• Title/Summary/Keyword: Illumination Threshold

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An Improved ViBe Algorithm of Moving Target Extraction for Night Infrared Surveillance Video

  • Feng, Zhiqiang;Wang, Xiaogang;Yang, Zhongfan;Guo, Shaojie;Xiong, Xingzhong
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제15권12호
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    • pp.4292-4307
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    • 2021
  • For the research field of night infrared surveillance video, the target imaging in the video is easily affected by the light due to the characteristics of the active infrared camera and the classical ViBe algorithm has some problems for moving target extraction because of background misjudgment, noise interference, ghost shadow and so on. Therefore, an improved ViBe algorithm (I-ViBe) for moving target extraction in night infrared surveillance video is proposed in this paper. Firstly, the video frames are sampled and judged by the degree of light influence, and the video frame is divided into three situations: no light change, small light change, and severe light change. Secondly, the ViBe algorithm is extracted the moving target when there is no light change. The segmentation factor of the ViBe algorithm is adaptively changed to reduce the impact of the light on the ViBe algorithm when the light change is small. The moving target is extracted using the region growing algorithm improved by the image entropy in the differential image of the current frame and the background model when the illumination changes drastically. Based on the results of the simulation, the I-ViBe algorithm proposed has better robustness to the influence of illumination. When extracting moving targets at night the I-ViBe algorithm can make target extraction more accurate and provide more effective data for further night behavior recognition and target tracking.

불규칙 조명 환경에 강인한 번호판 문자 분리 기법 (Robust Scheme of Segmenting Characters of License Plate on Irregular Illumination Condition)

  • 김병현;한영준;한헌수
    • 한국컴퓨터정보학회논문지
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    • 제14권11호
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    • pp.61-71
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    • 2009
  • 자동차의 번호판은 차량의 등록 정보를 확인할 수 있는 유일한 방법이다. 불법 주정차 단속 및 주차 관리 시스템에 차량의 등록 정보를 확인하기 위해 카메라를 이용한 무인 인식시스템의 개발이 활발히 연구되고 있다. 하지만, 일반 도로상에서 날씨나 주변 장애물들은 자동차 번호판 상에 조명 변화를 일으켜 번호판 문자의 추출을 어렵게 한다. 본 논문은 번호판 영상을 개선하여 조명변화에 강인한 문자 추출 알고리즘을 제안한다. 제안하는 기법은 번호판 영상의 명암 대비도를 높이기 위해 Chi-Square 확률 밀도 함수를 이용한다. 또한, 정확한 문자영역을 추출하기 위해, 적응적인 문턱값을 적용함으로써 고품질의 이진화 영상을 얻는다. 번호판의 문자들을 추출하는 일련의 과정에서 방해가 되는 잡음들을 전처리와 레이블링을 통해 제거한다. 마지막으로 번호판의 문자들은 번호판의 기하학적 특징을 이용한 이진화 영상의 프로파일링으로부터 추출된다.

다중 이진화를 이용한 컨테이너 BIC 부호 영역 추출 및 인식 방법 (Container BIC-code region extraction and recognition method using multiple thresholding)

  • 송재욱;정나라;강현수
    • 한국정보통신학회논문지
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    • 제19권6호
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    • pp.1462-1470
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    • 2015
  • 컨테이너 BIC-code란 국제 운송 및 복합적인 운송환경에서의 편의성을 위해 사용하고 있는 약속된 규약이다. BIC-code는 해상운송 컨테이너의 식별 부호이며 국가 code와 다양한 조작 등의 내용을 포함하고 있다. 해가 거듭될수록 항공, 해양을 통한 물류운송은 계속 증가하고 있으며 이에 따라 해당 물류를 처리하는 항만에서는 신속하고 정확한 처리가 요구되고 있다. 따라서 본 논문에서는 컨테이너의 BIC-code를 다중 이진화를 통해 영역을 추출하고 개별 code를 인식하는 방법을 제안한다. 코드 인식에 있어서, 기후 요소, 빛, 카메라 위치, 컨테이너의 색과 같은 다양한 요인으로 인해 고정된 임계값을 사용할 수 없다. 따라서 제안된 방법에서는 각 영상에 대해 다양한 임계값으로 인식을 수행하여 가장 우수한 인식 결과를 선택한다. 각 임계값에 대한 이진화, 레이블링, close연산을 통해 BIC-code의 가로, 세로 여부를 판단하여 잡음을 제거하고, 개별 code를 분리한다. 분리된 개별 code는 데이터베이스의 기본 자료와 템플릿 매칭을 통해 인식한다. 각 임계값에 대한 인식결과의 신뢰도를 측정하여 가장 신뢰도가 높은 결과를 선택하게 된다. 실험 결과를 통해 제안한 방법이 조명상황에 관계없이 컨테이너 BIC-code를 효과적으로 추출하고 인식함을 보인다.

