首页> 外文会议>Proceedings of the 1995 ACM/IEEE supercomputing conference >Efficient Algorithms for Atmospheric Correction of Remotely Sensed Data
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Efficient Algorithms for Atmospheric Correction of Remotely Sensed Data

机译:遥感数据大气校正的高效算法

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Remotely sensed imagery has been used for developing and validating various studies regarding land cover dynamics. However, the large amounts of imagery collected by the satellites are largely contaminated by the effects of atmospheric particles. The objective of atmospheric correction is to retrieve the surface reflectance from remotely sensed imagery by removing the atmospheric effects. We introduce a number of computational techniques that lead to a substantial speedup of an atmospheric correction algorithm based on using look-up tables. Excluding I/O time, the previous known implementation processes one pixel at a time and requires about 2.63 seconds per pixel on a SPARC-10 machine, while our implementation is based on processing the whole image and takes about 4-20 microseconds per pixel on the same machine. We also develop a parallel version of our algorithm that is scalable in terms of both computation and I/O. Experimental results obtained show that a Thematic Mapper (TM) image (36 MB per band, 5 bands need to be corrected) can be handled in less than 4.3 minutes on a 32-node CM-5 machine, including I/O time.
机译:遥感图像已用于开发和验证有关土地覆盖动态的各种研究。但是,卫星收集的大量图像很大程度上被大气颗粒的影响所污染。大气校正的目的是通过消除大气影响从遥感影像中获取表面反射率。我们介绍了许多计算技术,这些技术可以大大提高基于查找表的大气校正算法的速度。不包括I / O时间,以前的已知实现一次处理一个像素,在SPARC-10机器上每个像素大约需要2.63秒,而我们的实现是基于处理整个图像的,在每个像素上大约需要4-20微秒。同一台机器。我们还开发了算法的并行版本,该版本可在计算和I / O方面进行扩展。获得的实验结果表明,在32节点CM-5机器上,包括I / O时间在内,可以在不到4.3分钟的时间内处理Thematic Mapper(TM)图像(每条带36 MB,需要校正5个带)。

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