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首页> 外文期刊>Journal of environment informatics >Using High Resolution Images from UAV and Satellite Remote Sensing for Best Management Practice Analyses
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Using High Resolution Images from UAV and Satellite Remote Sensing for Best Management Practice Analyses

机译:使用来自无人机和卫星遥感的高分辨率图像进行最佳管理实践分析

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Best Management Practices (BMPs) are commonly adopted to ameliorate the quality of runoff and reduce the frequency and intensity of flash floods in urban areas. To date, many of the BMP studies are conducted using coarse resolution data. However, the accuracy of such studies may be compromised due to the shortcomings inherent in the input data; as such, the evaluation of the BMP cost-effectiveness may not be accurate. The objective of this paper is to demonstrate the improvements of higher resolution images over coarse resolution data in BMP analyses. An unmanned aerial vehicle (UAV) was used to collect a more detailed and accurate picture of the digital surface model and digital elevation model. Landsat 8 multi-spectral imagery was classified by object-oriented classification to generate a land use/land cover map. The method used in this study provided more detailed and accurate information of the physical conditions of the study area, an improved subwatershed delineation, a more comprehensive list of the suitable locations for BMPs, and a more reliable estimate of the cost-effectiveness of the BMP ensembles than that generated using coarse resolution data. Using the fine resolution data, this study further determined the utility of the selected BMP ensembles under a changed future climate regime and identified the best BMP and BMP ensemble in reducing urban surface runoff. This method can be especially useful in areas without quality topography and land use data.
机译:在城市地区,人们普遍采用最佳管理措施来改善径流质量,并降低山洪暴发的频率和强度。迄今为止,许多BMP研究都是使用粗分辨率数据进行的。然而,由于输入数据固有的缺点,此类研究的准确性可能会受到影响;因此,对BMP成本效益的评估可能不准确。本文的目的是证明在BMP分析中,高分辨率图像相对于粗分辨率数据的改进。使用无人机(UAV)采集更详细、更准确的数字地表模型和数字高程模型图片。Landsat 8 多光谱影像按面向对象分类进行分类,以生成土地利用/土地覆被地图。本研究采用的方法提供了更详细、更准确的研究区域物理条件信息,改进了分水岭划定,更全面地列出了BMP的合适位置,并且比使用粗分辨率数据生成的方法更可靠地估计了BMP集合的成本效益。利用高分辨率数据,本研究进一步确定了所选BMP集合在未来气候变化下的效用,并确定了BMP和BMP集合在减少城市地表径流方面的最佳效果。这种方法在没有高质量地形和土地利用数据的地区特别有用。

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