寻找最小内存和延迟的时空流排列

Thaddeus Koehn, P. Athanas
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引用次数: 1

摘要

处理并行数据流需要对许多算法的排列单元,其中流不是独立的。这些算法包括变换、多速率信号处理和维特比解码。排列中数据元素的绝对顺序并不重要,重要的是为下一个处理步骤正确定位数据元素。本文描述了一种寻找需要最小内存和延迟的排列的方法。所需的排列是基于计算集的数据依赖关系生成的。附加的约束使得并行流架构在没有流控制的情况下处理数据。结果与蛮力方法一致,这种方法在计算上对于大排列集是不可行的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Finding Space-Time Stream Permutations for Minimum Memory and Latency
Processing of parallel data streams requires permutation units for many algorithms where the streams are not independent. Such algorithms include transforms, multi-rate signal processing, and Viterbi decoding. The absolute order of data elements from the permutation is not important, only that data elements are located correctly for the next processing step. This paper describes a method to find permutations that require a minimum amount of memory and latency. The required permutations are generated based on the data dependencies of a computation set. Additional constraints are imposed so that the parallel streaming architecture processes the data without flow control. Results show agreement with brute force methods, which become computationally infeasible for large permutation sets.
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