• 제목/요약/키워드: Big-data Management

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기술, 조직, 환경 관점에서 기업의 경영품질 향상을 위한 빅데이터 활용의 핵심요인에 관한 연구 (The Key Factors of Big Data Utilization for Improvement of Management Quality of Companies in terms of Technology, Organization and Environment)

  • 신수행;이상준
    • 한국IT서비스학회지
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    • 제18권1호
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    • pp.91-112
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    • 2019
  • The IoT environment has led to explosive growth of existing enterprise data, and how to utilize such big data is becoming an important issue in the management field. In this paper, major factors affecting the decisions of companies to utilize big data have been studied. And also, the effect of big data utilization on the management quality is studied empirically. During this process, we have studied the difference according to the award of Korean national quality award. As a result of the study, we confirmed that the five factors such as cost from technology, organization and environment perspective, compatibility, company size, chief officer support, and competitor pressure are key factors influencing big data utilization. Also, it was confirmed that the use of big data for management activities has an important influence on the six management quality factors based on MBNQA, and that the management quality level of Korean national quality award companies is relatively high. This paper provides practical implications for companies' use of big data because it demonstrates for the first time that big data utilization has an impact on management quality improvement.

분석지의 확장을 위한 소셜 빅데이터 활용연구 - 국내 '빅데이터' 수요공급 예측 - (a Study on Using Social Big Data for Expanding Analytical Knowledge - Domestic Big Data supply-demand expectation -)

  • 김정선;권은주;송태민
    • 지식경영연구
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    • 제15권3호
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    • pp.169-188
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    • 2014
  • Big data seems to change knowledge management system and method of enterprises to large extent. Further, the type of method for utilization of unstructured data including image, v ideo, sensor data a nd text may determine the decision on expansion of knowledge management of the enterprise or government. This paper, in this light, attempts to figure out the prediction model of demands and supply for big data market of Korea trough data mining decision making tree by utilizing text bit data generated for 3 years on web and SNS for expansion of form for knowledge management. The results indicate that the market focused on H/W and storage leading by the government is big data market of Korea. Further, the demanders of big data have been found to put important on attribute factors including interest, quickness and economics. Meanwhile, innovation and growth have been found to be the attribute factors onto which the supplier puts importance. The results of this research show that the factors affect acceptance of big data technology differ for supplier and demander. This article may provide basic method for study on expansion of analysis form of enterprise and connection with its management activities.

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Challenges and Opportunities of Big Data

  • Khalil, Md Ibrahim;Kim, R. Young Chul;Seo, ChaeYun
    • Journal of Platform Technology
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    • 제8권2호
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    • pp.3-9
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    • 2020
  • Big Data is a new concept in the global and local area. This field has gained tremendous momentum in the recent years and has attracted attention of several researchers. Big Data is a data analysis methodology enabled by recent advances in information and communications technology. However, big data analysis requires a huge amount of computing resources making adoption costs of big data technology. Therefore, it is not affordable for many small and medium enterprises. We survey the concepts and characteristics of Big Data along with a number of tools like HADOOP, HPCC for managing Big Data. It also presents an overview of big data like Characteristics of Big data, big data technology, big data management tools etc. We have also highlighted on some challenges and opportunities related to the fields of big data.

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A Study on Efficient Building Energy Management System Based on Big Data

  • Chang, Young-Hyun;Ko, Chang-Bae
    • International journal of advanced smart convergence
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    • 제8권1호
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    • pp.82-86
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    • 2019
  • We aim to use public data different from the remote BEMS energy diagnostics technology and already established and then switch the conventional operation environment to a big-data-based integrated management environment to operate and build a building energy management environment of maximized efficiency. In Step 1, various network management environments of the system integrated with a big data platform and the BEMS management system are used to collect logs created in various types of data by means of the big data platform. In Step 2, the collected data are stored in the HDFS (Hadoop Distributed File System) to manage the data in real time about internal and external changes on the basis of integration analysis, for example, relations and interrelation for automatic efficient management.

