Temporal partitioning for image processing based on time-space complexity in reconfigurable architectures

P. S. B. Nascimento, M. Lima
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引用次数: 8

Abstract

Temporal partitioning techniques are useful to implement large and complex applications, which can be split into partitions in FPGA devices. In order to minimize resources, each of these partitions can be multiplexed in an only FPGA area by reconfiguration techniques. These multiplexing approaches increase the effective area, allowing parallelism exploitation in small devices. However, multiplexing means reconfiguration time, which can cause impact on the application performance. Thus, intensive parallelism exploitation in massive computation applications must be explored to compensate such inconvenient and improve processes. In this work, a temporal partitioning technique is presented for a class of image processing (massive computation) applications. The proposal technique is based on the algorithmic complexity (area x time) for each task that composes the applications. Experimental results are used to demonstrate the efficiency of the approach when compared to the optimal solution obtained by exhaustive timing search.
可重构结构中基于时空复杂度的图像处理时间分区
时间分区技术对于实现大型和复杂的应用程序非常有用,这些应用程序可以在FPGA器件中划分为多个分区。为了最大限度地减少资源,每个分区都可以通过重新配置技术在一个FPGA区域内进行多路复用。这些多路复用方法增加了有效面积,允许在小型设备中利用并行性。但是,多路复用意味着重新配置时间,这可能会对应用程序性能造成影响。因此,必须探索大规模计算应用中的密集并行性开发,以弥补这些不便并改进过程。在这项工作中,提出了一种用于一类图像处理(大规模计算)应用的时间划分技术。提议技术基于构成应用程序的每个任务的算法复杂度(面积x时间)。实验结果表明,该方法与穷举定时搜索方法的最优解相比是有效的。
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