• 제목/요약/키워드: Detection-by-tracking

검색결과 808건 처리시간 0.034초

Real-Time Vehicle Detector with Dynamic Segmentation and Rule-based Tracking Reasoning for Complex Traffic Conditions

  • Wu, Bing-Fei;Juang, Jhy-Hong
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제5권12호
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    • pp.2355-2373
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    • 2011
  • Vision-based vehicle detector systems are becoming increasingly important in ITS applications. Real-time operation, robustness, precision, accurate estimation of traffic parameters, and ease of setup are important features to be considered in developing such systems. Further, accurate vehicle detection is difficult in varied complex traffic environments. These environments include changes in weather as well as challenging traffic conditions, such as shadow effects and jams. To meet real-time requirements, the proposed system first applies a color background to extract moving objects, which are then tracked by considering their relative distances and directions. To achieve robustness and precision, the color background is regularly updated by the proposed algorithm to overcome luminance variations. This paper also proposes a scheme of feedback compensation to resolve background convergence errors, which occur when vehicles temporarily park on the roadside while the background image is being converged. Next, vehicle occlusion is resolved using the proposed prior split approach and through reasoning for rule-based tracking. This approach can automatically detect straight lanes. Following this step, trajectories are applied to derive traffic parameters; finally, to facilitate easy setup, we propose a means to automate the setting of the system parameters. Experimental results show that the system can operate well under various complex traffic conditions in real time.

Development of YOLOv5s and DeepSORT Mixed Neural Network to Improve Fire Detection Performance

  • Jong-Hyun Lee;Sang-Hyun Lee
    • International Journal of Advanced Culture Technology
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    • 제11권1호
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    • pp.320-324
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    • 2023
  • As urbanization accelerates and facilities that use energy increase, human life and property damage due to fire is increasing. Therefore, a fire monitoring system capable of quickly detecting a fire is required to reduce economic loss and human damage caused by a fire. In this study, we aim to develop an improved artificial intelligence model that can increase the accuracy of low fire alarms by mixing DeepSORT, which has strengths in object tracking, with the YOLOv5s model. In order to develop a fire detection model that is faster and more accurate than the existing artificial intelligence model, DeepSORT, a technology that complements and extends SORT as one of the most widely used frameworks for object tracking and YOLOv5s model, was selected and a mixed model was used and compared with the YOLOv5s model. As the final research result of this paper, the accuracy of YOLOv5s model was 96.3% and the number of frames per second was 30, and the YOLOv5s_DeepSORT mixed model was 0.9% higher in accuracy than YOLOv5s with an accuracy of 97.2% and number of frames per second: 30.

원거리 차량 추적 감지 방법 (Methodology for Vehicle Trajectory Detection Using Long Distance Image Tracking)

  • 오주택;민준영;허병도
    • 한국도로학회논문집
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    • 제10권2호
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    • pp.159-166
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    • 2008
  • 최근 교통감시시스템은 실시간의 영상검지시스템(VIPS)을 가장 선호하고 있으며, 그 수요는 매년 증가하고 있는 추세이다. 일반적으로 영상검지시스템은 공간기반의 검지알고리즘을 사용하고 있으며, 교통량, 속도, 점유율 등의 교통정보를 제공하고 있다. 현재 전 세계적으로 이미 상용화되어 있는 대부분의 영상검지시스템들은 Tripwire기반의 검지영역 내 차량의 존재유무를 판단하여 교통정보를 수집하는 알고리즘으로 구성되어 있으나, 개별차량에 대한 걸지는 불가능한 한계를 갖고 있다. 반면 개벽차량의 추적시스템은 보다 구체적인 공간적 교통정보를 제공할 수 있어 사고검지, 급차선 변경 등 교통정보를 보다 다양화 할 수 있다는 장점이 있으나 추적길이가 불과 100미터이내이면, 그 이상 관측하기 위해서는 운영자가 카메라를 줌인을 하여 영상을 확대하여야 한다. 따라서 본 논문에서는 차량 추적의 효과를 높이기 위해서 기존의 100미터 이내 추적거리를 여러 대의 CCTV시스템을 이용하더라도 200미터이상으로 확대함으로써 사고 또는 비정상적 차량흐름을 검지할 수 있는 알고리즘을 제안한다.

