• Title/Summary/Keyword: 공공 빅데이터

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Design of Building Energy Management System Using Big data Platform (빅데이터 플랫폼 기반 건물 에너지 통합 관리 시스템 설계)

  • Kim, Tae-Hyung;Jeong, Yeon-Kwae;Lee, Il-Woo
    • Proceedings of the Korea Information Processing Society Conference
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    • 2016.04a
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    • pp.580-581
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    • 2016
  • 국제적으로 지속적인 이슈가 되고 있는 에너지 절감에 대한 대책으로 다양한 에너지 절감 기술들이 연구 개발되고 있다. 특히 전체 에너지 사용량의 약 20%이상을 차지하는 건물(가정/상업/공공)부문에서는 에너지 진단 및 분석을 수행하기 위해 건물 에너지 관리 시스템(BEMS: Building Energy Management System)과 건물 자동화 시스템(BAS: Building Automation System) 그리고 다양한 환경정보들을 수집하여 활용한다. 하지만 기존 분석 방식은 결과의 신뢰성에 최소한의 영향을 주면서 데이터 관리 효율을 높이는 방법에 초점을 맞춰 연구가 진행되었으며, 이를 위해 기존에 수집된 데이터를 압축하거나 샘플링하는 사전 정제 과정을 거치게 되었다. 하지만 빅데이터 플랫폼을 활용하면 더 이상 신뢰성을 낮추면서까지 데이터를 정제할 필요가 없어지고, 수집되는 모든 데이터에 대한 다차원 분석을 빠르게 수행할 수 있게 된다. 따라서 본 논문에서는 하드웨어의 한계로 기존 건물에너지 진단 및 분석 시스템에서 제공하지 못했던 다양한 분석 및 진단 서비스들을 빠르고 정확하게 제공하도록 하는 빅데이터 플랫폼 기반 건물 에너지 통합 관리 시스템 설계에 대해 서술한다.

A Policy Study to Improve the Utilization of Public Data in Busan (부산지역 공공데이터 활용도 향상을 위한 정책연구)

  • Bae, Soohyun;Kim, Sungshin;Jeong, Seok Chan
    • The Journal of Bigdata
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    • v.6 no.2
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    • pp.1-15
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    • 2021
  • The unprecedented pandemic of infectious diseases called COVID-19 has dampened human and material movement, and changes in the global economic structure have caused various economic and industrial problems such as worsening employment along with the domestic and international economic recession. In this crisis situation, the government announced the "New Deal" as a new card to enhance economic vitality following the "emergency disaster support fund." This means that the first business of the Digital New Deal, the beginning and core of the New Deal, begins digital transformation from collecting data, which is the "rice" of digital transformation to the data dam. Until now, not only the government but also local governments have established and operated platforms for collecting and sharing public data by establishing various data portals. It is evaluated that it lacks utilization for commercialization as not only the government but also local governments focus only on building the platform without considering the business model when building the initial public data platforms. In particular, in the case of regions, there is a lack of public data to be used for data business, so it is necessary to utilize data from public institutions in the region. In this study, various data collection, data quality improvement, and data utilization improvement were suggested as measures to solve these problems.

Implementation of public data contents using Big data Visualization technology - Map visualization technique (빅 데이터 가시화 기술을 적용한 공공데이터 콘텐츠 구현 - Map가시화 기법)

  • Bak, Seon-Hui;Kim, Jong Ho;You, Hyun-Bea
    • Journal of Digital Contents Society
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    • v.18 no.7
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    • pp.1427-1434
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    • 2017
  • Due to the acceleration of the 4th industrialization, the data around us rapidly increased. Therefore, it is necessary to be able to more easily grasp the nature and meaning of data obtained through data analysis than to collect data, and apply it flexibly to the value judgment of data. Visualization technology is now attracting attention in many fields. Visualization allows the user to more easily grasp the information of the data with graphs, charts, etc. so that the data analysis result can be understood more easily, so that the user can make an immediate judgment and make a quick decision. Among them, there is a high degree of interest in visualization using public data, which is highly useful to users. In this paper, we implemented R - library and R Studio to visualize public data at the installation sites of bicycle storage sites among various software that can express visualization.

