• 제목/요약/키워드: framework data

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Proposed Data Literacy Competency Framework through Literature Analysis

  • Hyo-suk Kang;Suntae Kim
    • International Journal of Knowledge Content Development & Technology
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    • 제14권3호
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    • pp.115-140
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    • 2024
  • With the advent of the Fourth Industrial Revolution and the era of big data, the ability to handle data has become essential. This has heightened the importance and necessity of data literacy competencies. The purpose of this study is to propose a framework for data literacy competencies. To achieve this goal, data literacy frameworks from eight countries and twelve pieces of literature on data literacy competencies were analyzed and synthesized, resulting in five categories and twenty-three competencies. The five categories are: data understanding and ethics, data collection and management, data analysis and evaluation, data utilization, and data governance and systems. It is hoped that the data literacy competency framework proposed in this study will serve as a foundational resource for policies, curricula, and the enhancement of individual data literacy competencies.

Data Framework Design of EDISON 2.0 Digital Platform for Convergence Research

  • Sunggeun Han;Jaegwang Lee;Inho Jeon;Jeongcheol Lee;Hoon Choi
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제17권8호
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    • pp.2292-2313
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    • 2023
  • With improving computing performance, various digital platforms are being developed to enable easily utilization of high-performance computing environments. EDISON 1.0 is an online simulation platform widely used in computational science and engineering education. As the research paradigm changes, the demand for developing the EDISON 1.0 platform centered on simulation into the EDISON 2.0 platform centered on data and artificial intelligence is growing. Herein, a data framework, a core module for data-centric research on EDISON 2.0 digital platform, is proposed. The proposed data framework provides the following three functions. First, it provides a data repository suitable for the data lifecycle to increase research reproducibility. Second, it provides a new data model that can integrate, manage, search, and utilize heterogeneous data to support a data-driven interdisciplinary convergence research environment. Finally, it provides an exploratory data analysis (EDA) service and data enrichment using an AI model, both developed to strengthen data reliability and maximize the efficiency and effectiveness of research endeavors. Using the EDISON 2.0 data framework, researchers can conduct interdisciplinary convergence research using heterogeneous data and easily perform data pre-processing through the web-based UI. Further, it presents the opportunity to leverage the derived data obtained through AI technology to gain insights and create new research topics.

다분야통합최적설계를 위한 데이터 서버 중심의 컴퓨팅 기반구조 (Data Server Oriented Computing Infrastructure for Process Integration and Multidisciplinary Design Optimization)

  • 홍은지;이세정;이재호;김승민
    • 한국CDE학회논문집
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    • 제8권4호
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    • pp.231-242
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    • 2003
  • Multidisciplinary Design Optimization (MDO) is an optimization technique considering simultaneously multiple disciplines such as dynamics, mechanics, structural analysis, thermal and fluid analysis and electromagnetic analysis. A software system enabling multidisciplinary design optimization is called MDO framework. An MDO framework provides an integrated and automated design environment that increases product quality and reliability, and decreases design cycle time and cost. The MDO framework also works as a common collaborative workspace for design experts on multiple disciplines. In this paper, we present the architecture for an MDO framework along with the requirement analysis for the framework. The requirement analysis has been performed through interviews of design experts in industry and thus we claim that it reflects the real needs in industry. The requirements include integrated design environment, friendly user interface, highly extensible open architecture, distributed design environment, application program interface, and efficient data management to handle massive design data. The resultant MDO framework is datasever-oriented and designed around a centralized data server for extensible and effective data exchange in a distributed design environment among multiple design tools and software.

정보 구조 그래프를 이용한 통합 데이터 품질 관리 방안 연구 (An Implementation of Total Data Quality Management Using an Information Structure Graph)

  • 이춘열
    • Journal of Information Technology Applications and Management
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    • 제10권4호
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    • pp.103-118
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    • 2003
  • This study presents a database quality evaluation framework. As a way to build a framework, this study expands data quality management to include data transformation processes as well as data. Further, an information structure graph is applied to represent data transformations processes. An information structure graph is absed on a relational database scheme. Thus, data transformation processes may be stored in a relational database. This kind of integration of data transformation metadata with technical metadata eases evaluation of database qualities and their causes.

