Big data analytics and smart cities: applications, challenges, and opportunities

Urban environments continuously generate larger and larger volumes of data, whose analysis can provide descriptive and predictive models as valuable support to inspire and develop data-driven Smart City applications. To this aim, Big data analysis and machine learning algorithms can play a fundament...

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Main Author: Eugenio Cesario
Format: Article
Language:English
Published: Frontiers Media S.A. 2023-05-01
Series:Frontiers in Big Data
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fdata.2023.1149402/full
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author Eugenio Cesario
author_facet Eugenio Cesario
author_sort Eugenio Cesario
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description Urban environments continuously generate larger and larger volumes of data, whose analysis can provide descriptive and predictive models as valuable support to inspire and develop data-driven Smart City applications. To this aim, Big data analysis and machine learning algorithms can play a fundamental role to bring improvements in city policies and urban issues. This paper introduces how Big Data analysis can be exploited to design and develop data-driven smart city services, and provides an overview on the most important Smart City applications, grouped in several categories. Then, it presents three real-case studies showing how data analysis methodologies can provide innovative solutions to deal with smart city issues. The first one is an approach for spatio-temporal crime forecasting (tested on Chicago crime data), the second one is methodology to discover mobility hotsposts and trajectory patterns from GPS data (tested on Beijing taxi traces), the third one is an approach to discover predictive epidemic patterns from mobility and infection data (tested on real COVID-19 data). The presented real-world cases prove that data analytics models can effectively support city managers in tackling smart city challenges and improving urban applications.
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spelling doaj.art-aea668674dd241b299337d0d53b864e32023-05-12T06:06:59ZengFrontiers Media S.A.Frontiers in Big Data2624-909X2023-05-01610.3389/fdata.2023.11494021149402Big data analytics and smart cities: applications, challenges, and opportunitiesEugenio CesarioUrban environments continuously generate larger and larger volumes of data, whose analysis can provide descriptive and predictive models as valuable support to inspire and develop data-driven Smart City applications. To this aim, Big data analysis and machine learning algorithms can play a fundamental role to bring improvements in city policies and urban issues. This paper introduces how Big Data analysis can be exploited to design and develop data-driven smart city services, and provides an overview on the most important Smart City applications, grouped in several categories. Then, it presents three real-case studies showing how data analysis methodologies can provide innovative solutions to deal with smart city issues. The first one is an approach for spatio-temporal crime forecasting (tested on Chicago crime data), the second one is methodology to discover mobility hotsposts and trajectory patterns from GPS data (tested on Beijing taxi traces), the third one is an approach to discover predictive epidemic patterns from mobility and infection data (tested on real COVID-19 data). The presented real-world cases prove that data analytics models can effectively support city managers in tackling smart city challenges and improving urban applications.https://www.frontiersin.org/articles/10.3389/fdata.2023.1149402/fullsmart citiesbig data analysiscrime forecastingmobility patternstrajectory miningCOVID-19
spellingShingle Eugenio Cesario
Big data analytics and smart cities: applications, challenges, and opportunities
Frontiers in Big Data
smart cities
big data analysis
crime forecasting
mobility patterns
trajectory mining
COVID-19
title Big data analytics and smart cities: applications, challenges, and opportunities
title_full Big data analytics and smart cities: applications, challenges, and opportunities
title_fullStr Big data analytics and smart cities: applications, challenges, and opportunities
title_full_unstemmed Big data analytics and smart cities: applications, challenges, and opportunities
title_short Big data analytics and smart cities: applications, challenges, and opportunities
title_sort big data analytics and smart cities applications challenges and opportunities
topic smart cities
big data analysis
crime forecasting
mobility patterns
trajectory mining
COVID-19
url https://www.frontiersin.org/articles/10.3389/fdata.2023.1149402/full
work_keys_str_mv AT eugeniocesario bigdataanalyticsandsmartcitiesapplicationschallengesandopportunities