• Title/Summary/Keyword: 영상의 밝기 평균

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Study of the Haar Wavelet Feature Detector for Image Retrieval (이미지 검색을 위한 Haar 웨이블릿 특징 검출자에 대한 연구)

  • Peng, Shao-Hu;Kim, Hyun-Soo;Muzzammil, Khairul;Kim, Deok-Hwan
    • Journal of the Institute of Electronics Engineers of Korea CI
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    • v.47 no.1
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    • pp.160-170
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    • 2010
  • This paper proposes a Haar Wavelet Feature Detector (HWFD) based on the Haar wavelet transform and average box filter. By decomposing the original image using the Haar wavelet transform, the proposed detector obtains the variance information of the image, making it possible to extract more distinctive features from the original image. For detection of interest points that represent the regions whose variance is the highest among their neighbor regions, we apply the average box filter to evaluate the local variance information and use the integral image technique for fast computation. Due to utilization of the Haar wavelet transform and the average box filter, the proposed detector is robust to illumination change, scale change, and rotation of the image. Experimental results show that even though the proposed method detects fewer interest points, it achieves higher repeatability, higher efficiency and higher matching accuracy compared with the DoG detector and Harris corner detector.

Auto-Exposure Control using Loop-Up Table Based on Scene-Luminance Curve in Mobile Phone Camera (입.출력 특성곡선에 기초한 Look-Up Table 방식의 자동노출제어)

  • Lee, Tae-Hyoug;Kyung, Wang-Jun;Lee, Cheol Hee;Ha, Yeong-Ho
    • Journal of the Institute of Electronics Engineers of Korea SP
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    • v.47 no.4
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    • pp.56-62
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    • 2010
  • Auto-exposure control automatically calculates and adjusts the exposure for consecutive input image. Recently, this is usually controlled by the sensor gain, however, unsuitable control causes oscillation of luminance for sonsecutive input images, called as flickering. Also, in mobile phone cameras, only simple information, such as the average luminance value, can be utilized due to coarse performance. Therefore, this paper presents a new real-time AE control method using a Look Up Table(LUT) based on Scene-Luminance curves to avoid the generation of flickering. Prior to the AE control, a LUT is constructed, which illustrates the characteristic of outputs for input patches corresponding to sensor gains. The AE control is first performed by estimating a current scene as a patch using the proposed LUT. A new sensor gain is then estimated using also LUT with previously estimated patch. The entire estimation process is performed using linear interpolation to achieve real-time execution. Based on experimental results, the proposed AE control is demonstrated with real-time, flicker-free.

Scene Change Detection by Statistical Method (통계적 기법을 이용한 장면 전환 검출)

  • 박진형;장동식;송광섭;유헌우
    • Proceedings of the Korean Operations and Management Science Society Conference
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    • 2000.04a
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    • pp.676-678
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    • 2000
  • 본 연구에서는 다양한 동영상내에서 장면전환 검출(Scene Change Detection(SCD))을 하기 위한 임계값 설정시, 전체 동영상을 임의적으로 120개의 프레임 단위로 구분 짓고 120개의 frame을 한 블록으로 하여 각 블록내의 프레임들로부터 얻어진 밝기 히스토그램 사이의 차이값을 데이터로 하여 통계적 기법으로 접근, 차이값의 평균과 표준편차를 이용한 각 블록내의 신뢰구간을 구함으로써 신뢰구간을 벗어나는 프레임은 SCD가 발생한 것으로 생각하였다. 또한 점진적 장면 전환검출시에는 점진적 장면 전환의 특징인 차이값의 분포를 이용하여 장면 전환 검출을 시도하였다. 따라서 SCD를 하기 위하여 사용되어지던 임계값 설정이 동영상에 따라 자동적으로 변화함으로써 임계값 설정의 어려움을 극복하여, 좀더 효율적인 SCO를 이루었으며, 정확도 면에서 급진적/점진적 장면 전환 검출율이 90% 이상의 결과를 보였다.

