• Title/Summary/Keyword: 의미기반 이미지 검색

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Design of Indexing Agent for Semantic-based Video Retrieval (의미기반 비디오 검색을 위한 인덱싱 에이전트의 설계)

  • Lee, Jong-Hee;Oh, Hae-Seok
    • The KIPS Transactions:PartB
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    • v.10B no.6
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    • pp.687-694
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    • 2003
  • According to the rapid increase of multimedia data quantity recently, various means of video data search has been desired. 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 and requires many efforts of system administrator or annotator form less perfect automatic processing. In this paper, we propose semantic-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 that propose. Therefore, we design the system that can heighten retrieval efficiency of video data through semantic-based retrieval.

Applying Method WordNet for Concept based Image Retrieval system (개념 기반 이미지 검색 시스템을 위한 WordNet 적용 방안)

  • 조미영;최준호;김판구
    • Proceedings of the Korean Information Science Society Conference
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    • 2002.10d
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    • pp.487-489
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    • 2002
  • 기존의 키워드 기반 이미지 검색에서는 의미적 내용 인식을 위해 일반적으로 어휘적 정보나 텍스트 정보를 인간이 주석 형태로 달아주었다. 그러나 이런 텍스트 정보 기반 이미지 검색은 개념적 매칭이 아닌 스트링 매칭이므로 주석을 달아놓은 단어와 정확한 매칭이 없다면 찾을 수가 없다. 이러한 문제를 해결하기 위해 본 논문에서는 개념 기반 이미지 검색 시스템을 위한 WordNet의 적용 방안에 대해 연구했다. WordNet은 단언형이 아닌 단어의 의미 즉 synset이 구성 요소라는 특징을 이용해 각각의 이미지에 텍스트 정보 대신 적합한 개념의 Synset번호를 저장한다. 그리고 검색시 개념간의 유사성 측정을 이용해 검색어와 개념적으로 유사한 모든 이미지를 검색하도록 한다.

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Design of Content-Based Image Database and Development of Retrieval System using XML (XML을 이용한 내용기반 이미지 데이터베이스의 설계 및 검색 시스템 구현)

  • Park, Seon-Yeong;Yong, Hwan-Seung
    • Journal of KIISE:Databases
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    • v.27 no.4
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    • pp.572-584
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    • 2000
  • 내용기반 이미지 검색을 하기 위해서는 이미지에 대한 내용정보가 필요하며, 이러한 내용정보간에는 상호 연관성이 존재한다. XML(eXtensible Markup Language)은 내용정보간의 상호연관성을 표현하기에 적절하므로 본 논문에서는 이미지 내용정보를 구조화하기 위한 방법으로 XML을 사용하였다. 또한 이미지는 눈에 보이는 객체의 시각적인 특징과 이미지 전테가 내포하는 시술적인 의미도 가지므로, 이러한 이미지의 특성에 따라 내용정보의 구조도 객체의 시각적 특징 중심의 모델링과 의미 중심의 모델링으로 구분하여 XML 문서 구조를 모델링 하였다. 구조화된 모델들 간의 객체지향 특성을 이용하여 XML 데이터 서버인 eXcelon에 통합하고, 이를 XQL(XML Query Language)에 의하여 질의해 냄으로써 검색 구간에 제약을 가하고 이를 통하여 더욱 효과적인 검색을 지원하도록 한다. 검색되어진 XML 문서 구조는 XSL(extensible StyleSheets Language)의 적용을 통하여 쉬운 형태로 웹 브라우저 상에 출력하도록 한다. 마지막으로 본 논문에서 제안한 모댈링의 효율성을 검증하기 위하여, 웹 상에서 이미지 내용정보의 상호 연관성에 기반 하여 원하는 이미지를 검색할 수 있는 시스템을 구현하였다.

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Developing an Education Image Retrieval System based on MPEG-7 using KEM 2.0 (KEM 2.0을 이용한 MPEG-7 기반의 교육용 영상정보 검색시스템 개발)

  • Kwak, Kil-Sin;Joo, Kyung-Soo
    • Journal of the Korea Society of Computer and Information
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    • v.10 no.4 s.36
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    • pp.155-164
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    • 2005
  • WThe education information have been increased. Accordingly, the necessary of developing on education information metadata standards has been increased. By the reason, the Korea Education & Research Information Service developed KEM(Korea Educational Metadata) 2.0. And MPEG-7 was developed to describe metadata of multimedia data. In this paper, we developed a education information image retrieval system. This system used XML schema to accept education information image metadata. We integrated contents-based retrieval and a semantic-based retrieval to overcome there problems that content-based retrieval system can not support semantic-based retrieval and a semantic-based retrieval can not support content-based retrieval. As a results, we expect to handle metadata more efficiently.

