• Title/Summary/Keyword: Motion Processing

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Implementation of Integration Module of Vision and Motion Controller using Zynq (Zynq를 이용한 비전 및 모션 컨트롤러 통합모듈 구현)

  • Moon, Yong-Seon;Roh, Sang-Hyun;Lee, Young-Pil
    • The Journal of the Korea institute of electronic communication sciences
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    • v.8 no.1
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    • pp.159-164
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    • 2013
  • Recently the solution integrated of vision and motion controller which are important element in automatiomn system has been many developed. However typically such a solutions has a many case that integrated vision processing and motion control into network or organized two chip solution on one module. We implement one chip solution integrated into vision and motion controller using Zynq-7000 that is developed recently as extended processing platform. We also apply EtherCAT to motion control that is industrial Ethernet protocol which have compatibility for open standardization Ethernet in order to control of motion because EtherCAT has a secure to realtime control and can treat massive data.

A Region Depth Estimation Algorithm using Motion Vector from Monocular Video Sequence (단안영상에서 움직임 벡터를 이용한 영역의 깊이추정)

  • 손정만;박영민;윤영우
    • Journal of the Institute of Convergence Signal Processing
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    • v.5 no.2
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    • pp.96-105
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    • 2004
  • The recovering 3D image from 2D requires the depth information for each picture element. The manual creation of those 3D models is time consuming and expensive. The goal in this paper is to estimate the relative depth information of every region from single view image with camera translation. The paper is based on the fact that the motion of every point within image which taken from camera translation depends on the depth. Motion vector using full-search motion estimation is compensated for camera rotation and zooming. We have developed a framework that estimates the average frame depth by analyzing motion vector and then calculates relative depth of region to average frame depth. Simulation results show that the depth of region belongs to a near or far object is consistent accord with relative depth that man recognizes.

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Context Awareness Using Wireless Biosignal Processing (무선 생체신호 처리를 이용한 상황인식)

  • Lee Sang-Bock;An Byung-Ju;Lee Sanyol;Lee Jun-Haeng
    • Journal of the Korea Society of Computer and Information
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    • v.10 no.6 s.38
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    • pp.117-126
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    • 2005
  • In this paper, it was suggested method to recognize the motion of a person(lying, sitting, walking, running) using fuzzy inference and wireless biologic signal processing system. These are to Perceive the motion of the person. Furthermore, the information of motion is indispensable parameter for Context Awareness (CA). In the present study, ADXL 202JE accelerometer sensor was used to measure for checking the continuance motion, biological quantify of motion, and motion pattern of a Person. The measured data was transmitted to CA server by Radio Frequency(RF). From the present result, we confirmed that it is difficult to decide the motion of walking and running with only the magnitude of the Longitudinal Accelerometer Average Value(LAAV) and moreover the covariance of LAAV in any block is very useful for CA of walking and running.

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Knee-wearable Robot System Using EMG signals (근전도 신호를 이용한 무릎 착용 로봇시스템)

  • Cha, Kyung-Ho;Kang, Soo-Jung;Choi, Young-Jin
    • Journal of Institute of Control, Robotics and Systems
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    • v.15 no.3
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    • pp.286-292
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    • 2009
  • This paper proposes a knee-wearable robot system for assisting the muscle power of human knee by processing EMG (Electromyogram) signals. Although there are many muscles affecting the knee joint motion, the rectus femoris and biceps femoris among them play a core role in the extension and flexion motion, respectively, of the knee joint. The proposed knee-wearable robot system consists of three parts; the sensor for measuring and processing EMG signals, controller for estimating and applying the required knee torque, and actuator for driving the knee-wearable mechanism. Ultimately, we suggest the motion control method for knee-wearable robot system by processing the EMG signals of corresponding two muscles in this paper. Also, we show the effectiveness of the proposed knee-wearable robot system through the experimental results.

A Method for Generating Inbetween Frames in Sign Language Animation (수화 애니메이션을 위한 중간 프레임 생성 방법)

  • O, Jeong-Geun;Kim, Sang-Cheol
    • The Transactions of the Korea Information Processing Society
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    • v.7 no.5
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    • pp.1317-1329
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    • 2000
  • The advanced techniques for video processing and computer graphics enables a sign language education system to appear. the system is capable of showing a sign language motion for an arbitrary sentence using the captured video clips of sign language words. In this paper, a method is suggested which generates the frames between the last frame of a word and the first frame of its following word in order to animate hand motion. In our method, we find hand locations and angles which are required for in between frame generation, capture and store the hand images at those locations and angles. The inbetween frames generation is simply a task of finding a sequence of hand angles and locations. Our method is computationally simple and requires a relatively small amount of disk space. However, our experiments show that inbetween frames for the presentation at about 15fps (frame per second) are achieved so tat the smooth animation of hand motion is possible. Our method improves on previous works in which computation cost is relativey high or unnecessary images are generated.

