• 제목/요약/키워드: moving object detection

검색결과 402건 처리시간 0.025초

효과적인 이동물체 추적을 위한 색도 영상과 엔트로피 기반의 그림자 제거 (Shadow Removal Based on Chromaticity and Entropy for Efficient Moving Object Tracking)

  • 박기홍
    • 한국항행학회논문지
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    • 제18권4호
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    • pp.387-392
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    • 2014
  • 최근 지능형 비디오 감시를 위한 다양한 연구가 제안되고 있음에도 CCTV 영상에서 이상 징후 판단이 사람에 의해 이루어지고 있어 상황인식을 위한 방법 및 연구가 필요하다. 본 논문에서는 이동물체 검출 및 추적을 위해 RGB 칼라 모델 기반의 색도 영상과 엔트로피 영상을 도출하여 그림자 제거를 수행한 후 이동물체를 추적하는 방법을 제안한다. 이동물체 검출을 위해 잡음 및 주위환경변화에 민감하지만 순간적으로 발생되는 상황인지 환경에서 효과적인 차영상 모델을 적용하였다. 검출한 이동물체 영역에서 RGB 채널의 색도 영상을 기반으로 첫 번째 그림자 후보 영역을 선정하였고, 그레이레벨에서 엔트로피를 계산하여 두 번째 그림자 후보 영역을 추정하여 그림자를 제거하였다. 제안하는 방법의 타당성을 위해 고속도로에서 주행하는 자동차들을 대상으로 실험하였고, 실험 결과 색상과 엔트로피를 이용한 그림자를 제거와 이동물체 추적이 효과적으로 수행됨을 확인하였다.

Algorithm for Detection of Fire Smoke in a Video Based on Wavelet Energy Slope Fitting

  • Zhang, Yi;Wang, Haifeng;Fan, Xin
    • Journal of Information Processing Systems
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    • 제16권3호
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    • pp.557-571
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    • 2020
  • The existing methods for detection of fire smoke in a video easily lead to misjudgment of cloud, fog and moving distractors, such as a moving person, a moving vehicle and other non-smoke moving objects. Therefore, an algorithm for detection of fire smoke in a video based on wavelet energy slope fitting is proposed in this paper. The change in wavelet energy of the moving target foreground is used as the basis, and a time window of 40 continuous frames is set to fit the wavelet energy slope of the suspected area in every 20 frames, thus establishing a wavelet-energy-based smoke judgment criterion. The experimental data show that the algorithm described in this paper not only can detect smoke more quickly and more accurately, but also can effectively avoid the distraction of cloud, fog and moving object and prevent false alarm.

Animal Tracking in Infrared Video based on Adaptive GMOF and Kalman Filter

  • Pham, Van Khien;Lee, Guee Sang
    • 스마트미디어저널
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    • 제5권1호
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    • pp.78-87
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    • 2016
  • The major problems of recent object tracking methods are related to the inefficient detection of moving objects due to occlusions, noisy background and inconsistent body motion. This paper presents a robust method for the detection and tracking of a moving in infrared animal videos. The tracking system is based on adaptive optical flow generation, Gaussian mixture and Kalman filtering. The adaptive Gaussian model of optical flow (GMOF) is used to extract foreground and noises are removed based on the object motion. Kalman filter enables the prediction of the object position in the presence of partial occlusions, and changes the size of the animal detected automatically along the image sequence. The presented method is evaluated in various environments of unstable background because of winds, and illuminations changes. The results show that our approach is more robust to background noises and performs better than previous methods.

