首页> 外文会议>Proceedings of the 1995 ACM/IEEE supercomputing conference >Parallel Processing of Spaceborne Imaging Radar Data A Technical Paper Submitted to Supercomputing '95
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Parallel Processing of Spaceborne Imaging Radar Data A Technical Paper Submitted to Supercomputing '95

机译:星载成像雷达数据的并行处理提交给'超级计算'95的技术论文

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We discuss the results of a collaborative project on parallel processing of Synthetic Aperture Radar (SAR) data, carried out between the NASA/Jet Propulsion Laboratory (JPL), the California Institute of Technology (Caltech) and Intel Scalable Systems Division (SSD). Through this collaborative effort, we have successfully parallelized the most compute-intensive SAR correlator phase of the Spaceborne Shuttle Imaging Radar-C/X-Band SAR (SIR-C/X-SAR) code, for the Intel Paragon. We describe the data decomposition, the scalable high-performance I/O model, and the node-level optimizations which enable us to obtain efficient processing throughput. In particular, we point out an interesting double level of parallelization arising in the data decomposition which increases substantially our ability to support "high volume" SAR. Results are presented from this code running in parallel on the Intel Paragon. A representative set of SAR data, of size 800 Megabytes, which was collected by the SIR-C/X-SAR instrument aboard NASA's Space Shuttle in 15 seconds, is processed in 55 seconds on the Concurrent Supercomputing Consortium's Paragon XP/S 35+. This compares well with a time of 12 minutes for the current SIR-C/X-SAR processing system at JPL. For the first time, a commercial system can process SIR-C/X-SAR data at a rate which is approaching the rate at which the SIR-C/X-SAR instrument can collect the data. This work has successfully demonstrated the viability of the Intel Paragon supercomputer for processing "high volume' Synthetic Aperture Radar data in near real-time.
机译:我们讨论了NASA /喷气推进实验室(JPL),加州理工学院(Caltech)和英特尔可扩展系统部门(SSD)之间进行的合成孔径雷达(SAR)数据并行处理合作项目的结果。通过这项合作,我们成功地并行化了Intel Paragon的航天飞机成像雷达C / X波段SAR(SIR-C / X-SAR)代码中计算最密集的SAR相关器阶段。我们描述了数据分解,可扩展的高性能I / O模型以及使我们能够获得有效处理吞吐量的节点级优化。特别是,我们指出了在数据分解中出现的有趣的并行化双水平,这大大提高了我们支持“大容量” SAR的能力。结果是从在Intel Paragon上并行运行的此代码呈现的。在并行超级计算联盟的Paragon XP / S 35+上,在55秒内处理了一组代表性的SAR数据,大小为800兆字节,是由NASA航天飞机上的SIR-C / X-SAR仪器在15秒内收集的。与JPL的当前SIR-C / X-SAR处理系统的12分钟时间相比,这是一个不错的选择。商业系统首次可以以接近SIR-C / X-SAR仪器收集数据的速率的速率处理SIR-C / X-SAR数据。这项工作成功地证明了Intel Paragon超级计算机用于近乎实时处理“大批量”合成孔径雷达数据的可行性。

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