• 제목/요약/키워드: Detect3D

검색결과 828건 처리시간 0.026초

Stereo Vision Based 3-D Motion Tracking for Human Animation

  • Han, Seung-Il;Kang, Rae-Won;Lee, Sang-Jun;Ju, Woo-Suk;Lee, Joan-Jae
    • 한국멀티미디어학회논문지
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    • 제10권6호
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    • pp.716-725
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    • 2007
  • In this paper we describe a motion tracking algorithm for 3D human animation using stereo vision system. This allows us to extract the motion data of the end effectors of human body by following the movement through segmentation process in HIS or RGB color model, and then blob analysis is used to detect robust shape. When two hands or two foots are crossed at any position and become disjointed, an adaptive algorithm is presented to recognize whether it is left or right one. And the real motion is the 3-D coordinate motion. A mono image data is a data of 2D coordinate. This data doesn't acquire distance from a camera. By stereo vision like human vision, we can acquire a data of 3D motion such as left, right motion from bottom and distance of objects from camera. This requests a depth value including x axis and y axis coordinate in mono image for transforming 3D coordinate. This depth value(z axis) is calculated by disparity of stereo vision by using only end-effectors of images. The position of the inner joints is calculated and 3D character can be visualized using inverse kinematics.

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Human Head Mouse System Based on Facial Gesture Recognition

  • Wei, Li;Lee, Eung-Joo
    • 한국멀티미디어학회논문지
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    • 제10권12호
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    • pp.1591-1600
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    • 2007
  • Camera position information from 2D face image is very important for that make the virtual 3D face model synchronize to the real face at view point, and it is also very important for any other uses such as: human computer interface (face mouth), automatic camera control etc. We present an algorithm to detect human face region and mouth, based on special color features of face and mouth in $YC_bC_r$ color space. The algorithm constructs a mouth feature image based on $C_b\;and\;C_r$ values, and use pattern method to detect the mouth position. And then we use the geometrical relationship between mouth position information and face side boundary information to determine the camera position. Experimental results demonstrate the validity of the proposed algorithm and the Correct Determination Rate is accredited for applying it into practice.

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옵셋팅을 위한 정규 삼각망 추출 (Extracting a Regular Triangular Net for Offsetting)

  • 정원형;정춘석;신하용;최병규
    • 한국CDE학회논문집
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    • 제9권3호
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    • pp.203-211
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    • 2004
  • In this paper, we present a method of extracting a regular 2-manifold triangular net from a triangular net including degenerate and self-intersected triangles. This method can be applied to obtaining an offset model without degenerate and self-intersected triangles. Then this offset model can be used to generate CL curves and extract machining features for CAPP The robust and efficient algorithm to detect valid triangles by growing regions from an initial valid triangle is presented. The main advantage of the algorithm is that detection of valid triangles is performed only in valid regions and their adjacent selfintersections, and omitted in the rest regions (invalid regions). This advantage increases robustness of the algorithm. As well as a k-d tree bucketing method is used to detect self-intersections efficiently.

가중모델 Hough 변환을 이용한 2D 심초음파도에서의 좌심실 윤곽선 자동 검출 (Automatic Detection of Left Ventricular Contour Using Hough Transform with Weighted Model from 2D Echocardiogram)

  • 김명남;조진호
    • 대한의용생체공학회:의공학회지
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    • 제15권3호
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    • pp.325-332
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    • 1994
  • 본 논문에서는 2D 심초음파영상으로 부터 가중모델을 검출하고 이 모델로써 Hough변환을 수행하여 좌심실의 심내벽윤곽을 검출하는 방법을 제안하였다. 제안된 방법의 수행은 다음과 같이 크게 두단계로 나누어진다. 첫번째 단계에서는 근사적인 심내벽 모델과 모델의 중심을 검출하기 위하여 근사모델 검출 알고리듬이 수행되고 그런다음, 검출된 모델로써 가중모델을 구성한다. 두번째 단계에서는 가중모델과 에지영상을 이용한 Hough변환을 수행하므로써 좌심실 동공의 중심을 자동적으로 찾은 다음, 가중모델, 에지영상 및 동공의 중심과 같은 지식을 이용하여 심내벽 윤곽을 검출하였다.

