• Title/Summary/Keyword: Ontology-based Search

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A Study on the Ontology-Based Regional User-centric convergence content design information retrieval (온톨로지 기반의 사용자 중심 융합 컨텐츠 디자인 정보 검색에 관한 연구)

  • Park, Ju-Ok;Yeom, Mi-Ryeong;Jung, Doo-Yong
    • Journal of the Korea Convergence Society
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    • v.7 no.2
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    • pp.19-24
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    • 2016
  • On a huge space of information called the Internet, users can use a smart mobile web to get information on various intellectual fields and can access to various Medias such as personal blogs and social networking sites (SNS). This is why a vast amount of information on the web has been effectively managed and researched nowadays through a technology named Semantic Web. However, it still needs for an improvement for studies on searching for intellectual information, though it is enhanced to integrate variously spread information and search for intellectual information user-oriented. Thus, this study aims to research on searching information and knowledge spread around a knowledge-filled information space, which can improve credibility according to user-oriented logic.

Design and Implementation of Educational Information Sharing Systems using Bookmark (즐겨찾기를 이용한 교육용 정보공유시스템의 설계 및 구현)

  • Han, Sun-Gwan
    • The Journal of Korean Association of Computer Education
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    • v.7 no.6
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    • pp.77-84
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    • 2004
  • This study proposed the agent system for educational information sharing using bookmark. In order to search and share the educational information effectively, we designed DAML+OIL-typed bookmark information. Proposed system in this study had the P2P type based on Client-Server type. We implemented the bookmark agent that has the intelligent characteristics, that is, automatic categorization of peers and documents, autonomous communication between agents using DAML, and delicate information searching using the ontology dictionary in Semantic Web environment. Hereafter, this study will contribute to activate sharing and searching educational information as well as proposed system will offer the important technologies for SCORM-based e-learning environment.

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Information Retrieval System using Keyword-Base Concept Nets in Mobile Cloud (모바일 클라우드 환경의 키워드 개념 망을 이용한 정보 검색 시스템)

  • Moon, Seok-Jae;Yoon, Chang-Pyo
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2013.10a
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    • pp.661-663
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    • 2013
  • The purpose of the following report is to introduce a model that makes it possible to efficiently search data by using keyword-based concept network for reliable access of information which is rapidly increasing in the mobile cloud. A keyword-based concept network is a method with the application of ontology. However, the proposed model is added by association information between keyword concepts as a method for a user's efficient information retrieval. Furthermore, the proposed concept network consists of the keyword centered concept network, expert-group-recommended field concept network, and process concept network.

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Term Mapping Methodology between Everyday Words and Legal Terms for Law Information Search System (법령정보 검색을 위한 생활용어와 법률용어 간의 대응관계 탐색 방법론)

  • Kim, Ji Hyun;Lee, Jong-Seo;Lee, Myungjin;Kim, Wooju;Hong, June Seok
    • Journal of Intelligence and Information Systems
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    • v.18 no.3
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    • pp.137-152
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    • 2012
  • In the generation of Web 2.0, as many users start to make lots of web contents called user created contents by themselves, the World Wide Web is overflowing by countless information. Therefore, it becomes the key to find out meaningful information among lots of resources. Nowadays, the information retrieval is the most important thing throughout the whole field and several types of search services are developed and widely used in various fields to retrieve information that user really wants. Especially, the legal information search is one of the indispensable services in order to provide people with their convenience through searching the law necessary to their present situation as a channel getting knowledge about it. The Office of Legislation in Korea provides the Korean Law Information portal service to search the law information such as legislation, administrative rule, and judicial precedent from 2009, so people can conveniently find information related to the law. However, this service has limitation because the recent technology for search engine basically returns documents depending on whether the query is included in it or not as a search result. Therefore, it is really difficult to retrieve information related the law for general users who are not familiar with legal terms in the search engine using simple matching of keywords in spite of those kinds of efforts of the Office of Legislation in Korea, because there is a huge divergence between everyday words and legal terms which are especially from Chinese words. Generally, people try to access the law information using everyday words, so they have a difficulty to get the result that they exactly want. In this paper, we propose a term mapping methodology between everyday words and legal terms for general users who don't have sufficient background about legal terms, and we develop a search service that can provide the search results of law information from everyday words. This will be able to search the law information accurately without the knowledge of legal terminology. In other words, our research goal is to make a law information search system that general users are able to retrieval the law information with everyday words. First, this paper takes advantage of tags of internet blogs using the concept for collective intelligence to find out the term mapping relationship between everyday words and legal terms. In order to achieve our goal, we collect tags related to an everyday word from web blog posts. Generally, people add a non-hierarchical keyword or term like a synonym, especially called tag, in order to describe, classify, and manage their posts when they make any post in the internet blog. Second, the collected tags are clustered through the cluster analysis method, K-means. Then, we find a mapping relationship between an everyday word and a legal term using our estimation measure to select the fittest one that can match with an everyday word. Selected legal terms are given the definite relationship, and the relations between everyday words and legal terms are described using SKOS that is an ontology to describe the knowledge related to thesauri, classification schemes, taxonomies, and subject-heading. Thus, based on proposed mapping and searching methodologies, our legal information search system finds out a legal term mapped with user query and retrieves law information using a matched legal term, if users try to retrieve law information using an everyday word. Therefore, from our research, users can get exact results even if they do not have the knowledge related to legal terms. As a result of our research, we expect that general users who don't have professional legal background can conveniently and efficiently retrieve the legal information using everyday words.