스마트 물관리를 위한 빅데이터 거버넌스 모델 (Big Data Governance Model for Smart Water Management)

  • 최영환;조완섭;이경희
    • 한국빅데이터학회지
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    • 제3권2호
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    • pp.1-10
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    • 2018
  • 스마트 물관리 분야에서도 빅데이터 분석을 통해 경쟁력을 강화하려는 요구가 급증하면서 빅데이터에 대한 체계적인 관리(거버넌스)가 중요한 이슈로 부각되고 있다. 빅데이터 거버넌스는 데이터의 품질보장, 프라이버시 보호, 데이터 수명관리, 데이터 전담조직을 통한 데이터 소유 및 관리권의 명확화 등의 데이터 관리를 평가하고(Evaluation), 지시하며(Direction), 모니터링(Monitoring) 하는 체계적인 관리활동을 의미한다. 빅데이터 거버넌스가 확립되지 못하면 중요한 의사결정에 품질이 낮은 데이터를 사용함으로써 심각한 문제를 야기할 수 있으며, 개인 프라이버시 관련 데이터로 인해 빅브라더의 우려가 현실화될 수 있고, 폭증하는 데이터의 수명관리 소홀로 인해 IT 비용이 급증하기도 한다. 이러한 기술적인 문제가 완비되더라도 데이터 관련 문제를 전담하고 책임지는 조직과 인력이 없다면 빅데이터 효과는 지속되지 못할 것이다. 본 연구에서는 빅데이터 기반의 스마트 물관리를 위한 데이터 거버넌스 구축모델을 제시하고, 실제 물관리 업무에 적용한 사례를 소개한다.

빅데이터 기반의 수요자원 관리 시스템 개발에 관한 연구 (A Study on Demand-Side Resource Management Based on Big Data System)

  • 윤재원;이인규;최중인
    • 전기학회논문지
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    • 제63권8호
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    • pp.1111-1115
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    • 2014
  • With the increasing interest of a demand side management using a Smart Grid infrastructure, the demand resources and energy usage data management becomes an important factor in energy industry. In addition, with the help of Advanced Measuring Infrastructure(AMI), energy usage data becomes a Big Data System. Therefore, it becomes difficult to store and manage the demand resources big data using a traditional relational database management system. Furthermore, not many researches have been done to analyze the big energy data collected using AMI. In this paper, we are proposing a Hadoop based Big Data system to manage the demand resources energy data and we will also show how the demand side management systems can be used to improve energy efficiency.

빅데이터 품질이 기업의 경영성과에 미치는 영향에 관한 연구 (A study on the Effect of Big Data Quality on Corporate Management Performance)

  • 이충형;김영준
    • 한국융합학회논문지
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    • 제12권8호
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    • pp.245-256
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    • 2021
  • 4차산업혁명시대에 정보통신기술의 비약적인 발전, 고객구매 성향의 다양함, 복잡함은 산업 전체적으로 데이터의 양적 중가를 가져와 '빅데이터' 시대를 맞이하게 되었다. 빅데이터 시대는 데이터를 분석, 활용하여 기업의 전략적 의사결정에 활용하는 것이 기업의 핵심 역량으로 자리 잡게 되었다. 하지만 현재 빅데이터 연구들은 기술적 이슈와 미래 잠재 가치 중심이었다. 반면 기업이 보유한 내.외부 고객 빅데이터의 품질 및 활용 수준관리에 대한 연구와 논의는 부족하였다. 본 연구에서는 기업의 내.외부 빅데이터 품질관리 정보시스템 측면와 품질경영 측면으로 인식하여 영향요인을 도출하였다. 또한 빅데이터 품질관리, 빅데이터 활용 및 수준관리가 기업의 업무 효율화와 기업 경영성과에 유의한 영향을 미치는지 204명의 임직원 설문을 통해 조사하였고, 가설을 설정하여 검증하였다. 연구결과 경영층의 지원, 개인 혁신성, 경영환경변화, 빅데이터 품질활용 지표관리, 빅데이터 거버넌스 체계 마련이 기업 경영성과에 유의한 영향을 미쳤다.

