• 제목/요약/키워드: Context-based

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Context Aware System based on Bayesian Network driven Context Reasoning and Ontology Context Modeling

  • Ko, Kwang-Eun;Sim, Kwee-Bo
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • 제8권4호
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    • pp.254-259
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    • 2008
  • Uncertainty of result of context awareness always exists in any context-awareness computing. This falling-off in accuracy of context awareness result is mostly caused by the imperfectness and incompleteness of sensed data, because of this reasons, we must improve the accuracy of context awareness. In this article, we propose a novel approach to model the uncertain context by using ontology and context reasoning method based on Bayesian Network. Our context aware processing is divided into two parts; context modeling and context reasoning. The context modeling is based on ontology for facilitating knowledge reuse and sharing. The ontology facilitates the share and reuse of information over similar domains of not only the logical knowledge but also the uncertain knowledge. Also the ontology can be used to structure learning for Bayesian network. The context reasoning is based on Bayesian Networks for probabilistic inference to solve the uncertain reasoning in context-aware processing problem in a flexible and adaptive situation.

ARCHITECTURAL ANALYSIS OF CONTEXT-AWARE SYSTEMS IN PERVASIVE COMPUTING ENVIRONMENT

  • Udayan J., Divya;Kim, HyungSeok
    • 한국HCI학회논문지
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    • 제8권1호
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    • pp.11-17
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    • 2013
  • Context aware systems are those systems that are aware about the environment and perform productive functions automatically by reducing human computer interactions(HCI). In this paper, we present common architecture principles of context-aware systems to explain the important aspects of context aware systems. Our study focuses on identifying common concepts in pervasive computing approaches, which allows us to devise common architecture principles that may be shared by many systems. The principles consists of context sensing, context modeling, context reasoning, context processing, communication modelling and resource discovery. Such an architecture style can support high degree of reusability among systems and allows for design flexibility, extensibility and adaptability among components that are independent of each other. We also propose a new architecture based on broker-centric middleware and using ontology reasoning mechanism together with an effective behavior based context agent that would be suitable for the design of context-aware architectures in future systems. We have evaluated the proposed architecture based on the design principles and have done an analyses on the different elements in context aware computing based on the presented system.

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An Unified Representation of Context Knowledge Base for Mobile Context-Aware System

  • Jeong, Jang-Seop;Bang, Dae-Wook
    • Journal of Information Processing Systems
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    • 제10권4호
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    • pp.581-588
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    • 2014
  • To facilitate the implementation of a wide variety of context-aware applications based on mobile devices, general-purpose context-aware framework that applications can use by calling is needed. The context-aware framework is a middleware that performs the sensing, reasoning, and retrieving based on the knowledge base. The knowledge base must systematically represent the information required on the behavior of the context-aware framework, such as context information and reasoning information. It must also provide functions for storage and retrieval. To date, previous research on the representation of the context information have been carried out, but studies on the unified representation of the knowledge base has seen little progress. This study defines the knowledge base as the unified context information, and proposes the UniOWL, which can do a good job of representing it. UniOWL is based on OWL and represents the information that is necessary for the operation of the context-aware framework. Therefore, UniOWL greatly facilitates the implementation of the knowledge base on a context-aware framework.

Design of a middleware for compound context-awareness on sensor-based mobile environments

  • Sung, Nak-Myoung;Rhee, Yunseok
    • 한국컴퓨터정보학회논문지
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    • 제21권2호
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    • pp.25-32
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    • 2016
  • In this paper, we design a middleware for context-awareness which provides compound contexts from diverse sensors on a mobile device. Until now, most of context-aware application developers have taken responsibility for context processing from sensing data. Such application-level context processing causes heavily redundant data processing and leads to significant resource waste in energy as well as computing. In the proposed scheme, we define primitive and compound context map which consists of relavant sensors and features. Based on the context definition, each application demands a context of interest to the middleware, and thus similar context-aware applications inherently share context information and procesing within the middleware. We show that the proposed scheme significantly reduces the resource amounts of cpu, memory, and battery, and that the performance gain gets much more when multiple applications which need similar contexts are running.

