• Title/Summary/Keyword: web-based e-learning system

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인터넷 검색과 형태소분석을 이용한 표절검사시스템의 개발에 관한 연구 (Development of A Plagiarism Detection System Using Web Search and Morpheme Analysis)

  • 황인수
    • Journal of Information Technology Applications and Management
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    • 제16권1호
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    • pp.21-36
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    • 2009
  • As the World Wide Web (WWW) has become a major channel for information delivery, the data accumulated in the Internet increases at an incredible speed, and it derives the advances of information search technologies. It is the search engine that solves the problem of information overloading and helps people to identify relevant information. However, as search engines become a powerful tool for finding information, the opportunities of plagiarizing have increased significantly in e-Learning. In this paper, we developed an online plagiarism detection system for detecting plagiarized documents that incorporates the functions of search engines and acts in exactly the same way of plagiarizing. The plagiarism detection system uses morpheme analysis to improve the performance and sentence-based comparison to investigate document comes from multiple sources. As a result of applying this system in e-Learning, the performance of plagiarism detection was improved.

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적응형 학습을 위한 온톨로지 기술의 적용 방안 (Application of Ontology technology for Adaptive Learning in e-Learning)

  • 최숙영
    • 컴퓨터교육학회논문지
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    • 제12권6호
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    • pp.53-67
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    • 2009
  • 본 연구에서는 시멘틱 웹과 온톨로지 기술의 특징을 살펴보고 이러닝 분야에서 온톨로지를 적용한 연구들을 분석하였다. 또한, 적응형 학습에서 고려해야 될 모델들을 살펴보고, 그동안 연구되어 왔던 적응형 시스템들에 대해서 분석하였다. 이를 토대로 이러닝 분야에서 효과적으로 적응형 학습을 지원하기 위해 온톨로지 기술을 적용하기 위한 방안을 모색하고 실제 온톨로지에 기반한 적응형 시스템을 설계하였다. 본 연구에서 설계된 시스템은 기존의 온톨로지에 기반한 적응형 시스템에서의 대두된 문제점들을 보완하여 설계되었다. 즉, 학습자의 학습 수준과 상태를 적절하게 진단하고, 학습 스타일에 대한 세부적인 분류와 그에 따른 구체적이니 학습 지원 방법을 제공함으로써 보다 효율적인 적응형 학습을 지원하고자 하였다.

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개인화된 자기조절 학습 시스템 설계 및 구현 (Design and Implementation of an Individualized Self-Regulated Learning System)

  • 황현아;임한규
    • 한국콘텐츠학회논문지
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    • 제5권2호
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    • pp.19-28
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    • 2005
  • 웹 기반 교수-학습 시스템은 학습자 중심의 학습 환경으로 지속적인 변화를 지향해왔으며, 특히 자기 주도적이고 적극적인 학습 형태인 자기조절 학습은 이상적인 학습 형태로서 이에 대한 관심이 증가하고 있다. 본 연구에서는 학습자가 시스템과의 계약과정을 거쳐 자신의 요구와 학습 수준에 따른 개인화된 코스웨어를 구성할 수 있다. 시스템에서 분석된 결과를 통해 자신의 학습 진행과 결과를 인지하고, 학습전략을 수립하여 효과적으로 학습목표에 도달할 수 있는 자기조절 학습 시스템을 설계 구현하였다. 제안된 시스템은 학습자에게 개인의 특성을 고려한 차별화되고 유연성 있는 개인화된 학습 서비스를 자기 주도적으로 진행할 수 있는 학습자 위주의 학습 환경을 제공한다.