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구간선형기동 능동소나표적 탐지 추적 성능향상을 위한 허프변환 클러터제거 알고리즘 (Hough Transform Clutter Reduction Algorithm for Piecewise Linear Path Active Sonar Target Detection and Tracking Improvement)

  • 김성원
    • 한국음향학회지
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    • 제32권4호
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    • pp.354-360
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    • 2013
  • 본 논문은 고밀도 클러터 환경에서 클러터 제거기능을 이용하여 구간선형기동 수중운동체의 탐지 및 추적에 대한 성능향상을 다루었다. 고밀도 클러터 환경에서 허프변환(Hough transform)을 이용한 클러터 제거 알고리즘을 통해 클러터 특성을 나타내는 측정치를 제거한 후 남은 측정치에 대해 추적 필터인 CMKF-L을 적용하여 추적성능을 확인하였다. 모의 신호와 해상실험데이터를 이용하여 실험을 수행하였으며 고밀도 클러터 환경에서 제안하는 알고리즘을 적용하여 클러터는 상당수 제거되고 표적에 대한 추적은 지속적으로 안정되게 수행됨을 확인하였다.

시각을 이용한 이동 로봇의 강건한 경로선 추종 주행 (Vision-Based Mobile Robot Navigation by Robust Path Line Tracking)

  • 손민혁;도용태
    • 센서학회지
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    • 제20권3호
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    • pp.178-186
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    • 2011
  • Line tracking is a well defined method of mobile robot navigation. It is simple in concept, technically easy to implement, and already employed in many industrial sites. Among several different line tracking methods, magnetic sensing is widely used in practice. In comparison, vision-based tracking is less popular due mainly to its sensitivity to surrounding conditions such as brightness and floor characteristics although vision is the most powerful robotic sensing capability. In this paper, a vision-based robust path line detection technique is proposed for the navigation of a mobile robot assuming uncontrollable surrounding conditions. The technique proposed has four processing steps; color space transformation, pixel-level line sensing, block-level line sensing, and robot navigation control. This technique effectively uses hue and saturation color values in the line sensing so to be insensitive to the brightness variation. Line finding in block-level makes not only the technique immune from the error of line pixel detection but also the robot control easy. The proposed technique was tested with a real mobile robot and proved its effectiveness.

트래킹 Gaze와 실시간 Eye (Real Time Eye and Gaze Tracking)

  • 조현섭;민진경
    • 한국산학기술학회:학술대회논문집
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    • 한국산학기술학회 2004년도 추계학술대회
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    • pp.234-239
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    • 2004
  • This paper describes preliminary results we have obtained in developing a computer vision system based on active IR illumination for real time gaze tracking for interactive graphic display. Unlike most of the existing gaze tracking techniques, which often require assuming a static head to work well and require a cumbersome calibration process fur each person, our gaze tracker can perform robust and accurate gaze estimation without calibration and under rather significant head movement. This is made possible by a new gaze calibration procedure that identifies the mapping from pupil parameters to screen coordinates using the Generalized Regression Neural Networks (GRNN). With GRNN, the mapping does not have to be an analytical function and head movement is explicitly accounted for by the gaze mapping function. Furthermore, the mapping function can generalize to other individuals not used in the training. The effectiveness of our gaze tracker is demonstrated by preliminary experiments that involve gaze-contingent interactive graphic display.

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Multiple Moving Person Tracking Based on the IMPRESARIO Simulator

  • Kim, Hyun-Deok;Jin, Tae-Seok
    • Journal of information and communication convergence engineering
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    • 제6권3호
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    • pp.331-336
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    • 2008
  • In this paper, we propose a real-time people tracking system with multiple CCD cameras for security inside the building. To achieve this goal, we present a method for 3D walking human tracking based on the IMPRESARIO framework incorporating cascaded classifiers into hypothesis evaluation. The efficiency of adaptive selection of cascaded classifiers has been also presented. The camera is mounted from the ceiling of the laboratory so that the image data of the passing people are fully overlapped. The implemented system recognizes people movement along various directions. To track people even when their images are partially overlapped, the proposed system estimates and tracks a bounding box enclosing each person in the tracking region. The approximated convex hull of each individual in the tracking area is obtained to provide more accurate tracking information. We have shown the improvement of reliability for likelihood calculation by using cascaded classifiers. Experimental results show that the proposed method can smoothly and effectively detect and track walking humans through environments such as dense forests.

