• Title/Summary/Keyword: 공간 빅데이터

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Providing Service Model Based on Concept and Requirements of Spatial Big Data (공간 빅데이터의 개념 및 요구사항을 반영한 서비스 제공 방안)

  • Kim, Geun Han;Jun, Chul Min;Jung, Hui Cheul;Yoon, Jeong Ho
    • Journal of Korean Society for Geospatial Information Science
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    • v.24 no.4
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    • pp.89-96
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    • 2016
  • By reviewing preceding studies of big data and spatial big data, spatial big data was defined as one part of big data, which spatialize location information and systematize time series data. Spatial big data, as one part of big data, should not be separated with big data and application methods within the system is to be examined. Therefore in this study, services that spatial big data is required to provide were suggested. Spatial big data must be available of various spatial analysis and is in need of services that considers present and future spatial information. Not only should spatial big data be able to detect time series changes in location, but also analyze various type of big data using attribute information of spatial data. To successfully provide the requirements of spatial big data and link various type of big data with spatial big data, methods of forming sample points and extracting attribute information were proposed in this study. The increasing application of spatial information related to big data is expected to attribute to the development of spatial data industry and technological advancement.

Study for Spatial Big Data Concept and System Building (공간빅데이터 개념 및 체계 구축방안 연구)

  • Ahn, Jong Wook;Yi, Mi Sook;Shin, Dong Bin
    • Spatial Information Research
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    • v.21 no.5
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    • pp.43-51
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    • 2013
  • In this study, the concept of spatial big data and effective ways to build a spatial big data system are presented. Big Data is defined as 3V(volume, variety, velocity). Spatial big data is the basis for evolution from 3V's big data to 6V's big data(volume, variety, velocity, value, veracity, visualization). In order to build an effective spatial big data, spatial big data system building should be promoted. In addition, spatial big data system should be performed a national spatial information base, convergence platform, service providers, and providers as a factor of production. The spatial big data system is made up of infrastructure(hardware), technology (software), spatial big data(data), human resources, law etc. The goals for the spatial big data system build are spatial-based policy support, spatial big data platform based industries enable, spatial big data fusion-based composition, spatial active in social issues. Strategies for achieving the objectives are build the government-wide cooperation, new industry creation and activation, and spatial big data platform built, technologies competitiveness of spatial big data.

A Study on Concept and Services Framework of Geo-Spatial Big Data (공간 빅데이터의 개념 및 서비스 프레임워크 구상에 관한 연구)

  • Yu, Seon Cheol;Choi, Won Wook;Shin, Dong Bin;Ahn, Jong Wook
    • Spatial Information Research
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    • v.22 no.6
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    • pp.13-21
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    • 2014
  • This study defines concept and service framework of Geo-Spatial Big Data(GSBD). The major concept of the GSBD is formulated based on the 7V characteristics: the general characteristics of big data with 3V(Volume, Variety, Velocity); Geo-spatial oriented characteristics with 4V(Veracity, Visualization, Versatile, Value). GSBD is the technology to extract meaningful information from Geo-spatial fusion data and support decision making responding with rapidly changing activities by analysing with almost realtime solutions while efficiently collecting, storing and managing structured, semi-structured or unstructured big data. The application area of the GSBD is segmented in terms of technical aspect(store, manage, analyze and service) and public/private area. The service framework for the GSBD composed of modules to manage, contain and monitor GSBD services is suggested. Such additional studies as building specific application service models and formulating service delivery strategies for the GSBD are required based on the services framework.

