• Title/Summary/Keyword: Blob

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People Counting System using Raspberry Pi

  • Ansari, Md Israfil;Shim, Jaechang
    • Journal of Multimedia Information System
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    • v.4 no.4
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    • pp.239-242
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    • 2017
  • This paper proposes a low-cost method for counting people based on blob detection and blob tracking. Here background subtraction is used to detected blob and then the blob is classified with its width and height to specify that the blob is a person. In this system we first define the area of entry and exit point in the video frame. The counting of people starts when midpoint of the people blob crosses the defined point. Finally, total number of people entry and exit from the place is displayed. Experiment result of this proposed system has high accuracy in real-time performance.

A Fast and Precise Blob Detection

  • Nguyen, Thanh Binh;Chung, Sun-Tae
    • Proceedings of the Korea Contents Association Conference
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    • 2009.05a
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    • pp.23-29
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    • 2009
  • Blob detection is an essential ingredient process in some computer applications such as intelligent visual surveillance. However, previous blob detection algorithms are still computationally heavy so that supporting real-time multi-channel intelligent visual surveillance in a workstation or even one-channel real-time visual surveillance in a embedded system using them turns out prohibitively difficult. In this paper, we propose a fast and precise blob detection algorithm for visual surveillance. Blob detection in visual surveillance goes through several processing steps: foreground mask extraction, foreground mask correction, and connected component labeling. Foreground mask correction necessary for a precise detection is usually accomplished using morphological operations like opening and closing. Morphological operations are computationally expensive and moreover, they are difficult to run in parallel with connected component labeling routine since they need much different processing from what connected component labeling does. In this paper, we first develop a fast and precise foreground mask correction method utilizing on neighbor pixel checking which is also employed in connected component labeling so that the developed foreground mask correction method can be incorporated into connected component labeling routine. Through experiments, it is verified that our proposed blob detection algorithm based on the foreground mask correction method developed in this paper shows better processing speed and more precise blob detection.

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Comparative Analysis of Detection Algorithms for Corner and Blob Features in Image Processing

  • Xiong, Xing;Choi, Byung-Jae
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • v.13 no.4
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    • pp.284-290
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    • 2013
  • Feature detection is very important to image processing area. In this paper we compare and analyze some characteristics of image processing algorithms for corner and blob feature detection. We also analyze the simulation results through image matching process. We show that how these algorithms work and how fast they execute. The simulation results are shown for helping us to select an algorithm or several algorithms extracting corner and blob feature.

Blob and Wave Formation at the Free Edge of an Initially Stationary fluid Sheet (액체 필름 끝단에서의 유동특성에 관한 수치연구)

  • Song Museok;Ahn Jail
    • Proceedings of the KSME Conference
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    • 2002.08a
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    • pp.307-310
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    • 2002
  • A two-dimensional numerical method for inviscid two-fluid flows with evolution of density interface is developed, and an initially stationary two-dimensional fluid sheet surrounded by another fluid is studied. The Interface between two fluids is modeled as a vertex sheet, and the flow field u÷th the evolution of interface is solved by using vortex-in-cell/front-tracking method. The edge of the sheet Is pulled back into the sheet due to surface tension and a blob is formed at the edge. This blob and fluid sheet are connected by a thin neck. In the inviscid limit, such process of the blob and neck formation is examined in detail and their kinematic characteristics are summarized with dimensionless parameters. The edge recedes at $V=1.06({\sigma}/{\rho}h)^{0.5}$ and the capillary wave Propagating into the fluid sheet must be considered for bettor understanding of the edge receding.

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An Effective Moving Cast Shadow Removal in Gray Level Video for Intelligent Visual Surveillance (지능 영상 감시를 위한 흑백 영상 데이터에서의 효과적인 이동 투영 음영 제거)

  • Nguyen, Thanh Binh;Chung, Sun-Tae;Cho, Seongwon
    • Journal of Korea Multimedia Society
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    • v.17 no.4
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    • pp.420-432
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    • 2014
  • In detection of moving objects from video sequences, an essential process for intelligent visual surveillance, the cast shadows accompanying moving objects are different from background so that they may be easily extracted as foreground object blobs, which causes errors in localization, segmentation, tracking and classification of objects. Most of the previous research results about moving cast shadow detection and removal usually utilize color information about objects and scenes. In this paper, we proposes a novel cast shadow removal method of moving objects in gray level video data for visual surveillance application. The proposed method utilizes observations about edge patterns in the shadow region in the current frame and the corresponding region in the background scene, and applies Laplacian edge detector to the blob regions in the current frame and the corresponding regions in the background scene. Then, the product of the outcomes of application determines moving object blob pixels from the blob pixels in the foreground mask. The minimal rectangle regions containing all blob pixles classified as moving object pixels are extracted. The proposed method is simple but turns out practically very effective for Adative Gaussian Mixture Model-based object detection of intelligent visual surveillance applications, which is verified through experiments.

