• 제목/요약/키워드: Image Based Lighting

검색결과 234건 처리시간 0.026초

Automated measurement of tool wear using an image processing system

  • Sawai, Nobushige;Song, Joonyeob;Park, Hwayoung
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 1995년도 Proceedings of the Korea Automation Control Conference, 10th (KACC); Seoul, Korea; 23-25 Oct. 1995
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    • pp.311-314
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    • 1995
  • This paper presents a method for measuring tool wear parameters based on two dimensional image information. The tool wear images were obtained from an ITV camera with magnifying and lighting devices, and were analyzed using image processing techniques such as thresholding, noise filtering and boundary tracing. Thresholding was used to transform the captured gray scale image into a binary image for rapid sequential image processing. The threshold level was determined using a novel technique in which the brightness histograms of two concentric windows containing the tool wear image were compared. The use of noise filtering and boundary tracing to reduce the measuring errors was explored. Performance tests of the measurement precision and processing speed revealed that the direct method was highly effective in intermittent tool wear monitoring.

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레이저 구조광을 이용한 3차원 컴퓨터 시각 형상정보 연속 측정 시스템 개발 (Development of the Computer Vision based Continuous 3-D Feature Extraction System via Laser Structured Lighting)

  • 임동혁;황헌
    • Journal of Biosystems Engineering
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    • 제24권2호
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    • pp.159-166
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    • 1999
  • A system to extract continuously the real 3-D geometric fearture information from 2-D image of an object, which is fed randomly via conveyor has been developed. Two sets of structured laser lightings were utilized. And the laser structured light projection image was acquired using the camera from the signal of the photo-sensor mounted on the conveyor. Camera coordinate calibration matrix was obtained, which transforms 2-D image coordinate information into 3-D world space coordinate using known 6 points. The maximum error after calibration showed 1.5 mm within the height range of 103mm. The correlation equation between the shift amount of the laser light and the height was generated. Height information estimated after correlation showed the maximum error of 0.4mm within the height range of 103mm. An interactive 3-D geometric feature extracting software was developed using Microsoft Visual C++ 4.0 under Windows system environment. Extracted 3-D geometric feature information was reconstructed into 3-D surface using MATLAB.

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웨이블릿 다해상도 분석에 의한 디지털 이미지 결점 검출 알고리즘 (A Defect Inspection Algorithm Using Multi-Resolution Analysis based on Wavelet Transform)

  • 김경준;이창환;김주용
    • 한국염색가공학회지
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    • 제21권1호
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    • pp.53-58
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    • 2009
  • A real-time inspection system has been developed by combining CCD based image processing algorithm and a standard lighting equipment. The system was tested for defective fabrics showing nozzle contact scratch marks, which were one of the frequently occurring defects. Multi-resolution analysis(MRA) algorithm were used and evaluated according to both their processing time and detection rate. Standard value for defective inspection was the mean of the non-defect image feature. Similarity was decided via comparing standard value with sample image feature value. Totally, we achieved defective inspection accuracy above 95%.

A Robust Face Detection Method Based on Skin Color and Edges

  • Ghimire, Deepak;Lee, Joonwhoan
    • Journal of Information Processing Systems
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    • 제9권1호
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    • pp.141-156
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    • 2013
  • In this paper we propose a method to detect human faces in color images. Many existing systems use a window-based classifier that scans the entire image for the presence of the human face and such systems suffers from scale variation, pose variation, illumination changes, etc. Here, we propose a lighting insensitive face detection method based upon the edge and skin tone information of the input color image. First, image enhancement is performed, especially if the image is acquired from an unconstrained illumination condition. Next, skin segmentation in YCbCr and RGB space is conducted. The result of skin segmentation is refined using the skin tone percentage index method. The edges of the input image are combined with the skin tone image to separate all non-face regions from candidate faces. Candidate verification using primitive shape features of the face is applied to decide which of the candidate regions corresponds to a face. The advantage of the proposed method is that it can detect faces that are of different sizes, in different poses, and that are making different expressions under unconstrained illumination conditions.

영상 인식 기반 신속 인플루엔자 자동 판독 기법 개발 (Development of Automated Rapid Influenza Diagnostic Test Method Based on Image Recognition)

  • 이지은;주윤하;이정찬
    • 대한의용생체공학회:의공학회지
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    • 제40권3호
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    • pp.97-104
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    • 2019
  • To examine different types of influenza diagnostic test kits automatically, automated rapid influenza diagnostic test method based on image recognition is proposed in this paper. First, the proposed methods classify a variety of the rapid influenza diagnostic test kit based on support vector machine that analyzes the kits' feature point. Then, to improve the accuracy of test, the proposed methods match the histogram of both the target image of influenza kit and the input image of influenza kit for minimizing the effect of environment factors, such as lighting and exposure variations. And, to minimize the effect from composition of the hand-helds devices, the proposed methods extract the feature point and match point-by-point between target image of influenza kit and input image of influenza kit. Experimental results of 124 experimental group show that the proposed methods significantly have effectiveness, which shows 90% accuracy in moderate antigen, for the preliminary examination of influenza, and provides the opportunity for taking action against influenza.