Optical Flow Measurement Based on Boolean Edge Detection and Hough Transform

  • Chang, Min-Hyuk;Kim, Il-Jung;Park, Jong an
    • International Journal of Control, Automation, and Systems
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    • 제1권1호
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    • pp.119-126
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    • 2003
  • The problem of tracking moving objects in a video stream is discussed in this pa-per. We discussed the popular technique of optical flow for moving object detection. Optical flow finds the velocity vectors at each pixel in the entire video scene. However, optical flow based methods require complex computations and are sensitive to noise. In this paper, we proposed a new method based on the Hough transform and on voting accumulation for improving the accuracy and reducing the computation time. Further, we applied the Boo-lean based edge detector for edge detection. Edge detection and segmentation are used to extract the moving objects in the image sequences and reduce the computation time of the CHT. The Boolean based edge detector provides accurate and very thin edges. The difference of the two edge maps with thin edges gives better localization of moving objects. The simulation results show that the proposed method improves the accuracy of finding the optical flow vectors and more accurately extracts moving objects' information. The process of edge detection and segmentation accurately find the location and areas of the real moving objects, and hence extracting moving information is very easy and accurate. The Combinatorial Hough Transform and voting accumulation based optical flow measures optical flow vectors accurately. The direction of moving objects is also accurately measured.

첨단운전자보조시스템용 이동객체검출을 위한 광학흐름추정기의 설계 및 구현 (Design and Implementation of Optical Flow Estimator for Moving Object Detection in Advanced Driver Assistance System)

  • 윤경한;정용철;조재찬;정윤호
    • 한국항행학회논문지
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    • 제19권6호
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    • pp.544-551
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    • 2015
  • 본 논문에서는 첨단 운전자 보조 시스템 (ADAS; advanced driver assistance system) 용 이동객체검출 (MOD; moving object detection)을 위한 광학흐름추정기 (OFE; optical flow estimator) 의 하드웨어 구조 설계 결과를 제시하였다. 광학흐름추정 알고리즘은 차량 환경에서 높은 정확도를 나타내는 광역 최적화 (global optimization) 기반 Brox 알고리즘을 적용하였다. Brox 알고리즘의 에너지 범함수 (energy functional)를 최소화 하는 과정에서 생성되는 Euler-Lagrange 방정식을 풀기 위해 하드웨어 구현에 용이한 Cholesky factorization이 적용되었으며, 메모리 접근율 (memory access rate)를 줄이기 위해 시프트 레지스터 뱅크 (shift register bank)를 도입하였다. 하드웨어 구현은 Verilog-HDL을 사용하였으며, FPGA 기반 설계 및 검증이 수행되었다. 제안된 광학흐름추정기는 40.4K개의 logic slice 및 155개의 DSP48s, 11,290 Kbit의 block memory로 구현되었다.

EGML 이동 객체 검출 알고리듬의 고정소수점 구현 및 성능 분석 (A fixed-point implementation and performance analysis of EGML moving object detection algorithm)

  • 안효식;김경훈;신경욱
    • 한국정보통신학회논문지
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    • 제19권9호
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    • pp.2153-2160
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    • 2015
  • EGML (effective Gaussian mixture learning) 기반 이동 객체 검출 (moving object detection; MOD) 알고리듬의 하드웨어 구현을 위한 설계조건을 분석하였다. EGML 알고리듬을 OpenCV 소프트웨어로 구현하고 다양한 영상들에 대한 시뮬레이션을 통해 배경학습 시간과 이동 객체 검출에 영향을 미치는 파라미터 조건을 분석하였다. 또한, 고정소수점 시뮬레이션을 통해 파라미터들의 비트 길이가 이동 객체 검출 성능에 미치는 영향을 평가하고, 최적 하드웨어 설계 조건을 도출하였다. 본 논문의 파라미터 비트 길이를 적용한 고정소수점 이동 객체 검출 모델은 부동소수점 연산 대비 약 절반의 비트 길이를 사용하면서 MOD 성능의 차이는 0.5% 이하이다.