An Architecture for a Spatial Big-Data Management System on Hadoop (하둡기반 공간 빅데이터 저장 관리 시스템 구조)

  • Lee, Kang-Woo;Cho, Eun-Sun
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2015.01a
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    • pp.1-3
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    • 2015
  • 본 논문에서는 하둡 환경상에서 개발 중인 공간 빅데이터 저장 관리 시스템의 구조를 설명한다. 본 시스템은 공간 센서 및 IoT의 등장으로 대용량화된 공간 데이터로 인한 기존 공간 정보 처리 시스템의 성능적 한계를 극복하기 위한 목적으로 개발 중이다. 본 시스템은 효과적인 대용량 데이터 처리를 위해 현재 활발히 연구되고 있는 빅데이터 처리 기술과 공간 정보 처리 기술을 접목하여, 대용량의 공간 정보를 수집, 저장 관리하는 기능을 제공한다. 또한 효과적인 공간 데이터의 접근을 위해 스크립트 언어 기반의 공간 정보 처리 언어를 제공하고, SQL 형식의 선언적 공간 정보 질의 처리 기능도 제공하기 위해 개발 중에 있다.

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Big Data Governance Model for Effective Operation in Cyberspace (효과적인 사이버공간 작전수행을 위한 빅데이터 거버넌스 모델)

  • Jang, Won-gu;Lee, Kyung-ho
    • The Journal of Bigdata
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    • v.4 no.1
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    • pp.39-51
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    • 2019
  • With the advent of the fourth industrial revolution characterized by hyperconnectivity and superintelligence and the emerging cyber physical systems, enormous volumes of data are being generated in the cyberspace every day ranging from the records about human life and activities to the communication records of computers, information and communication devices, and the Internet of things. Big data represented by 3Vs (volume, velocity, and variety) are actively used in the defence field as well. This paper proposes a big data governance model to support effective military operations in the cyberspace. Cyberspace operation missions and big data types that can be collected in the cyberspace are classified and integrated with big data governance issues to build a big data governance framework model. Then the effectiveness of the constructed model is verified through examples. The result of this study will be able to assist big data utilization planning in the defence sector.

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Deduction of the Policy Issues for Activating the Geo-Spatial Big Data Services (공간 빅데이터 서비스 활성화를 위한 정책과제 도출)

  • Park, Joon Min;Lee, Myeong Ho;Shin, Dong Bin;Ahn, Jong Wook
    • Spatial Information Research
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    • v.23 no.6
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    • pp.19-29
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    • 2015
  • This study was conducted with the purpose of suggesting the improvement plan of political for activating the Geo-Spatial Big Data Services. To this end, we were review the previous research for Geo-Spatial Big Data and analysis domestic and foreign Geo-Spatial Big Data propulsion system and policy enforcement situation. As a result, we have deduced the problem of insufficient policy of reaction for future Geo-Spatial Big Data, personal information protection and political basis service activation, relevant technology and policy, system for Geo-Spatial Big Data application and establishment, low leveled open government data and sharing system. In succession, we set up a policy direction for solving derived problems and deducted 5 policy issues : setting up a Geo-Spatial Big Data system, improving relevant legal system, developing technic related to Geo-Spatial Big Data, promoting business supporting Geo-Spatial Big Data, creating a convergence sharing system about public DB.

A Method to Access Data for Spatial Operation in Parallel Distributed Processing System (병렬 분산 처리 시스템에서 공간 연산을 위한 데이터 접근 방안)

  • Kim, Jindeog
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2016.10a
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    • pp.442-444
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    • 2016
  • 과거에 비해 비약적으로 생산되는 공간 데이터에 대한 처리를 위한 공간 연산은 빠른 처리 응답성을 요구하는 경우가 많다. 그래서 최근 하둡(Hadoop)과 같은 빅데이터 처리 시스템을 이용하여 처리하고자 하는 시도가 많다. 한편, 공간 조인은 데이터 분할(Partitioning)과 공간 색인의 이용 여부, 여과 단계와 정제 단계를 거치는 등 그 복잡도가 강한 공간 연산이다. 그래서 빅데이터 처리 시스템을 이용한 공간 조인의 처리 방식은 매우 다양하다. 그러나 지금까지 이러한 공간 조인의 처리 방식에 다른 리소스 활용에 대한 비교는 거의 없다. 이 논문에서는 다양한 공간 연산의 수행 방법에 따른 빅데이터 시스템 클러스터에서 데이터 전송 방식을 고찰하고 데이터 전송에 따른 네트워크 리소스의 효율적인 사용 방안을 제안하고자 한다. 구체적으로 단일할당과 다중할당 색인 기법의 비교, 파티셔닝 방법의 비교, 맵리듀스 시스템의 태스크 할당 방법에 따른 비교를 통해 다양한 연산 유형에 따른 공간 조인의 처리 방안 선정에 고려 요소를 제시하고자 한다.