적응형 헤드 램프 컨트롤을 위한 야간 차량 인식 (Vehicle Detection for Adaptive Head-Lamp Control of Night Vision System)

  • 김현구;정호열;박주현
    • 대한임베디드공학회논문지
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    • 제6권1호
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    • pp.8-15
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    • 2011
  • This paper presents an effective method for detecting vehicles in front of the camera-assisted car during nighttime driving. The proposed method detects vehicles based on detecting vehicle headlights and taillights using techniques of image segmentation and clustering. First, in order to effectively extract spotlight of interest, a pre-signal-processing process based on camera lens filter and labeling method is applied on road-scene images. Second, to spatial clustering vehicle of detecting lamps, a grouping process use light tracking method and locating vehicle lighting patterns. For simulation, we are implemented through Da-vinci 7437 DSP board with visible light mono-camera and tested it in urban and rural roads. Through the test, classification performances are above 89% of precision rate and 94% of recall rate evaluated on real-time environment.

GPU를 이용한 깊이 영상기반 렌더링의 가속 (Accelerating Depth Image-Based Rendering Using GPU)

  • 이만희;박인규
    • 한국정보과학회논문지:시스템및이론
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    • 제33권11호
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    • pp.853-858
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    • 2006
  • 본 논문에서는 깊이 영상기반의 3차원 그래픽 객체에 대하여 그래픽 처리 장치(Graphics Processing Unit, GPU)의 가속을 이용한 고속의 렌더링 기법을 제안한다. 제안하는 알고리즘은 최근의 그래픽 처리 장치의 새로운 특징과 프로그래밍이 가능한 쉐이더 기법을 이용하여, 속도가 느리거나 정적인 조명과 같은 기존의 일반적인 깊이 영상기반 렌더링 방법이 갖고 있는 단점을 극복할 수 있다. 깊이 영상기반 데이타의 3차원 변환 및 조명에 의한 효과 연산은 정점 쉐이더(vertex shader)에서 수행을 하고, 점 데이타의 적응적인 스플래팅(splatting)은 화소 쉐이더(fragment shader)에서 수행된다. 모의 실험결과, 소프트웨어 렌더링 또는 OpenGL 기반의 렌더링과 비교해서 괄목할 만한 렌더링 속도의 향상이 이루어졌다.

LED 기반 백색 조명의 색온도 및 연색지수에 따른 감성 평가 (Sensibility Evaluation of Color Temperature and Rendering Index to the LED-Based White Illumination)

  • 지순덕;최경재;김호건;이상혁
    • 감성과학
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    • 제9권4호
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    • pp.353-366
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    • 2006
  • 이 연구의 목적은 백색 LED 조명의 광학적 특성을 분석하고 그 특성에 따라 반응하는 학생과 교사들의 감성 반응을 평가하는 데 있다. 이를 위해 이 연구에서는 백색 LED모듈 5개를 시제품으로 만들어 광학적 특성을 측정하고 감성 평가용 모형을 제작하여 감성 반응을 평가하여 분석하였다. 감성 평가에 이용된 평가 방법은 의미미분법이고 선정된 문항은 16문항이며, 이 문항의 신뢰성과 타당성을 검증하기 위하여 예비 실험을 통하여 신뢰도 분석과 타당도 분석을 하였다. 이 과정에서 4가지 요인을 추출하였는데 제 1요인은 활동성, 제 2요인은 안정감, 제 3요인은 역량성, 제 4요인은 감성이미지 요인이라고 명명하였다. 색온도에 따른 감성 평가의 결과는 활동성과 역량성 요인에서는 색온도가 높은 조명을 선호하였으며 , 안정감 요인에서는 색온도가 낮은 조명을 선호하였다. 감성이미지 요인에서는 색온도와 관련 없이 5800K인 청색 계통의 조명을 선호하였다. 연색지수에 따른 감성 평가의 결과는 활동성, 안정감, 감성이미지 요인에서는 고연색 조명을 선호하였으며, 역량성 요인에서는 중 연색 조명을 선호하였다.

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Multi-camera based Images through Feature Points Algorithm for HDR Panorama

  • Yeong, Jung-Ho
    • International journal of advanced smart convergence
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    • 제4권2호
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    • pp.6-13
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    • 2015
  • With the spread of various kinds of cameras such as digital cameras and DSLR and a growing interest in high-definition and high-resolution images, a method that synthesizes multiple images is being studied among various methods. High Dynamic Range (HDR) images store light exposure with even wider range of number than normal digital images. Therefore, it can store the intensity of light inherent in specific scenes expressed by light sources in real life quite accurately. This study suggests feature points synthesis algorithm to improve the performance of HDR panorama recognition method (algorithm) at recognition and coordination level through classifying the feature points for image recognition using more than one multi frames.

A Comparative Study of Local Features in Face-based Video Retrieval

  • Zhou, Juan;Huang, Lan
    • Journal of Computing Science and Engineering
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    • 제11권1호
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    • pp.24-31
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    • 2017
  • Face-based video retrieval has become an active and important branch of intelligent video analysis. Face profiling and matching is a fundamental step and is crucial to the effectiveness of video retrieval. Although many algorithms have been developed for processing static face images, their effectiveness in face-based video retrieval is still unknown, simply because videos have different resolutions, faces vary in scale, and different lighting conditions and angles are used. In this paper, we combined content-based and semantic-based image analysis techniques, and systematically evaluated four mainstream local features to represent face images in the video retrieval task: Harris operators, SIFT and SURF descriptors, and eigenfaces. Results of ten independent runs of 10-fold cross-validation on datasets consisting of TED (Technology Entertainment Design) talk videos showed the effectiveness of our approach, where the SIFT descriptors achieved an average F-score of 0.725 in video retrieval and thus were the most effective, while the SURF descriptors were computed in 0.3 seconds per image on average and were the most efficient in most cases.