• Title/Summary/Keyword: Intelligent query

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Mining of Subspace Contrasting Sample Groups in Microarray Data (마이크로어레이 데이터의 부공간 대조 샘플집단 마이닝)

  • Lee, Kyung-Mi;Lee, Keon-Myung
    • Journal of the Korean Institute of Intelligent Systems
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    • v.21 no.5
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    • pp.569-574
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    • 2011
  • In this paper, we introduce the subspace contrasting group identification problem and propose an algorithm to solve the problem. In order to identify contrasting groups, the algorithm first determines two groups of which attribute values are in one of the contrasting ranges specified by the analyst, and searches for the contrasting groups while increasing the dimension of subspaces with an association rule mining strategy. Because the dimension of microarray data is likely to be tens of thousands, it is burdensome to find all contrasting groups over all possible subspaces by query generation. It is very useful in the sense that the proposed method allows to find those contrasting groups without analyst's involvement.

Analysis of XQuery FLWOR expression to SQL translation (XQuery FLWOR 연산의 SQL 변환 기법 분석)

  • Hong, Dong-Kweon
    • Journal of the Korean Institute of Intelligent Systems
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    • v.18 no.2
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    • pp.278-283
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    • 2008
  • As the usefulness of internet is kept changing more productively with web 1.0, web 2.0 usage of XML is also increasing very rapidly. In XML environment the most critical function is the ability of effective retrieval of useful information from XML repository. That makes the W3C XQuery more popular XQuery has very complicated structure as a query language due to the semi_structured nature of XML. FLOWOR, which stand for, let. where, order by, return, is the most commonly used expression in XQuery. In this paper we suggest the methods to handle XQuery FLWOR on relational environments. We also analyze and evaluate our approach to prove its correctness.

W3C XQuery Update facility on SQL hosts (관계형 테이블을 이용한 W3C XQuery 변경 기능의 지원)

  • Hong, Dong-Kweon
    • Journal of the Korean Institute of Intelligent Systems
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    • v.18 no.3
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    • pp.306-310
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    • 2008
  • XQuery is a new recommendation for XML query. As an efforts for extending XQuery capabilities XML insertion and deletion are being studied and its standardization are going on. Initially XML databases are developed simply for XML document management. Now their functions are extending to OLTP. In this paper we are adding updating functions to XQuery processing system that is developed only for XQuery retrievals. We suggest the structure of tables, numbering schemes for hierarchical structures, and the methods for SQL translations for XQuery updates.

Extraction of Military Ontology Using Six-Step Bottom-up Approach (6단계 상향식 방법에 의한 국방 온톨로지 추출)

  • Ra, Min-Young;Yang, Kyung-Yong
    • Journal of the Korea Society of Computer and Information
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    • v.14 no.6
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    • pp.17-26
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    • 2009
  • In national defense, established information systems are mainly based on simple information processing, such as mass data query. They have thus lacked intelligent ability of information and knowledge representation ability. We therefore need the research about the construction of military ontology which is the main topic for knowledge construction. Military ontology can help us develop the intelligent national defense information system which can search and manage information efficiently. In this paper, we present the six-step bottom-up approach for military ontology extraction, then we apply this approach to one of military domain, called national defense educational training, and finally implement it using $Prot\acute{e}g\acute{e}$ which is one of the most useful ontology development tool.

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.

Scene Recognition based Autonomous Robot Navigation robust to Dynamic Environments (동적 환경에 강인한 장면 인식 기반의 로봇 자율 주행)

  • Kim, Jung-Ho;Kweon, In-So
    • The Journal of Korea Robotics Society
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    • v.3 no.3
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    • pp.245-254
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    • 2008
  • Recently, many vision-based navigation methods have been introduced as an intelligent robot application. However, many of these methods mainly focus on finding an image in the database corresponding to a query image. Thus, if the environment changes, for example, objects moving in the environment, a robot is unlikely to find consistent corresponding points with one of the database images. To solve these problems, we propose a novel navigation strategy which uses fast motion estimation and a practical scene recognition scheme preparing the kidnapping problem, which is defined as the problem of re-localizing a mobile robot after it is undergone an unknown motion or visual occlusion. This algorithm is based on motion estimation by a camera to plan the next movement of a robot and an efficient outlier rejection algorithm for scene recognition. Experimental results demonstrate the capability of the vision-based autonomous navigation against dynamic environments.

