2021
DOI: 10.32604/cmc.2021.016736
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Performance Comparison of Deep CNN Models for Detecting Driver’s Distraction

Abstract: According to various worldwide statistics, most car accidents occur solely due to human error. The person driving a car needs to be alert, especially when travelling through high traffic volumes that permit high-speed transit since a slight distraction can cause a fatal accident. Even though semiautomated checks, such as speed detecting cameras and speed barriers, are deployed, controlling human errors is an arduous task. The key causes of driver's distraction include drunken driving, conversing with co-passen… Show more

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Cited by 77 publications
(20 citation statements)
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“…Artificial intelligence (AI) has been successful in many fields and facilitates our daily life in various ways (10)(11)(12)(13)(14)(15)(16)(17). The reproduction rate prediction is crucial in successfully establishing public healthcare in the battle against COVID-19.…”
Section: Motivationmentioning
confidence: 99%
“…Artificial intelligence (AI) has been successful in many fields and facilitates our daily life in various ways (10)(11)(12)(13)(14)(15)(16)(17). The reproduction rate prediction is crucial in successfully establishing public healthcare in the battle against COVID-19.…”
Section: Motivationmentioning
confidence: 99%
“…Attique Khan et al, 2021d;Mamdiwar et al, 2021;Srinivasan et al, 2021). AD is a neurological disorder identified through brain imaging, and there are many works focused on classifying AD through brain images with the help of machine learning or deep learning techniques.…”
Section: Alzheimer's Disease and Machine Learning Algorithmsmentioning
confidence: 99%
“…Artificial Intelligent models have been widely deployed in genetics research ( Mahendran et al, 2020 ). Deep learning approaches remove certain data pre-processing, which is usually deployed in machine learning ( Srinivasan et al, 2017 ; Agarwal et al, 2018 ; Chakriswaran et al, 2019 ; Khan et al, 2021a ; Khan et al, 2021b ; Khan et al, 2021c ) ( Sanchez-Riera et al, 2018 ; Srinivasan et al, 2020 ; Afza et al, 2021 ; Ashwini et al, 2021 ; Attique Khan et al, 2021 ; Khan et al, 2021d ; Mamdiwar et al, 2021 ; Srinivasan et al, 2021 ). AD is a neurological disorder identified through brain imaging, and there are many works focused on classifying AD through brain images with the help of machine learning or deep learning techniques.…”
Section: Background and Motivationmentioning
confidence: 99%
“…In recent times, machine learning techniques have been used to automatically annotate the text documents and to train the classifiers according to the needs of the ontological requirements and domain hierarchy ( 2 , 4 , 29 ). But the machine learning techniques are not suitable for unstructured documents and they further lead to many serious implications, such as morphological change, lexical error, sense overlap, and ambiguous annotation for entities.…”
Section: Utilization Of Emotion Ontologymentioning
confidence: 99%
“…As human beings always use natural language to represent the domain of the specific text document, the ontologies have been using formal language representations to describe the domains of the input document. The use of ontologies has been widely applied in many research areas, such as artificial intelligence, entity extraction, Semantic Web, collaborative software development, and many more ( 4 , 5 ). Ontologies provide huge benefits, such as conceptualization, reusability, sharing of the resources, and coreferencing the terms.…”
Section: Introductionmentioning
confidence: 99%