• Title/Summary/Keyword: 지식 공유 그래프

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Component-based AI Application Support System using Knowledge Sharing Graph for EdgeCPS Platform (EdgeCPS 플랫폼을 위한 지식 공유 그래프를 활용한 컴포넌트 기반 AI 응용 지원 시스템)

  • Kim, Young-Joo
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.26 no.8
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    • pp.1103-1110
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    • 2022
  • Due to the rapid development of AI-related industries, countless edge devices are working in the real world. Since data generated within the smart space consisted of these devices is beyond imagination, it is becoming increasingly difficult for edge devices to process. To solve this issue, EdgeCPS has appeared. EdgeCPS is a technology to support harmonious execution of various application services including AI applications through interworking between edge devices and edge servers, and augmenting resources/functions. Therefore, we propose a knowledge-sharing graph-based componentized AI application support system applicable to the EdgeCPS platform. The graph is designed to effectively store information which are essential elements for creating AI applications. In order to easily change resource/function augmentation under the support of the EdgeCPS platform, AI applications are operated as components. The application support system is linked with the knowledge graph so that users can easily create and test applications, and visualizes the execution aspect of the application to users as a pipeline.

Exploring National Science and Technology using Research Resource Knowledge Graph (연구리소스 지식그래프를 활용한 국가과학기술정보 탐색)

  • Cho, Minhee;Yim, Hyung-Jun;Song, Sa-kwang
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2021.10a
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    • pp.621-623
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    • 2021
  • Open science policies are spreading that disclose, share, and utilize research results produced through government public funds. As a policy to revitalize open science, interest in research support services that allow easy search, access, and reuse of results is increasing. To support services to provide researchers with various information, we propose a research resource knowledge graph model to meaningfully express the relationship between the scattered various outcome data. In this paper, it contributes to the improvement of the service of the national research data platform DataON by meaningfully connecting national R&D task information, researcher information, performance information, and research data information.

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Collaborative Hangul Editor (한글 공동 편집기)

  • Kim, Sang-Wook;Cha, Kyung-Ae;Kim, Woo-Nyun
    • Annual Conference on Human and Language Technology
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    • 1997.10a
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    • pp.454-460
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    • 1997
  • 여러 응용 분야에 따라 많은 공동작업 시스템이 있다. 이러한 시스템들은 각 응용 영역에 따라 요구되는 문제가 다르다. 이 논문에서는 공동작업객체의 개념을 제시한다. 이 개념은 어떠한 멀티미디어 공동작업 시스템에도 적용할 수 있는 시스템 소프트웨어의 구조적인 모델이다. 이 모델은 지식베이스에서 이벤트를 자동으로 공유하고 각 이벤트에 대한 동작을 비동기적 동기적으로 수행한다. 이 논문에서의 공동작업객체는 멀티미디어 객체의 집합인데, 개념 그래프와 지식 쉘로 표현된다. 이 공동작업객체에서 수행되는 한글 공동텍스트 편집기는 한글 편집 지식에 의하여 공동으로 편집할 수 있다. 또한 한글 공동텍스트 편집기는 공동작업을 위하여 공동작업 객체를 관리, 유지하는 기능을 제공한다. 앞으로는 일반적인 공동작업 객체의 이론적 모델을 연구한다.

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Building Knowledge Graph of the Korea Administrative District for Interlinking Public Open Data (공공데이터의 의미적 연계를 위한 행정구역 지식 그래프 구축)

  • Kim, Haklae
    • The Journal of the Korea Contents Association
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    • v.17 no.12
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    • pp.1-10
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    • 2017
  • Open data has received a lot of attention from around the world. The Korean government is also making efforts to open government data. However, despite the quantitative increase in public data, the lack of data is still pointed out. This paper proposes a method to improve data sharing and utilization by semantically linking public data. First, we propose a knowledge model for expressing administrative districts and their semantic relationships in Korea. An administrative district is an administrative unit that divides the territory of a nation, which is a unit of politics, according to the purpose of the state administration. The knowledge model of the administrative district defines the structure of the administrative district system and the relationship between administrative units based on the Local Autonomy Act. Second, a knowledge graph of the administrative districts is introduced. As a reference information to link public open data at a semantic level, some characteristics of a knowledge graph of administrative districts and methods for linking heterogeneous public open data and improving data quality are addressed. Finally, some use cases are addressed for interlinking between the knowledge graph of the administrative districts and public open data. In particular, national administrative organisations are interlinked with the knowledge graph, and it demonstrates how the knowledge graph can be utilised for improving data identification and data quality.

