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Design of Energy-efficient Gaussian Filters by Combining Refactoring and Approximate Adders

机译:通过相结合的重构和近似加入者设计节能高斯滤波器

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The Gaussian image filter is a compute-intensive approach to reduce undesirable artifacts and generally serves as a pre-processing technique for emerging applications related to visual computing systems. This work evaluates alternatives for the design of power-efficient Gaussian Filters. The proposed optimization strategy combines: 1) a refactored function to minimize the arithmetic operations, and 2) a design space exploration investigating different approximation scenarios applied to the full adders. The exact version of our refactored Gaussian Filter architecture reduces the total power consumption and the circuit area by 18% and 12%, respectively compared with the baseline Gaussian Filter architecture. Moreover, the combination of different approximation levels with the refactored architecture provides design options with power reductions from 21% to 59% compared with the baseline Gaussian Filter architecture.
机译:高斯图像滤波器是一种计算密集型方法,以减少不期望的伪像,并且通常用作用于与视觉计算系统相关的应用程序的预处理技术。 这项工作评估了节能高斯滤波器设计的替代方案。 所提出的优化策略结合:1)重构功能,以最小化算术运算,以及2)调查应用于完整加法器的不同近似场景的设计空间探索。 与基线高斯滤波器架构相比,我们的重构高斯滤波器架构的确切版本将总功耗和电路面积减少18%和12%。 此外,与基线高斯滤波器架构相比,与重构架构的不同近似电平的组合提供了功率降低到59%的功率降低。

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