• Title/Summary/Keyword: 이동객체추적

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Training of a Siamese Network to Build a Tracker without Using Tracking Labels (샴 네트워크를 사용하여 추적 레이블을 사용하지 않는 다중 객체 검출 및 추적기 학습에 관한 연구)

  • Kang, Jungyu;Song, Yoo-Seung;Min, Kyoung-Wook;Choi, Jeong Dan
    • The Journal of The Korea Institute of Intelligent Transport Systems
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    • v.21 no.5
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    • pp.274-286
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    • 2022
  • Multi-object tracking has been studied for a long time under computer vision and plays a critical role in applications such as autonomous driving and driving assistance. Multi-object tracking techniques generally consist of a detector that detects objects and a tracker that tracks the detected objects. Various publicly available datasets allow us to train a detector model without much effort. However, there are relatively few publicly available datasets for training a tracker model, and configuring own tracker datasets takes a long time compared to configuring detector datasets. Hence, the detector is often developed separately with a tracker module. However, the separated tracker should be adjusted whenever the former detector model is changed. This study proposes a system that can train a model that performs detection and tracking simultaneously using only the detector training datasets. In particular, a Siam network with augmentation is used to compose the detector and tracker. Experiments are conducted on public datasets to verify that the proposed algorithm can formulate a real-time multi-object tracker comparable to the state-of-the-art tracker models.

Moving Object Tracking Scheme based on Polynomial Regression Prediction in Sparse Sensor Networks (저밀도 센서 네트워크 환경에서 다항 회귀 예측 기반 이동 객체 추적 기법)

  • Hwang, Dong-Gyo;Park, Hyuk;Park, Jun-Ho;Seong, Dong-Ook;Yoo, Jae-Soo
    • The Journal of the Korea Contents Association
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    • v.12 no.3
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    • pp.44-54
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    • 2012
  • In wireless sensor networks, a moving object tracking scheme is one of core technologies for real applications such as environment monitering and enemy moving tracking in military areas. However, no works have been carried out on processing the failure of object tracking in sparse sensor networks with holes. Therefore, the energy consumption in the existing schemes significantly increases due to plenty of failures of moving object tracking. To overcome this problem, we propose a novel moving object tracking scheme based on polynomial regression prediction in sparse sensor networks. The proposed scheme activates the minimum sensor nodes by predicting the trajectory of an object based on polynomial regression analysis. Moreover, in the case of the failure of moving object tracking, it just activates only the boundary nodes of a hole for failure recovery. By doing so, the proposed scheme reduces the energy consumption and ensures the high accuracy for object tracking in the sensor network with holes. To show the superiority of our proposed scheme, we compare it with the existing scheme. Our experimental results show that our proposed scheme reduces about 47% energy consumption for object tracking over the existing scheme and achieves about 91% accuracy of object tracking even in sensor networks with holes.

Realization for Moving Object Sensing and Path Tracking System using Stereo Line CCDs (스테레오 라인 CCD를 이용한 이동객체감지 및 경로추적 시스템 구현)

  • Ryu, Kwang-Ryol;Kim, Young-Bin
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.12 no.11
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    • pp.2050-2056
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    • 2008
  • A realization for moving object sensing and tracking system in two dimensional plane using stereo line CCDs and lighting source is presented in this paper. The system is realized that instead of processing camera images directly, two line CCD sensor and input line image is used to measure two dimensional distance by comparing the brightness on line CCDs. The algorithms are used the moving object sensing, path tracking and coordinate converting method. To ensure the effective detection of moving path, a detection algorithm to evaluate the reliability of each measured distance is developed. The realized system results are that the performance of moving object recognizing shows 5mm resolution, and enables to track a moving path of object per looms period.

