• Title/Summary/Keyword: Semantic Computing

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A Semantic Service Discovery System for Smart-Cities (스마트시티를 위한 시맨틱 서비스 디스커버리 시스템)

  • Yun, Chang Ho;Park, Jong Won;Jung, Hae Sun;Lee, Yong Woo
    • KIPS Transactions on Computer and Communication Systems
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    • v.6 no.6
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    • pp.281-288
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    • 2017
  • In Smart-cities, various types of integrated services must be linked to provide services to applications. Therefore, flexibility must be ensured between services so that various services can be efficiently provided. In order to secure the flexibility among services, it is very important to have a function to dynamically discover and invoke a desired service by searching for a semantic service by reflecting a recognized context through real-time context-aware in smart-cities. To date, quite a number of semantic service discovery techniques have been developed. However, they have not been verified as suitable for use in the smart-city domain. In this study, we tried to verify the existing ones to use a suitable one. We tested most of existing semantic service discovery techniques, but we found that none of them is suitable to our research. Therefore, we developed our own semantic service discovery technique. This paper introduces our work and presents the performance evaluation results that demonstrate that our developed works well and show good performance. For the performance evaluation, the experimental system was actually constructed and the real performance was measured. In the experiment, we implemented the semantic service discovery scenario that dynamically searches and calls the services needed to provide fire accident management services in smart cities.

Visual Verb and ActionNet Database for Semantic Visual Understanding (동영상 시맨틱 이해를 위한 시각 동사 도출 및 액션넷 데이터베이스 구축)

  • Bae, Changseok;Kim, Bo Kyeong
    • The Journal of Korean Institute of Next Generation Computing
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    • v.14 no.5
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    • pp.19-30
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    • 2018
  • Visual information understanding is known as one of the most difficult and challenging problems in the realization of machine intelligence. This paper proposes deriving visual verb and construction of ActionNet database as a video database for video semantic understanding. Even though development AI (artificial intelligence) algorithms have contributed to the large part of modern advances in AI technologies, huge amount of database for algorithm development and test plays a great role as well. As the performance of object recognition algorithms in still images are surpassing human's ability, research interests shifting to semantic understanding of video contents. This paper proposes candidates of visual verb requiring in the construction of ActionNet as a learning and test database for video understanding. In order to this, we first investigate verb taxonomy in linguistics, and then propose candidates of visual verb from video description database and frequency of verbs. Based on the derived visual verb candidates, we have defined and constructed ActionNet schema and database. According to expanding usability of ActionNet database on open environment, we expect to contribute in the development of video understanding technologies.

Schemes for Managing Semantic Web Data in Ubiquitous Environment (유비쿼터스 환경을 고려한 시맨틱 웹 데이터 관리 기법 연구)

  • Kim, Youn-Hee;Kim, Jee-Hyun
    • Journal of Digital Contents Society
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    • v.10 no.1
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    • pp.1-10
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    • 2009
  • One important issue to generalize the ubiquitous paradigm is the development of user-centralized and intelligent ubiquitous computing systems. Sharing knowledge and correct communication between users and devices are needed to be aware of continuous changed context information and infer services for which users are suited. The goal of this paper is to describe and manage effectively the meaning of services or data which each device offers for interaction between users and devices based on semantic relationships and reasoning. In this paper, we represent semantic data using OWL and design a ubiquitous based intelligent system. We propose some index structures and strategies to process queries classified by each subsystem and adopt labeling schemes to identify classes and resources in the semantic data. We can find devices which satisfies various user's requests exactly and quickly using the proposed strategies.

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Integrated Semantic Querying on Distributed Bioinformatics Databases Based on GO (분산 생물정보 DB 에 대한 GO 기반의 통합 시맨틱 질의 기법)

  • Park Hyoung-Woo;Jung Jun-Won;Kim Hyoung-Joo
    • Journal of KIISE:Computing Practices and Letters
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    • v.12 no.4
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    • pp.219-228
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    • 2006
  • Many biomedical research groups have been trying to share their outputs to increase the efficiency of research. As part of their efforts, a common ontology named Gene Ontology(GO), which comprises controlled vocabulary for the functions of genes, was built. However, data from many research groups are distributed and most systems don't support integrated semantic queries on them. Furthermore, the semantics of the associations between concepts from external classification systems and GO are still not clarified, which makes integrated semantic query infeasible. In this paper we present an ontology matching and integration system, called AutoGOA, which first resolves the semantics of the associations between concepts semi-automatically, and then constructs integrated ontology containing concepts from GO and external classification systems. Also we describe a web-based application, named GOGuide II, which allows the user to browse, query and visualize integrated data.

Semantic-based Genetic Algorithm for Feature Selection (의미 기반 유전 알고리즘을 사용한 특징 선택)

  • Kim, Jung-Ho;In, Joo-Ho;Chae, Soo-Hoan
    • Journal of Internet Computing and Services
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    • v.13 no.4
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    • pp.1-10
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    • 2012
  • In this paper, an optimal feature selection method considering sematic of features, which is preprocess of document classification is proposed. The feature selection is very important part on classification, which is composed of removing redundant features and selecting essential features. LSA (Latent Semantic Analysis) for considering meaning of the features is adopted. However, a supervised LSA which is suitable method for classification problems is used because the basic LSA is not specialized for feature selection. We also apply GA (Genetic Algorithm) to the features, which are obtained from supervised LSA to select better feature subset. Finally, we project documents onto new selected feature subset and classify them using specific classifier, SVM (Support Vector Machine). It is expected to get high performance and efficiency of classification by selecting optimal feature subset using the proposed hybrid method of supervised LSA and GA. Its efficiency is proved through experiments using internet news classification with low features.