CRT 모니터의 배경(背景) 계조도(階調度)가 영상의 시각인식(視覺認識)에 미치는 영향 (The Effect of Background Grey Levels on the Visual Perception of Displayed Image on CRT Monitor)

  • 김종효;박광석;민병구;이충웅
    • 대한의용생체공학회:학술대회논문집
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    • 대한의용생체공학회 1991년도 춘계학술대회
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    • pp.18-21
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    • 1991
  • In this paper, the effect of background grey levels on the visual perception of target image displayed on CRT monitor has been investigated. The purpose of this study is to investigate the efficacy of CRT monitor as a display medium of image information especially in medical imaging field. Three sets of experiments have been performed in this study; the first was to measure the luminance response of CRT monitor and to find the best fitting equation, and the second was the psychophysical experiment measuring the threshold grey level difference between the target image and the background required for visual discrimination for various background grey levels, and the third was to develop a visual model that is predictable of the threshold grey level difference measured in the psychophysical experiment. The result of psycophysical experiment shows that the visual perception performance is significantly degraded in the range of grey levels lower than 50, which is turned out due to the low luminance change of CRT monitor in this range while human eye has been adapted to relatively bright ambient illumination.

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카메라와 초음파센서 융합에 의한이동로봇의 주행 알고리즘 (Mobile Robot Navigation using Data Fusion Based on Camera and Ultrasonic Sensors Algorithm)

  • 장기동;박상건;한성민;이강웅
    • 한국항행학회논문지
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    • 제15권5호
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    • pp.696-704
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    • 2011
  • 본 논문에서는 단일 카메라와 초음파센서 데이터를 융합하는 이동 로봇 주행제어 알고리즘을 제안하였다. 이진화 영상처리를 위한 임계값을 영상 정보와 초음파센서 정보를 이용하는 퍼지추론기법으로 설정하였다. 임계값을 상황에 따라 가변하면 조도가 낮은 환경에서도 장애물 인식이 향상된다. 카메라 영상 정보와 초음파 센서 정보를 융합하여 장애물에 대한 격자지도를 생성하고 원궤적 경로기법으로 장애물을 회피하도록 한다. 제안된 알고리즘의 성능을 입증하기 위하여 조도가 낮은 실내와 좁은 복도에서 Pioneer 2-DX 이동로봇의 주행제어에 적용하였다.

Photofield-Effect in Amorphous InGaZnO TFTs

  • Fung, Tze-Ching;Chuang, Chiao-Shun;Mullins, Barry G.;Nomura, Kenji;Kamiya, Toshio;Shieh, Han-Ping David;Hosono, Hideo;Kanicki, Jerzy
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2008년도 International Meeting on Information Display
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    • pp.1208-1211
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    • 2008
  • We study the amorphous In-Ga-Zn-O thin-film transistors (TFTs) properties under monochromatic illumination ($\lambda=420nm$) with different intensity. TFT off-state drain current ($I_{DS_off}$) was found to increase with the light intensity while field effect mobility ($\mu_{eff}$) is almost unchanged; only small change was observed for sub-threshold swing (S). Due to photo-generated charge trapping, a negative threshold voltage ($V_{th}$) shift is also observed. The photofield-effect analysis suggests a highly efficient UV photocurrent conversion in a-IGZO TFT. Finally, a-IGZO mid-gap density-of-states (DOS) was extracted and is more than an order lower than reported value for a-Si:H, which can explain a good switching properties of the a-IGZO TFTs.