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A Study on Improvement To The Key Parameter For High Real Capacity Of Lossless Data Hiding (무손실 데이터 은닉의 삽입 용량 증진을 위한 키 파라미터 개선 기법)

  • Jeong, Hee;Kang, Ji-Hong;Choe, Yoon-Sik
    • Proceedings of the Korean Society of Broadcast Engineers Conference
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    • 2012.07a
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    • pp.219-221
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    • 2012
  • 본 논문은 무손실 데이터 은닉 기법중 주변 화소의 통계적 특성을 이용하여 어떠한 추가적인 맵 정보 없이 키 파라미터로써 원본 영상과 삽입한 데이터를 정확히 분리해 내는 기법이다. 오버/언더 플로우에 더 강한 데이터 은닉을 위해, 데이터 삽입에 대한 변수로 작용할 수 있는 주변 화소값들의 범위 뿐만 아니라 주변 화소값들의 표준 편차와 평균값을 모두 키 파라미터의 인자로 사용하여 화소값이 낮은, 즉 영상의 밝기가 어두운 부분에 더 많은 데이터를 삽입할 수 있는 기법을 제안하였고, 실험을 통하여 기존 기법 대비 평균 2배 이상의 삽입 용량이 증진된 것을 확인하였다.

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A Method of Histogram Compression Equalization for Image Contrast Enhancement (명암대비 향상을 위한 히스토그램 압축 평활화 기법)

  • Kim, Jong-in;Lee, Jae-Won;Honga, Sung-Hoon
    • Proceedings of the Korea Information Processing Society Conference
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    • 2013.05a
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    • pp.346-349
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    • 2013
  • 화질향상에 큰 영향을 주는 요소 중의 하나는 명암대비 향상이다. 영상의 명암대비를 향상시키는 대표적인 방법으로 히스토그램 평활화(Histogram Equalization) 방법이 있으며, 히스토그램 평활화의 변형된 방법에 대한 다양한 연구가 이루어지고 있다. 그러나 기존의 방법들은 평균 밝기의 급격한 변화로 인하여 부자연스러운 결과영상을 얻거나, 대비 향상 효과가 낮은 결과를 얻는 단점이 종종 발생한다. 본 논문에서는 히스토그램 압축방법을 통해서 개선된 명암대비 향상 기법을 제안한다. 제안한 방법은 과도한 명암대비 증가로 인한 과포화 현상을 억제하기 위하여 히스토그램의 빈도수에 따라 히스토그램을 차등 압축시키도록 설계되어 있다. 실험결과 제안방법은 기존 방법에 비해 과포화 현상 없이 좋은 명암대비 향상 효과를 보였다.

Skew Correction of Document Images using Edge (에지를 이용한 문서영상의 기울기 보정)

  • Ju, Jae-Hyon;Oh, Jeong-Su
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.16 no.7
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    • pp.1487-1494
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    • 2012
  • This paper proposes an algorithm detecting the skew of the degraded as well as the clear document images using edge and correcting it. The proposed algorithm detects edges in a character region selected by image complexity and generates projection histograms by projecting them to various directions. And then it detects the document skew by estimating the edge concentrations in the histograms and corrects the skewed document image. For the fast skew detection, the proposed algorithm uses downsampling and 3 step coarse-to-fine searching. In the skew detection of the clear and the degraded images, the maximum and the average detection errors in the proposed algorithm are about 50% of one in a conventional similar algorithm and the processing time is reduced to about 25%. In the non-uniform luminance images acquired by a mobile device, the conventional algorithm can't detect skews since it can't get valid binary images, while the proposed algorithm detect them with the average detection error of 0.1o or under.

Segmentation of Brain Ventricle Using Geodesic Active Contour Model Based on Region Mean (영역평균 기반의 지오데식 동적 윤곽선 모델에 의한 뇌실 분할)

  • Won Chul-Ho;Kim Dong-Hun;Lee Jung-Hyun;Woo Sang-Hyo;Cho Jin-Ho
    • Journal of Korea Multimedia Society
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    • v.9 no.9
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    • pp.1150-1159
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    • 2006
  • This paper proposed a curve progress control function of the area base instead of the existing edge indication function, in order to detect the brain ventricle area by utilizing a geodesic active contour model. The proposed curve progress control function is very effective in detecting the brain ventricle area and this function is based on the average brightness of the brain ventricle area which appears brighter in MRI images. Compared numerically by using various measures, the proposed method in this paper can detect brain ventricle areas better than the existing method. By examining images of normal and diseased brain's images by brain tumor, we compared the several brain ventricle detection algorithms with proposed method visually and verified the effectiveness of the proposed method.

