Woolim Hong

dblp:190/8383 · DBLP profile ↗
← Back
5ranked-venue papers
1as first author
2since 2021 · last 2023
0000-0002-9055-823XORCID · corroborated

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

Artificial intelligence and machine learning · 5 · 1 first-author · 2 since 2021Systems, architecture and hardware · 4 · 1 first-author · 1 since 2021Human-computer interaction and ubiquitous computing · 1 · 1 since 2021Applied, interdisciplinary, general and emerging computing · 1 · 1 since 2021

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Artificial intelligence
3 papers
Motion planning and robot control · 86% Robot manipulation · 14%
Human-computer interaction and pervasive computing
2 papers
Accessibility and assistive technology · 100%

Topics — the 4 heaviest of 4, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Robotics › Motion planning and robot control › robot control
impedance control
1.332021
Control of a Transfemoral Prosthesis on Sloped Terrain using Continuous and Nonlinear Impedance Parameters · ICRA 2021
Impedance Control of a Transfemoral Prosthesis using Continuously Varying Ankle Impedances and Multiple Equilibria · ICRA 2020
Consolidated control framework to control a powered transfemoral prosthesis over inclined terrain conditions · ICRA 2019
Robotics › Motion planning and robot control
robot control
0.922021
Control of a Transfemoral Prosthesis on Sloped Terrain using Continuous and Nonlinear Impedance Parameters · ICRA 2021
Impedance Control of a Transfemoral Prosthesis using Continuously Varying Ankle Impedances and Multiple Equilibria · ICRA 2020
Robotics › Robot manipulation › wearable robotics › prosthetic device
prosthesis control
0.412019
Consolidated control framework to control a powered transfemoral prosthesis over inclined terrain conditions · ICRA 2019
Accessibility and assistive technology
assistive technology
0.322021
Control of a Transfemoral Prosthesis on Sloped Terrain using Continuous and Nonlinear Impedance Parameters · ICRA 2021
Impedance Control of a Transfemoral Prosthesis using Continuously Varying Ankle Impedances and Multiple Equilibria · ICRA 2020