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정밀하지 않은 깊이정보와 2D움직임 정보를 이용한 사용자 검출과 주요 신체부위 추정 (User Detection and Main Body Parts Estimation using Inaccurate Depth Information and 2D Motion Information)

  • 이재원;홍성훈
    • 방송공학회논문지
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    • 제17권4호
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    • pp.611-624
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    • 2012
  • '제스처'는 음성을 제외한 가장 직관적인 인간의 의사표현 수단이다. 따라서 키보드나 마우스를 대체하여 제스처를 입력으로 컴퓨터를 제어할 수 있는 방법에 대한 연구가 많이 진행되고 있다. 이러한 연구에서 사용자 객체의 검출과 주요 신체부위의 추정은 매우 중요한 과정 중의 하나이다. 본 논문에서는 깊이정보가 부정확한 조건에서 사용자 객체검출과 주요 신체부위를 추정하는 방법을 제시한다. 본 논문에서는 2D 영상정보와 3D 깊이정보를 이용하여 조명 변화와 잡음에 강인하고, 3D 깊이정보를 1D 신호로 변환하여 처리함으로써 실시간에 적합하며, 이전 객체정보를 이용하여 더욱 정확하고 환경변화에 강인한 사용자 검출 방법을 제안한다. 또한 주요 신체부위 추정 방법에서 본 논문에서는 2D 외곽선 정보와 3D 깊이정보 및 추적을 혼합 사용하여 사용자 자세를 추정하는 방법을 제안한다. 실험결과 제안된 사용자 객체 검출방법은 2D정보만을 이용하는 방법에 비해 조명변화와 복잡한 환경에 강인하고, 깊이정보가 부정확한 경우에도 정확한 객체검출을 수행하였다. 또한 제안된 주요 신체부위 추정방법은 2D 외곽선 정보만 이용할 경우 겹친 부분에 대한 검출이 불가능하고, 색상 정보를 사용하는 방법은 조명이나 환경에 민감한 단점을 극복함을 확인할 수 있다.

산업용 로봇의 3차원 작업 위치 결정 방법 (3-D Working Point Decision Method for Industrial Robot)

  • 류항기;이재국;김병우;최원호
    • 전기학회논문지
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    • 제57권1호
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    • pp.121-127
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    • 2008
  • In this paper, we propose a new 3-D working point determination method for industrial robot using vision camera system and block interpolation technique with feature points in a vehicle body. To detect the feature points in a vehicle body, we applied the pattern matching method. For determination of working point, we applied block interpolation method. The block consists of 3-D type blocks with detected feature points per section. 3-D position is selected by Euclidean distance between 245 feature values and an acquired feature point. In order to evaluate the proposed algorithm, experiments are performed in glass equipment process in real industrial vehicle assembly line.

효과적인 3차원 객체 인식 및 자세 추정을 위한 외형 및 SIFT 특징 정보 결합 기법 (Combining Shape and SIFT Features for 3-D Object Detection and Pose Estimation)

  • 탁윤식;황인준
    • 전기학회논문지
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    • 제59권2호
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    • pp.429-435
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    • 2010
  • Three dimensional (3-D) object detection and pose estimation from a single view query image has been an important issue in various fields such as medical applications, robot vision, and manufacturing automation. However, most of the existing methods are not appropriate in a real time environment since object detection and pose estimation requires extensive information and computation. In this paper, we present a fast 3-D object detection and pose estimation scheme based on surrounding camera view-changed images of objects. Our scheme has two parts. First, we detect images similar to the query image from the database based on the shape feature, and calculate candidate poses. Second, we perform accurate pose estimation for the candidate poses using the scale invariant feature transform (SIFT) method. We earned out extensive experiments on our prototype system and achieved excellent performance, and we report some of the results.