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A Study on Face Recognition Based on Modified Otsu's Binarization and Hu Moment (변형 Otsu 이진화와 Hu 모멘트에 기반한 얼굴 인식에 관한 연구)

  • 이형지;정재호
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.28 no.11C
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    • pp.1140-1151
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    • 2003
  • This paper proposes a face recognition method based on modified Otsu's binarization and Hu moment. Proposed method is robust to brightness, contrast, scale, rotation, and translation changes. As the proposed modified Otsu's binarization computes other thresholds from conventional Otsu's binarization, namely we create two binary images, we can extract higher dimensional feature vector. Here the feature vector has properties of robustness to brightness and contrast changes because the proposed method is based on Otsu's binarization. And our face recognition system is robust to scale, rotation, and translation changes because of using Hu moment. In the perspective of brightness, contrast, scale, rotation, and translation changes, experimental results with Olivetti Research Laboratory (ORL) database and the AR database showed that average recognition rates of conventional well-known principal component analysis (PCA) are 93.2% and 81.4%, respectively. Meanwhile, the proposed method for the same databases has superior performance of the average recognition rates of 93.2% and 81.4%, respectively.

Anterior Cruciate Ligament Segmentation in Knee MRI with Locally-aligned Probabilistic Atlas and Iterative Graph Cuts (무릎 자기공명영상에서 지역적 확률 아틀라스 정렬 및 반복적 그래프 컷을 이용한 전방십자인대 분할)

  • Lee, Han Sang;Hong, Helen
    • Journal of KIISE
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    • v.42 no.10
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    • pp.1222-1230
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    • 2015
  • Segmentation of the anterior cruciate ligament (ACL) in knee MRI remains a challenging task due to its inhomogeneous signal intensity and low contrast with surrounding soft tissues. In this paper, we propose a multi-atlas-based segmentation of the ACL in knee MRI with locally-aligned probabilistic atlas (PA) in an iterative graph cuts framework. First, a novel PA generation method is proposed with global and local multi-atlas alignment by means of rigid registration. Second, with the generated PA, segmentation of the ACL is performed by maximum-aposteriori (MAP) estimation and then by graph cuts. Third, refinement of ACL segmentation is performed by improving shape prior through mask-based PA generation and iterative graph cuts. Experiments were performed with a Dice similarity coefficients of 75.0%, an average surface distance of 1.7 pixels, and a root mean squared distance of 2.7 pixels, which increased accuracy by 12.8%, 22.7%, and 22.9%, respectively, from the graph cuts with patient-specific shape constraints.

Application of Computer-Aided Diagnosis a using Texture Feature Analysis Algorithm in Breast US images (유방 초음파영상에서 질감특성분석 알고리즘을 이용한 컴퓨터보조진단의 적용)

  • Lee, Jin-Soo;Kim, Changsoo
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.16 no.1
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    • pp.507-515
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    • 2015
  • This paper suggests 6 cases of TFA parameters algorithm(Mean, VA, RS, SKEW, UN, EN) to search for the detection of recognition rates regarding breast disease using CAD on ultrasound images. Of the patients who visited a university hospital in Busan city from August 2013 to January 2014, 90 cases of breast ultrasound images based on the findings in breast US and pathology were selected. $50{\times}50$ pixel size ROI was selected from the breast US images. After pre-processing histogram equalization of the acquired test images(negative, benign, malignancy), we calculated results of TFA algorithm using MATLAB. As a result, in the TFA parameters suggested, the disease recognition rates for negative and malignancy was as high as 100%, and negative and benign was approximately 83~96% for the Mean, SKEW, UN, and EN. Therefore, there is the possibility of auto diagnosis as a pre-processing step for a screening test on breast disease. A additional study of the suggested algorithm and the responsibility and reproducibility for various clinical cases will determine the practical CAD and it might be possible to apply this technique to range of ultrasound images.