유비쿼터스 컴퓨팅 환경에서의 온톨로지 기반 상황 인식 미들웨어 (Context-Aware Middleware based on Ontology in Ubiquitous Computing Environment)

  • 정헌만
    • 한국컴퓨터정보학회지
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    • 제14권1호
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    • pp.165-173
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    • 2006
  • 유비쿼터스 컴퓨팅 환경에서 상황 인식 기반의 서비스를 제공하기 위해선 동적인 상황 관리 기술과 상황 추론 기술, 그리고 상황 모델링 기술이 필요하다. 본 논문에서는 유비쿼터스 컴퓨팅 환경에서 상황 변화에 대한 사용자의 요구사항을 능동적으로 반영하고, 동적인 응용 적응성을 지원하는 계층적 온톨로지 기반 상황 관리 모델을 제안하고 이를 기반으로 상황 인식 미들웨어를 설계한다. 또한, 상황 인식 서비스 구현을 위해 다양한 컨텍스트 발견, 획득, 해석, 추론을 효과적으로 지원하며 사용자의 서비스 실행 시 발생할 수 있는 상황 충돌을 해결하기 위한 방법을 제시한다. 이 논문에서 제시한 계층적 온톨로지 기반 상황 인식 미들웨어는 유비쿼터스 환경에서 요구되는 다양한 상황 인식 서비스의 개발 및 운용을 효과적으로 지원 할 수 있다.

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유비쿼터스 환경에서 웹 서비스에 기반한 상황 인식 미들웨어의 설계 (A Design of Context-Aware Middleware based on Web Services in Ubiquitous Environment)

  • 송영록;우요섭
    • 융합신호처리학회논문지
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    • 제10권4호
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    • pp.225-232
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    • 2009
  • 유비쿼터스 컴퓨팅을 위한 상황 인식 기술은 수집된 컨텍스트 정보를 효과적으로 구조화하여 표현하고, 이러한 컨텍스트 정보를 이용하여 사용자의 의도를 파악한 후, 서비스를 제공하는 기술 등의 연구가 필요하다. 본 논문에서는 상황 인식 컴퓨팅을 위한 프레임워크인 WS-CAM으로 명명된 웹 서비스에 기반한 상황 인식 미들웨어를 제안한다. WS-CAM은 온톨로지 기반의 컨텍스트 모델을 사용하여 다양한 종류의 컨텍스트 정보에 대한 충분한 표현력과 추론 기능을 제공하고, 미들웨어로부터 응용 서비스로의 컨텍스트 정보 전달에 있어서 웹 서비스를 적용하여 미들웨어 독립적인 응용 개발을 이룰 수 있는 구조로 설계한다. 또한, WS-CAM의 유용성을 검증하기 위하여 유비쿼터스 컴퓨팅 환경에 기반을 둔 강의 서비스 시나리오를 기술하고, 웹 서비스 기반의 장점을 보이기 위하여 미들웨어 독립적인 시스템 확장의 예를 보인다. 강의 서비스에 적용한 WS-CAM은 도메인 환경 내의 컨텍스트 정보를 OWL 기반 온톨로지 모델로 효과적으로 표현하였고, 사용자 정의 규칙에 의하여 고수준의 컨텍스트 정보로 추론됨을 확인하였다. 또한, 웹 서비스에 의해 제공되는 다양한 웹 메서드를 통하여 컨텍스트 정보가 응용 서비스에 미들웨어 독립적으로 전달됨을 확인할 수 있었다.

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상황인식 서비스의 안정적 운영을 위한 온톨로지 추론 엔진 선택을 위한 사례기반추론 접근법 (A Case-Based Reasoning Approach to Ontology Inference Engine Selection for Robust Context-Aware Services)

  • 심재문;권오병
    • 한국경영과학회지
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    • 제33권2호
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    • pp.27-44
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    • 2008
  • Owl-based ontology is useful to realize the context-aware services which are composed of the distributed and self-configuring modules. Many ontology-based inference engines are developed to infer useful information from ontology. Since these engines show the uniqueness in terms of speed and information richness, it's difficult to ensure stable operation in providing dynamic context-aware services, especially when they should deal with the complex and big-size ontology. To provide a best inference service, the purpose of this paper is to propose a novel methodology of context-aware engine selection in a contextually prompt manner Case-based reasoning is applied to identify the causality between context and inference engined to be selected. Finally, a series of experiments is performed with a novel evaluation methodology to what extent the methodology works better than competitive methods on an actual context-aware service.