Robust Contour Tracking for Deformable Objects (객체 변형에 강건한 칸투어 추적)

  • 임성훈;박상철;이성환
    • Proceedings of the Korean Information Science Society Conference
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    • 2002.10d
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    • pp.610-612
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    • 2002
  • 본 논문에서는 복잡 배경을 포함한 비디오 영상에서 객체 변형 및 겹침에 강건한 칸투어 추적 방법을 제안한다. 복잡 배경에서의 칸투어 추출 문제를 해결하기 위해 텍스처 분석과 노이즈 필터링 과정을 거치며, 보다 객체 원형에 가까운 칸투어 추출을 위해 각 칸투어 포인터 간 최소 경로 측정 알고리즘을 적용한다. 객체 추적 방법에 있어서 추출된 칸투어 정보는 연속된 프레임 상에서 객체 움직임이 발생했을 때 추적 위치를 판별하기 위한 모션 벡터로 사용되며, 시점에 따라 형태가 변하는 상황을 포함한 팬, 틸트, 줌에도 안정적 추적이 가능하게 하기 위해, 폐곡선을 이루는 각 칸투어 포인터들의 움직임 벡터와 칸투어내 면적의 변화에서 측정되는 이동도 측정을 통하여 객체 위치 추적을 가능하게 하였다. 또한 매 추적 과정을 진행함에 있어서 다른 객체의 겹침 및 모양변형 발생여부 검사과정을 통하여, 안정적인 추적이 가능하게 하였다. 본 논문에서 제안한 방법의 성능을 검증하기 위해 다양한 배경을 갖는 복잡 배경에 존재하는 비정형 객체를 대상으로 실험하였고, 제안된 방법이 효율적임을 확인할 수 있었다.

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Research on Object Detection Library Utilizing Spatial Mapping Function Between Stream Data In 3D Data-Based Area (3D 데이터 기반 영역의 stream data간 공간 mapping 기능 활용 객체 검출 라이브러리에 대한 연구)

  • Gyeong-Hyu Seok;So-Haeng Lee
    • The Journal of the Korea institute of electronic communication sciences
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    • v.19 no.3
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    • pp.551-562
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    • 2024
  • This study relates to a method and device for extracting and tracking moving objects. In particular, objects are extracted using different images between adjacent images, and the location information of the extracted object is continuously transmitted to provide accurate location information of at least one moving object. It relates to a method and device for extracting and tracking moving objects based on tracking moving objects. People tracking, which started as an expression of the interaction between people and computers, is used in many application fields such as robot learning, object counting, and surveillance systems. In particular, in the field of security systems, cameras are used to recognize and track people to automatically detect illegal activities. The importance of developing a surveillance system, that can detect, is increasing day by day.

In Ubiquitous Environment, Test Bed System for Comparison of Moving Objects Position Tracking Methods (유비쿼터스 환경에서의 이동 객체 위치 추적 방법 비교를 위한 테스트 베드 시스템)

  • 한득춘;김시완;이기준
    • Proceedings of the Korean Information Science Society Conference
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    • 2004.04b
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    • pp.193-195
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    • 2004
  • 유비쿼터스 환경에서 모든 이동 객체들의 정확한 위치를 추적하는 것은 현실상 불가능하므로, 현실적인 대안으로 위치 추적 방법을 사용 찬다. 현재 위치 추적 방법들은 많이 개발되고 있지만 이것을 비교 실험할 수 있는 환경이 미흡한 실정이다. 이에, 본 논문에서는 여러 가지 위치 추적 방법을 비교 실험 할 수 있는 테스트 베드 시스템을 구현하였다. 또한 본 논문에서 구현한 테스트 베드 시스템에서 현재 나와 있는 여러 가지 위치 추적 방법을 실험을 통해 비교, 분석해 보았다.

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Real Time Object Tracking Method using Multiple Cameras (다중 카메라를 이용한 실시간 객체 추적 방법)

  • Jang, In-Tae;Kim, Dong-Woo;Song, Young-Jun;Kwon, Hyeok-Bong;Ahn, Jae-Hyeong
    • Journal of Korea Society of Industrial Information Systems
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    • v.17 no.4
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    • pp.51-59
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    • 2012
  • Recently, the study about object tracking using image processing has been active in the field of security and surveillance. Existing security and surveillance systems using multiple cameras have been operating independently. Thus, the chase was difficult when the tracking object move to other monitored areas. In this paper, we propose the way to change the control of camera automatically following the moving direction of objects in multiple cameras. The proposed method detects the object and tracks the object using color information and direction information of object. The color information obtains using the hue and the direction information obtains using the optical flow. At this time, the optical flow is detected for the entire image area of an object that is not applied only to reduce the computational complexity makes it possible to track in real time. In addition, it can be solved to inconvenience of security surveillance system to use existing camera by tracking an object automatically.

