• Title/Summary/Keyword: 영역기반이미지검색

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Character String Detection using Character-Edge Map with Adaptive Character Size and Character String Orientation in Natural Images (자연영상에서 문자의 크기와 문자열의 방향에 적응적인 문자-에지 맵을 이용한 문자열 검출)

  • Park, Jong-Cheon;Hwang, Dong-Guk;Lee, Woo-Ram;Jun, Byoung-Min
    • Proceedings of the KAIS Fall Conference
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    • 2007.11a
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    • pp.262-265
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    • 2007
  • 이미지 데이터베이스 시스템에서 이미지에 포함된 문자정보를 기반으로 검색어를 사용한다면 검색의 정확도 높일 수 있다. 이미지에서 문자정보를 추출을 위한 전단계로서 문자열 영역 검출이 필수적인 과제가 된다. 그러므로 본 논문에서는 문자의 크기와 문자열의 방향에 적응적인 문자-에지 맵을 이용한 문자열 영역 검출 방법을 제안한다. 캐니-에지 검출기로 에지를 추출하고, 생성된 에지 이미지로 레이블 이미지를 얻고, 그 영역의 문자구조 특징을 분석하기 위해서 배열문법으로 문자-에지 맵에 적응적으로 분석한다. 문자-에지 맵의 분석결과로서 문자열 후보 영역을 얻고, 문자열 영역의 구조적인 특징을 이용하여 문자열 후보 영역을 검증함으로서 최종적인 문자열 영역을 검출한다. 제안한 방법은 다양한 종류의 자연영상을 대상으로 실험하였고, 자연영상에서 기울어진 문자열과 다양한 크기의 문자를 갖는 문자열 영역을 효과적으로 검출하였다.

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Image Classification Using Bag of Visual Words and Visual Saliency Model (이미지 단어집과 관심영역 자동추출을 사용한 이미지 분류)

  • Jang, Hyunwoong;Cho, Soosun
    • KIPS Transactions on Software and Data Engineering
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    • v.3 no.12
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    • pp.547-552
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    • 2014
  • As social multimedia sites are getting popular such as Flickr and Facebook, the amount of image information has been increasing very fast. So there have been many studies for accurate social image retrieval. Some of them were web image classification using semantic relations of image tags and BoVW(Bag of Visual Words). In this paper, we propose a method to detect salient region in images using GBVS(Graph Based Visual Saliency) model which can eliminate less important region like a background. First, We construct BoVW based on SIFT algorithm from the database of the preliminary retrieved images with semantically related tags. Second, detect salient region in test images using GBVS model. The result of image classification showed higher accuracy than the previous research. Therefore we expect that our method can classify a variety of images more accurately.

Query-by-emotion sketch for local emotion-based image retrieval (지역 감성기반 영상 검색을 위한 감성 스케치 질의)

  • Lee, Kyoung-Mi
    • Journal of Internet Computing and Services
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    • v.10 no.6
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    • pp.113-121
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    • 2009
  • In order to retrieve images with different emotions in regions of the images, this paper proposes the image retrieval system using emotion sketch. The proposed retrieval system divides an image into $17{\times}17$ sub-regions and extracts emotion features in each sub-region. In order to extract the emotion features, this paper uses emotion colors on 160 emotion words from H. Nagumo's color scheme imaging chart. We calculate a histogram of each sub-region and consider one emotion word having the maximal value as a representative emotion word of the sub-region. The system demonstrates the effectiveness of the proposed emotion sketch and our experimental results show that the system successfully retrieves on the Corel image database.