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기획취재 - 미래 가치창출을 위한 방안! 빅데이터

  • Sin, Yeong-Hun
    • Electric Engineers Magazine
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    • s.379
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    • pp.24-25
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    • 2014
  • 박근혜 정부의 "정부 3.0"에서는 빅데이터가 창조경제의 핵심으로 부각되고 있다. 지난 2월 국토교통부 등에 따르면 정부는 올해 664억원의 예산을 투입해 고품질의 공간정보와 빅데이터 체계를 구축할 예정으로 중앙 및 지자체가 시행하는 385개 공간정보 사업에 2,946억원을 투자할 계획도 세웠다. 이러한 정부의 행보 속에 우리 전력산업은 빅데이터를 어떻게 다뤄야 할까? 한번 살펴보기로 하자.

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Utilizing Spatial Big Data for Land and Housing Sector (토지주택분야 정보 현황과 빅데이터 연계활용 방안)

  • Jeong, Yeun-Woo;Yu, Jong-Hun
    • Land and Housing Review
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    • v.7 no.1
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    • pp.19-29
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    • 2016
  • This study proposes the big data policy and case studies in Korea and the application of land and housing of spatial big data to excavate the future business and to propose the spatial big data based application for the government policy in advance. As a result, at first, the policy and cases of big data in Korea were evaluated. Centered on the Government 3.0 Committee, the information from each department of government is being established with the big-data-based system, and the Ministry of Land, Infrastructure, and Transport is establishing the spatial big data system from 2013 to support application of big data through the platform of national spatial information and job creation. Second, based on the information system established and administrated by LH, the status of national territory information and the application of land and housing were evaluated. First of all, the information system is categorized mainly into the support of public ministration, statistical view, real estate information, on-line petition, and national policy support, and as a basic direction of major application, the national territory information (DB), demand of application (scope of work), and profit creation (business model) were regarded. After the settings of such basic direction, as a result of evaluating an approach in terms of work scope and work procedure, the four application fields were extracted: selection of candidate land for regional development business, administration and operation of rental house, settings of priority for land preservation, and settings of priority for urban generation. Third, to implement the application system of spatial big data in the four fields extracted, the required data and application and analytic procedures for each application field were proposed, and to implement the application solution of spatial big data, the improvement and future direction of evaluation required from LH were proposed.

Information Visualization Process for Spatial Big Data (공간빅데이터를 위한 정보 시각화 방법)

  • Seo, Yang Mo;Kim, Won Kyun
    • Spatial Information Research
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    • v.23 no.6
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    • pp.109-116
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    • 2015
  • In this study, define the concept of spatial big data and special feature of spatial big data, examine information visualization methodology for increase the insight into the data. Also presented problems and solutions in the visualization process. Spatial big data is defined as a result of quantitative expansion from spatial information and qualitative expansion from big data. Characteristics of spatial big data id defined as 6V (Volume, Variety, Velocity, Value, Veracity, Visualization), As the utilization and service aspects of spatial big data at issue, visualization of spatial big data has received attention for provide insight into the spatial big data to improve the data value. Methods of information visualization is organized in a variety of ways through Matthias, Ben, information design textbook, etc, but visualization of the spatial big data will go through the process of organizing data in the target because of the vast amounts of raw data, need to extract information from data for want delivered to user. The extracted information is used efficient visual representation of the characteristic, The large amounts of data representing visually can not provide accurate information to user, need to data reduction methods such as filtering, sampling, data binning, clustering.