An Exploration for Types of Knowledge Building Discourse and Knowledge Building Processes in Middle School Students' Small Group Learning Using Augmented Reality (증강현실을 활용한 소집단 학습에서 나타나는 중학생의 지식 형성 담화 유형과 지식 형성 과정 탐색)

  • Nayoon Song;Yejin Lee;KiDoug Shin;Taehee Noh
    • Journal of The Korean Association For Science Education
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    • v.43 no.2
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    • pp.125-137
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    • 2023
  • This study analyzed the types of knowledge building discourse and knowledge building processes in small group learning using augmented reality. Eight 8th grade students took classes using augmented reality in solubility, boiling and melting points. These classes were carried out twice and all the classes were videotaped and recorded. Every student participated in a semi-structured interview. In the types of knowledge building discourse, the proportion of knowledge sharing and knowledge construction was similar. Beneath the knowledge sharing, the proportion of introductory level discussion was higher than identifying key elements of augmented reality. Recalling existing knowledge rarely appeared. Under the knowledge construction, the proportion of advanced level discussion was the highest and the proportion of sharing and critiquing ideas at a different level and efforts to rise above current levels of explanation was similar. The introductory level discussion and identifying key elements of augmented reality were developed into efforts to rise above current levels of explanation and sharing and critiquing ideas at a different level. Visualized results of knowledge building processes showed all the students' graph drew an upward curve, though cumulative number of impact value was different by each student. As a result of the study, effective ways of improving small group learning using augmented reality are discussed.

UML을 이용한 효율적인 온톨로지 재사용에 관한 연구

  • Lee Ji-Hong;Yang Jin-Hyeok;Son Jong-Su;Jeong In-Jeong
    • Proceedings of the Korea Inteligent Information System Society Conference
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    • 2006.06a
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    • pp.265-269
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    • 2006
  • 차세대 웹의 중심기술인 시맨틱 웹을 구현하기 위해서는 컴퓨터가 지식을 추론하고 처리할 수 있게 하기 위한 지식표현방법인 온톨로지가 필수적으로 요구된다. 이러한 온톨로지 생성의 중요성이 점차 커져 가는 실정에 따라, 생성된 온톨로지들의 재사용을 위한 방법이 관련 연구들 사이에 중요한 과제로 떠오르기 시작되었다. 본 논문에서는 온톨로지의 재사용을 효율적으로 하기 위한 방법을 제안한다. 우리가 제안하는 방법은 온툴로지를 사용자가 이해하기 쉽고 편집이 용이한 그래프 형태로 표현하는 방법으로 온톨로지를 UML로 변환하여 UML을 통한 온툴로지 재사용 방안을 제안한다. 우리가 제안하는 방법은 다음과 같다. OMG의 MDA 개념을 기반으로 기존에 생성된 온톨로지를 XML 파서를 이용하는 방법을 통하여 XMI로 변환한다. XMI로 변환된 온툴로지는 UML 도구를 사용하여 재사용 할 수 있다. UML로 변환된 온톨로지는 위 과정을 역으로 다시 수행함으로써 온톨로지로 변환된다. 이렇게 UML로 변환된 온톨로지는 UML의 장점을 그대로 가지게 된다. 이미 널리 사용되고 가독성과 편집력 그리고 상호 운용성이 높은 UML을 이용하여 온톨로지의 재 사용성을 높이고자 하는데 있다. 즉 사용자가 직관적으로 온톨로지의 전체 구조와 의미를 파악하는데 도움을 주며 편집 또한 용이하다. 이러한 방법을 바탕으로 UML을 통해 온톨로지를 쉽게 사용자의 온톨로지에 대한 이해와 수정을 도와 온톨로지의 재 사용성을 높이고 사용자간의 공유를 용이하게 만들 수 있다.