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Multi-Dimensional Association Rule Mining in Multimedia Data (멀티미디어 데이터의 다차원 연관규칙 마이닝)

  • Kim, Jin-Ok;Hwang, Dae-Jun
    • Proceedings of the Korea Information Processing Society Conference
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    • 2001.10a
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    • pp.233-236
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    • 2001
  • 멀티미디어 데이터의 증가와 마이닝 기술의 발전으로 인해 멀티미디어 마이닝에 대한 관심이 증가하고 있다. 본 논문에서는 특성국지화를 이용한 내용기반의 정보검색 기술과 다차원 데이터큐브 구축기술을 통해 멀티미디어 데이터에서 연관규칙을 찾아내는 멀티미디어 데이터마이닝 시스템 프로토타입을 제안한다. 특히 멀티미디어 데이터의 칼라, 질감 등 거시적인 이미지 성분 대신 이미지의 영역성과 유사성을 이용한 특성국지화방법을 이용하여 이미지를 분할함으로써 방대한 데이타에서 효과적인 내용기반의 정의 검색을 시행하고 검색한 벡터를 메타데이타로 한 데이스베이스를 구축한다. 그리고 데이터베이스에서 데이터간 연관규칙을 찾아내어 지식을 마이닝하는데 효과적인 다차원 데이터큐브를 구축하고 여기에 연관규칙 검색 알고리즘을 적용한다.

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A Study on the Performance Enhancement of Content-based Image Retrieval Systems Using Lighting Directions (빛의 방향을 이용한 내용기반 이미지 검색 시스템의 효율성 향상에 관한 연구)

  • 안재욱;문성빈
    • Journal of the Korean Society for information Management
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    • v.17 no.4
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    • pp.157-170
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    • 2000
  • CHROMA. a content-based image rctl-ieval syslem lhas inlroduced a perceptual color modcl, which can siinulatc the visual perceplual process of lhuman beings and eliminate ihe l~roblem ol condilional color variations. Th~s model Ihoweve~ rcgarded shadows and rcllcctions as u n k ~ ~ o u ~ i colors. and took no account of ihe inforclation which can bc gamed from them Th~s ~tudy atlempls Lo estnnale (he unbhown colors using i~ght~ng dil-cclions and lo prove that the process ol unknown colol eslimation can enhance the lperformance o l image retrieval syslems. With the ckperimcntal results, it was concludcd that thc model pmposcd in this study can enhance the perfomancc of content-based image retrieval systems using Lhe ]~ercepiual color model.

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Image Retrieval based on Color-Spatial Features using Quadtree and Texture Information Extracted from Object MBR (Quadtree를 사용한 색상-공간 특징과 객체 MBR의 질감 정보를 이용한 영상 검색)

  • 최창규;류상률;김승호
    • Journal of KIISE:Computing Practices and Letters
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    • v.8 no.6
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    • pp.692-704
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    • 2002
  • In this paper, we present am image retrieval method based on color-spatial features using quadtree and texture information extracted from object MBRs in an image. Tile proposed method consists of creating a DC image from an original image, changing a color coordinate system, and decomposing regions using quadtree. As such, conditions are present to decompose the DC image, then the system extracts representative colors from each region. And, image segmentation is used to search for object MBRs, including object themselves, object included in the background, or certain background region, then the wavelet coefficients are calculated to provide texture information. Experiments were conducted using the proposed similarity method based on color-spatial and texture features. Our method was able to refute the amount of feature vector storage by about 53%, but was similar to the original image as regards precision and recall. Furthermore, to make up for the deficiency in using only color-spatial features, texture information was added and the results showed images that included objects from the query images.

Complex Color Model for Efficient Representation of Color-Shape in Content-based Image Retrieval (내용 기반 이미지 검색에서 효율적인 색상-모양 표현을 위한 복소 색상 모델)

  • Choi, Min-Seok
    • Journal of Digital Convergence
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    • v.15 no.4
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    • pp.267-273
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    • 2017
  • With the development of various devices and communication technologies, the production and distribution of various multimedia contents are increasing exponentially. In order to retrieve multimedia data such as images and videos, an approach different from conventional text-based retrieval is needed. Color and shape are key features used in content-based image retrieval, which quantifies and analyzes various physical features of images and compares them to search for similar images. Color and shape have been used as independent features, but the two features are closely related in terms of cognition. In this paper, a method of describing the spatial distribution of color using a complex color model that projects three-dimensional color information onto two-dimensional complex form is proposed. Experimental results show that the proposed method can efficiently represent the shape of spatial distribution of colors by frequency transforming the complex image and reconstructing it with only a few coefficients in the low frequency.

