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Allocation of optimal reconfigurable array using graph merging technique

机译:使用图合并技术分配最佳可重构数组

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Inherent parallelism in the nested loop algorithms can be exploited by proposing an array architecture called systolic array and mapping the computational tasks of the algorithm using a suitable mapping methodology on to the array architecture. The computational subspace mapping methodology that identifies a lower dimension subspace of a higher dimensional problem is implemented using the technique of allocation. i.e., the lower dimensional sub-space is chosen to lie along the computational equation. The best computational direction for higher dimensional problem in terms of data reuse, number of ports, number of PEs, memory read is selected by multi-objective functions. A reconfigurable array for n-D nested loop problems is designed by graph merging approach which reduces the area and power compared with reconfigurable array using multiplexers. The algorithms under consideration here are the 3-D matrix-matrix multiplication, 2-D spatial filtering algorithm which is a 4-D nested loop algorithm and 6-D full search block motion estimation. Allocation and scheduling of reconfigurable array is implemented in Verilog HDL and synthesized by RTL behavioral representation using Xilinx ISE Design Suite 12.1. The graph merging approach is validated by the results which show that the area allocated is less for graph merging technique than the reconfigurable array using multiplexers.
机译:嵌套循环算法中的固有并行性可以通过提出一种称为脉动阵列的阵列体系结构,并使用合适的映射方法将算法的计算任务映射到阵列体系结构上来加以利用。使用分配技术来实现识别较高维问题的较低维子空间的计算子空间映射方法。即,选择较低维子空间以沿着计算方程式放置。在多维重用,端口数量,PE数量,内存读取方面,针对多维问题的最佳计算方向是由多目标函数选择的。通过图形合并方法设计了用于n维嵌套循环问题的可重配置阵列,与使用多路复用器的可重配置阵列相比,该方法可减少面积和功耗。这里考虑的算法是3-D矩阵矩阵乘法,2-D空间滤波算法(是4-D嵌套循环算法)和6-D全搜索块运动估计。可重配置阵列的分配和调度在Verilog HDL中实现,并使用Xilinx ISE Design Suite 12.1通过RTL行为表示进行综合。结果表明,图合并方法得到了验证,结果表明,与使用多路复用器的可重配置阵列相比,图合并技术分配的区域更少。

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