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首页> 外文期刊>Geoscience and Remote Sensing, IEEE Transactions on >A Multi-Sensor Exportable Approach for Automatic Flooded Areas Detection and Monitoring by a Composite Satellite Constellation
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A Multi-Sensor Exportable Approach for Automatic Flooded Areas Detection and Monitoring by a Composite Satellite Constellation

机译:利用复合卫星星座自动检测和监测水灾地区的多传感器可导出方法

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摘要

Timely and frequently updated information about flood-affected areas and their space-time evolution are often crucial in order to correctly manage the emergency phases. In such a context, optical data provided by meteorological satellites, offering the highest available temporal resolution (from hours to minutes), could have a great potential. As cloud cover often occurs reducing the number of usable optical satellite images, an appropriate integration of observations coming from different satellite systems will surely improve the probability to find cloud-free images over the investigated region. To make this integration effective, appropriate satellite data analysis methodologies, suitable for providing congruent results, regardless of the used sensor, are envisaged. In this paper, a sensor-independent approach (RST, Robust Satellites Techniques-FLOOD) is presented and applied to data acquired by two different satellite systems (Advanced Very High Resolution Radiometer (AVHRR) onboard National Oceanic and Atmospheric Administration platforms and Moderate Resolution Imaging Spectroradiometer (MODIS) onboard Earth Observing System satellites) at different spatial resolutions (from 1 km to 250 m) in the case of Elbe flood event occurred in Germany on August 2002. Results achieved demonstrated as the full integration of AVHRR and MODIS RST-FLOOD products allowed us to double the number of satellite passes daily available, improving continuity of monitoring over flood-affected regions. In addition, the application of RST-FLOOD to higher spatial resolution MODIS (250 m) data revealed to be crucial not only for mapping purposes but also for improving RST-FLOOD capability in identifying flooded areas not previously detected at lower spatial resolution.
机译:为了正确管理紧急状态,及时而频繁地更新有关受洪灾地区及其时空演变的信息至关重要。在这种情况下,由气象卫星提供的光学数据可以提供最高的时间分辨率(从数小时到数分钟),具有巨大的潜力。由于经常出现云层覆盖,从而减少了可用的光学卫星图像的数量,来自不同卫星系统的观测值的适当整合必将提高在被调查区域内找到无云图像的可能性。为了使这种集成有效,设想了适合的卫星数据分析方法,无论使用何种传感器,都适合提供一致的结果。在本文中,提出了一种与传感器无关的方法(RST,鲁棒卫星技术-FLOOD)并将其应用于由两个不同的卫星系统(美国国家海洋和大气管理局平台上的高级超高分辨率辐射计(AVHRR)和中等分辨率成像)获取的数据在2002年8月德国发生易北河洪水事件时,以不同的空间分辨率(从1 km到250 m)在地球观测系统卫星上安装了分光辐射计(MODIS)。所取得的成果证明了AVHRR和MODIS RST-FLOOD的完全整合我们的产品使我们每天可获得的卫星通行证数量增加了一倍,从而提高了对受洪灾地区的监视的连续性。此外,将RST-FLOOD应用于更高空间分辨率的MODIS(250 m)数据显示,这不仅对于制图目的至关重要,而且对于提高RST-FLOOD在识别以前以较低空间分辨率未检测到的洪泛区方面的能力至关重要。

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