A neural network based technique for automatic classification of road cracks
Contribuinte(s) |
L. Wang |
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Data(s) |
01/01/2006
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Resumo |
This paper presents a neural network based technique for the classification of segments of road images into cracks and normal images. The density and histogram features are extracted. The features are passed to a neural network for the classification of images into images with and without cracks. Once images are classified into cracks and non-cracks, they are passed to another neural network for the classification of a crack type after segmentation. Some experiments were conducted and promising results were obtained. The selected results and a comparative analysis are included in this paper. |
Identificador | |
Idioma(s) |
eng |
Publicador |
IEEE - Institute of Electrical Electronics Engineers Inc. |
Palavras-Chave | #Neural network #Road images #Image classification #Image segmentation #E1 #280212 Neural Networks, Genetic Alogrithms and Fuzzy Logic #700103 Information processing services |
Tipo |
Conference Paper |