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e-learning 시스템의 특성과 자기효능감이 학습성과에 미치는 영향 (The Effect of Characteristic of E-learning Systems and Self- Efficacy on Learning Performance)

  • 이혜연;홍상진;김용범
    • 대한안전경영과학회지
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    • 제9권3호
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    • pp.153-163
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    • 2007
  • Over the fast few years, web-based e-Learning have made remarkable progress. According to advance of e-Learning, the evaluation of e-Learning effectiveness and success model become more important. This study had a focus on the effect of system characteristic of e-Learning systems and self-efficacy on learning performance. Data has been collected from 192 person experienced in e-Learning. The questionnaire method was adopted to collect the data for this study. The research was conducted by using SPSS 12.0 and AMOS 4.0. The research results and suggestions of the study are as follow. First of all, system quality and information quality of e-Learning system had positive relationship with perceived usefulness. Second, information quality was related positively to user satisfaction. Third, perceived usefulness was positively connected with user satisfaction. Fourth, user satisfaction and self-efficacy had relation to learning performance.

다계층 e-러닝 시스템의 설계 (A Design of Multi-tier e-Learning System)

  • 고일석;나윤지
    • 한국사이버테러정보전학회:학술대회논문집
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    • 한국사이버테러정보전학회 2004년도 제1회 춘계학술발표대회
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    • pp.97-101
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    • 2004
  • 본 연구에서는 웹 기반 방식의 상호작용성과 적웅성을 유지하면서도 오프라인 기반 방식의 높은 수준의 다양한 멀티미디어 서비스를 제공할 수 있는 다계층 e-러닝시스템을 설계하였다. 실험결과 제안 시스템이 기존의 방식에 비해 멀티미디어서비스 및 사용자 편의성, 적응성, 상호작용성을 개선하였음을 확인할 수 있었다.

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지능형 가상 학습 시스템에서 학습 평가 모델의 퍼지적 접근 (Fuzzy Approach of Learning Evaluation Model in Intelligent E-Learning Systems)

  • 원성현
    • 컴퓨터교육학회논문지
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    • 제8권1호
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    • pp.55-63
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    • 2005
  • 최근 공간적 시간적 제약을 초월하는 새로운 학습 환경으로 웹 기반 가상 학습 시스템이 각광을 받고 있다. 웹 기반 가상 학습 시스템 개발의 핵심은 어떻게 효과적으로 시스템을 사용하고 그 시스템을 사용한 학습자의 학습 성취도를 평가하도록 할 것인가를 결정하는 것이다. 전통적인 오프라인 학습 시스템에서는 학습자의 학습 성취도 평가를 위해 설계된 평가 문항을 학습자가 제한된 시간 내에 얼마나 많이 맞추었는지 헤아림으로써 학습자를 평가할 수 있다. 그러나 이 방법은 이들 시스템이 학습 성취도에서 차이를 보이는 모든 학습자에게 같은 학습 전략을 제공하기 때문에 가상 학습 시스템의 최대 강정이라고 할 수 있는 개별 학습을 불가능하게 한다, 따라서, 본 논문에서는 퍼지 함축 이론을 이용하여 주어진 테스트 문항에 대한 응답 간의 관계를 찾고 이 관계를 퍼지 공관계라고 부르기로 한다. 그리고 이 관계를 반영한 평가 결과를 생성한다. 일정한 학습이 경과된 후 학습자의 학습 성취도를 평가하기 위해 시험에 응시했을 때, 본 논문에서 제안하는 방법과 전통적인 평가 방법 간에 존재하는 차이점을 비교한다. 마지막으로, 이 연구 결과를 개별화 학습에 어떻게 활용할 것인지에 대해 논의한다.

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Design a Learning Management System Platform for Primary Education

  • Quoc Cuong Nguyen;Tran Linh Ho
    • International journal of advanced smart convergence
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    • 제13권2호
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    • pp.258-266
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    • 2024
  • E-learning systems have proliferated in recent years, particularly in the wake of the global COVID-19 pandemic. For kids, there isn't a specific online learning platform available, though. To do this, new conceptual models of training and learning software that are adapted to the abilities and preferences of end users must be created. Young pupils: those in kindergarten, preschool, and elementary school are unique subjects with little research history. From the standpoint of software technology, young students who have never had access to a computer system are regarded as specific users with high expectations for the functionality and interface of the software, social network connectivity, and instantaneous Internet communication. In this study, we suggested creating an electronic learning management system that is web-based and appropriate for primary school pupils. User-centered design is the fundamental technique that was applied in the development of the system that we are proposing. Test findings have demonstrated that students who are using the digital environment for the first time are studying more effectively thanks to the online learning management system.