Improving Bidirectional LSTM-CRF model Of Sequence Tagging by using Ontology knowledge based feature (온톨로지 지식 기반 특성치를 활용한 Bidirectional LSTM-CRF 모델의 시퀀스 태깅 성능 향상에 관한 연구)

  • Jin, Seunghee;Jang, Heewon;Kim, Wooju
    • Journal of Intelligence and Information Systems
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    • v.24 no.1
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    • pp.253-266
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    • 2018
  • This paper proposes a methodology applying sequence tagging methodology to improve the performance of NER(Named Entity Recognition) used in QA system. In order to retrieve the correct answers stored in the database, it is necessary to switch the user's query into a language of the database such as SQL(Structured Query Language). Then, the computer can recognize the language of the user. This is the process of identifying the class or data name contained in the database. The method of retrieving the words contained in the query in the existing database and recognizing the object does not identify the homophone and the word phrases because it does not consider the context of the user's query. If there are multiple search results, all of them are returned as a result, so there can be many interpretations on the query and the time complexity for the calculation becomes large. To overcome these, this study aims to solve this problem by reflecting the contextual meaning of the query using Bidirectional LSTM-CRF. Also we tried to solve the disadvantages of the neural network model which can't identify the untrained words by using ontology knowledge based feature. Experiments were conducted on the ontology knowledge base of music domain and the performance was evaluated. In order to accurately evaluate the performance of the L-Bidirectional LSTM-CRF proposed in this study, we experimented with converting the words included in the learned query into untrained words in order to test whether the words were included in the database but correctly identified the untrained words. As a result, it was possible to recognize objects considering the context and can recognize the untrained words without re-training the L-Bidirectional LSTM-CRF mode, and it is confirmed that the performance of the object recognition as a whole is improved.

The Design and Development of Linked Data from Authority Data in National Archives of Korea (기록물 전거통제 기반 Linked Data 구축에 대한 연구)

  • Park, Ok-Nam
    • Journal of the Korean BIBLIA Society for library and Information Science
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    • v.23 no.2
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    • pp.5-25
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    • 2012
  • The purpose of this study is to develop linked data of authority data in national archives of Korea as a cornerstone for linked data cloud of Korea. The study analyzed data structure of authority data as well as a retrieval system. It finally developed linked data based on RDF/OWL, Dublin Core, and SKOS. The study also employed TopBraid ComposerTM as a tool for ontology construction. The visualization of the tool provides users with flexible search and browsing between data as well as access of detail authority data. It complements the search of a current system in terms of flexible linking between records and authority data. The study also suggests future work to publish linked data of archival data set itself and make rich relationships among data in museums, libraries, and other archives.

Extended Semantic Web Services Retrieval Model for the Intelligent Web Services (지능형 웹 서비스를 위한 확장된 시맨틱 웹서비스 검색 모델)

  • Choi, Ok-Kyung;Han, Sang-Yong;Lee, Zoon-Ky
    • The KIPS Transactions:PartD
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    • v.13D no.5 s.108
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    • pp.725-730
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    • 2006
  • Recently Web services have become a key technology which is indispensable for e-business. Due to its ability to provide the desired information or service regardless of time and place, integrating current application systems within a single business or between multiple businesses with standardized technologies are realized using the open network and Internet. However, the current Web Services Retrieval Systems, based on text oriented search are incapable of providing reliable search results by perceiving the similarity or interrelation between the various terms. Currently there are no web services retrieval models containing such semantic web functions. This research work is purported for solving such problems by designing and implementing an extended Semantic Web Services Retrieval Model that is capable of searching for general web documents, UDDI and semantic web documents. Execution result is proposed in this paper and its efficiency and accuracy are verified through it.

