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Efficient Backprojection-based Synthetic Aperture Radar Computation with Many-core Processors

机译:基于高效的基于反射的合成孔径雷达计算,具有许多核心处理器

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Tackling computationally challenging problems with high efficiency often requires the combination of algorithmic innovation, advanced architecture, and thorough exploitation of parallelism. We demonstrate this synergy through synthetic aperture radar (SAR) via backprojection, an image reconstruction method that can require hundreds of TFLOPS. Computation cost is significantly reduced by our new algorithm of approximate strength reduction; data movement cost is economized by software locality optimizations facilitated by advanced architecture support; parallelism is fully harnessed in various patterns and granularities. We deliver over 35 billion backprojections per second throughput per compute node on an Intel Xeon processor E5-2670-based cluster, equipped with Intel Xeon Phi coprocessors. This corresponds to processing a 3K×3K image within a second using a single node. Our study can be extended to other settings: backprojection is applicable elsewhere including medical imaging, approximate strength reduction is a general code transformation technique, and many-core processors are emerging as a solution to energy-efficient computing.
机译:以高效率处理计算上的挑战性问题通常需要算法创新,先进架构和彻底开发的结合。我们通过反射通过合成孔径雷达(SAR)来证明这一协同作用,可以要求数百个TFLOPS的图像重建方法。通过我们的近似强度减小算法显着降低了计算成本;数据移动成本通过先进的架构支持促进的软件位置优化来节约;并行性以各种模式和粒度充分利用。我们在基于英特尔Xeon处理器E5-2670的集群上每次计算节点提供超过350亿吞吐量,配备了英特尔Xeon Phi协处理器。这对应于使用单个节点在秒内处理3K×3K图像。我们的研究可以扩展到其他设置:反冲适用于其他地方,包括医学成像,大致强度减小是一般的代码转换技术,而且许多核心处理器正在作为节能计算的解决方案。

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