A TFT-LCD Defect Detection Method based on Defect Possibility using the Size of Blob and Gray Difference (블랍 크기와 휘도 차이에 따른 결함 가능성을 이용한 TFT-LCD 결함 검출)

  • Gu, Eunhye;Park, Kil-Houm
    • Journal of Korea Society of Industrial Information Systems
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    • v.19 no.6
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    • pp.43-51
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    • 2014
  • TFT-LCD image includes a defect of various properties. TFT-LCD image have a recognizable defects in the human inspector. On the other hand, it is difficult to detect defects that difference between the background and defect is very low. In this paper, we proposed sequentially detect algorithm from pixels included in the defect region to limited defects. And blob analysis methods using the blob size and gray difference are applied to the defect candidate image. Finally, we detect an accurate defect blob to distinguish the noise. The experimental results show that the proposed method finds the various defects reliably.

High-speed Image Processing for Blurred Image for an Object Detection (블러가 심한 물체 검출을 위한 고속 MMX 영상처리)

  • Lee, Jae-Hyeok
    • Proceedings of the KIEE Conference
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    • 2005.10b
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    • pp.177-179
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    • 2005
  • This paper suggests a high-speed blurred blob image inspection algorithm. When we inspect some products using high-resolution camera, the detected blob images usually have severe blur. And the blur makes it hard to detect an object. There are many blur-processing algorithms, but most of them have no real-time property for high-speed applications at all. In this paper, an MMX technology based algorithm is suggested. The suggested algorithm was found to be effective to detect the blurred blob images via many simulations and long time real-plant experiments.

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The rocognition of two-dimensional objects using the inverse histogram (인버스 히스토그램을 이용한 다수의 이차원 물체 인식)

  • 박성혁;고명삼
    • 제어로봇시스템학회:학술대회논문집
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    • 1986.10a
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    • pp.331-336
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    • 1986
  • Because the threshold technique using the histogram of intensity is the most attractive for segmentation in the sense of fast image processing, this paper defined the new function of inverse histogram of intensity and found out a threshold by means of it. The segmented errors are removed by regulating a scan size of blob coloring. Blob-coloring algorithm presented by [6] was reproved for good performance i.e., no change of feature in bolobs after blob coloring. The ratio of successful recognition was about 85 percents.

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A study on vehicle tracking under various weather conditions (다양한 일기 조건하에서의 차량 추적)

  • 송홍섭;소영성
    • Proceedings of the Korea Institute of Convergence Signal Processing
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    • 2003.06a
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    • pp.30-33
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    • 2003
  • 영상 검지기를 통한 차량 탐지 방법은 날씨와 같은 환경에 민감하게 반응하여 차량의 미탐지 및 오탐지가 발생하게 된다. 이를 해결하기 위해 다양한 일기조건하에서 차량 추적 방법에 대해 제안한다. 다양한 일기 조건하에서의 차량 추적은 눈, 비, 안개 환경에서 각 날씨의 특징을 분석, 반영하여 차량을 탐지하고 추적한다. 눈이 내리는 환경에서는 눈이 카메라 가까이에서 차량 blob으로 잘못 탐지되는 blob을 제거하기 위해 카메라와의 거리에 따른 실제 크기를 구하는 size filtering 방법을 사용한다. 비, 안개 환경에서는 흐릿해진 영상 때문에 차량이 교통신호등에 의해 차량 정체시 여러 차량이 하나의 blob으로 탐지되는 문제점을 해결하기 위해 이전 영상에서의 차량 위치 정보를 이용한 재 blob화 방법을 사용한다.

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Fault Detection of Ceramic Imaging using Blob Labeling Method (Blob Labeling 기법을 이용한 세라믹 영상에서 결함 검출)

  • Lee, Min-Jung;Lee, Dae-Woo;Yi, Gyeong-Yun;Kim, Kwang Beak
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2015.05a
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    • pp.519-521
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    • 2015
  • 세라믹 소재 영상에서 결함 영역이 다른 영역보다 명암도가 밝게 나타나는 정보를 이용하여 ROI 영역을 추출한다. 추출된 ROI 영역에서 Blurring 기법을 적용하여 미세 잡음을 제거한다. 미세 잡음이 제거된 ROI 영역에서 Median Filter기법을 적용하여 임펄스 잡음을 제거한다. 임펄스 잡음이 제거된 영역에서 Prewit Mask을 적용하여 수평과 수직 에지를 검출하고 검출된 에지에 윤곽선 추적 기법을 적용하여 결함 영역의 경계를 보정한다. 보정된 영상에서 Blob Labeling 기법을 적용하여 최종적으로 결함 영역을 추출한다. 제안된 방법을 8mm와 10mm 세라믹 소재 영상을 대상으로 실험한 결과, 기존의 결함 검출 방법보다 제안된 검출 방법의 검출 성능이 개선된 것을 확인하였다.

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