소셜 데이터에서 재난 사건 추출을 위한 사용자 행동 및 시간 분석을 반영한 토픽 모델

  • ;Lee, Gyeong-Sun
    • Information and Communications Magazine
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    • v.34 no.6
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    • pp.43-50
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    • 2017
  • 본고에서는 소셜 빅데이터에서 공공안전에 위협되고 사회적으로 이슈가 되는 재난사건을 추출하기 위한 방법으로 소셜 네트워크상에서 사용자 행동 분석과 시간분석을 반영한 토픽 모델링 기법을 알아본다. 소셜 사용자의 글 수, 리트윗 반응, 활동주기, 팔로워 수, 팔로잉 수 등 사용자의 행동 분석을 통하여 활동적이고 신뢰성 있는 사용자를 분류함으로써 트윗에서 스팸성과 광고성을 제외하고 이슈에 대해 신뢰성 높은 사용자가 쓴 트윗을 중요하게 반영한다. 또한, 트위터 데이터에서 새로운 이슈가 발생한 것을 탐지하기 위해 시간별 핵심어휘 빈도의 분포 변화를 측정하고, 이슈 트윗에 대해 감성 표현 분석을 통해 핵심이슈에 대해 사건 어휘를 추출한다. 소셜 빅데이터의 특성상 같은 날짜에 여러 이슈에 대한 트윗이 많이 생성될 수 있기 때문에, 트윗들을 토픽별로 그룹핑하는 것이 필요하므로, 최근 많이 사용되고 있는 LDA 토픽모델링 기법에 시간 특성과 사용자 특성을 분석한 시간상에서의 중요한 사건 어휘를 반영하고, 해당이슈에 대한 신뢰성 있는 사용자가 쓴 트윗을 중요시 반영하도록 토픽모델링 기법을 개선한 소셜 사건 탐지 방법에 대해 알아본다.

Job-related analysis and visualization using big data distributed processing system (빅데이터를 활용한 직업관련 분석 및 시각화)

  • Choi, Dong-Cheol;Choi, Nakjin;Kim, Min-Seok;Park, Jun-wook;Lee, Jun-Dong
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2020.07a
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    • pp.249-251
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    • 2020
  • 본 논문에서는 코로나바이러스감염증19 사태가 국내 취업시장에 어떠한 영향을 미쳤는지에 대해 알아보기 위하여 빅데이터를 활용한 직업 관련 분석 및 시각화를 수행하였다. 빅데이터를 위한 기본 자료는 통계청 자료와 워크넷 Open API를 활용하였으며, 빅데이터 처리 과정을 거쳐 결과값을 예측을 시도하였다. 2020년도 워크넷 Open API를 통해 고용수와 통계청 자료를 통해 비교 분석 및 시각화를 실시하였고, 08년~20년 취업자수를 통해 시계열 분석 및 예측을 진행해 앞으로의 횡보를 예상해보았다. 분석한 결과 19년, 20년도를 비교 분석했을 때에는 크게 차이가 나지 않았다. 추가적으로 시계열 분석기법을 활용해 보았을 때 매년 고용수는 전체적으로 증가하고 4월에는 감소, 7월에는 증가하는 추세가 나왔다. 코로나바이러스감염증19 사태로 인해 공공기관과 언택트 시대에 따른 화상회의나 재택근무로 인해 운수·통신 취업률은 상승한다는 결과값이 도출되었고, 자영업이나 서비스 직업 등은 다른 직종에 비해 큰 감소를 보여줬으나 국가 경제 활성화에 따른 고용수는 점차 증가할 것이라 예측된다.

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Influencing Factors Analysis for the Number of Participants in Public Contracts Using Big Data (빅데이터를 활용한 공공계약의 입찰참가자수 영향요인 분석)

  • Choi, Tae-Hong;Lee, Kyung-Hee;Cho, Wan-Sup
    • The Journal of Bigdata
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    • v.3 no.2
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    • pp.87-99
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    • 2018
  • This study analyze the factors affecting the number of bidders in public contracts by collecting contract data such as purchase of goods, service and facility construction through KONEPS among various forms of public contracts. The reason why the number of bidders is important in public contracts is that it can be a minimum criterion for judging whether to enter into a rational contract through fair competition and is closely related to the budget reduction of the ordering organization or the profitability of the bidders. The purpose of this study is to analyze the factors that determine the participation of bidders in public contracts and to present the problems and policy implications of bidders' participation in public contracts. This research distinguishes the existing sampling based research by analyzing and analyzing many contracts such as purchasing, service and facility construction of 4.35 million items in which 50,000 public institutions have been placed as national markets and 300,000 individual companies and corporations participated. As a research model, the number of announcement days, budget amount, contract method and winning bid is used as independent variables and the number of bidders is used as a dependent variable. Big data and multidimensional analysis techniques are used for survey analysis. The conclusions are as follows: First, the larger the budget amount of public works projects, the smaller the number of participants. Second, in the contract method, restricted competition has more participants than general competition. Third, the duration of bidding notice did not significantly affect the number of bidders. Fourth, in the winning bid method, the qualification examination bidding system has more bidders than the lowest bidding system.

