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Semi-Automatic Detection of Swimming Pools from Aerial High-Resolution Images and LIDAR Data

机译:从空中高分辨率图像和LIDAR数据半自动检测游泳池

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Bodies of water, particularly swimming pools, are land covers of high interest. Their maintenance involves energy costs that authorities must take into consideration. In addition, swimming pools are important water sources for firefighting. However, they also provide a habitat for mosquitoes to breed, potentially posing a serious health threat of mosquito-borne disease. This paper presents a novel semi-automatic method of detecting swimming pools in urban environments from aerial images and LIDAR data. A new index for detecting swimming pools is presented (Normalized Difference Swimming Pools Index) that is combined with three other decision indices using the Dempster–Shafer theory to determine the locations of swimming pools. The proposed method was tested in an urban area of the city of Alcalá de Henares in Madrid, Spain. The method detected all existing swimming pools in the studied area with an overall accuracy of 99.86%, similar to the results obtained by support vector machines (SVM) supervised classification.
机译:水体,特别是游泳池,是人们高度关注的土地覆盖。他们的维护涉及能源成本,当局必须考虑这些成本。此外,游泳池是消防的重要水源。但是,它们也为蚊子繁殖提供了栖息地,可能对蚊媒疾病构成严重的健康威胁。本文提出了一种新的半自动方法,可通过航空图像和LIDAR数据检测城市环境中的游泳池。提出了一种用于检测游泳池的新指标(归一化差异游泳池指标),该指标与其他三个使用Dempster-Shafer理论确定的决策指标相结合来确定游泳池的位置。该方法在西班牙马德里的Alcaláde Henares市的市区进行了测试。该方法检测到研究区域内所有现有游泳池的总精度为99.86%,与通过支持向量机(SVM)监督分类获得的结果相似。

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