• 제목/요약/키워드: Movement Detection

검색결과 604건 처리시간 0.025초

퀴즈게임의 체감형 제스처 인터페이스 프로토타입 개발 (A Study on Tangible Gesture Interface Prototype Development of the Quiz Game)

  • 안정호;고재필
    • 디지털콘텐츠학회 논문지
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    • 제13권2호
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    • pp.235-245
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    • 2012
  • 우리는 본 논문에서 사용자 제스처 인터페이스 기반 퀴즈게임 콘텐츠를 제안한다. 우리는 기존의 아날로그 방식으로 수행해 오던 퀴즈게임의 요소들을 파악하여 디지털화함으로써 퀴즈 진행자의 역할을 콘텐츠 프로그램이 담당할 수 있도록 하였다. 우리는 키넥트 카메라를 사용하여 깊이영상을 획득하고 깊이영상에서 사용자 분할, 머리 위치 검출 및 추적, 손 검출 등의 전처리 작업과 손들기, 손 상하이동, 주먹 모양, 패스, 주먹 쥐고 당김 등의 명령형 손 제스처 인식기술을 개발하였다. 특히 우리는 사람이 일상생활에서 물리적인 객체를 조작하는 동작으로 인터페이스를 위한 제스처를 정의함으로써 사용자가 이동, 선택, 확인 등의 추상적인 개념을 인터페이스 과정에서 체감할 수 있도록 디자인하였다. 앞서 발표되었던 선행 작업과 비교할 때, 우리는 승리 팀에 대한 카드보상 절차를 추가하여 콘텐츠의 완성도를 높였으며, 손 상하이동 인식과 주먹 모양 인식 알고리즘 등을 개선하여 문제 보기선택의 성능을 크게 향상시켰고, 체계적인 실험을 통해 만족할 만한 인식 성능을 입증하였다. 구현된 콘텐츠는 실시간 테스트에서 만족스러운 제스처 인식 결과를 보였으며 원활한 퀴즈게임 진행이 가능하였다.

Ground surface changes detection using interferometric synthetic aperture radar

  • Foong, Loke Kok;Jamali, Ali;Lyu, Zongjie
    • Smart Structures and Systems
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    • 제26권3호
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    • pp.277-290
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    • 2020
  • Disasters, including earthquakes and landslides, have enormous economic and social losses besides their impact on environmental disruption. Iran, and particularly its Western part, is known as an earthquake susceptible area due to numerous strong ground motions. Studying ecological changes due to climate change can improve the public and expert sector's awareness and response to future disastrous events. Synthetic Aperture Radar (SAR) data and Interferometric Synthetic Aperture Radar (InSAR) technologies are appropriate tools for modeling and surface deformation modeling. This paper proposes an efficient approach to detect ground deformation changes using Sentinel-1A. The focal point of this research is to map the ground surface deformation modeling is presented using InSAR technology over Sarpol-e Zahab on 25th November 2018 as a study case. For surface deformation modeling and detection of the ground movement due to earthquake SARPROZ in MATLAB programming language is used and discussed. Results show that there is a general ground movement due to the Sarpol-e Zahab earthquake between -7 millimeter to +18 millimeter in the study area. This research verified previous researches on the advanced image analysis techniques employed for mapping ground movement, where InSAR provides a reliable tool for assisting engineers and the decision-maker in choosing proper policies in a time of disasters. Based on the result, 574 out of 682 damaged buildings and infrastructures due to the 2017 Sarpol-e Zahab earthquake have moved from -2 to +17 mm due to the 2018 earthquake with a magnitude of 6.3 Richter. Results show that mountainous areas have suffered land subsidence, where urban areas had land uplift.

