论文标题

使用街道级监视视频的半监督识别和地表水位映射

Semi-supervised Identification and Mapping of Surface Water Extent using Street-level Monitoring Videos

论文作者

Wang, Ruo-Qian, Ding, Yangmin

论文摘要

城市洪水正在成为一种常见且毁灭性的危害,以造成生命损失和经济损失。由于城市景观,复杂的液压过程以及缺乏高质量和分辨率数据,监测和理解当地规模的城市洪水是一项具有挑战性的任务。监视摄像机等新兴智能城市技术为解决数据问题提供了前所未有的机会。但是,使用传统的分割技术估算基于监测素材上的水在陆地表面上的积聚是不可靠的,因为在变化的天气,背景和照明的影响下,水积累的边界通常太模糊了,无法识别,并且视频监测数据中的斜角和图像畸变阻止了地理标准和基于对象的测量值。本文介绍了一种新型的半监督分割方案,用于从斜监测摄像机的录像中识别地表水范围。发现半监督的分割算法适合确定水边界,并成功地应用了单斜率的方法,以进行监测视频的像素,以虚拟量化局部排水过程。基于相关性和机制的分析证明了所提出的方法在促进对局部排水液压的理解方面的价值。这项研究中的工作流和创建的方法具有研究其他街道和地球表面过程的巨大潜力。

Urban flooding is becoming a common and devastating hazard to cause life loss and economic damage. Monitoring and understanding urban flooding in the local scale is a challenging task due to the complicated urban landscape, intricate hydraulic process, and the lack of high-quality and resolution data. The emerging smart city technology such as monitoring cameras provides an unprecedented opportunity to address the data issue. However, estimating the water accumulation on the land surface based on the monitoring footage is unreliable using the traditional segmentation technique because the boundary of the water accumulation, under the influence of varying weather, background, and illumination, is usually too fuzzy to identify, and the oblique angle and image distortion in the video monitoring data prevents georeferencing and object-based measurements. This paper presents a novel semi-supervised segmentation scheme for surface water extent recognition from the footage of an oblique monitoring camera. The semi-supervised segmentation algorithm was found suitable to determine the water boundary and the monoplotting method was successfully applied to georeference the pixels of the monitoring video for the virtual quantification of the local drainage process. The correlation and mechanism-based analysis demonstrates the value of the proposed method in advancing the understanding of local drainage hydraulics. The workflow and created methods in this study has a great potential to study other street-level and earth surface processes.

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