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Robert D. Gregg

22 accepted papers

2024

A Control Framework for Accurate Mechanical Impedance Rendering With Series-Elastic Joints in Prosthetic Actuation Applications

RA-L 2024

In addition to lifting up the body during gait, human legs provide stabilizing torques that can be modeled as a spring-damper mechanical impedance. While powered prosthetic leg actuators can also imitate spring-damper behaviors, the rendered impedance can be quite different from the desired impedanc

Cited by 2SourceScholar
2024

Improving Task-Agnostic Energy Shaping Control of Powered Exoskeletons With Task/Gait Classification

RA-L 2024

Emerging task-agnostic control methods offer a promising avenue for versatile assistance in powered exoskeletons without explicit task detection, but typically come with a performance trade-off for specific tasks and/or users. One such approach employs data-driven optimization of an energy shaping c

Cited by 4SourceScholar
2024

Robustification of Bayesian-Inference-Based Gait Estimation for Lower-Limb Wearable Robots

RA-L 2024

Lower-limb wearable robots designed to assist people in everyday activities must reliably recover from any momentary confusion about what the user is doing. Such confusion might arise from momentary sensor failure, collision with an obstacle, losing track of gait due to an out-of-distribution stride

Cited by 4SourceScholar
2024

Towards a Unified Approach for Continuously-Variable Impedance Control of Powered Prosthetic Legs over Walking Speeds and Inclines

ICRA 2024poster

Research in powered prosthesis control has explored the use of impedance-based control algorithms due to their biomimetic capabilities and intuitive structure. Modern impedance controllers feature parameters that smoothly vary over gait phase and task according to a data-driven model. However, these…

Cited by 0SourceScholar
2024

Transfer Learning for Efficient Intent Prediction in Lower-Limb Prosthetics: A Strategy for Limited Datasets

RA-L 2024

This paper presents a transfer learning method to enhance locomotion intent prediction in novel transfemoral amputee subjects, particularly in data-sparse scenarios. Transfer learning is done with three pre-trained models trained on separate datasets: transfemoral amputees, able-bodied individuals,

Cited by 11SourceScholar
2023

An Energetic Approach to Task-Invariant Ankle Exoskeleton Control

IROS 2023poster

Robotic ankle exoskeletons have been shown to reduce human effort during walking. However, existing ankle exoskeleton control approaches are limited in their ability to apply biomimetic torque across diverse tasks outside of the controlled lab environment. Energy shaping control can provide task-inv…

Cited by 4SourceScholar
2023

Controlling Powered Prosthesis Kinematics Over Continuous Transitions Between Walk and Stair Ascent

IROS 2023poster

One of the primary benefits of emerging powered prosthetic legs is their ability to facilitate step-over-step stair ascent by providing positive mechanical work. Existing control methods typically have distinct steady-state activity modes for walking and stair ascent, where activity transitions invo…

Cited by 6SourceScholar
2023

Effects of Personalization on Gait-State Tracking Performance Using Extended Kalman Filters

IROS 2023poster

Emerging partial-assistance exoskeletons can enhance able-bodied performance and aid people with patho-logical gait or age-related immobility. However, every person walks differently, which makes it difficult to directly compute assistance torques from joint kinematics. Gait-state estimation-based c…

Cited by 0SourceScholar
2023

Gait Event Detection with Proprioceptive Force Sensing in a Powered Knee-Ankle Prosthesis: Validation over Walking Speeds and Slopes

ICRA 2023poster

Many powered prosthetic devices use load cells to detect ground interaction forces and gait events. These sensors introduce additional weight and cost in the device. Recent proprioceptive actuators enable an algebraic relationship between actuator torques and ground contact forces. This paper presen…

Cited by 2SourceScholar
2023

Improving Amputee Endurance Over Activities of Daily Living with a Robotic Knee-Ankle Prosthesis: A Case Study

IROS 2023poster

Robotic knee-ankle prostheses have often fallen short relative to passive microprocessor prostheses in time-based clinical outcome tests. User ambulation endurance is an alternative clinical outcome metric that may better highlight the benefits of robotic prostheses. However, previous studies were u…

Cited by 7SourceScholar
2022

Analysis of the Bayesian Gait-State Estimation Problem for Lower-Limb Wearable Robot Sensor Configurations

RA-L 2022

Many exoskeletons today are primarily tested in controlled, steady-state laboratory conditions that are unrealistic representations of their real-world usage in which walking conditions (<i>e</i>.<i>g</i>., speed, slope, and stride length) change constantly. One potential solution is to detect these

