Automatic Crack Detection for Concrete Infrastructures Using Image Processing and Deep Learning

Author:

Kim Cuong Nguyen,Kawamura Kei,Nakamura Hideaki,Tarighat Amir

Abstract

Abstract Automatic crack detection is a main task in a crack map generation of the existing concrete infrastructure inspection. This paper presents an automatic crack detection and classification method based on genetic algorithm (GA) to optimize the parameters of image processing techniques (IPTs). The crack detection results of concrete infrastructure surface images under various complex photometric conditions still remain noise pixels. Next, a deep convolution neural network (CNN) method is applied to classify crack candidates and non-crack candidates automatically. Moreover, the proposed method is compared with the state-of-the-art methods for crack detection. The experimental results validate the reasonable accuracy in practical application.

Publisher

IOP Publishing

Subject

General Medicine

Reference7 articles.

1. Deep Learning-Based Crack Damage Detection Using Convolutional Neural Networks;Cha;Computer-aided Civil andInsfrastrure Engineering,2017

2. A Valid Parameter Range Identification Method of a Digital Image Processing Algorithm for Concrete Surface Cracks Detection Using Genetic Algorithm and Decision Tree;Kawamura;Proc. Japan Soc. Civ. Eng.,2013

3. Proposal of a crack pattern extraction method from digital images using an interactive genetic algorithm;Kawamura;Proc. Japan Soc. Civ. Eng.,2003

4. A study on semi-automatic concrete cracks detection using interactive genetic algorithm;Nguyen;JCI,2016

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