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Kuniyuki Takahashi

16 accepted papers

2024

Four-Axis Adaptive Fingers Hand for Object Insertion: FAAF Hand

IROS 2024

Robots operating in the real world face significant but unavoidable issues in object localization that must be dealt with. A typical approach to address this is the addition of compliance mechanisms to hardware to absorb and compensate for some of these errors. However, for fine-grained manipulation

Cited by 3SourceScholar
2024

Precise Well-plate Placing Utilizing Contact During Sliding with Tactile-based Pose Estimation for Laboratory Automation

IROS 2024poster

Micro well-plates are an apparatus commonly used in chemical and biological experiments that are a few centimeters thick and contain wells or divets. In this paper, we aim to solve the task of placing the well-plate onto a well-plate holder (referred to as holder). This task is challenging due to th…

Cited by 2SourceScholar
2024

SAID-NeRF: Segmentation-AIDed NeRF for Depth Completion of Transparent Objects

IROS 2024poster

Acquiring accurate depth information of transparent objects using off-the-shelf RGB-D cameras is a well-known challenge in Computer Vision and Robotics. Depth estimation/completion methods are typically employed and trained on datasets with quality depth labels acquired from either simulation, addit…

Cited by 4SourceScholar
2024

Stable Object Placing using Curl and Diff Features of Vision-based Tactile Sensors

IROS 2024poster

Ensuring stable object placement is crucial to prevent objects from toppling over, breaking, or causing spills. When an object makes initial contact to a surface, and some force is exerted, the moment of rotation caused by the instability of the object’s placing can cause the object to rotate in a c…

Cited by 2SourceScholar
2023

Goal-Image Conditioned Dynamic Cable Manipulation through Bayesian Inference and Multi-Objective Black-Box Optimization

ICRA 2023poster

To perform dynamic cable manipulation to realize the configuration specified by a target image, we formulate dynamic cable manipulation as a stochastic forward model. Then, we propose a method to handle uncertainty by maximizing the expectation, which also considers estimation errors of the trained…

Cited by 0SourceScholar
2023

Two-Fingered Hand with Gear-Type Synchronization Mechanism with Magnet for Improved Small and Offset Objects Grasping: F2 Hand

IROS 2023poster

A problem that plagues robotic grasping is the misalignment of the object and gripper due to difficulties in precise localization, actuation, etc. Under-actuated robotic hands with compliant mechanisms are used to adapt and compensate for these inaccuracies. However, these mechanisms come at the cos…

Cited by 3SourceScholar
2022

Cluttered Food Grasping with Adaptive Fingers and Synthetic-Data Trained Object Detection

ICRA 2022poster

The food packaging industry handles an immense variety of food products with wide-ranging shapes and sizes, even within one kind of food. Menus are also diverse and change frequently, making automation of pick-and-place difficult. A popular approach to bin-picking is to first identify each piece of…

Cited by 18SourceScholar
2021

Uncertainty-aware Self-supervised Target-mass Grasping of Granular Foods

ICRA 2021poster

Food packing industry workers typically pick a target amount of food by hand from a food tray and place them in containers. Since menus are diverse and change frequently, robots must adapt and learn to handle new foods in a short time-span. Learning to grasp a specific amount of granular food requir…

Cited by 28SourceScholar
2020

Deep Gated Multi-modal Learning: In-hand Object Pose Changes Estimation using Tactile and Image Data

IROS 2020poster

For in-hand manipulation, estimation of the object pose inside the hand is one of the important functions to manipulate objects to the target pose. Since in-hand manipulation tends to cause occlusions by the hand or the object itself, image information only is not sufficient for in-hand object pose…

Cited by 46SourceScholar
2020

Deep Visuo-Tactile Learning: Estimation of Tactile Properties from Images (Extended Abstract)

IJCAI 2020poster

Estimation of tactile properties from vision, such as slipperiness or roughness, is important to effectively interact with the environment. These tactile properties help humans, as well as robots, decide which actions they should choose and how to perform them. We, therefore, propose a model to esti…

2020

Invisible Marker: Automatic Annotation of Segmentation Masks for Object Manipulation

IROS 2020poster

We propose a method to annotate segmentation masks accurately and automatically using invisible marker for object manipulation. Invisible marker is invisible under visible (regular) light conditions, but becomes visible under invisible light, such as ultraviolet (UV) light. By painting objects with…

Cited by 5SourcecodeScholar
2018

Interactively Picking Real-World Objects with Unconstrained Spoken Language Instructions

ICRA 2018poster

Comprehension of spoken natural language is an essential skill for robots to communicate with humans effectively. However, handling unconstrained spoken instructions is challenging due to (1) complex structures and the wide variety of expressions used in spoken language, and (2) inherent ambiguity o…

Cited by 211SourcecodeScholar
2015

Effective motion learning for a flexible-joint robot using motor babbling

IROS 2015poster

We propose a method for realizing effective dynamic motion learning in a flexible-joint robot using motor babbling. Flexible-joint robots have recently attracted attention because of their adaptiveness, safety, and, in particular, dynamic motions. It is difficult to control robots that require dynam…

Cited by 14SourceScholar
2015

Neural network based model for visual-motor integration learning of robot's drawing behavior: Association of a drawing motion from a drawn image

IROS 2015poster

In this study, we propose a neural network based model for learning a robot's drawing sequences in an unsupervised manner. We focus on the ability to learn visual-motor relationships, which can work as a reusable memory in association of drawing motion from a picture image. Assuming that a humanoid…

Cited by 23SourceScholar