표적의 부분가림이 존재하는 환경에서 견실한 추적을 위한 영상 표적 탐지, 추적 알고리듬 연구 (A Study of Image Target Detection and Tracking for Robust Tracking in an Occluded Environment)

  • 김용;송택렬
    • 제어로봇시스템학회논문지
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    • 제16권10호
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    • pp.982-990
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    • 2010
  • In a target tracking system using image information from a CCD (Charged Couple Device) or an IIR (Imaging Infra-red) sensor, occluded targets can result in track losses. If the target is occlued by background objects such as buildings or trees, probability of track existence will be reduced sharply and track will be terminated due to track maintenance algorithms. This paper proposes data association algorithm based on target existence for the robust tracking performance. we suggest the HPDA (Highest Probability Data Association) algorithm based on target existence and the tracking performance is compared with the established method based on target perceivability. Image tracking simulation that utilizes virtual 3D images and real IR images is employed to evaluate the robustness of the proposed tracking algorithm.

마커인식을 통한 동영상 Tracking 데이터 추출에 관한 연구 (A Study on the video tracking data extracted by the marker recognition)

  • 박정근;한종성;이근호;이기정
    • 한국콘텐츠학회:학술대회논문집
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    • 한국콘텐츠학회 2014년도 추계 종합학술대회 논문집
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    • pp.213-214
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    • 2014
  • 본 논문에서는 증강현실 저작도구를 사용 할 때 마커인식을 통하여 동영상의 Tracking 데이터를 추출하는 방법을 제안한다. 실험에 이용한 마커는 직사각형모양의 특징점이 잘 나타나는 물체로서, 사각형 마커인식을 위해 CornerDetection과 Matching기법을 사용하였다. Tracking을 활용하는 방식에는 동영상의 기준프레임을 활용하여 Tracking하는 방법과 각 프레임을 순차적으로 Tracking하여 비교하는 방법, 그리고 마커를 사용하지 않고 동영상의 Tracking데이터를 추출하는 방법이 있는데 본 논문에서는 이 세 가지 방법을 비교하여, 증강현실 저작도구의 상용화를 위한 최적화된 알고리즘을 제안한다.

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투영된 모션과 히스토그램 인터섹션을 이용한 강건한 물체추적 (Robust object tracking using projected motion and histogram intersection)

  • 이봉석;문영식
    • 정보처리학회논문지B
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    • 제9B권1호
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    • pp.99-104
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    • 2002
  • 기존의 물체추적기법은 템플릿 매칭, 물체의 경계선 재 검출, 물체의 움직임 정보 등을 사용하여 수행되었다. 그러나, 템플릿 매칭의 경우 많은 계산 시간을 요구하고, 경계선을 재 검출하는 경우 윤곽선이 잘못 설정되는 경우가 있으며, 물체의 움직임 정보를 사용하는 경우에는 움직이는 카메라에서 움직이는 물체만을 추적하기가 쉽지 않은 단점이 있다. 본 논문에서는 투영된 모션과 히스토그램 인터섹션을 이용한 강건한 물체추적 방법을 제안한다. 초기 객체추출은 영상분할 후 영역선택을 통하여 구성하고 선택된 객체를 가로 및 세로의 밝기 값을 1차원 신호로 투영하여 객체의 개략적인 평행이동 벡터를 추정한다. 추정된 변위를 기준으로 하여 객체의 가능한 회전 및 스케일에 대한 템플릿을 구성하고, 이들에 대하여 개선된 히스토그램 인터섹션을 사용하여 물체 추적을 수행한다. 제안한 알고리즘의 강건한 물체추적 성능을 실험에 의하여 확인하였다.