Concurrency Control Using Step-Decomposition of Transactions in Mobile Computing Environment (이동 컴퓨팅 환경에서 트랜잭션의 단계분할에 의한 동시성 향상 기법)

  • 조영일;이익훈;이상구
    • Proceedings of the Korean Information Science Society Conference
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    • 2000.10a
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    • pp.269-271
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    • 2000
  • 이동 컴퓨팅 환경은 분산 컴퓨팅 환경과는 달리 네트웍의 낮은 신뢰성과 제한된 대역폭을 가지고, 이동 호스트 또한 제한된 저장장치와 배터리만을 사용할 수 있으며 트랜잭션(transaction)은 장시간에 결쳐 수행되는 특성을 가진다. 이동 컴퓨팅 환경에서는 전통적인 트랜잭션의 동시성 제어 기법 대신, 트랜잭션의 시맨틱스(semantics)를 이용하여 동시성을 향상시킬 수 있다. 본 연구에서는 중첩된 트랜잭션의 구조를 단순화시킨 단계분할(step- decomposition) 기법을 사용하여, 서브트랜잭션(sub-transaction)의 시맨틱 타입(semantic type) 별로 인터리빙(interleaving)을 제어함으로써 트랜잭션의 동시성을 향상시키는 기법을 제안하고자 한다.

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The Framework to Support a Common Way for Context-aware Applications

  • Baek, Jong-Kwun;Jung, Hae-Sun;Jeong, Chang-Sung
    • Journal of IKEEE
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    • v.11 no.4
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    • pp.279-282
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    • 2007
  • In this paper, we introduce the general way for producing context information to support context-aware applications. It can fetch raw data from the service environments, translate it to reasonable context information, and provide to multiple applications. It is designed originally for the ubiquitous computing middleware and based on the ontology processing model. Automated service applications can use this system as the form of libraries or of web services for deciding its semantic cause of action.

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A Supplementary Learning System using Learning Source Semantic Net (학습자료 시멘틱 네트를 이용한 보충학습 시스템)

  • Lee, Jong-Hee;Lee, Keun-Wang;Oh, Hae-Seok
    • Annual Conference of KIPS
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    • 2003.05a
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    • pp.239-242
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    • 2003
  • 인터넷 원격교육 시스템에서의 많은 개인 학습자의 다양한 학습 요구에 의해 기본 학습자료에 제공에 대한 많은 모형이 대두되고 있으나 기본 학습을 뒷받침해 줄 수 있는 보충학습 자료의 모형은 제시되지 않고 있다. 따라서 본 논문에서는 학습자의 학습 휴리스틱에 의해 기계학습된 보충학습 내용과 위치를 웹과 이메일로 자동 푸쉬해 줄 수 있는 시스템을 제안한다. 휴리스틱에 의해 보충학습 데이터의 트리를 구성한 후 시멘틱 네트를 이용한 속성을 정의하고 기계학습된 학습자의 반복 학습 경로를 분석하여 보충학습을 원활히 진행할 수 있도록 시스템을 설계하는 것이 본 논문의 목적이다.

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A Clustered Dwarf Structure to Speed up Queries on Data Cubes

  • Bao, Yubin;Leng, Fangling;Wang, Daling;Yu, Ge
    • Journal of Computing Science and Engineering
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    • v.1 no.2
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    • pp.195-210
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    • 2007
  • Dwarf is a highly compressed structure, which compresses the cube by eliminating the semantic redundancies while computing a data cube. Although it has high compression ratio, Dwarf is slower in querying and more difficult in updating due to its structure characteristics. We all know that the original intention of data cube is to speed up the query performance, so we propose two novel clustering methods for query optimization: the recursion clustering method which clusters the nodes in a recursive manner to speed up point queries and the hierarchical clustering method which clusters the nodes of the same dimension to speed up range queries. To facilitate the implementation, we design a partition strategy and a logical clustering mechanism. Experimental results show our methods can effectively improve the query performance on data cubes, and the recursion clustering method is suitable for both point queries and range queries.

A Study on Distributed Semantic Web Data Repository Using HBase (HBase를 이용한 분산 시맨틱 웹 데이터 저장소에 대한 연구)

  • Jo, Daewoong;Kim, Myung Ho
    • Annual Conference of KIPS
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    • 2012.04a
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    • pp.111-114
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    • 2012
  • 실시간으로 발생되는 대량의 데이터를 효율적으로 저장하기 위한 연구는 분산/병렬 처리를 위한 하둡 및 NoSQL과 관련한 빅 데이터 처리 기술을 통해 진행 중에 있다. 하지만 시맨틱 웹 분야에서 발생되는 대량의 데이터를 처리하기 위한 모델은 현재 연구가 진행되고 있지 않다. 본 논문에서는 시맨틱 웹 환경에서 발생되는 대량의 온톨로지 데이터를 빅 데이터 처리가 가능한 NoSQL 분야인 HBase 데이터베이스에 분산 저장할 수 있는 매핑 규칙을 제안한다. 이와 같은 매핑 규칙을 통해 시맨틱 웹 환경에서도 대량으로 발생될 수 있는 데이터들을 효율적으로 분산 저장 할 수 있다.