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A novel big data analytics framework for smart cities

机译:适用于智慧城市的新颖大数据分析框架

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The emergence of smart cities aims at mitigating the challenges raised due to the continuous urbanization development and increasing population density in cities. To face these challenges, governments and decision makers undertake smart city projects targeting sustainable economic growth and better quality of life for both inhabitants and visitors. Information and Communication Technology (ICT) is a key enabling technology for city smartening. However, ICT artifacts and applications yield massive volumes of data known as big data. Extracting insights and hidden correlations from big data is a growing trend in information systems to provide better services to citizens and support the decision making processes. However, to extract valuable insights for developing city level smart information services, the generated datasets from various city domains need to be integrated and analyzed. This process usually referred to as big data analytics or big data value chain. Surveying the literature reveals an increasing interest in harnessing big data analytics applications in general and in the area of smart cities in particular. Yet, comprehensive discussions on the essential characteristics of big data analytics frameworks fitting smart cities requirements are still needed. This paper presents a novel big data analytics framework for smart cities called "Smart City Data Analytics Panel - SCDAP". The design of SCDAP is based on answering the following research questions: what are the characteristics of big data analytics frameworks applied in smart cities in literature and what are the essential design principles that should guide the design of big data analytics frameworks have to serve smart cities purposes? In answering these questions, we adopted a systematic literature review on big data analytics frameworks in smart cities. The proposed framework introduces new functionalities to big data analytics frameworks represented in data model management and aggregation. The value of the proposed framework is discussed in comparison to traditional knowledge discovery approaches. (C) 2018 Elsevier B.V. All rights reserved.
机译:智慧城市的出现旨在缓解由于持续的城市化发展和城市人口密度增加而带来的挑战。为了应对这些挑战,政府和决策者开展了智慧城市项目,旨在为居民和游客提供可持续的经济增长和更高的生活质量。信息和通信技术(ICT)是实现城市智能化的关键技术。但是,ICT工件和应用程序会产生大量数据,称为大数据。从大数据中提取见解和隐藏的相关性是信息系统中日益增长的趋势,它可以为公民提供更好的服务并支持决策过程。但是,为了提取有价值的见识以开发城市级智能信息服务,需要集成和分析来自各个城市域的生成数据集。此过程通常称为大数据分析或大数据价值链。对文献的调查表明,人们普遍对利用大数据分析应用程序,尤其是在智能城市领域,越来越感兴趣。但是,仍需要对适合智能城市需求的大数据分析框架的基本特征进行全面讨论。本文介绍了一种称为“智能城市数据分析面板-SCDAP”的新颖的智能城市大数据分析框架。 SCDAP的设计基于以下研究问题:文献中智慧城市中应用的大数据分析框架的特点是什么?应指导大数据分析框架设计服务于智慧城市的基本设计原则是什么?目的?在回答这些问题时,我们采用了有关智慧城市中大数据分析框架的系统文献综述。提议的框架将新功能引入了以数据模型管理和聚合为代表的大数据分析框架。与传统知识发现方法相比,讨论了所提出框架的价值。 (C)2018 Elsevier B.V.保留所有权利。

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