철도차량내의 효율적인 인터넷 서비스를 위한 Stateless 기반의 Care of Address 구성방안 (The Stateless Care of Address Configuration Scheme To Provide an Efficient Internet Service in a Train)

  • 이일호;이준호
    • 한국컴퓨터정보학회논문지
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    • 제14권9호
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    • pp.37-46
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    • 2009
  • 철도차량에 탑재된 이동 라우터(Mobile Router:MR)의 이동방향은 랜덤하게 이동하는 일반 무선단말기와 달리 선로를 따라 양방향 이동으로 제한된다. 따라서 이동라우터와 접속된 액세스 라우터 (Access Router:AR)은 인접한 이웃 AR의 주소정보를 이용하여 이동라우터의 2계층, 3계층 핸드오프 수행 전에 이동라우터 대신 미리 Care of Address(CoA)를 구성할 수 있다. 이동라우터는 현재 접속된 AR에서 어느 AR 영역으로 이동하더라도 이동검출과정 후 현지 AR로부터 새로운 CoA를 즉시 획득할 수 있게 된다. 성능분석결과, 제안한 방안은 Stateless 방식과 달리 별도의 CoA 과정과 주소중복확인절차(Duplicate Address Detection:DAD)를 수행하지 않아 Stateless 방식보다 최소 약 1.8(s), 최대 4.98(s) 빠르게 CoA를 획득할 수 있음을 확인할 수 있었다.

영어 강세 교정을 위한 주변 음 특징 차를 고려한 강조점 검출 (Prominence Detection Using Feature Differences of Neighboring Syllables for English Speech Clinics)

  • 심성건;유기선;성원용
    • 말소리와 음성과학
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    • 제1권2호
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    • pp.15-22
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    • 2009
  • Prominence of speech, which is often called 'accent,' affects the fluency of speaking American English greatly. In this paper, we present an accurate prominence detection method that can be utilized in computer-aided language learning (CALL) systems. We employed pitch movement, overall syllable energy, 300-2200 Hz band energy, syllable duration, and spectral and temporal correlation as features to model the prominence of speech. After the features for vowel syllables of speech were extracted, prominent syllables were classified by SVM (Support Vector Machine). To further improve accuracy, the differences in characteristics of neighboring syllables were added as additional features. We also applied a speech recognizer to extract more precise syllable boundaries. The performance of our prominence detector was measured based on the Intonational Variation in English (IViE) speech corpus. We obtained 84.9% accuracy which is about 10% higher than previous research.

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Firing State와 Observing State를 갖는 Lanchester형 전투모형에 관한 연구 (A Study on the Development of a Lanchester-Type Model Incorporating Firing & Observing States in the Direct Fire Engagement)

  • 함일환;최상영;송문호
    • 한국국방경영분석학회지
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    • 제17권2호
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    • pp.44-53
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    • 1991
  • This paper is aimed to develop a Lanchester type combat model for the direct-fire engagement. This model incorporates number of combatants, inter-firing time, detection time by movement, detection probability by the signature of fire, where the inter-firing time and the detection time are assumed to follow a negative exponential distribution. The approach to modeling is as follows : in the process of an engagement, a combatant takes one of the states('observing' state or 'firing' state), a combatant is initially in the observing state, if the combatant detects a target, he changes his state from 'observing' to 'firing' and will cause attrition to the opposing forces. Thus this transition mechanism is embodied into the differential equation form with each transition rate. A limited examination of the validity has been conducted by comparison with the Monte-Carlo simulation model 'BAGSIM', and with a traditional Deterministic Lanchester model.

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An Efficient Vision-based Object Detection and Tracking using Online Learning

  • Kim, Byung-Gyu;Hong, Gwang-Soo;Kim, Ji-Hae;Choi, Young-Ju
    • Journal of Multimedia Information System
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    • 제4권4호
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    • pp.285-288
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    • 2017
  • In this paper, we propose a vision-based object detection and tracking system using online learning. The proposed system adopts a feature point-based method for tracking a series of inter-frame movement of a newly detected object, to estimate rapidly and toughness. At the same time, it trains the detector for the object being tracked online. Temporarily using the result of the failure detector to the object, it initializes the tracker back tracks to enable the robust tracking. In particular, it reduced the processing time by improving the method of updating the appearance models of the objects to increase the tracking performance of the system. Using a data set obtained in a variety of settings, we evaluate the performance of the proposed system in terms of processing time.