색상 검출 알고리즘을 활용한 물고기로봇의 위치인식과 군집 유영제어 (Position Detection and Gathering Swimming Control of Fish Robot Using Color Detection Algorithm)

  • 무하마드 아크바르;신규재
    • 한국정보처리학회:학술대회논문집
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    • 한국정보처리학회 2016년도 추계학술발표대회
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    • pp.510-513
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    • 2016
  • Detecting of the object in image processing is substantial but it depends on the object itself and the environment. An object can be detected either by its shape or color. Color is an essential for pattern recognition and computer vision. It is an attractive feature because of its simplicity and its robustness to scale changes and to detect the positions of the object. Generally, color of an object depends on its characteristics of the perceiving eye and brain. Physically, objects can be said to have color because of the light leaving their surfaces. Here, we conducted experiment in the aquarium fish tank. Different color of fish robots are mimic the natural swim of fish. Unfortunately, in the underwater medium, the colors are modified by attenuation and difficult to identify the color for moving objects. We consider the fish motion as a moving object and coordinates are found at every instinct of the aquarium to detect the position of the fish robot using OpenCV color detection. In this paper, we proposed to identify the position of the fish robot by their color and use the position data to control the fish robot gathering in one point in the fish tank through serial communication using RF module. It was verified by the performance test of detecting the position of the fish robot.

Moving Vehicle Detection from Single-pass Worldview-3 Imagery Using Spatial Correlation Map

  • Song, Yongjun;Chung, Minkyung;Kim, Yongil
    • 한국측량학회지
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    • 제40권5호
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    • pp.439-448
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    • 2022
  • MV (Moving Vehicle) detection using satellite imagery is important for traffic monitoring and provides a wide range of observations. Specifically, MV detection methods utilizing the time lag in single-pass optical satellite images have been studied for detecting MVs from a single set of images. Because of limitations in detecting MVs outside of roads, most previous studies required road information to limit the moving object to cars on the road. However, it is difficult to obtain road information from inaccessible areas. Therefore, this study proposed a new method for detecting MVs regardless of their locations from single-pass optical satellite images without using additional data. WV-3 (Worldview-3) satellite images were used, and a spatial correlation coefficient map was proposed to detect spatial displacement which denotes MVs across two WV-3 MS images. Finally, evaluation was performed through quantitative metrics and visual inspection. The evaluation results revealed that the proposed method can detect MV movements from the single-pass satellite images. On the contrary, misdetected or undetected MVs due to radiometric differences between the images could be identified by visual inspection. The performance of the proposed method can be improved by minimizing radiometric variations and adding conditions that are robust to radiometric differences between the images.

증강현실 서비스를 위한 Camshift와 SURF를 개선한 객체 검출 및 추적 구현 (Implementation of Improved Object Detection and Tracking based on Camshift and SURF for Augmented Reality Service)

  • 이용환;김흥준
    • 반도체디스플레이기술학회지
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    • 제16권4호
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    • pp.97-102
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    • 2017
  • Object detection and tracking have become one of the most active research areas in the past few years, and play an important role in computer vision applications over our daily life. Many tracking techniques are proposed, and Camshift is an effective algorithm for real time dynamic object tracking, which uses only color features, so that the algorithm is sensitive to illumination and some other environmental elements. This paper presents and implements an effective moving object detection and tracking to reduce the influence of illumination interference, which improve the performance of tracking under similar color background. The implemented prototype system recognizes object using invariant features, and reduces the dimension of feature descriptor to rectify the problems. The experimental result shows that that the system is superior to the existing methods in processing time, and maintains better problem ratios in various environments.

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구조화된 에지정합을 통한 영상 열에서의 이동물체 에지검출 (Moving Object Edge Extraction from Sequence Image Based on the Structured Edge Matching)

  • 안기옥;채옥삼
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2003년도 신호처리소사이어티 추계학술대회 논문집
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    • pp.425-428
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    • 2003
  • Recently, the IDS(Intrusion Detection System) using a video camera is an important part of the home security systems which start gaining popularity. However, the video intruder detection has not been widely used in the home surveillance systems due to its unreliable performance in the environment with abrupt illumination change. In this paper, we propose an effective moving edge extraction algorithm from a sequence image. The proposed algorithm extracts edge segments from current image and eliminates the background edge segments by matching them with reference edge list, which is updated at every frame, to find the moving edge segments. The test results show that it can detect the contour of moving object in the noisy environment with abrupt illumination change.

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