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Titlebook: Laser Scanning Systems in Highway and Safety Assessment; Analysis of Highway Biswajeet Pradhan,Maher Ibrahim Sameen Textbook 2020 Springer

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Predicting Injury Severity of Road Traffic Accidents Using a Hybrid Extreme Gradient Boosting and DeTechnical tools such as predictive analytics and computational models are essential to forecast future scenarios of road safety. Predictive models are classified into two main groups, namely statistical (e.g., logistic regression) and computational intelligence (e.g., neural network or NN).
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Effect of Roadside Features on Injury Severity of Traffic Accidentss will greatly affect the stability and development of modern cities because transportation systems are the heart of the cities. Thus, providing solutions for such problems is among the previous research topics in the fields of transportation and geomatics.
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Modeling Traffic Accident Severity Using Neural Networks and Support Vector Machines(LR) (Al-Ghamdi .), artificial neural networks (ANNs) (Delen et al. .; Moghaddam et al. .), support vector machines (SVMs) (Li et al. ., .), and Bayesian methods (Xie et al. .; de Oña et al. .), were explored to model traffic accident data.
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Textbook 2020nd road geometry delineated from laser scanning data. The first two chapters of the book introduce the reader to laser scanning technology with creative explanation and graphical illustrations, review and recent methods of extracting geometric road parameters. The next three chapters present differe
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Laser Scanning Technologies in Road Geometry ModelingSeveral methods have been proposed for the delineation of geometric road information from laser scanning data. Road geometric information includes road width, cross section, and superelevation and involves the number of road lanes and vertical and horizontal curves.
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An Integrated Machine Learning Approach for Automatic Highway Extraction from Airborne LiDAR Data anPradhan ., .). Accurate and computationally useful extraction of highway information from remote sensing data is significant for various applications such as traffic accident modeling (Bentaleb et al. .), navigation (Kim et al. .), intelligent transportation systems (Vaa et al. .), and natural hazard assessments (Jebur et al. .).
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2522-8714 modelling and traffic accident prediction with neural netwo.This book aims to promote the core understanding of a proper modelling of road traffic accidents by deep learning methods using traffic information and road geometry delineated from laser scanning data. The first two chapters of the book i
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