선택적 전달 공격 탐지 기법에서의 감시 노드 수 제어기법 (Control Method for the number of check-point nodes in detection scheme for selective forwarding attacks)

  • 이상진;조대호
    • 한국정보통신설비학회:학술대회논문집
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    • 한국정보통신설비학회 2009년도 정보통신설비 학술대회
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    • pp.387-390
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    • 2009
  • Wireless Sensor Network (WSN) can easily compromised from attackers because it has the limited resource and deployed in exposed environments. When the sensitive packets are occurred such as enemy's movement or fire alarm, attackers can selectively drop them using a compromised node. It brings the isolation between the basestation and the sensor fields. To detect selective forwarding attack, Xiao, Yu and Gao proposed checkpoint-based multi-hop acknowledgement scheme (CHEMAS). The check-point nodes are used to detect the area which generating selective forwarding attacks. However, CHEMAS has static probability of selecting check-point nodes. It cannot achieve the flexibility to coordinate between the detection ability and the energy consumption. In this paper, we propose the control method for the number fo check-point nodes. Through the control method, we can achieve the flexibility which can provide the sufficient detection ability while conserving the energy consumption.

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센트로이드(Centroid) 검출 기법을 통한 진자 운동 물체의 실시간 위치 추종 (Real-time position tracking of pendulum movement using the centroid detection method)

  • 윤수진;이재호;박태동;박기헌
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2007년도 심포지엄 논문집 정보 및 제어부문
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    • pp.427-428
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    • 2007
  • 컴퓨터 비전을 이용한 이진 영상 데이터 처리는 사용자가 원하는 객체를 배경과 분리하여 추출하는 데에 유용하며 객체 위치 검출에는 테두리 검출(edge detection), 센트로이드 검출 (centroid detection) 등 다양한 기법들이 사용되어 왔다. 연속해서 움직이는 객체의 위치를 테두리 검출 기법을 이용하여 추종 시, 조명과 환경 잡음에 민감한 영상 데이터의 특성상 객체의 테두리 부분은 매 프레임마다 조금씩 차이가 있어 위치를 검출하는 데에 오차가 발생하기 쉽다. 그러나 센트로이드 기법으로 구할 경우 많은 픽셀의 무게중심을 구하는 것이므로 그 오차를 줄여 빠르고 정확한 위치 검출에 유용하다. 본 논문에서는 LabVIEW를 이용하여 진자운동 하는 물체의 센트로이드 점을 구하여 실시간 위치 검출을 구현한다.

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Faster Detection of Step Initiation for the Lower Limb Exoskeleton with Vertical GRF Events

  • Cha, Dowan;Kang, Daewon;Kim, Kab Il;Kim, Kyung-Soo;Lee, Bum-Joo;Kim, Soohyun
    • Journal of Electrical Engineering and Technology
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    • 제9권2호
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    • pp.733-738
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    • 2014
  • We propose a new approach called as a peak time approach for faster detection of step initiation for the lower limb exoskeleton. As faster detection of step initiation is an important criterion in evaluating the lower limb exoskeleton, many studies have investigated approaches to detect step initiation faster, including using electromyography, the center of pressure, the heel-off time and the toe-off time. In this study, we will utilize vertical ground reaction force events to detect step initiation, and compare our approach with prior approaches. Additionally, we will predict the first step's heel strike time with vertical ground reaction force events from multiple regression equations to support our approach. The lower limb exoskeleton should assist the operator's movement much faster and more reliably with our approach.

주가지수예측에서의 변환시점을 반영한 이단계 신경망 예측모형 (Two-Stage Forecasting Using Change-Point Detection and Artificial Neural Networks for Stock Price Index)

  • 오경주;김경재;한인구
    • Asia pacific journal of information systems
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    • 제11권4호
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    • pp.99-111
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    • 2001
  • The prediction of stock price index is a very difficult problem because of the complexity of stock market data. It has been studied by a number of researchers since they strongly affect other economic and financial parameters. The movement of stock price index has a series of change points due to the strategies of institutional investors. This study presents a two-stage forecasting model of stock price index using change-point detection and artificial neural networks. The basic concept of this proposed model is to obtain intervals divided by change points, to identify them as change-point groups, and to use them in stock price index forecasting. First, the proposed model tries to detect successive change points in stock price index. Then, the model forecasts the change-point group with the backpropagation neural network(BPN). Finally, the model forecasts the output with BPN. This study then examines the predictability of the integrated neural network model for stock price index forecasting using change-point detection.

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