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Approximate Arithmetic for Low-Power Image Median Filtering

机译:低功耗图像中值滤波的近似算法

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In applications related to human senses, such as audio and image processing, computations with limited precision are acceptable. In these areas, a digital system can be implemented using approximate computing that works with sufficient precision. In this paper, we present a method to design 2-bit approximate magnitude comparators that are effectively low cost in terms of power, area and speed. We build larger comparators with adjustable error characteristics. Compared to precise one, our approximate comparators can save power and area up to 7-46 % and 10-50 %, respectively. The structures of our comparators and their error characteristics are presented in this paper. We use these comparators to design different approximate image median filters in order to remove salt and pepper noise. Simulation results show that the output quality of these filters is very similar to that of the precise ones so that the degradation is not noticeable. The approximate filters save up to 30 % of power and area while working 18 % faster than the precise ones.
机译:在与人类感官有关的应用程序中,例如音频和图像处理,可以接受精度有限的计算。在这些领域中,可以使用能够以足够的精度工作的近似计算来实现数字系统。在本文中,我们提出了一种设计2位近似幅度比较器的方法,该方法在功耗,面积和速度方面均有效降低了成本。我们构建具有可调误差特性的较大比较器。与精确的比较器相比,我们的近似比较器可以分别节省多达7-46%的功耗和10-50%的面积。本文介绍了比较器的结构及其误差特性。我们使用这些比较器设计不同的近似图像中值滤波器,以消除盐和胡椒噪声。仿真结果表明,这些滤波器的输出质量与精确滤波器的输出质量非常相似,因此降级不明显。近似滤波器可节省多达30%的功率和面积,而工作速度比精确滤波器快18%。

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