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Concrete & Pavement Crack Dataset

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https://data.mendeley.com/datasets/429vzbgmbx
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Title: Crack Detection in Concrete and Pavement using Convolutional Neural Networks Summary: This dataset contains 30,000 images of concrete and pavement surfaces, classified into two categories: crack and non-crack. The images were obtained from the Nigerian Army University Biu in Borno state, Nigeria, and collected by Omoebamije Oluwaseun, a civil engineering student, for his final year project. The images were collected using a DJI Mavic 2 Enterprise drone (for the high-ups) and a smartphone (for the ones beneath the average window height). The dataset was saved in RGB, JPEG format and downsized to 227 x 227 pixels. Content: The dataset consists of two folders: "positive" and "negative", containing images of cracked and non-cracked concrete surfaces, respectively. Each image in the dataset is in JPEG format, with a resolution of 227 x 227 pixels in RGB format. Usefulness: This dataset can be used for training and testing convolutional neural networks (CNNs) for crack detection in concrete. The dataset has been used by the author to achieve over 98% accuracy on his model, and it can be used for research purposes only. The author must be properly referenced if the dataset is used for any purpose. Details: Source: Nigerian Army University Biu, Borno state, Nigeria Collector: Omoebamije Oluwaseun Format: RGB, JPEG Resolution: 227 x 227 pixels Classes: crack, non-crack Total images: 30,000
创建时间:
2023-03-10
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