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Korean Collective Intelligence in Sharing Economy Using R Programming: A Text Mining and Time Series Analysis Approach (R프로그래밍을 활용한 공유경제의 한국인 집단지성: 텍스트 마이닝 및 시계열 분석)

  • Kim, Jae Won;Yun, You Dong;Jung, Yu Jin;Kim, Ki Youn
    • Journal of Internet Computing and Services
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    • v.17 no.5
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    • pp.151-160
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    • 2016
  • The purpose of this research is to investigate Korean popular attitudes and social perceptions of 'sharing economy' terminology at the current moment from a creative or socio-economic point of view. In Korea, this study discovers and interprets the objective and tangible annual changes and patterns of sociocultural collective intelligence that have taken place over the last five years by applying text mining in the big data analysis approach. By crawling and Googling, this study collected a significant amount of time series web meta-data with regard to the theme of the sharing economy on the world wide web from 2010 to 2014. Consequently, huge amounts of raw data concerning sharing economy are processed into the value-added meaningful 'word clouding' form of graphs or figures by using the function of word clouding with R programming. Till now, the lack of accumulated data or collective intelligence about sharing economy notwithstanding, it is worth nothing that this study carried out preliminary research on conducting a time-series big data analysis from the perspective of knowledge management and processing. Thus, the results of this study can be utilized as fundamental data to help understand the academic and industrial aspects of future sharing economy-related markets or consumer behavior.

Learning Material Bookmarking Service based on Collective Intelligence (집단지성 기반 학습자료 북마킹 서비스 시스템)

  • Jang, Jincheul;Jung, Sukhwan;Lee, Seulki;Jung, Chihoon;Yoon, Wan Chul;Yi, Mun Yong
    • Journal of Intelligence and Information Systems
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    • v.20 no.2
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    • pp.179-192
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    • 2014
  • Keeping in line with the recent changes in the information technology environment, the online learning environment that supports multiple users' participation such as MOOC (Massive Open Online Courses) has become important. One of the largest professional associations in Information Technology, IEEE Computer Society, announced that "Supporting New Learning Styles" is a crucial trend in 2014. Popular MOOC services, CourseRa and edX, have continued to build active learning environment with a large number of lectures accessible anywhere using smart devices, and have been used by an increasing number of users. In addition, collaborative web services (e.g., blogs and Wikipedia) also support the creation of various user-uploaded learning materials, resulting in a vast amount of new lectures and learning materials being created every day in the online space. However, it is difficult for an online educational system to keep a learner' motivation as learning occurs remotely, with limited capability to share knowledge among the learners. Thus, it is essential to understand which materials are needed for each learner and how to motivate learners to actively participate in online learning system. To overcome these issues, leveraging the constructivism theory and collective intelligence, we have developed a social bookmarking system called WeStudy, which supports learning material sharing among the users and provides personalized learning material recommendations. Constructivism theory argues that knowledge is being constructed while learners interact with the world. Collective intelligence can be separated into two types: (1) collaborative collective intelligence, which can be built on the basis of direct collaboration among the participants (e.g., Wikipedia), and (2) integrative collective intelligence, which produces new forms of knowledge by combining independent and distributed information through highly advanced technologies and algorithms (e.g., Google PageRank, Recommender systems). Recommender system, one of the examples of integrative collective intelligence, is to utilize online activities of the users and recommend what users may be interested in. Our system included both collaborative collective intelligence functions and integrative collective intelligence functions. We analyzed well-known Web services based on collective intelligence such as Wikipedia, Slideshare, and Videolectures to identify main design factors that support collective intelligence. Based on this analysis, in addition to sharing online resources through social bookmarking, we selected three essential functions for our system: 1) multimodal visualization of learning materials through two forms (e.g., list and graph), 2) personalized recommendation of learning materials, and 3) explicit designation of learners of their interest. After developing web-based WeStudy system, we conducted usability testing through the heuristic evaluation method that included seven heuristic indices: features and functionality, cognitive page, navigation, search and filtering, control and feedback, forms, context and text. We recruited 10 experts who majored in Human Computer Interaction and worked in the same field, and requested both quantitative and qualitative evaluation of the system. The evaluation results show that, relative to the other functions evaluated, the list/graph page produced higher scores on all indices except for contexts & text. In case of contexts & text, learning material page produced the best score, compared with the other functions. In general, the explicit designation of learners of their interests, one of the distinctive functions, received lower scores on all usability indices because of its unfamiliar functionality to the users. In summary, the evaluation results show that our system has achieved high usability with good performance with some minor issues, which need to be fully addressed before the public release of the system to large-scale users. The study findings provide practical guidelines for the design and development of various systems that utilize collective intelligence.