• Title/Summary/Keyword: MyoVision

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Traversing A Door For Mobile Robot In Complex Environment (복잡한 환경에서 자율이동 로봇의 문 통과 방법)

  • Seo, Min-Wook;Kim, Young-Joong;Lim, Myo-Taeg
    • Proceedings of the KIEE Conference
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    • 2004.07d
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    • pp.2441-2443
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    • 2004
  • This paper presents a method that a mobile robot finds location of doors in complex environments and safely traverses the door. A robot must be able to find the door in order that it achieves the behavior that is scheduled after traversing a door. PCA(Principle Component Analysis) algorithm using the vision is used for a robot to find the positions of door. Fuzzy controller using sonar data is used for a robot to avoid a obstacle and traverse the doors.

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Design of Fuzzy Controller for Vision-based Arm Robot (비전기반 암 로봇의 퍼지제어기 설계)

  • Shin, Hwa-Young;Kim, Young-Joong;Lim, Myo-Taeg
    • Proceedings of the KIEE Conference
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    • 2002.11c
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    • pp.485-488
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    • 2002
  • In this paper, fuzzy logic controllers are designed for compensation of distance errors. Because we can't know information of the depth in a mono camera, these errors are occurred. Also, they are increased as a target object is to keep away from a center of image. Therefore, the errors for each position of joints of an arm robot should be modeled, but accurate models can't be obtained because of no information of the depth, uncertain feature points of image, parameter uncertainties, and illumination. Hence, fuzzy logic controllers for each error are designed for compensation. This paper consists of color image processing, error modeling, and the controller design. Experimental results are given to verify the effectiveness of our proposed method.

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A Study on Sensor-Based Upper Full-Body Motion Tracking on HoloLens

  • Park, Sung-Jun
    • Journal of the Korea Society of Computer and Information
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    • v.26 no.4
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    • pp.39-46
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    • 2021
  • In this paper, we propose a method for the motion recognition method required in the industrial field in mixed reality. In industrial sites, movements (grasping, lifting, and carrying) are required throughout the upper full-body, from trunk movements to arm movements. In this paper, we use a method composed of sensors and wearable devices that are not vision-based such as Kinect without using heavy motion capture equipment. We used two IMU sensors for the trunk and shoulder movement, and used Myo arm band for the arm movements. Real-time data coming from a total of 4 are fused to enable motion recognition for the entire upper body area. As an experimental method, a sensor was attached to the actual clothes, and objects were manipulated through synchronization. As a result, the method using the synchronization method has no errors in large and small operations. Finally, through the performance evaluation, the average result was 50 frames for single-handed operation on the HoloLens and 60 frames for both-handed operation.

Outer-line measurement for 3D reconstruction of huge structures (거대한 구조물의 3차원 영상 재구성을 위한 외곽선 길이 정보 추출)

  • Jeon, Byung-Seung;Park, Jung-Min;Kim, Young-Joong;Ko, Han-Seok;Hwang, In-Joon;Lim, Myo-Taeg
    • Proceedings of the KIEE Conference
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    • 2008.10b
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    • pp.280-281
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    • 2008
  • 본 논문은 큰 구조물의 3파인 영상 재구성을 위해서 획득한 2차원 영상에서 특징점을 찾아 선으로 조합한 후 선 길이 정보를 추출하는 방법을 제안한다. 거대한 구조물의 외곽선 길이 정보 추출을 위해서는 광각 카메라에 의한 영상을 획득한다. 영상에서의 외곽선들은 모델의 기울어진 정보와 형태, 모델의 크기 등을 결정하게 되는데 광각카메라 사용에 의하여 배럴왜곡, 원근투영왜곡 등이 발생한다. 외곽선 정보 추출의 순서는 먼저모델의 2차원영상을 획득하고 이로부터 왜곡이 보정된 그레이영상을 획득한다. 이 그레이영상에서 잡음을 제거하고 특징점을 찾기 위하여 SUSAN 알고리즘을 사용한다. SUSAN알고리즘 기법은 적은 계산량과 잡음에 매우 강한 장점이 있어서 영상에서의 특징점을 얻기 위한 효과적인 기법이다. 특징점을 3차원 벡터공간에서 맵핑시킨 후 X, Y, Z 좌표축으로 점과 선으로 나타내고 시작점과 끝점의 좌표를 이용하여 벡터 길이를 얻는다. 이러한 벡터 데이터와 3차원 영상 재구성을 위한 라이브러리인 OpenGL을 사용하여 3차원 공간에 거대한 구조물들을 재구성하는 소프트웨어를 개발하였다.

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