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기본지리정보 구축 우선순위 평가에 관한 연구 (A Study on Evaluation of the Priority Order about Framework Data Building)

  • 김건수;최윤수;조성길;이상미
    • 한국측량학회:학술대회논문집
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    • 한국측량학회 2004년도 추계학술발표회 논문집
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    • pp.361-366
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    • 2004
  • Geographic Information has been used widely for landuse and management, city plan, and environment and disaster management, etc., But geographic information has been built for individual cases using various methods. Therefore, the discordancy in data, double investment, confusion of use and difficulty of decision supporting system have been occurred. In order to solve these problems, national government is need to framework database. This framework database was enacted for building and use of National Geographic Information System and focused on basic plan of the second national geographic information system. Also, the framework database was selected of eight fields by NGIS laws and 19 detailed items through meeting of framework committee since 2002. In this research, The 19 detailed items( road, railroad, coastline, surveying control point etc.,) of framework database consider a Priority order, In the result of this research, the framework database is obtain to a priority order for building and the national government will carry effectively out a budget for the framework database building. Each of 19 detailed items is grouping into using the priority order of the framework database by AHP analysis method and verified items by decision tree analysis method. The one of the highest priority order items is a road, which is important for building, continuous renovation, and maintain management for use.

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A Framework for Internet of Things (IoT) Data Management

  • Kim, Kyung-Chang
    • 한국컴퓨터정보학회논문지
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    • 제24권3호
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    • pp.159-166
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    • 2019
  • The collection and manipulation of Internet of Things (IoT) data is increasing at a fast pace and its importance is recognized in every sector of our society. For efficient utilization of IoT data, the vast and varied IoT data needs to be reliable and meaningful. In this paper, we propose an IoT framework to realize this need. The IoT framework is based on a four layer IoT architecture onto which context aware computing technology is applied. If the collected IoT data is unreliable it cannot be used for its intended purpose and the whole service using the data must be abandoned. In this paper, we include techniques to remove uncertainty in the early stage of IoT data capture and collection resulting in reliable data. Since the data coming out of the various IoT devices have different formats, it is important to convert them into a standard format before further processing, We propose the RDF format to be the standard format for all IoT data. In addition, it is not feasible to process all captured Iot data from the sensor devices. In order to decide which data to process and understand, we propose to use contexts and reasoning based on these contexts. For reasoning, we propose to use standard AI and statistical techniques. We also propose an experiment environment that can be used to develop an IoT application to realize the IoT framework.

IMPROVING SOCIAL MEDIA DATA QUALITY FOR EFFECTIVE ANALYTICS: AN EMPIRICAL INVESTIGATION BASED ON E-BDMS

  • B. KARTHICK;T. MEYYAPPAN
    • Journal of applied mathematics & informatics
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    • 제41권5호
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    • pp.1129-1143
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    • 2023
  • Social media platforms have become an integral part of our daily lives, and they generate vast amounts of data that can be analyzed for various purposes. However, the quality of the data obtained from social media is often questionable due to factors such as noise, bias, and incompleteness. Enhancing data quality is crucial to ensure the reliability and validity of the results obtained from such data. This paper proposes an enhanced decision-making framework based on Business Decision Management Systems (BDMS) that addresses these challenges by incorporating a data quality enhancement component. The framework includes a backtracking method to improve plan failures and risk-taking abilities and a steep optimized strategy to enhance training plan and resource management, all of which contribute to improving the quality of the data. We examine the efficacy of the proposed framework through research data, which provides evidence of its ability to increase the level of effectiveness and performance by enhancing data quality. Additionally, we demonstrate the reliability of the proposed framework through simulation analysis, which includes true positive analysis, performance analysis, error analysis, and accuracy analysis. This research contributes to the field of business intelligence by providing a framework that addresses critical data quality challenges faced by organizations in decision-making environments.

