2024
DOI: 10.30574/wjarr.2024.21.2.0704
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Advanced analytics for predicting traffic collision severity assessment

Mohammad Fokhrul Islam Buian,
Ramisha Anan Arde,
Md Masum Billah
et al.

Abstract: Accurate prediction of accident risks plays a crucial role in proactively implementing safety measures and allocating resources effectively. This paper introduces an innovative approach aimed at improving accident risk prediction by harnessing unique data sources and extracting insights from diverse yet sparse datasets. Traditional models often face limitations due to a lack of diversity and scope in the available data, which hinders their predictive capabilities. In response to this challenge, our study integ… Show more

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Cited by 2 publications
(1 citation statement)
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“…This involves the adept utilization of predictive simulation modeling software, showcasing its multifaceted capabilities. It is noteworthy that this software, designed with an emphasis on robustness, ensures not only highly secure encryption for real-time speech signals but also plays a pivotal role in enhancing safety protocols during the intricate operations of nuclear power reactors [28][29][30][31][32][33][34][35]. Researchers have extensively explored the application of advanced deep learning and machine learning algorithms for precise and effective mechanical characterization of materials, encompassing polymers, metals, and composites [4][5][6][7][8][9].…”
Section: Scanning Electron Microscopy (Sem)mentioning
confidence: 99%
“…This involves the adept utilization of predictive simulation modeling software, showcasing its multifaceted capabilities. It is noteworthy that this software, designed with an emphasis on robustness, ensures not only highly secure encryption for real-time speech signals but also plays a pivotal role in enhancing safety protocols during the intricate operations of nuclear power reactors [28][29][30][31][32][33][34][35]. Researchers have extensively explored the application of advanced deep learning and machine learning algorithms for precise and effective mechanical characterization of materials, encompassing polymers, metals, and composites [4][5][6][7][8][9].…”
Section: Scanning Electron Microscopy (Sem)mentioning
confidence: 99%