Effective Countermeasure to APT Attacks using Big Data (빅데이터를 이용한 APT 공격 시도에 대한 효과적인 대응 방안)

  • Mun, Hyung-Jin;Choi, Seung-Hyeon;Hwang, Yooncheol
    • Journal of Convergence Society for SMB
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    • v.6 no.1
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    • pp.17-23
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    • 2016
  • Recently, Internet services via various devices including smartphone have become available. Because of the development of ICT, numerous hacking incidents have occurred and most of those attacks turned out to be APT attacks. APT attack means an attack method by which a hacker continues to collect information to achieve his goal, and analyzes the weakness of the target and infects it with malicious code, and being hidden, leaks the data in time. In this paper, we examine the information collection method the APT attackers use to invade the target system in a short time using big data, and we suggest and evaluate the countermeasure to protect against the attack method using big data.

An Analysis System Using Big Data based Real Time Monitoring of Vital Sign: Focused on Measuring Baseball Defense Ability (빅데이터 기반의 실시간 생체 신호 모니터링을 이용한 분석시스템: 야구 수비능력 측정을 중심으로)

  • Oh, Young-Hwan
    • The Journal of the Korea institute of electronic communication sciences
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    • v.13 no.1
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    • pp.221-228
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    • 2018
  • Big data is an important keyword in World's Fourth Industrial Revolution in public and private division including IoT(Internet of Things), AI(Artificial Intelligence) and Cloud system in the fields of science, technology, industry and society. Big data based on services are available in various fields such as transportation, weather, medical care, and marketing. In particular, in the field of sports, various types of bio-signals can be collected and managed by the appearance of a wearable device that can measure vital signs in training or rehabilitation for daily life rather than a hospital or a rehabilitation center. However, research on big data with vital signs from wearable devices for training and rehabilitation for baseball players have not yet been stimulated. Therefore, in this paper, we propose a system for baseball infield and outfield players, especially which can store and analyze the momentum measurement vital signals based on big data.

A Study on Initial Characterization of Big Data Technology Acceptance - Moderating Role of Technology User & Technology Utilizer (빅데이터 기술수용의 초기 특성 연구 - 기술이용자 및 기술활용자 측면의 조절효과를 중심으로)

  • Kim, Jung-Sun;Song, Tae-Min
    • The Journal of the Korea Contents Association
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    • v.14 no.9
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    • pp.538-555
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    • 2014
  • Systematic studies have been rarely conducted on the acceptance of big data technology despite the technology drawing much attention from academia, industry and general public. With big data technology still being in the infant stage in Korea, a study model was constructed in this paper by integrating the innovation diffusion theory and the task technology fit theory with this technology acceptance model (TAM) as the central framework to make big data technology more readily acceptable in the country, and the aim of making big data technology readily acceptable was expanded as the moderator variable of the TAM. The results of this study showed that "subjective norm" and "task technology fit" showed the most significant effect as the exogenous variables of the TAM. In addition, the "innovative characteristic of the organization" was the significant exogenous variable affecting the intention to accept big data technology to those "technology utilizers" that try to come up with new services or products that are technology-based; however, "subjective norm" was the rather significant factor affecting those simple "technology users". Finally, a significant difference was seen in the verification of mediation effect.

Analysis of Public Library Operations and Uses of 16 Metropolitan Local Governments of Korea by Using the Chernoff Face Method (체르노프 페이스를 사용한 광역자치단체 공공도서관 운영 및 이용 분석)

  • Kim, Young-seok
    • Journal of the Korean Society for Library and Information Science
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    • v.51 no.1
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    • pp.271-287
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    • 2017
  • This study aims to conduct a big data analysis of public library operations and uses of 16 metropolitan local government of Korea by using the Chernoff face method. This study is the first to use the Chernoff face method for big data analysis of library services in library and information research. The association of variables and human facial features was decided by survey. The study reveals that in general the provincial governments in Korea operate more libraries, invest more budgets, allocate more staff and hold more collections than metropolitan cities. This administration resulted in more use of libraries in provincial governments than metropolitan cities.