Abstract

본 논문은 우리나라의 빅데이터 정책과 활용사례 조사, 공간 빅데이터의 토지주택 활용분야를 제시함으로써 토지주택분야의 미래 사업을 발굴하고, 정부정책에 선제적으로 대응하기 위한 공간 빅데이터 기반 활용분야를 제안하였다. 연구결과, 첫째, 우리나라의 빅데이터 관련 정책과 사례를 살펴보았다. 우리나라는 정부3.0 추진위원회를 중심으로 정부부처의 각 정보를 빅데이터 기반 체계로 구축하고 있으며, 국토교통부에서는 국가공간정보 플랫폼을 통한 빅데이터의 적극적 활용, 일자리 창출을 지원하기 위하여 2013년부터 공간 빅데이터 체계 구축을 추진 중이다. 둘째, LH에서 구축 및 운영하고 있는 정보시스템을 중심으로 국토정보의 현황과 토지주택분야에서의 활용방안을 살펴보았다. 먼저, 정보시스템은 크게 공사업무지원, 통계조회, 부동산정보조회, 온라인민원, 국가정책지원 분야로 구분되며, 주요 활용분야 도출의 기본방향으로는 국토정보(DB), 활용수요(업무영역), 수익창출(사업모델) 측면을 고려하였다. 이러한 기본방향 설정 후 접근방법으로서 업무분야와 업무절차 측면에서 살펴본 결과, 지역개발사업 후보지 선정, 임대주택 운영 및 관리, 토지비축 우선순위 설정, 도시재생 우선순위 설정 등 4개의 활용분야를 도출하였다. 셋째, 도출한 4개의 활용분야에서 공간 빅데이터 활용체계를 구현하기 위하여 필요한 데이터와 적용방법, 각 활용분야별 분석절차를 제시하였으며, 공간 빅데이터 활용방안을 구현하기 위하여 LH에 요구되는 개선사항과 향후 검토방향을 제시하였다. 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.

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