2019 International Conference on Computational Science and Computational Intelligence (CSCI) 2019
DOI: 10.1109/csci49370.2019.00240
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Demystifying Transportation Using Big Data Analytics

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Cited by 3 publications
(1 citation statement)
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“…A critical look at the transportation ecosystem shows that these technologies are enhancing safety and efficiency, streamlining operations, and enabling data-driven decision-making. Several systematic literature review research works have been carried out on the general influence and impact of the 4IR technologies on the transportation sector ( ), while others discussed the different contributive areas of specific technologies, such as Internet of Things(IoT)/Sensors ( [33][34][35][36][37][38][39][40]) to achieve the interconnection of vehicles, infrastructure and users through a network of sensors and smart devices; Autonomous Systems ( [41,42]) which ensures safety, efficiency and accessibility; Big data ( [36,[43][44][45][46][47][48][49][50][51][52][53][54][55][56]) to ease the burden of large data analytics; Artificial Intelligence ( ) which enhances analytical capabilities and achieving streamlined transportation operations; Machine Learning/Deep Learning ( [39,) which are deployed to achieve predictive data analysis, optimization and decision support; Computing Paradigms ( [35,40,[106][107][108][109][110][111][112]) for storage and processing of vast amount of generated and real-time data; GIS ( [46,[113][114]…”
Section: Introductionmentioning
confidence: 99%
“…A critical look at the transportation ecosystem shows that these technologies are enhancing safety and efficiency, streamlining operations, and enabling data-driven decision-making. Several systematic literature review research works have been carried out on the general influence and impact of the 4IR technologies on the transportation sector ( ), while others discussed the different contributive areas of specific technologies, such as Internet of Things(IoT)/Sensors ( [33][34][35][36][37][38][39][40]) to achieve the interconnection of vehicles, infrastructure and users through a network of sensors and smart devices; Autonomous Systems ( [41,42]) which ensures safety, efficiency and accessibility; Big data ( [36,[43][44][45][46][47][48][49][50][51][52][53][54][55][56]) to ease the burden of large data analytics; Artificial Intelligence ( ) which enhances analytical capabilities and achieving streamlined transportation operations; Machine Learning/Deep Learning ( [39,) which are deployed to achieve predictive data analysis, optimization and decision support; Computing Paradigms ( [35,40,[106][107][108][109][110][111][112]) for storage and processing of vast amount of generated and real-time data; GIS ( [46,[113][114]…”
Section: Introductionmentioning
confidence: 99%