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Dense Optical flow based Moving Object Detection at Dynamic Scenes (동적 배경에서의 고밀도 광류 기반 이동 객체 검출)

  • Lim, Hyojin;Choi, Yeongyu;Nguyen Khac, Cuong;Jung, Ho-Youl
    • IEMEK Journal of Embedded Systems and Applications
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    • v.11 no.5
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    • pp.277-285
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    • 2016
  • Moving object detection system has been an emerging research field in various advanced driver assistance systems (ADAS) and surveillance system. In this paper, we propose two optical flow based moving object detection methods at dynamic scenes. Both proposed methods consist of three successive steps; pre-processing, foreground segmentation, and post-processing steps. Two proposed methods have the same pre-processing and post-processing steps, but different foreground segmentation step. Pre-processing calculates mainly optical flow map of which each pixel has the amplitude of motion vector. Dense optical flows are estimated by using Farneback technique, and the amplitude of the motion normalized into the range from 0 to 255 is assigned to each pixel of optical flow map. In the foreground segmentation step, moving object and background are classified by using the optical flow map. Here, we proposed two algorithms. One is Gaussian mixture model (GMM) based background subtraction, which is applied on optical map. Another is adaptive thresholding based foreground segmentation, which classifies each pixel into object and background by updating threshold value column by column. Through the simulations, we show that both optical flow based methods can achieve good enough object detection performances in dynamic scenes.

Scene Segmentation using a Hierarchical Motion Estimation Technique (계층적 모션 추정을 통한 장면 분할 기법)

  • 김모곤;우종선;정순기
    • Proceedings of the IEEK Conference
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    • 2002.06c
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    • pp.203-206
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    • 2002
  • We propose the new algorithm for scene segmentation. The proposed system consists motion estimation module and motion segmentation module. The former estimates 2D-motion value for each pixel position from two images transformed by wavelet. The latter determine scene segments well fitting on dominant affine motion models. What distinguishes proposed algorithm from other methods is that it needs not other post-processing for scene segmentation. We can manipulate both multimedia data and objects in virtual environment using proposed algorithm.

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Motion Detection Using Electric Field Theory

  • Ono, Naoki;Yang, Yee-Hong
    • Proceedings of the IEEK Conference
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    • 2000.07b
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    • pp.823-826
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    • 2000
  • Motion detection is an important step in computer vision and image processing. Traditional motion detection systems are classified into two categories, namely, feature based and gradient based. In feature based motion detection, features in consecutive frames are detected and matched. Gradient based methods assume that the intensity varies linearly and locally. The method, which we propose, is neither feature nor gradient based but uses the electric field theory. The pixels in an image are modeled as point charges and motion is detected by using the variations between the two electric fields produced by the charges corresponding to the two images.

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A Motion Capture and Mapping System: Kinect Based Human-Robot Interaction Platform (동작포착 및 매핑 시스템: Kinect 기반 인간-로봇상호작용 플랫폼)

  • Yoon, Joongsun
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.16 no.12
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    • pp.8563-8567
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    • 2015
  • We propose a human-robot interaction(HRI) platform based on motion capture and mapping. Platform consists of capture, processing/mapping, and action parts. A motion capture sensor, computer, and avatar and/or physical robots are selected as capture, processing/mapping, and action part(s), respectively. Case studies-an interactive presentation and LEGO robot car are presented to show the design and implementation process of Kinect based HRI platform.

A Fast Block Motion Estimation Algorithm for Video Coding (비디오 코딩을 위한 빠른 블록 모션 추정 방법)

  • 이연철;김은이;김항준
    • Proceedings of the Korea Institute of Convergence Signal Processing
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    • 2001.06a
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    • pp.177-180
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    • 2001
  • This paper presents a new fast motion estimation algorithm for video coding. This method classifies blocks in a frame into moving blocks and background blocks, and then searches the best-matched blocks for only moving blocks. Experimental results show the effectiveness of the proposed method.

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