EDBT 2026 Demo / reviewers in the wild / expert
Yasuhisa Kamikawa
dblp:27/9
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6ranked-venue papers
3as first author
3since 2021 · last 2024
0000-0002-5054-620XORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Artificial intelligence and machine learning · 6 · 3 first-author · 3 since 2021Systems, architecture and hardware · 6 · 3 first-author · 3 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2024 | Development of a Compact Robust Passive Transformable Omni-Ball for Enhanced Step-Climbing and Vibration ReductionabstractThis paper introduces the Passive Transformable Omni-Ball (PTOB), an advanced omnidirectional wheel engineered to enhance step-climbing performance, incorporate built-in actuators, diminish vibrations, and fortify structural integrity. By modifying the omni-ball’s structure from two to three segments, we have achieved improved in-wheel actuation and a reduction in vibrational feedback. Additionally, we have implemented a sliding mechanism in the follower wheels to boost the wheel’s step-climbing abilities. A prototype with a 127 mm diameter PTOB was constructed, which confirmed its functionality for omnidirectional movement and internal actuation. Compared to a traditional omni-wheel, the PTOB demonstrated a comparable level of vibration while offering superior capabilities. Extensive testing in varied settings showed that the PTOB can adeptly handle step obstacles up to 45 mm, equivalent to 35 % of the wheel’s diameter, in both the forward and lateral directions. The PTOB showcased robust construction and proved to be versatile in navigating through environments with diverse obstacles. Kazuo Hongo, Takashi Kito, Yasuhisa Kamikawa, Masaya Kinoshita, Yasunori Kawanami |
IROS | 3 |
| 2024 | Real-time Perceptive Motion Control using Control Barrier Functions with Analytical Smoothing for Six-Wheeled-Telescopic-Legged Robot Tachyon 3abstractTo achieve safe legged locomotion, it is crucial to generate motion in real-time considering various constraints in robots and environments. In this study, we propose a lightweight real-time perceptive motion control system for the newly developed six-wheeled-telescopic-legged robot, Tachyon 3. In the proposed method, analytically smoothed constraints including Smooth Separating Axis Theorem (SSAT) as a novel higher order differentiable collision detection for 3D shapes is applied to the Control Barrier Function (CBF). The proposed system integrating the CBF achieves online motion generation in a short control cycle of 1 ms that satisfies joint limitations, environmental collision avoidance and safe convex foothold constraints. The efficiency of SSAT is shown from the collision detection time of 1 µs or less and the CBF constraint computation time for Tachyon 3 of several µs. Furthermore, the effectiveness of the proposed system is verified through the stair-climbing motion, integrating online recognition in a simulation and a real machine. Noriaki Takasugi, Masaya Kinoshita, Yasuhisa Kamikawa, Ryoichi Tsuzaki, Atsushi Sakamoto, Toshimitsu Kai, Yasunori Kawanami |
IROS | 3 |
| 2021 | Tachyon: Design and Control of High Payload, Robust, and Dynamic Quadruped Robot with Series-Parallel Elastic ActuatorsabstractThis paper introduces a quadruped robot, Tachyon, which aims to achieve high payload, robust, and dynamic locomotion on the various terrain with high energy efficiency. Thanks to a novel compact series-parallel elastic actuator (SPEA) on the upper link and a four-bar linkage design in the knee joint for constant vertical foot force, the 41-kg robot can carry more than 20 kg of payloads with dynamic walking. The combination of a robust horizontal CoM stabilizer and SPEA joint torque controller provides low impedance force controllability of the whole-body even when only the knee joint can accurately detect its joint torque. The major performance of Tachyon is demonstrated by carrying a 20-kg rice bag—half of its body weight—and climbing stairs with dynamic locomotion. When the robot climbs the stairs, the SPEA parallel spring improves energy efficiency by 16% and is also effective for various other gaits. The robustness of the robot is also shown by its high flexibility and fall avoidance capability when an unknown disturbance of 400 N or more is applied. Yasuhisa Kamikawa, Masaya Kinoshita, Noriaki Takasugi, Katsufumi Sugimoto, Toshimitsu Kai, Takashi Kito, Atsushi Sakamoto, Ken'ichiro Nagasaka, Yasunori Kawanami |
IROS | 1 |
| 2018 | Magnified Force Sensory Substitution for Telemanipulation via Force-Controlled Skin DeformationabstractTeleoperation systems could benefit from force sensory substitution when kinesthetic force feedback systems are too bulky or expensive, and when they cause instability by magnifying force feedback. We aim to magnify force feedback using sensory substitution via force-controlled tactile skin deformation, using a device with the ability to provide tangential and normal force directly to the fingerpads. The sensory substitution device is able to provide skin deformation force feedback over ten times the maximum stable kinesthetic force feedback on a da Vinci Research Kit teleoperation system. We evaluated the effect of this force magnification in two experimental tasks where the goal was to minimize interaction force with the environment. In a peg transfer task, magnified force feedback using sensory substitution improved participants' performance for force magnifications up to ten times, but decreased performance for higher force magnifications. In a tube connection task, sensory substitution that doubled the force feedback maximized performance; there was no improvement at the larger magnifications. These experiments demonstrate that magnified force feedback using sensory substitution via force-controlled skin deformation feedback can decrease applied forces similarly to magnified kinesthetic force feedback during teleoperation. Yasuhisa Kamikawa, Nima Enayati, Allison M. Okamura |
ICRA | 1 |
| 2018 | Effects of Latency and Refresh Rate on Force Perception via Sensory Substitution by Force-Controlled Skin Deformation Feedback
Zane A. Zook, Allison M. Okamura, Yasuhisa Kamikawa |
ICRA | 3 |
| 2008 | Underactuated five-finger prosthetic hand inspired by grasping force distribution of humansabstractSimple grippers with one or two degrees of freedom are commercially available prosthetic hands; these pinch type devices cannot grasp small cylinders and spheres because of their small degree of freedom. This paper presents the design and prototyping of underactuated five-finger prosthetic hand for grasping various objects in daily life. Underactuated mechanism enables the prosthetic hand to move fifteen compliant joints only by one ultrasonic motor. The innovative design of this prosthetic hand is the underactuated mechanism optimized to distribute grasping force like those of humans who can grasp various objects robustly. Thanks to human like force distribution, the prototype of prosthetic hand could grasp various objects in daily life and heavy objects with the maximum ejection force of 50 N that is greater than other underactuated prosthetic hands. Yasuhisa Kamikawa, Takashi Maeno |
IROS | 1 |