A Study on Big Data Analytics Services and Standardization for Smart Manufacturing Innovation

  • Kim, Cheolrim;Kim, Seungcheon
    • International Journal of Internet, Broadcasting and Communication
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    • 제14권3호
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    • pp.91-100
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    • 2022
  • Major developed countries are seriously considering smart factories to increase their manufacturing competitiveness. Smart factory is a customized factory that incorporates ICT in the entire process from product planning to design, distribution and sales. This can reduce production costs and respond flexibly to the consumer market. The smart factory converts physical signals into digital signals, connects machines, parts, factories, manufacturing processes, people, and supply chain partners in the factory to each other, and uses the collected data to enable the smart factory platform to operate intelligently. Enhancing personalized value is the key. Therefore, it can be said that the success or failure of a smart factory depends on whether big data is secured and utilized. Standardized communication and collaboration are required to smoothly acquire big data inside and outside the factory in the smart factory, and the use of big data can be maximized through big data analysis. This study examines big data analysis and standardization in smart factory. Manufacturing innovation by country, smart factory construction framework, smart factory implementation key elements, big data analysis and visualization, etc. will be reviewed first. Through this, we propose services such as big data infrastructure construction process, big data platform components, big data modeling, big data quality management components, big data standardization, and big data implementation consulting that can be suggested when building big data infrastructure in smart factories. It is expected that this proposal can be a guide for building big data infrastructure for companies that want to introduce a smart factory.

Application Analysis of Smart Tourism Management Model under the Background of Big Data and IOT

  • Gangmin Weng;Jingyu Zhang
    • Journal of Information Processing Systems
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    • 제19권3호
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    • pp.347-354
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    • 2023
  • The rapid development of information technology has accelerated the application of big data and the Internet of Things in various industries. Big data has a great potential in the development of smart tourism. With the help of innovation in emerging technologies such as big data and Internet of Things, smart tourism has a better possibility to surpass traditional tourism. Therefore, this article provides a theoretical support to this process. It has explored the innovative management model of big data and IoT in smart tourism and evaluate their effects on promoting tourism. It offers a reference for the integration and innovation of the tourism theory system. Before big data technology, the development of Internet boosted online tourism. However, tourism marketing is still inefficient due to a lack of understanding about tourists. After many practical explorations of big data technology, tourism websites begin to adopt big data technology in their daily operations. With the changes in tourists' preferences and needs, further innovation and research are needed to help smart tourism keep up with the changes in the market and create more competitive products and services. Innovation serves as the driving force for enterprises to occupy the market and develop.

SWOT분석을 통한 CM사 견적업무 빅데이터 활용전략에 관한 연구 (A Study on the Strategy of the Use of Big Data for Cost Estimating in Construction Management Firms based on the SWOT Analysis)

  • 김현진;김한수
    • 한국건설관리학회논문집
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    • 제23권2호
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    • pp.54-64
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    • 2022
  • 빅데이터 활용에 대한 관심이 높아짐에 따라, 건설산업에서도 빅데이터와 관련한 다양한 연구개발이 이루어지고 있다. 건설산업의 다양한 분야 중 견적업무는 빅데이터의 활용성이 높은 분야로 인식되고 있다. 견적업무에서 빅데이터를 효과적으로 활용하기 위해서는, 기업의 내외부 현황을 다면적으로 이해하고 이에 적합한 활용전략을 수립하는 것이 필요할 것이다. 본 연구의 목적은 국내 CM사 견적업무에서의 빅데이터 활용현황을 조사하고, SWOT기법을 활용하여 CM사 견적업무에서 빅데이터를 활용하기 위한 전략 방향을 개발하고 제시하는데 있다. 문헌조사, 설문조사, 인터뷰 조사 및 SWOT분석을 바탕으로 CM사는 기업의 높은 수용 문화와 정보 자원을 적극 활용하고, 부족한 빅데이터 실무기반과 인적자원을 보강하는 전략이 필요한 것으로 제안하였다.