Ill-Woo Park

dblp:39/4671 · DBLP profile ↗
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4ranked-venue papers
1as first author
0since 2021 · last 2015
0000-0002-0029-9562ORCID · corroborated

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

Artificial intelligence and machine learning · 3 · 1 first-authorSystems, architecture and hardware · 3 · 1 first-authorHuman-computer interaction and ubiquitous computing · 1

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
2 papers
Legged, aerial and field robots · 59% Motion planning and robot control · 41%
Computer architecture, parallel and distributed computing, and storage systems
1 paper
Embedded and real-time systems · 50% Distributed systems · 50%

Topics — the 6 heaviest of 7, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Robotics › Legged, aerial and field robots › humanoid robot
biped humanoid robot
0.112006
Online Free Walking Trajectory Generation for Biped Humanoid Robot KHR-3(HUBO) · ICRA 2006
Robotics › Motion planning and robot control › robot control › gait control
gait stabilization
0.112006
Online Free Walking Trajectory Generation for Biped Humanoid Robot KHR-3(HUBO) · ICRA 2006
Robotics › Legged, aerial and field robots
legged robots
0.112006
Online Free Walking Trajectory Generation for Biped Humanoid Robot KHR-3(HUBO) · ICRA 2006
Robotics › Motion planning and robot control
robot control
0.112006
Online Free Walking Trajectory Generation for Biped Humanoid Robot KHR-3(HUBO) · ICRA 2006
Distributed systems › distributed control
distributed control architecture
0.012005
System Design and Dynamic Walking of Humanoid Robot KHR-2 · ICRA 2005
Embedded and real-time systems
real-time control
0.012005
System Design and Dynamic Walking of Humanoid Robot KHR-2 · ICRA 2005

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

RTX HAL · 0.1CAN protocol · 0.1third-order polynomial trajectory · 0.1force/torque sensing · 0.1cycloid function · 0.1
YearPublicationVenuePosition
2015 Outreach Education Utilizing Humanoid Type Agent Robots
abstract
This Paper seeks to observe the changes in children from low-income families after being exposed to education through humanoid robots. An outreach education as it is, the study primarily focuses on the benefits of the said type of education.
Jeonghye Han, Ill-Woo Park, Minhyuk Park
HAI2
2006 Online Free Walking Trajectory Generation for Biped Humanoid Robot KHR-3(HUBO)
abstract
This paper describes an algorithm about online gait trajectory generation method, controller for walking, brief introduction of humanoid robot platform KHR-3 (KAIST Humanoid Robot-3: HUBO) and experimental result. The gait trajectory has continuity, smoothness in varying walking period and stride, and it has simple mathematical form which can be implemented easily. It is tested on the robot with some control algorithms. The gait trajectory algorithm is composed of two kinds of function trajectory. The first one is cycloid function, which is used for ankle position in Cartesian coordinate space. Because this profile is made by superposition of linear and sinusoidal function, it has a property of slow start, fast moving, and slow stop. This characteristics can reduce the over burden at instantaneous high speed motion of the actuator. The second one is 3rdorder polynomial function. It is continuous in the defined time interval, easy to use when the boundary condition is well defined, and has standard values of coefficients when the time scale is normalized. Position and velocity values are used for its boundary condition. Controllers mainly use F/T(Force/Torque) sensor at the ankle of the robot as a sensor data, and modify the input position profiles (in joint angle space and Cartesian coordinate space). They are to reduce unexpected external forces such as landing shock, and vibration induced by compliances of the sensors and reduction gears, because they can affect seriously on the walking stability. This trajectory and control algorithm is now on the implementing stage for the free-walking realization of KHR-3. As a first stage of realization, we realized the marking time and forward walking algorithm with variable frequency and stride
Ill-Woo Park, Jung-Yup Kim, Jun-Ho Oh
ICRA1
2006 Design of Android type Humanoid Robot Albert HUBO
abstract
To celebrate the 100th anniversary of the announcement of the special relativity theory of Albert Einstein, KAIST HUBO team and hanson robotics team developed android type humanoid robot Albert HUBO which may be the world's first expressive human face on a walking biped robot. The Albert HUBO adopts the techniques of the HUBO design for Albert HUBO body and the techniques of hanson robotics for Albert HUBO's head. Its height and weight are 137cm and 57Kg. Albert HUBO has 66 DOFs(31 for head motions and 35 for body motions) And head part uses 'Fubber' materials for smooth artificial skin and 28 servo motors for face movements and 3 servo motors for neck movements are used for generating a full range of facial expressions such as laugh, sadness, angry, surprised, etc. and body is modified with HUBO(KHR-3) introduced in 2004 to join with Albert HUBO's head and 35 DC motors are embedded for imitating various human-like body motions.
Jun-Ho Oh, David Hanson, Won-Sup Kim, Young Han, Jung-Yup Kim, Ill-Woo Park
IROS6
2005 System Design and Dynamic Walking of Humanoid Robot KHR-2
abstract
In this paper, we describe the mechanical design, system integration and dynamic walking of the humanoid, KHR-2 (KAIST Humanoid Robot– 2). KHR-2 has 41 DOFs in total, that allows it to imitate various human-like motions. To control all joint axes effectively, the distributed control architecture is used, which reduces computation burden on the main controller, and allows convenient system. A servo motor controller was used as the sub-controller, whereas a 3-axis force/torque sensor and an inertia sensor were used in the sensory system. The main controller attached on the back of KHR-2 communicates with the sub-controllers in real-time through CAN (Controller Area Network) protocol. Windows XP was used as the operation system, whereas RTX HAL extension commercial software was used to realize the real-time control capability in Windows environment. We define the walking pattern and describe several online controllers in each stage. Some of the experimental results of KHR-2 are also presented.
Jung-Yup Kim, Ill-Woo Park, Baek-Kyu Cho, Jun-Ho Oh
ICRA2