节能MIMO处理:机会运行时近似的案例研究

D. Novo, Nazanin Farahpour, P. Ienne, U. Ahmad, F. Catthoor
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引用次数: 2

摘要

最坏情况设计是实际工程的关键之一:创建能够承受最不利条件的解决方案。然而,对更高能源效率的日益增长的需求表明,未来最坏情况的设计前景黯淡。在本文中,我们提出了机会运行时近似,以便在不修改算法功能的情况下,连续地适应实际执行上下文的处理精度(运算符类型和位宽)。我们表明,通过尽可能放松处理精度,基于机会运行时近似的先进无线接收器算法的VLSI实现可以节省优化静态实现所消耗的能量的40%左右。这些能源的节省是以整体芯片面积的略微增加为代价的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Energy efficient MIMO processing: A case study of opportunistic run-time approximations
Worst-case design is one of the keys to practical engineering: create solutions that can withstand the most adverse possible conditions. Yet, the ever-growing need for higher energy efficiency suggest a grim outlook for worst-case design in the future. In this paper, we propose opportunistic runtime approximations to enable a continuous adaptation of the processing precision (operator type and bitwidth) to the actual execution context without modifying the algorithm functionality. We show that by relaxing the processing precision whenever possible, a VLSI implementation of an advanced wireless receiver algorithm based on opportunistic run-time approximations can save about 40% of the energy consumed by an optimized static implementation. These energy savings are achieved at the expense of a slight increase in overall chip area.
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