Methods — techniques the papers use, named apart from their topics

principal component analysis · 1.0optimization · 1.0perturbation studies · 0.9least-squares optimization · 0.4least squares optimization · 0.4trajectory optimization · 0.4bezier polynomial · 0.4PD control · 0.4
YearPublicationVenuePosition
2023 Towards Realistic Prosthetic Gait Simulations: Enhancing the Accuracy of OpenSim Analysis by Integrating the Transfemoral Prosthesis Model
abstract
Powered transfemoral prostheses offer the potential to improve mobility and quality of life for individuals with amputations. This study aimed to develop and validate an OpenSim model of a subject with a unilateral transfemoral amputation wearing a powered transfemoral prosthesis and to compare the model’s performance with that of a model without prosthesis characteristics. We utilized experimental walking data from a single transfemoral amputee subject to demonstrate the feasibility of the model. Inverse kinematics and inverse dynamics were performed to compare the results using the encoder and current data of the knee and ankle actuators, which served as ground truth. The model with prosthesis characteristics demonstrated a closer match to the actuator data, particularly during the stance phase, suggesting that it better reflects the dynamic features of a real powered prosthesis. However, discrepancies were observed during the swing phase, highlighting the need for further refinements. This study provides valuable insights into the importance of incorporating prosthesis characteristics in biomechanical models to simulate joint behavior accurately. It has implications for the development and assessment of prosthetic devices.
Hyungseok Ryu, Woolim Hong, Pilwon Hur
RO-MAN2
2021 Control of a Transfemoral Prosthesis on Sloped Terrain using Continuous and Nonlinear Impedance Parameters
abstract
The design of impedance controllers for sloped walking with a transfemoral prosthesis is a complex control problem that generally results in numerous tuning parameters. This study proposes an easy-to-tune sloped walking control scheme. While the ankle is controlled using impedance control, the knee is controlled using a hybrid strategy of impedance control and trajectory tracking. This study derived continuous, nonlinear impedance functions for the ankle and knee joints using optimization. Principal component analysis of the impedance functions revealed trends that can be used to design impedance controllers for any given slope angle. Said trends were further used to establish a tuning regime which was subsequently tested on a transfemoral prosthesis in an emulator study. The generated gait kinematics and kinetics were found to follow the trends of healthy sloped walking data.
Namita Anil Kumar, Woolim Hong, Pilwon Hur
ICRA2
2020 Impedance Control of a Transfemoral Prosthesis using Continuously Varying Ankle Impedances and Multiple Equilibria
abstract
Impedance controllers are popularly used in the field of lower limb prostheses and exoskeleton development. Such controllers assume the joint to be a spring-damper system described by a discrete set of equilibria and impedance parameters. These parameters are estimated via a least squares optimization that minimizes the difference between the controller's output torque and human joint torque. Other researchers have used perturbation studies to determine empirical values for ankle impedance. The resulting values vary greatly from the prior least squares estimates. While perturbation studies are more credible, they require immense investment. This paper extended the least squares approach to reproduce the results of perturbation studies. The resulting ankle impedance parameters were successfully tested on a powered transfemoral prosthesis, AMPRO II. Further, the paper investigated the effect of multiple equilibria on the least squares estimation and the performance of the impedance controller. Finally, the paper uses the proposed least squares optimization method to estimate knee impedance.
Namita Anil Kumar, Woolim Hong, Pilwon Hur
ICRA2
2019 Consolidated control framework to control a powered transfemoral prosthesis over inclined terrain conditions
abstract
For amputees, walking on sloped surfaces is one of the most challenging tasks in their daily lives. Unfortunately, designing a prosthesis that can effectively adapt to varying terrain is an ongoing problem. In this paper, we propose a unified control scheme that enables a powered transfemoral prosthesis to perform human-like walking on sloped terrains regardless of the slope and without any knowledge of the upcoming slope. The control scheme implements impedance control and trajectory tracking during the stance and swing phase, respectively. In the impedance control scheme, properly tuned impedance parameters are used to provide a stable and compliant stance phase that adapts to the slope of the ground. During the swing phase, the system is controlled by a Proportional-Derivative (PD) controller to track the desired trajectories based on cubic Bezier polynomials. These trajectories were obtained by solving an offline optimization problem compared to human slope walking data. Any slope walking trajectories can be generated online by using the optimized Bezier coefficients. At the terminal swing phase, a low gain PD controller is utilized to adapt to the unexpected terrains and smoothly track the generated trajectories. The proposed control framework is implemented on a powered transfemoral prosthesis, AMPRO II, on various slopes. The results validate the controller's ability to adapt to terrain inclinations within the range of ± 10°.
Woolim Hong, Victor Paredes, Kenneth Y. Chao, Shawanee Patrick, Pilwon Hur
ICRA1
2016 Upslope walking with transfemoral prosthesis using optimization based spline generation
abstract
Powered transfemoral prostheses are robotic systems that aim to restore the mobility of transfemoral amputees by mimicking the functionalities of healthy human legs. The advantage of using a powered prosthetic device is the enhanced performance on various terrains. One of the most frequent terrain found during daily locomotion (other than flat ground) is the surface with slope. In this work, we introduce a framework to generate upslope walking gaits automatically utilizing an online algorithmic formulation. This approach is inspired from analyzing human gait characteristics during upslope walking. In particularly, it is found that the ankle and knee trajectories of upslope walking share a similar pattern with flat ground walking during the middle section (from 20% to 80%) of one step. This observation motivates us to propose an approach of blending the first portion of nominal flat ground gaits with a set of cubic splines to achieve upslope gaits. Importantly, parameters of these cubic splines are solved using an online optimization, which gives the users ability to traverse in different terrains without using any intention detection algorithm. For the last portion of a step, an impedance controller with low gains is considered upon the contact of prosthetic legs to the ground, which allows the users to step onto unknown terrains. The proposed framework is validated on a custom transfemoral prosthesis AMPRO II with showing automatic motion switches between flat ground and upslope walking.
Victor Paredes, Woolim Hong, Shawanee Patrick, Pilwon Hur
IROS2