A Design of Book Search program based on the Semantic Web (시맨틱 웹 기반의 도서검색 프로그램 설계)

  • Choi, Jun-nyeong;Lee, Ji-hun;Jung, In-jung;Yu, Don-hui
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2014.05a
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    • pp.130-131
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    • 2014
  • 시맨틱 웹은 1998년 웹의 창시자인 Tim Berners Lee가 제안을 한 웹 기술로써 인간의 언어를 이해하고 인간과 쉽게 의사소통이 가능한 네트워크를 말한다. 즉 컴퓨터 스스로 웹에 연결된 정보의 의미를 인식하고 사용자가 필요로 하는 정보를 검색하며 검색된 정보에서 지식을 유추할 수 있는 기능을 제공하는 지능형 웹 환경이다. 이런 시맨틱 웹 개념을 적용한 사례로는 네이버 시맨틱 웹 영화검색 이있다. 본 논문에서는 네이버 시맨틱 웹 영화검색 시스템을 벤치마킹한 도서검색 서비스 설계를 제안하고자 한다. 본 도서검색 서비스는 온톨로지 개념을 적용하여 도서와 관련된 검색 카테고리를 설정하며, 간단한 시나리오는 다음과 같다. 한 권의 책을 검색하면 해당 책과 연관된 첫 번째 카테고리로 출판사, 제작한 년도, 저자, 장르, 관련 검색 도서 등의 데이터들이 상단에 제시된다. 제시된 카테고리에서 임의의 항목을 선택하면 그 하단 공백에 선택된 항목과 연관된 카테고리에 해당하는 항목들이 제시된다. 예를 들어, 출판사를 선택한다면 해당 출판사에서 출간된 도서들이 하단 공백에 열거가 되고 상단 두 번째 카테고리에 원작국가, 저자 관련 책, 수상정보, 공동 집필자, 책을 원작으로 확장된 컨텐츠 등 또 다른 카테고리가 우측으로 생성이 되며 선택을 할 수 있게 된다. 본 논문에서 제안하는 시맨틱 웹 기반 도서검색 서비스는 사용자가 검색하고자 하는 정보를 보다 효율적이고 사용자 중심에서 제공할 수 있다고 사료된다.

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A Personalized Clothing Recommender System Based on the Algorithm for Mining Association Rules (연관 규칙 생성 알고리즘 기반의 개인화 의류 추천 시스템)

  • Lee, Chong-Hyeon;Lee, Suk-Hoon;Kim, Jang-Won;Baik, Doo-Kwon
    • Journal of the Korea Society for Simulation
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    • v.19 no.4
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    • pp.59-66
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    • 2010
  • We present a personalized clothing recommender system - one that mines association rules from transaction described in ontologies and infers a recommendation from the rules. The recommender system can forecast frequently changing trends of clothing using the Onto-Apriori algorithm, and it makes appropriate recommendations for each users possible through the inference marked as meta nodes. We simulates the rule generator and the inferential search engine of the system with focus on accuracy and efficiency, and our results validate the system.

A Study on Ontology-Based Semantic Search System (온톨로지 기반의 시맨틱 검색 시스템에 대한 연구)

  • Heo, Sun-Young;Kim, Eun-Gyung
    • Proceedings of the Korea Information Processing Society Conference
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    • 2007.05a
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    • pp.463-466
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    • 2007
  • 현재 웹 서비스에서 주로 사용하고 있는 키워드 기반 검색은 사용자의 의도와는 상관없는 정보까지 검색하는 경우가 많아서, 실제로 원하는 정보를 찾는데 많은 시간과 노력을 요구한다는 단점이 있다. 이러한 단점을 보완하기 위해서 최근 시맨틱 웹이라는 개념이 등장하였으며, 본 논문에서는 검색 결과의 신뢰성을 향상시키기 위해 온톨로지를 기반으로 시맨틱 검색시스템을 설계하였다. 본 논문에서 설계한 온톨로지 기반의 시맨틱 검색 시스템은 기능적으로 크게 두 부분으로 구성되어 있다. 즉, 자료 수집을 하는 로봇 에이전트와 온톨로지를 기반으로 자료를 검색하는 시맨틱 검색 엔진으로 구성된다. 로봇 에이전트는 자율적으로 웹을 순회하면서 자료를 수집하고 필터링하여 메타데이터 저장소로 가져오는 역할을 한다. 시맨틱 검색 엔진은 사용자의 검색 폼으로부터 전달된 정보 검색 요구사항을 기초로 시맨틱 질의어로 변환한 후, 온톨로지 저장소를 활용하여 검색한다. 시맨틱 검색 엔진은 사용자가 입력한 검색어를 시맨틱 질의어로 변환해 주는 질의처리 모듈과 사용자의 의도를 추론하여 보다 향상된 검색을 가능하게 해주는 추론(Inference) 모듈, 온톨로지를 보관해주는 온톨로지 저장소 등으로 구성된다. 본 논문에서 설계한 온톨로지 기반의 시맨틱 검색 시스템은 키워드 기반 검색에 비해 사용자가 원하는 정보를 찾는데 소요되는 시간과 노력을 줄여 주고, 사용자의 의도에 적합한 정보를 제공할 것으로 기대된다.