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首页> 外文期刊>Environmental Monitoring and Assessment >Exploitation of optical and SAR amplitude imagery for landslide identification: a case study from Sikkim, Northeast India
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Exploitation of optical and SAR amplitude imagery for landslide identification: a case study from Sikkim, Northeast India

机译:Landslide识别光学和SAR幅度图像的开发 - 以印度东北锡克西姆为例

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摘要

Detection and mapping of landslides is one of the most important techniques used for reducing the impact of natural disasters especially in the Himalaya, owing to its high amount of tectonic deformation, seismicity, and unfavorable climatic conditions. Moreover, the northeastern part of the Himalaya, severely affected by landslides every monsoon, is poorly studied. The information on the inventories is inhomogeneous and lacking. In this context, satellite-based earth observation data, which has significantly advanced in the last decade and often serves as a potential source for data collection, monitoring, and damage assessment for disasters in a short time span, has been implemented. Keeping in mind the above framework, this study aims to exploit the potentials of Sentinel-1 synthetic aperture radar (SAR) and Sentinel-2 optical imagery for identifying new landslides in vegetated and hilly areas of the northeastern part of India. In order to assess the potentials of our data and methodology, a landslide event which occurred on 13 August 2016 13:30 h (IST) in North Sikkim, India, triggered due to rainfall has been explored in detail. The landslide also resulted in the formation of a lake, 2.2 km in length and 290 m in width. Difficulty in procurement of cloud-free datasets immediately after the event led us to the use of Sentinel-1 SAR backscatter data, to assess its potential for this purpose. It is observed that the potential of SAR amplitude imagery is limited to different aspects as per the sensor look direction during the mode of acquisition. Furthermore, the present study also incorporates a change detection algorithm to evaluate the performance of the Sudden Landslide Identification Product (SLIP) model to identify new landslides using Sentinel-2 multispectral imagery. Overall, the results exhibit that integrated usage of both optical and SAR amplitude imagery may provide a plethora of information for identification and mapping of new landslides for damage assessment and early warning. All the above results combined together suggest this method for rapid identification of landslides in the Himalayan terrain with special emphasis on the northeastern part of the Himalaya. The automation of this method for future operational usage is also suggested.
机译:Landslides的检测和测绘是用于降低自然灾害影响的最重要技术之一,特别是在喜马拉雅州,由于其高度的构造变形,地震性和不利的气候条件。此外,喜马拉雅山的东北部门受到山体内山脉的严重影响,却很差。有关库存的信息不均匀且缺乏。在这方面,在过去十年中,基于卫星的地球观测数据,并经常用于在短时间跨度中灾难的数据收集,监测和损害评估的潜在来源。牢记上述框架,本研究旨在利用Sentinel-1合成孔径雷达(SAR)和Sentinel-2光学图像的潜力,用于识别印度东北部的植被和丘陵地区的新滑坡。为了评估我们的数据和方法的潜力,2016年8月13日在印度北部锡金13:30H(IST)发生的滑坡事件由于降雨而触发。山体滑坡也导致湖泊,长度为2.2千米,宽度为290米。在事件导致我们使用Sentinel-1 SAR反向散射数据后,难以采购无云数据集,以评估其此目的的潜力。观察到,根据在获取模式期间,SAR幅度图像的电位限于传感器外观的不同方面。此外,本研究还包括改变检测算法,以评估突然滑坡识别产品(SLIP)模型的性能,以识别使用Sentinel-2多光谱图像识别新的滑坡。总的来说,结果表明,光学和SAR幅度图像的综合使用可以提供识别和绘制新滑坡用于损伤评估和预警的信息。以上所有结果相结合在一起建议这种方法,以便在喜马拉雅地区的快速识别山体滑坡,特别强调喜马拉雅山的东北部。还提出了这种未来操作使用方法的自动化。

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