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A Semantic-based Video Retrieval System using Design of Automatic Annotation Update and Categorizing (자동 주석 갱신 및 카테고라이징 기법을 이용한 의미기반 동영상 검색 시스템)

  • 김정재;이창수;이종희;전문석
    • Journal of the Korea Computer Industry Society
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    • v.5 no.2
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    • pp.203-216
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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 and requires many efforts of system administrator or annotator form less perfect automatic processing. In this paper, we propose semantic-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 that propose. Therefore, we design the system that can heighten retrieval efficiency of video data through semantic-based retrieval.

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A Semantic-based Video Retrieval System Using the Automatic Indexing Agent (자동 인덱싱 에이전트를 이용한 의미기반 비디오 검색 시스템)

  • Kim Sam-Keun;Lee Jong-Hee;Yoon Sun-Hee;Lee Keun-Soo;Seo Jeong-Min
    • Journal of Korea Multimedia Society
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    • v.9 no.1
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    • pp.127-137
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    • 2006
  • 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 and requires many efforts of system administrator or annotator form less perfect automatic processing. In this paper, we propose semantic-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 automatic indexing 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 that propose. Therefore, we propose the system that can heighten retrieval efficiency of video data through semantic-based retrieval.

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A Multimedia Database System using Method of feature-based retrieval (특징기반 검색 기법을 이용한 멀티미디어 데이터베이스 시스템)

  • Cho, Kyung-Mo
    • Proceedings of the KAIS Fall Conference
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    • 2010.05a
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    • pp.315-318
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    • 2010
  • 기존의 내용기반 비디오 검색 시스템들은 주석기반 검색 또는 특징기반 검색과 같은 단일 방식으로만 검색을 하므로 검색 효율이 낮을 뿐 아니라 완전한 자동 처리가 되지 않아 시스템 관리자나 주석자의 많은 노력을 요구한다. 본 논문에서는 주석기반 검색을 이용하여 대용량의 비디오 데이터에 대한 사용자의 다양한 의미검색을 지원하는 에이전트 기반에서의 자동화되고 통합된 비디오 의미기반 검색 시스템을 제안한다. 사용자의 기본적인 질의를 분석하고 질의에 의해 추출된 키 프레임의 이미지를 사용자가 선택함으로써 인덱싱 에이전트는 추출된 키 프레임의 주석에 대한 의미를 더욱 구체화시킨다.

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Tagged Web Image Retrieval Re-ranking with Wikipedia-based Semantic Relatedness (위키피디아 기반의 의미 연관성을 이용한 태깅된 웹 이미지의 검색순위 조정)

  • Lee, Seong-Jae;Cho, Soo-Sun
    • Journal of Korea Multimedia Society
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    • v.14 no.11
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    • pp.1491-1499
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    • 2011
  • Now a days, to make good use of tags is a general tendency when users need to upload or search some multimedia data such as images and videos on the Web. In this paper, we introduce an approach to calculate semantic importance of tags and to make re-ranking with them on tagged Web image retrieval. Generally, most photo images stored on the Web have lots of tags added with user's subjective judgements not by the importance of them. So they become the cause of precision rate decrease with simple matching of tags to a given query. Therefore, if we can select semantically important tags and employ them on the image search, the retrieval result would be enhanced. In this paper, we propose a method to make image retrieval re-ranking with the key tags which share more semantic information with a query or other tags based on Wikipedia-based semantic relatedness. With the semantic relatedness calculated by using huge on-line encyclopedia, Wikipedia, we found the superiority of our method in precision and recall rate as experimental results.

A Semantic-based Video Retrieval System using Method of Automatic Annotation Update and Multi-Partition Color Histogram (자동 주석 갱신 및 멀티 분할 색상 히스토그램 기법을 이용한 의미기반 비디오 검색 시스템)

  • 이광형;전문석
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.29 no.8C
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    • pp.1133-1141
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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. In this paper, we propose semantic-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 that propose. From experiment, the designed and implemented system showed high precision ratio in performance assessment more than 90 percents.

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.