해양기본지리정보 구축에 관한 기초연구 (A Study on The Marine Geographical Framework Data in Korea)

  • 최윤수;오순복;박병문;김정현;서상현
    • 한국측량학회지
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    • 제20권3호
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    • pp.293-301
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    • 2002
  • 해양기본지리정보(Marine Geographical Framework Data)는 해양의 여러 정보 중에서 지형(Topography) 및 경계(Boundary) 등에 관한 기초적인 지리정보(Graphical and Attribute Data)로서 국토공간데이타기반실(National Spatial Data Infrastructure)의 기본지리정보(Framework data)를 구성하고 있다. 본 연구에서는 사용자 및 전문가 조사를 통하여 기존자료의 구축 및 활용현황, 관련분야의 기술환경, 해외사례 등을 조사·분석하고, 구축될 해양기본지리정보의 활용방안 및 유지관리방안 등을 고려하여 해양기본지리정보의 항목(item)을 선정하였다 선정된 항목을 기초로 시범제작(pilot production)을 실시하고 이 과정에서 나타난 일부 문제점을 제시하였다. 해양을 보존·관리하기 위해서는 다양한 정보를 유기적으로 구축, 관리 및 공급할 수 있는 지리정보시스템(GIS)의 중요성은 계속 커질 것이다. 따라서 본 연구에서 제시된 해양기본지리정보는 해양수산관련 정보화시스템과 인터넷 등 다양한 분야에서 활용될 것이다.

무선 데이터 방송을 이용한 국지성 폭우 예보 서비스 프레임워크의 설계와 구현 (Design and Development of Framework for Local Heavy Rainfall Forecasting Service using Wireless Data Broadcasting)

  • 임석진;최진탁
    • 한국인터넷방송통신학회논문지
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    • 제15권1호
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    • pp.223-228
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    • 2015
  • 기후 온난화에 의한 한반도의 아열대화된 기후는 국지성 폭우가 내는 경향을 높이고 있으며 이로 인해 돌발홍수등의 피해가 증가하고 있다. 국지성 폭우의 피해를 피하기 위해 대규모의 클라이언트들에게 국지성 폭우 예보 서비스가 필요하지만 이러한 서비스를 가능하게 하는 무선 데이터 방송 기반의 서비스 프레임워크 개발이 보고된 것이 없다. 본 논문에서는 대규모 클라이언트들에게 정보 서비스를 가능하게 하는 무선데이터 방송 기법을 이용하여 국지성 폭우 예보 서비스를 가능하게 하는 프레임워크를 설계하고 구현한다. 개발된 서비스 프레임워크는 다양한 데이터 스케줄링 기법과 인덱싱 기법을 적용할 수 있는 확장성을 가진다. 시뮬레이션을 통해 성능을 평가하여 개발된 프레임워크가 효율적으로 국지성 폭우 예보 서비스를 제공함을 보였다.

Bio-vector Generation Framework for Smart Healthcare

  • Shin, Yoon-Hwan
    • 한국컴퓨터정보학회논문지
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    • 제21권1호
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    • pp.107-113
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    • 2016
  • In this paper, by managing the biometric data is changed with the passage of time, a systematic and scientifically propose a framework to increase the bio-vector generation efficiency of the smart health care. Increasing the development of human life as a medicine and has emerged smart health care according to this. Organic and efficient health management becomes possible to generate a vector when the biological domain to the wireless communication infrastructure based on the measurement of the health status and to take action in accordance with the change of the physical condition. In this paper, we propose a framework to create a bio-vector that contains information about the current state of health of the person. In the proposed framework, Bio vectors may be generated by collecting the biometric data such as blood pressure, pulse, body weight. Biometric data is the raw data from the bio-vector. The scope of the primary data can be set to active. As the collecting biometric data from multiple items of the bio-recognition vectors may increase. The resulting bio-vector is used as a measure to determine the current health of the person. Bio-vector generating the proposed framework, it can aid in the efficiency and systemic health of healthcare for the individual.