MB-OFDM UWB 시스템에서 DAA 기술 기준 적용을 위한 피 간섭 신호 검출 방안 연구 (A Detection Algorithm Study of the Victim Signal for the DAA Regulation in MB-OFDM UWB System)

  • 신철호;최상성
    • 한국전자파학회논문지
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    • 제20권12호
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    • pp.1297-1307
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    • 2009
  • 본 논문의 목적은 3.1~4.8 GHz 대역에서 UWB를 허용하기 위해 MB-OFDM UWB 통신을 수행하지 않는 silent time 동안 MB-OFDM UWB 시스템 수신 구조를 이용하여 국내 DAA 기술 기준에서 정한 -80 dBm/MHz 이상의 피 간섭 신호를 검출하고 피 간섭 신호의 주파수 대역을 추정하는 알고리즘을 제안하는 것이다. 국내 DAA 기술 기준에서는 UWB 기기에서 -80 dBm/MHz 이상의 피 간섭 신호를 검출할 경우, 2초 이내에 회피 동작을 수행하도록 정의하고 있다. 본 논문에서는 UWB 통신 채널 변경을 통한 간섭 회피 동작을 수행하기 위해 -80 dBm/MHz 이상의 피 간섭 신호를 시간 영역 수신 신호 정보를 이용하여 검출하는 피 간섭 신호 검출 알고리즘과 UWB 통신 대역을 유지하면서 피 간섭 신호가 존재하는 대역에서만 송신 출력을 -70 dBm/MHz 이하로 낮추는 tone-nulling 회피 동작을 수행하기 위해 주파수 영역 정보를 이용하여 피 간섭 신호의 subcarrier 위치를 추적하는 알고리즘을 제시하고, 시뮬레이션을 통해 성능을 검증하였다.

Pitch Detection Using Variable LPF

  • Hong KEUM
    • 한국음향학회:학술대회논문집
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    • 한국음향학회 1994년도 FIFTH WESTERN PACIFIC REGIONAL ACOUSTICS CONFERENCE SEOUL KOREA
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    • pp.963-970
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    • 1994
  • In speech signal processing, it is very important to detect the pitch exactly. The algorithms for pitch extraction that have been proposed until now are not enough to detect the fine pitch in speech signal. Thus we propose the new algorithm which takes advantage of the G-peak extraction. It is the method to find MZCI(maximum zer-crossing interval) which is defined as cut-off bandwidth rate of LPF (low pass filter)and detect the pitch period of the voiced signals. This algorithm performs robustly with a gross error rate of 3.63% even in 0 dB SNR environment. The gross error rate for clean speech is only 0.18%. Also it is able to process all course with speed.

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가우시안 혼합모델 기반 3차원 차량 모델을 이용한 복잡한 도시환경에서의 정확한 주차 차량 검출 방법 (Accurate Parked Vehicle Detection using GMM-based 3D Vehicle Model in Complex Urban Environments)

  • 조영근;노현철;정명진
    • 로봇학회논문지
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    • 제10권1호
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    • pp.33-41
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    • 2015
  • Recent developments in robotics and intelligent vehicle area, bring interests of people in an autonomous driving ability and advanced driving assistance system. Especially fully automatic parking ability is one of the key issues of intelligent vehicles, and accurate parked vehicles detection is essential for this issue. In previous researches, many types of sensors are used for detecting vehicles, 2D LiDAR is popular since it offers accurate range information without preprocessing. The L shape feature is most popular 2D feature for vehicle detection, however it has an ambiguity on different objects such as building, bushes and this occurs misdetection problem. Therefore we propose the accurate vehicle detection method by using a 3D complete vehicle model in 3D point clouds acquired from front inclined 2D LiDAR. The proposed method is decomposed into two steps: vehicle candidate extraction, vehicle detection. By combination of L shape feature and point clouds segmentation, we extract the objects which are highly related to vehicles and apply 3D model to detect vehicles accurately. The method guarantees high detection performance and gives plentiful information for autonomous parking. To evaluate the method, we use various parking situation in complex urban scene data. Experimental results shows the qualitative and quantitative performance efficiently.