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Novel signal processing architectures for knowledge-based STAP algorithms radar SIGPRO

机译:基于知识的STAP算法的新型信号处理架构RADAR SIGPRO

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New algorithms are being developed in the radar community that blend a priori knowledge source processing with traditional digital signal processing concepts. This operational blend necessitates a system-level architecture capable of delivering both high processing throughput and memory bandwidth. This paper derives these system parameters from the knowledge aided pre-whitening algorithm and evaluates the performance of two high performance embedded computing architectures, the Imagine and Raw processors, on these kernels. The implementation results are compared with the measured performance of a conventional system based on the PowerPC with Altivec. The results show these processors exhibit significant improvements over conventional systems and that each architecture has its own strengths and weaknesses.
机译:在雷达社区中正在开发新的算法,其利用传统的数字信号处理概念混合先验知识源处理。该操作混合需要一种能够提供高处理吞吐量和内存带宽的系统级架构。本文从知识辅助美白算法中得出这些系统参数,并评估这些内核上的两个高性能嵌入式计算架构,想象和原始处理器的性能。将实现结果与基于PowerPC的传统系统的测量性能进行了比较。结果表明,这些处理器对传统系统具有显着的改进,并且每个架构都有自己的优势和劣势。

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