Developing a new deep learning CNN model to detect and classify highway cracks

نویسندگان

چکیده

Purpose This paper aims to Test the capabilities/accuracies of four deep learning pre trained convolutional neural network (CNN) models detect and classify types highway cracks, as well developing a new CNN model maximize accuracy at different rates. Design/methodology/approach A sample 4,663 images cracks were collected classified into three categories namely, “vertical cracks,” “horizontal vertical cracks” “diagonal subsequently, using “Matlab” training (70%) testing (30%) apply compute their accuracies. After that, detecting classifying optimization algorithms Findings The accuracies result pre-trained are above averages between top-1 top-5 samples exceeded for AlexNet around 3% by 0.2% GoogleNet model. accurate here is 89.08% it higher than 1.26%. While computed created all achieving 97.62% rate 0.001 Adam’s algorithm. Practical implications will enable users (e.g. agencies) scan long accurately in very short time compared traditional approaches. Originality/value CNN-based detection was developed based on analyze capabilities each proposed CNN.

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ژورنال

عنوان ژورنال: Journal of Engineering, Design and Technology

سال: 2021

ISSN: ['1726-0531', '1758-8901']

DOI: https://doi.org/10.1108/jedt-04-2021-0192