快速源级数据分配到双内存库

A. Murray, Björn Franke
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引用次数: 11

摘要

由于其流特性,内存带宽对大多数数字信号处理应用至关重要。为了适应这些带宽要求,数字信号处理器通常配备双存储器,如果数据被适当分区,则可以同时访问两个操作数。然而,完全自动化和编译器集成的数据分区和内存库分配方法很少被DSP软件开发人员所接受。这部分是由于它们缺乏灵活性和无法处理某些手动数据预分配,例如由于I/O限制。在本文中,我们提出了一种不同的更灵活的方法,即源代码级双内存分配,其中代码生成目标是DSP-C,这是一种标准化的C语言扩展,广泛支持工业C编译器用于dsp。此外,我们提出了一种新的基于软着色的分区算法,该算法比目前已知的最佳整数线性规划算法更有效和可扩展,同时实现了具有竞争力的代码质量。我们已经在Analog Devices的TigerSHARC DSP上评估了我们的方案,并在13个UTDSP基准上实现了高达1.57的加速。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fast source-level data assignment to dual memory banks
Due to their streaming nature memory bandwidth is critical for most digital signal processing applications. To accommodate for these bandwidth requirements digital signal processors are typically equipped with dual memory banks that enable simultaneous access to two operands if the data is partitioned appropriately. Fully automated and compiler integrated approaches to data partitioning and memory bank assignment, however, have found little acceptance by DSP software developers. This is partly due to their inflexibility and inability to cope with certain manual data pre-assignments, e.g. due to I/O constraints. In this paper we present a different and more flexible approach, namely source-level dual memory assignment where code generation targets DSP-C, a standardised C language extension widely supported by industrial C compilers for DSPs. Additionally, we present a novel partitioning algorithm based on soft colouring that is more efficient and scalable than the currently known best integer linear programming algorithm, whilst achieving competitive code quality. We have evaluated our scheme on an Analog Devices TigerSHARC DSP and achieved speedups of up to 1.57 on 13 UTDSP benchmarks.
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