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Data Fusion, De-noising, and Filtering to Produce Cloud-Free High Quality Temporal Composites Employing Parallel Temporal Map Algebra

机译:数据融合,取消通知和过滤生产无云的高质量颞复合材料,采用并行颞映射代数

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Remotely sensed images from satellite sensors such as MODIS Aqua and Terra provide high temporal resolution and wide area coverage. Unfortunately, these images frequently include undesired cloud and water cover. Areas of cloud or water cover preclude analysis and interpretation of terrestrial land cover, vegetation vigor, and/or analysis of change. Cross platform multi-temporal image compositing techniques may be employed to create daily synthetic cloud free images using fused images from Aqua and Terra MODIS satellite images, and then creating a composite that includes representative values derived from a set of possibly cloudy satellite images collected during a given longer time period of interest. Spatio-temporal analytical processing methods that utilize moderate spatial resolution satellite imagery with high temporal resolution to create multi-temporal composites are data intensive and computationally intensive. Therefore, a study of the strategies using high performance parallel solutions is required. This research focuses on analyzing the fusion, de-noising, filtering, and compositing strategies for vegetation indices using parallel temporal map algebra. The report provides objective findings on methods and the relative benefits observed from various analysis methods and parallelization strategies.
机译:卫星传感器的远程感测图像,如Modis Aqua和Terra提供高的时间分辨率和广域覆盖范围。不幸的是,这些图像经常包括不希望的云和水覆盖。云或水域地区覆盖陆地覆盖,植被活力和/或改变分析的分析和解释。可以采用跨平台多时间图像合成技术来使用来自Aqua和Terra Modis卫星图像的融合图像来创建日常合成云图像,然后创建一个包括从在A期间收集的一组可能的多云卫星图像导出的代表值的复合材料鉴于较长的兴趣期。时空分析处理方法利用具有高时间分辨率的适度空间分辨率卫星图像以创建多时间复合材料是数据密集型和计算密集的。因此,需要使用高性能并行解决方案的策略研究。本研究侧重于分析使用并行临时地图代数的融合,取消通知,过滤和合成植被指数的策略。该报告提供了各种分析方法和并行化策略所观察到的方法和相对益处的客观调查结果。

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