首页> 外文期刊>International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences >ON THE DEVELOPMENT OF A NOVEL APPROACH FOR IDENTIFYING PERENNIAL DRAINAGE IN SOUTHERN BRAZIL: A STUDY CASE INTEGRATING SENTINEL-2 AND HIGH-RESOLUTION DIGITAL ELEVATION MODELS WITH MACHINE LEARNING TECHNIQUES
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ON THE DEVELOPMENT OF A NOVEL APPROACH FOR IDENTIFYING PERENNIAL DRAINAGE IN SOUTHERN BRAZIL: A STUDY CASE INTEGRATING SENTINEL-2 AND HIGH-RESOLUTION DIGITAL ELEVATION MODELS WITH MACHINE LEARNING TECHNIQUES

机译:关于南北南部常年排水的新方法的发展:一种与机器学习技术集成的研究壳体与高分辨率数字高度型号集成

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Riparian vegetation plays a key role in maintaining water quality and preserving the ecosystems along riverine systems, as they prevent soil erosion, retain water by increased infiltration, and act as a buffer zone between rivers and their surroundings. Within urban spaces, these areas have also an important role in preventing illegal occupation in areas of hydrologic risk, such as in floodplains. The goal of this research is to propose a framework for identifying areas of permanent protection associated with perennial drainage, utilizing satellite imagery and digital elevation models (DEM) in association with machine learning techniques. The specific objectives include the development of a decision tree to retrieve perennial drainage over high resolution, 1-meter DEM’s, and the development of digital image processing workflow to retrieve surface water bodies from Sentinel-2 imagery. In-situ information on perennial and ephemeral conditions of streams and rivers were obtained to validate our results, that happened in the first trimester of 2020. We propose a minimum of 7 days without precipitation prior to in-situ validation, for more accurate assessment of streamflow conditions, in order to minimize impacts of surface water runoff in flow regime. The proposed method will benefit decision makers by providing them with reliable information on drainage network and their buffer zones, as well as yield detailed mapping of the areas of permanent protection that are key to urban planning and management.
机译:河岸植被在维持水质并沿着河流系统保持生态系统的关键作用,因为它们防止土壤侵蚀,通过增加渗透来保留水,并作为河流与周围环境之间的缓冲区。在城市空间内,这些领域也在防止在水文风险等非法占领方面的重要作用,例如洪泛平坦。本研究的目标是提出一个框架,用于识别与多年生排水相关的永久保护区域,利用与机器学习技术相关联的卫星图像和数字高度模型(DEM)。具体目标包括开发决策树,以在高分辨率,1米DEM和数字图像处理工作流程的开发中检索多年生排水,以从Sentinel-2图像检索地表水体。有关跨越溪流和河流季节和河流季节性条件的原位信息,以验证我们的结果,发生在2020年的前三个月。我们在原位验证之前至少提取了7天,以便更准确地评估流出条件,以最小化地表水径流在流动状态下的影响。该方法将通过提供有关排水网络及其缓冲区的可靠信息来使其受益决策者,以及生产城市规划和管理关键的永久保护区域的详细绘图。

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