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Geospatial Analytics in the Large for Monitoring Depth of Cover for Buried Pipeline Infrastructure

机译:大型地理空间分析,可监控地下管道基础设施的覆盖深度

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Operators of pipeline infrastructure buried underground are in many countries required to ensure that depth of cover-a measure of the quantity of soil covering a pipeline-lie within prescribed bounds. Traditionally, monitoring depth of cover at scale has been carried out qualitatively by means of visual inspection. We proceed instead to rely on airborne remote sensing techniques to obtain densely sampled ground surface point measurements from the pipeline's right of way, from which we determine depth of cover using automated algorithms. Proceeding in our manner presents a reproducible, quantitative approach to monitoring depth of cover, yet the demands thus made by the scale of real-world pipeline monitoring scenarios on compute and storage resources can be substantial. We show that the scalability afforded by the cloud can be leveraged to address such scenarios, distributing the algorithms we employ to take advantage of multiple compute nodes and exploiting elastic storage. While the use case underlying this paper is monitoring depth of cover, our proposed architecture can be applied more broadly to a wide variety of geospatial analytics tasks carried out 'in the large', including change detection, semantic classification or segmentation, or computation of vegetation indices.
机译:在许多国家,要求地下埋藏的管道基础设施的运营商确保覆盖深度(衡量覆盖管道的土壤数量)在规定的范围内。传统上,通过目视检查定性地对覆盖层的深度进行定性监控。我们取而代之的是依靠机载遥感技术从管道的通行权中获得密集采样的地面点测量值,然后使用自动算法从中确定覆盖深度。以我们的方式进行操作提供了一种可重复的,定量的方法来监视覆盖深度,但是实际管道监视方案的规模对计算和存储资源的需求因此可能是巨大的。我们证明了云所提供的可扩展性可以用来解决这种情况,分布我们用来利用多个计算节点的算法并利用弹性存储。尽管本文的用例是监视覆盖深度,但我们提出的体系结构可以更广泛地应用于“大规模”执行的各种地理空间分析任务,包括变更检测,语义分类或分割或植被计算索引。

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