Cited by 7SourceScholar
2022

Data-Driven Variable Impedance Control of a Powered Knee-Ankle Prosthesis for Sit, Stand, and Walk with Minimal Tuning

IROS 2022poster

Although the average healthy adult transitions from sit to stand over 60 times per day, most research on powered prosthesis control has only focused on walking. In this paper, we present a data-driven controller that enables sitting, standing, and walking with minimal tuning. Our controller comprise…

Cited by 11SourceScholar
2022

Enhancing Voluntary Motion With Modular, Backdrivable, Powered Hip and Knee Orthoses

RA-L 2022

Mobility disabilities are prominent in society with wide-ranging deficits, motivating modular, partial-assist, lower-limb exoskeletons for this heterogeneous population. This paper introduces the Modular Backdrivable Lower-limb Unloading Exoskeleton (M-BLUE), which implements high torque, low mechan

Cited by 53SourceScholar
2022

Stair Ascent Phase-Variable Control of a Powered Knee-Ankle Prosthesis

ICRA 2022poster

Passive prostheses cannot provide the net positive work required at the knee and ankle for step-over stair ascent. Powered prostheses can provide this net positive work, but user synchronization of joint motion and power input are critical to enabling natural stair ascent gaits. In this work, we bui…

Cited by 21SourceScholar
2021

Convex Optimization for Spring Design in Series Elastic Actuators: From Theory to Practice

IROS 2021poster

Natural dynamics, nonlinear optimization, and, more recently, convex optimization are available methods for stiffness design of energy-efficient series elastic actuators. Natural dynamics and general nonlinear optimization only work for a limited set of load kinetics and kinematics, cannot guarantee…

Cited by 9SourceScholar
2021

Phase-Variable Control of a Powered Knee-Ankle Prosthesis over Continuously Varying Speeds and Inclines

IROS 2021poster

Most controllers for lower-limb robotic prostheses require individually tuned parameter sets for every combination of speed and incline that the device is designed for. Because ambulation occurs over a continuum of speeds and inclines, this design paradigm requires tuning of a potentially prohibitiv…

Cited by 47SourceScholar
2020

Extremum Seeking Control for Stiffness Auto-Tuning of a Quasi-Passive Ankle Exoskeleton

RA-L 2020

Recently, it has been shown that light-weight, passive, ankle exoskeletons with spring-based energy store-and-release mechanisms can reduce the muscular effort of human walking. The stiffness of the spring in such a device must be properly tuned in order to minimize the muscular effort. However, thi

Cited by 36SourceScholar
2020

Nonholonomic Virtual Constraint Design for Variable-Incline Bipedal Robotic Walking

RA-L 2020

This letter presents a method of designing relative-degree-two nonholonomic virtual constraints (NHVCs) that allow for stable bipedal robotic walking across variable terrain slopes. Relative-degree-two NHVCs are virtual constraints that encode velocity-dependent walking gaits via momenta conjugate t

Cited by 17SourceScholar
2018

A Phase Variable Approach to Volitional Control of Powered Knee-Ankle Prostheses

IROS 2018poster

Although there has been recent progress in control of multi-joint prosthetic legs for periodic tasks such as walking, volitional control of these systems for non-periodic maneuvers is still an open problem. In this paper, we develop a new controller that is capable of both periodic walking and commo…

Cited by 28SourceScholar
2018

Design and Benchtop Validation of a Powered Knee-Ankle Prosthesis with High-Torque, Low-Impedance Actuators

ICRA 2018poster

This paper describes the design of a powered knee-and-ankle transfemoral prosthetic leg, which implements high torque density actuators with low-reduction transmissions. The low reduction of the transmission coupled with a high-torque and low-speed motor creates an actuator with low mechanical imped…

Cited by 71SourceScholar
2016

Experimental implementation of underactuated potential energy shaping on a powered ankle-foot orthosis

ICRA 2016

Traditional control methodologies of rehabilitation orthoses/exoskeletons aim at replicating normal kinematics and thus fall into the category of <i>kinematic control</i>. This control paradigm depends on pre-defined reference trajectories, which can be difficult to adjust between different locomoto

Cited by 18SourceScholar
2016

Preliminary experiments with a unified controller for a powered knee-ankle prosthetic leg across walking speeds

IROS 2016poster

This paper presents the experimental validation of a novel control strategy that unifies the entire gait cycle of a powered knee-ankle prosthetic leg without the need to switch between controllers for different periods of gait. Current control methods divide the gait cycle into several sequential pe…

Cited by 103SourceScholar