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      Design of a new low-cost unmanned aerial vehicle and vision-based concrete crack inspection method

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          Abstract

          With the explosive development of the computer vision technology, more and more vision-based inspection methods enabled by unmanned aerial vehicle technologies have been researched on the crack inspection of the sundry concrete structures. However, because of the limitation of the low-cost unmanned aerial vehicle hardware, whose cost is around US$500, most of the vision-based methods are difficult to be implemented on the low-cost unmanned aerial vehicle for real-time crack inspection. To address this challenge, in this article, a new computationally efficient vision-based crack inspection method is designed and successfully implemented on a low-cost unmanned aerial vehicle. Furthermore, to reduce the acquired data samples, a new algorithm entitled crack central point method is designed to extract the effective information from the pre-processed images. The proposed vision-based crack detection method includes the following three major components: (1) the image pre-processing algorithm, (2) crack central point method, and (3) the support vector machine model–based classifier. To demonstrate the effectiveness of the new inspection method, a concrete structure inspection experiment is implemented. The experimental results indicate that this new method is able to accurately and rapidly inspect the cracks of concrete structure in real time. This new vision-based crack inspection method shows great promise for the practical application.

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          Most cited references8

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          Computer Vision: A Modern Approach.

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            Evaluating the use of unmanned aerial vehicles for transportation purposes

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              Unmanned aerial vehicle measurement using three dimensional digital image correlation to perform bridge structural health monitoring

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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                Structural Health Monitoring
                Structural Health Monitoring
                SAGE Publications
                1475-9217
                1741-3168
                November 2020
                February 03 2020
                November 2020
                : 19
                : 6
                : 1871-1883
                Affiliations
                [1 ]School of Mechanical Engineering and Automation, Wuhan University of Science and Technology, Wuhan, China
                [2 ]School of Computer Science, College of Computing, Georgia Institute of Technology, Atlanta, GA, USA
                [3 ]Department of Electrical and Computer Engineering, University of Houston, Houston, TX, USA
                [4 ]School of Civil and Hydraulic Engineering, Dalian University of Technology, Dalian, China
                Article
                10.1177/1475921719898862
                50c87aa2-ffee-48a9-a543-f0868e33f096
                © 2020

                http://journals.sagepub.com/page/policies/text-and-data-mining-license

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