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Novel Method for Face Recognition using Laplacian of Gaussian Mask with Local Contour Pattern

  • Jeon, Tae-jun;Jang, Kyeong-uk;Lee, Seung-ho
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제10권11호
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    • pp.5605-5623
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    • 2016
  • We propose a face recognition method that utilizes the LCP face descriptor. The proposed method applies a LoG mask to extract a face contour response, and employs the LCP algorithm to produce a binary pattern representation that ensures high recognition performance even under the changes in illumination, noise, and aging. The proposed LCP algorithm produces excellent noise reduction and efficiency in removing unnecessary information from the face by extracting a face contour response using the LoG mask, whose behavior is similar to the human eye. Majority of reported algorithms search for face contour response information. On the other hand, our proposed LCP algorithm produces results expressing major facial information by applying the threshold to the search area with only 8 bits. However, the LCP algorithm produces results that express major facial information with only 8-bits by applying a threshold value to the search area. Therefore, compared to previous approaches, the LCP algorithm maintains a consistent accuracy under varying circumstances, and produces a high face recognition rate with a relatively small feature vector. The test results indicate that the LCP algorithm produces a higher facial recognition rate than the rate of human visual's recognition capability, and outperforms the existing methods.

이동로봇을 위한 영상의 자동 엣지 검출 방법 (Automatic Edge Detection Method for Mobile Robot Application)

  • 김동수;권인소;이왕헌
    • 제어로봇시스템학회논문지
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    • 제11권5호
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    • pp.423-428
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    • 2005
  • This paper proposes a new edge detection method using a $3{\times}3$ ideal binary pattern and lookup table (LUT) for the mobile robot localization without any parameter adjustments. We take the mean of the pixels within the $3{\times}3$ block as a threshold by which the pixels are divided into two groups. The edge magnitude and orientation are calculated by taking the difference of average intensities of the two groups and by searching directional code in the LUT, respectively. And also the input image is not only partitioned into multiple groups according to their intensity similarities by the histogram, but also the threshold of each group is determined by fuzzy reasoning automatically. Finally, the edges are determined through non-maximum suppression using edge confidence measure and edge linking. Applying this edge detection method to the mobile robot localization using projective invariance of the cross ratio. we demonstrate the robustness of the proposed method to the illumination changes in a corridor environment.

A Novel Method for Hand Posture Recognition Based on Depth Information Descriptor

  • Xu, Wenkai;Lee, Eung-Joo
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제9권2호
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    • pp.763-774
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    • 2015
  • Hand posture recognition has been a wide region of applications in Human Computer Interaction and Computer Vision for many years. The problem arises mainly due to the high dexterity of hand and self-occlusions created in the limited view of the camera or illumination variations. To remedy these problems, a hand posture recognition method using 3-D point cloud is proposed to explicitly utilize 3-D information from depth maps in this paper. Firstly, hand region is segmented by a set of depth threshold. Next, hand image normalization will be performed to ensure that the extracted feature descriptors are scale and rotation invariant. By robustly coding and pooling 3-D facets, the proposed descriptor can effectively represent the various hand postures. After that, SVM with Gaussian kernel function is used to address the issue of posture recognition. Experimental results based on posture dataset captured by Kinect sensor (from 1 to 10) demonstrate the effectiveness of the proposed approach and the average recognition rate of our method is over 96%.

Hand Gesture Recognition using Improved Hidden Markov Models

  • Xu, Wenkai;Lee, Eung-Joo
    • 한국멀티미디어학회논문지
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    • 제14권7호
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    • pp.866-871
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    • 2011
  • In this paper, an improved method of hand detecting and hand gesture recognition is proposed, it can be applied in different illumination condition and complex background. We use Adaptive Skin Threshold (AST) to detect the areas of hand. Then the result of hand detection is used to hand recognition through the improved HMM algorithm. At last, we design a simple program using the result of hand recognition for recognizing "stone, scissors, cloth" these three kinds of hand gesture. Experimental results had proved that the hand and gesture can be detected and recognized with high average recognition rate (92.41%) and better than some other methods such as syntactical analysis, neural based approach by using our approach.