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Cyber-Salesman : An Agent negotiating with Customers (가상점원 : 고객과의 협상을 위한 에이전트)

  • 조의성;조근식
    • Proceedings of the Korea Inteligent Information System Society Conference
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    • 1999.03a
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    • pp.217-225
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    • 1999
  • 협상은 상거래에 있어서 매우 중요한 요소 중 하나이다. 현재의 웹 기반 전자상거래 시스템은 이러한 중요한 협상 구조를 상거래에 잘 반영하지 못하는 문제점을 가지고 있다. 이러한 문제점중 기업과 소비자간의 미비한 협상 구조를 보안하기 위해 실세계 상거래에서 존재하는 점원을 전자상거래상의 가상점원으로 모델링하여 회사의 정책과 구매자의 특성을 반영하여 구매자와 전략적으로 자동 협상을 수행할 수 있는 에이전트의 구조를 설계하고 표현하고, 그 제안에 대한 평가 내용과 결정사항을 전달할 수 있는 언어적인 구조가 필요하며, 협상의 대상이 되는 사안들의 특성을 반영할 수 있는 표현 구조도 요구된다. 또한 이러한 협상에서 전략을 세우고 알맞은 제안을 제시하며 상대의 제안에 대하여 전략적으로 반응할 수 있는 의사결정 모델이 요구된다. 본 논문에서는 회사의 정책 모델과 구매자의 모델을 정의하고 이를 이용한 협상 모델을 설계 구현하였다. 협상 구조의 모델링을 위해 KQML(Knowledge Query Manipulation Language)을 기반으로 전자상거래 프로토콜로 설계하고, 논쟁 기반 협상 모델을 기초로 협상언어를 설계하였다. 또한 협상에서의 전략적인 의사결정을 위해 게임이론을 이용하고, 규칙 기반 시스템으로 이를 보충하였다. 마지막으로 가상점원 모델을 바탕으로 조립 컴퓨터 판매를 위한 가상점원으로 구현하였고, 이에 대한 실험을 통하여 가상점원의 유용성을 보였다.

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RDF 지식 베이스의 자원 중요도 계산 알고리즘에 대한 연구

  • No, Sang-Gyu;Park, Hyeon-Jeong;Park, Jin-Su
    • Proceedings of the Korea Inteligent Information System Society Conference
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    • 2007.05a
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    • pp.123-137
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    • 2007
  • The information space of semantic web comprised of various resources, properties, and relationships is more complex than that of WWW comprised of just documents and hyperlinks. Therefore, ranking methods in the semantic web should be modified to reflect the complexity of the information space. In this paper we propose a method of ranking query results from RDF(Resource Description Framework) knowledge bases. The ranking criterion is the importance of a resource computed based on the link structure of the RDF graph. Our method is expected to solve a few problems in the prior research including the Tightly-Knit Community Effect. We illustrate our methods using examples and discuss directions for future research.

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Korea Electronic Technology Institute (멀티미디어 컨텐츠의 지능형 선택/검색 시스템 구현)

  • 이종설;이윤주;박우출;정하중;조위덕
    • Proceedings of the Korean Information Science Society Conference
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    • 2002.10e
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    • pp.61-63
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    • 2002
  • 멀티미디어 컨텐츠의 지능형 선택/검색 시스템(MISS: Multimedia Content Intelligent Selection/search) 는 콘텐츠를 공급하는 서버에 다량의 멀티미디어 컨텐츠들이 존재하며, 이 컨텐츠 중에서 원하는 것을 검색, 선택하는 시스템이다. 지능적 검색, 선택기능을 갖는 MISS 시스템은 인터넷 및 네트워크상에 연결된 시스템들간의 맞춤형 서비스 구현에 필요한 핵심이며, 모든 종류의 멀티미디어 콘텐츠에 적용 가능하다. 현재 WWW 서비스경우는 정보를 찾기 위하여 웹상에서 문서를 찾아주는 텍스트 기반 정보검색기술이 사용되고 있는데, 점점 우리가 접하는 정보의 형태는 텍스트와 함께 화상, 음성, 동영상 등의 멀티미디어화 및 디지털화하고 있다. 사용자들에게는 멀티미디어 데이터를 효과적으로 찾아야 하는 필요성이 증가하고 이에 따라 방대한 양의 분산된 멀티미디어 데이터를 처리할 수 있는 색인 및 검색 도구의 요구가 커지게 되었다. MISS 시스템은 WWW 서비스의 요구에도 적용될 수 있다. MISS 시스템은 다량의 동영상 콘텐츠 중에서 특정 배우, 감독등의 여러 가지 검색 조건으로 콘텐츠를 검색/선택할 수 있고, 하나의 동영상 콘텐츠 내에서 특정Video Segment를 검색할 수 있다. 본 MISS 시스템은 동영상에 대한 Search/Query를 위한DS 구조로써 MPEG-7의 User preference metadata를 이용하였다.

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A Study on Machine Learning Algorithm for Intelligent Information Retrieval in World Wide Web (WWW상의 지능형 정보검색을 위한 기계학습 알고리즘 구현에 관한 연구)

  • 김성희
    • Journal of the Korean Society for information Management
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    • v.17 no.2
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    • pp.189-205
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    • 2000
  • We investigate the appropriate design and implementation of an Inductive Learning Alogrithm with a Neural Network in order to solve both inconsistent indexing and incomplete query problems on the web. Specifically, the proposed system based queries and documents in the field of Mathematics shows how inductive learning method and neural networks can apply to information retreival. Also, this study examines all of parameters of the neural networks -- the number of node in input and output, hidden layer size and learning parameters etc. -- which are significant in determining how well the neural network will converge.

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