A Semantics-based Video Retrieval System using Annotation and Feature (주석 및 특징을 이용한 의미기반 비디오 검색 시스템)

  • 이종희
    • Journal of the Institute of Electronics Engineers of Korea CI
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    • v.41 no.4
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    • pp.95-102
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    • 2004
  • In order to process video data effectively, it is required that the content information of video data is loaded in database and semantic-based retrieval method can be available for various query of users. Currently existent contents-based video retrieval systems search by single method such as annotation-based or feature-based retrieval, and show low search efficiency md requires many efforts of system administrator or annotator because of imperfect automatic processing. In this paper, we propose semantics-based video retrieval system which support semantic retrieval of various users by feature-based retrieval and annotation-based retrieval of massive video data. By user's fundamental query and selection of image for key frame that extracted from query, the agent gives the detail shape for annotation of extracted key frame. Also, key frame selected by user become query image and searches the most similar key frame through feature based retrieval method and optimized comparison area extracting that propose. Therefore, we propose the system that can heighten retrieval efficiency of video data through semantics-based retrieval.

An ECG Document Imaging System based on Neural Network and Graphic Techniques (신경망과 그래픽 기법을 이용한 심전도 결과지 이미징 시스템)

  • Kim Jin-Sang;Choi Sang-Yeol;Bae In-Ho;Kim Yun-Nyeon
    • Proceedings of the Korean Institute of Intelligent Systems Conference
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    • 2006.05a
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    • pp.269-272
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    • 2006
  • 병원의 각종 측정 장비에서 출력되는 결과지나 의사들이 작성한 기록지를 스캔하여 이미지형태로 저장하는 이미징 시스템 개발이 크게 요구되고 있다. 본 논문에서는 신경망과 그래픽 기법을 사용하여 대학병원 심전도실에서 사용되는 여섯 종류의 심전도 출력지를 이미지 형태로 저장하고 검색하는 이미징 시스템의 설계와 구현에 대해 논하였다. 구현된 시스템은 여섯 종류의 심전도 출력지를 분류하고, 분류된 각 출력지에 인쇄된 중요한 측정 데이터를 인식하여 데이터베이스에 저장한다. 심전도 출력지의 분류는 각 샘플 서식들의 평균 히스토그램을 구한 다음 새로운 출력지가 들어올 때 평균 히스토그램과의 거리가 가장 가까운 출력지로 분류하는 nearest-neighbor 방법을 사용하였다. 출력지에 인쇄된 데이터의 인식을 위해 먼저 XML로 작성한 출력지별 추출 정보를 기반으로 스캔한 이미지의 영역 분할 작업을 수행한다. 분할된 영역들은 신경망을 이용해 문자 인식을 하고, 인식된 문자들이 데이터베이스의 해당 속성값으로 저장된다. 스캔한 출력지는 의사들이 주석을 붙이거나 조건 검색을 위해 이미지 형태로 저장된다.

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Shape Retrieval using Curvature-based Morphological Graphs (굴곡 기반 형태 그래프를 이용한 모양 검색)

  • Bang, Nan-Hyo;Um, Ky-Hyun
    • Journal of KIISE:Databases
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    • v.32 no.5
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    • pp.498-508
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    • 2005
  • A shape data is used one oi most important feature for image retrieval as data to reflect meaning of image. Especially, structural feature of shape is widely studied because it represents primitive properties of shape and relation information between basic units well. However, most structural features of shape have the problem that it is not able to guarantee an efficient search time because the features are expressed as graph or tree. In order to solve this problem, we generate curvature-based morphological graph, End design key to cluster shapes from this graph. Proposed this graph have contour features and morphological features of a shape. Shape retrieval is accomplished by stages. We reduce a search space through clustering, and determine total similarity value through pattern matching of external curvature. Various experiments show that our approach reduces computational complexity and retrieval cost.