R-tree Update Technique for Indexing the Positions of Moving Objects (이동 객체 위치 색인을 위한 R-트리 갱신 기법)

  • 권동섭;이상준;이석호
    • Proceedings of the Korean Information Science Society Conference
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    • 2003.04a
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    • pp.737-739
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    • 2003
  • 최근에 이동 객체의 위치를 추적하는 기술은 여러 응용 분야에서 중요성이 증대되고 있다. 그러나 지속적으로 움직이는 이동 객체의 위치를 추적하기 위해서는 매우 많은 수의 인덱스 변경 연산을 수행하여야 하므로 R-트리와 같은 전통적인 공간 인덱스 구조로는 처리하기 어렵다. 이러한 문제를 해결하기 위하여 객체의 움직임을 간단한 선형 함수로 가정하여 색인하는 연구들이 있어왔지만, 실제 응용에서는 객체의 움직임이 매우 복잡하므로 이러한 방법을 이용하기 적합하지 않다. 본 논문에서는 복잡한 움직임을 가지는 객체를 효율적으로 색인하기 위한 R-트리의 지연 갱신 기법을 제안한다. 이 기법은 객체가 이동할 때마다 트리의 구조를 변경하지 않고, 객체가 이전에 속해 있던 R-트리의 MBR(Minimum Bounding Rectangle)을 벗어날 때만 트리의 구조를 변경하므로 R-트리의 갱신 연산 비용을 크게 줄일 수 있다. 뿐만 아니라, 기본적인 R-트리의 구조와 연산을 그대로 이용하므로 다양한 R-트리 변종 트리에서도 쉽게 적용이 가능하고, R-트리를 이용하여 이미 구축되어 있는 다양한 응용 환경에 쉽게 이용할 수 있다.

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Object Extraction and Tracking out of Color Image in Real-Time (실시간 칼라영상에서 객체추출 및 추적)

  • Choi, Nae-Won;Oh, Hae-Seok
    • The KIPS Transactions:PartB
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    • v.10B no.1
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    • pp.81-86
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    • 2003
  • In this paper, we propose the tracking method of moving object which use extracted object by difference between background image and target image in fixed domain. As a extraction method of object, calculate not pixel of full image but predefined some edge pixel of image to get a position of new object. Since the center area Is excluded from calculation, the extraction time is efficiently reduced. To extract object in the predefined area, get a starting point in advance and then extract size of width and height of object. Central coordinate is used to track moved object.

Swarm Based Robust Object Tracking Algorithm Using Adaptive Parameter Control (적응적 파라미터 제어를 이용하는 스웜 기반의 강인한 객체 추적 알고리즘)

  • Bae, Changseok;Chung, Yuk Ying
    • The Journal of Korean Institute of Next Generation Computing
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    • v.13 no.5
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    • pp.39-50
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    • 2017
  • Moving object tracking techniques can be considered as one of the most essential technique in the video understanding of which the importance is much more emphasized recently. However, irregularity of light condition in the video, variations in shape and size of object, camera motion, and occlusion make it difficult to tracking moving object in the video. Swarm based methods are developed to improve the performance of Kalman filter and particle filter which are known as the most representative conventional methods, but these methods also need to consider dynamic property of moving object. This paper proposes adaptive parameter control method which can dynamically change weight value among parameters in particle swarm optimization. The proposed method classifies each particle to 3 groups, and assigns different weight values to improve object tracking performance. Experimental results show that our scheme shows considerable improvement of performance in tracking objects which have nonlinear movements such as occlusion or unexpected movement.