스마트 학습 환경에서 웹 콘텐츠 적응을 위한 부분화에 관한 연구 (A Study on the Segmentation for Adaptation of Web Contents in Smart Learning Environment)

  • 서진호;김명희;박만곤
    • 한국멀티미디어학회논문지
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    • 제19권2호
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    • pp.325-333
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    • 2016
  • The development of smart technology has brought the conversion of closed traditional e-learning contents into open flexible smart learning contents consisting of learner-centered modules, without the constraints of time and space by use of smart devices from the uniformed and passive classroom between teachers and learners. It has been demanded an open, personalized and customized teaching and learning contents of smart education and training systems according to wide supply of various smart devices. In this paper, we discuss about the status of the smart teaching and learning systems and analyze the characteristics and structure of the web contents for smart education and training systems by use of smart devices. And we propose a method how to block web contents, to extract them, and adapt personalized segments of web contents by adaptive algorithm into smart learning devices. We extract blocks from the web contents based on the smart device information and the preference information of the learners from existing web contents without the hassle of learners environment. After specifying a block priority from the extracted web contents by the adaptive segment algorithm, it can be displayed directly to the screen to fit the individual learning progress of the learners.

A Construction Method for Personalized e-Learning System Using Dynamic Estimations of Item Parameters and Examinees' Abilities

  • Oh, Yong-Sun
    • International Journal of Contents
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    • 제4권2호
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    • pp.19-23
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    • 2008
  • This paper presents a novel method to construct a personalized e-Learning system based on dynamic estimations of item parameters and learners' abilities, where the learning content objects are of the same intrinsic quality or homogeneously distributed and the estimations are carried out using IRT(Item Response Theory). The system dynamically connects the test and the corresponding learning procedures. Test results are directly applied to estimate examinee's ability and are used to modify the item parameters and the difficulties of learning content objects during the learning procedure is being operated. We define the learning unit 'Node' as an amount of learning objects operated so that new parameters can be re-estimated. There are various content objects in a Node and the parameters estimated at the end of current Node are directly applied to the next Node. We offer the most appropriate learning Node for a person's ability throughout the estimation processes of IRT. As a result, this scheme improves learning efficiency in web-base e-Learning environments offering the most appropriate learning objects and items to the individual students according to their estimated abilities. This scheme can be applied to any e-Learning subject having homogeneous learning objects and unidimensional test items. In order to construct the system, we present an operation scenario using the proposed system architecture with the essential databases and agents.

전자메일 자동관리 시스템을 위한 전자메일 분류기의 개발 (Development of e-Mail Classifiers for e-Mail Response Management Systems)

  • 김국표;권영식
    • 한국IT서비스학회지
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    • 제2권2호
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    • pp.87-95
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    • 2003
  • With the increasing proliferation of World Wide Web, electronic mail systems have become very widely used communication tools. Researches on e-mail classification have been very important in that e-mail classification system is a major engine for e-mail response management systems which mine unstructured e-mail messages and automatically categorize them. in this research we develop e-mail classifiers for e-mail Response Management Systems (ERMS) using naive bayesian learning and centroid-based classification. We analyze which method performs better under which conditions, comparing classification accuracies which may depend on the structure, the size of training data set and number of classes, using the different data set of an on-line shopping mall and a credit card company. The developed e-mail classifiers have been successfully implemented in practice. The experimental results show that naive bayesian learning performs better, while centroid-based classification is more robust in terms of classification accuracy.