitation. Experimental results based on implementation in MATLAB Simscape® and on the VEMO robotic system demonstrate the feasibility of the suggested approach. The presented control scheme can be applied to any system, including position- and torque-controlled robots, and does not require the use of EMG sensors or precise force measurements.
Erfan Shahriari, Dinmukhamed Zardykhan, Elisabeth Rose Jensen, Sami Haddadin
IROS4