A Location Context Management Architecture of Mobile Objects for LBS Application

  • Ahn, Yoon-Ae
    • Journal of the Korean Data and Information Science Society
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    • 제18권4호
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    • pp.1157-1170
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    • 2007
  • LBS must manage various context data and make the best use of this data for application service in ubiquitous environment. Conventional mobile object data management architecture did not consider process of context data. Therefore a new mobile data management framework is needed to process location context data. In this paper, we design a new context management framework for a location based application service. A suggestion framework is consisted of context collector, context manager, rule base, inference engine, and mobile object context database. It describes a form of rule base and a movement process of inference engine that are based on location based application scenario. It also presents an embodiment instance of interface which suggested framework is applied to location context interference of mobile object.

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유비쿼터스 컴퓨팅 환경의 역할 기반 접근제어에서 발생하는 상황 충돌 (Context Conflicts of Role-Based Access Control in Ubiquitous Computing Environment)

  • 남승좌;박석
    • 정보보호학회논문지
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    • 제15권2호
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    • pp.37-52
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    • 2005
  • 기존의 응용에 따라 보호 객체들에 대한 접근을 역할들로 분류하여 역할을 중심으로 접근제어를 수행하는 역할 기반의 접근제어에 사용자 및 환경 정보를 이용한 정보 접근제어 기법이 연구되고 있다 중요 정보와 자원에 대하여 상황 정보를 이용하여 사용자와 환경에 유연하면서 강력한 접근제어의 수행에 관하여 연구되고 있다. 본 논문에서는 상황에 대한 정의와 중요한 의미 정보에 대하여 사용자와 자원, 환경을 고려한 유연한 접근제어 방법을 제시하고, 이때 발생할 수 있는 접근에 대한 충돌을 찾아내고 해결 방안을 제안한다. 상황 정보의 분류와 정의를 이용하여 상창 정보를 접근제어에 적용하는 방법과 상황 정보를 접근제어에 이용하였을 경우 발생할 수 있는 충돌을 분류하여 해결 방안을 제시한다. 이 논문은 유비쿼터스 컴퓨팅 환경에서 상황 정의와 분류론 이용하여 적절한 사용자가 적절한 객체와 어플리케이션 서비스의 사용을 보장하는 보안 정책과 모델의 개발을 위한 기초 연구이다. 권한이 있는 사용자에 의한 객체 접근의 단순 접근제어가 아니라 사용자는 자신의 상황과 연관된 객체, 자원, 서비스에 접근할 수 있음을 보장한다.

Context-based 클러스터링에 의한 Granular-based RBF NN의 설계 (The Design of Granular-based Radial Basis Function Neural Network by Context-based Clustering)

  • 박호성;오성권
    • 전기학회논문지
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    • 제58권6호
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    • pp.1230-1237
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    • 2009
  • In this paper, we develop a design methodology of Granular-based Radial Basis Function Neural Networks(GRBFNN) by context-based clustering. In contrast with the plethora of existing approaches, here we promote a development strategy in which a topology of the network is predominantly based upon a collection of information granules formed on a basis of available experimental data. The output space is granulated making use of the K-Means clustering while the input space is clustered with the aid of a so-called context-based fuzzy clustering. The number of information granules produced for each context is adjusted so that we satisfy a certain reconstructability criterion that helps us minimize an error between the original data and the ones resulting from their reconstruction involving prototypes of the clusters and the corresponding membership values. In contrast to "standard" Radial Basis Function neural networks, the output neuron of the network exhibits a certain functional nature as its connections are realized as local linear whose location is determined by the values of the context and the prototypes in the input space. The other parameters of these local functions are subject to further parametric optimization. Numeric examples involve some low dimensional synthetic data and selected data coming from the Machine Learning repository.