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Fast hardware architecture for fixed-point 2D Gaussian filter

机译:用于固定点2D高斯滤波器的快速硬件架构

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摘要

This study presents the hardware architecture for 16-bit, 5 x 5 fixed-point 2D Gaussian kernel. Two filters are proposed, one using generalized kernel and other using separable kernel. The quality analysis of both the filters are obtained for different metrics and it is observed that the generalized filter achieves the best performance compared to all the existing methods. The proposed filters are evaluated on different images and its performance is similar to that of the original filter, evident from the difference in values of Peak Signal to Noise Ratio (PSNR) and Structural Similarity Index Metric (SSIM) of proposed filters to that of the original filter. Based on the principle of Distributed Arithmetic (DA), two hardware architectures, Generalized Filter Architecture (GFA) and Separable Filter Architecture (SFA) are proposed. SFA achieves an improvement in area, delay, power, Area Delay Product (ADP) and Area Power Product (APP) compared to GFA. GFA, on the other hand, achieves high performance compared to the SFA model. The performance of both the architectures are analyzed in terms of max speed and frames per second metric and it is shown that the proposed architectures achieve significantly better performance compared to all the existing techniques. (C) 2019 Elsevier GmbH. All rights reserved.
机译:本研究介绍了16位,5 x 5定点2D高斯内核的硬件架构。提出了两个过滤器,一个使用泛化内核和其他使用可分离内核。针对不同度量获得过滤器的质量分析,观察到,与所有现有方法相比,广义过滤器实现了最佳性能。所提出的滤波器在不同的图像上进行评估,其性能类似于原始滤波器的性能,从峰值信号的峰值信号值(PSNR)和结构相似性指数度量(SSIM)的差值中的差异是相似的原始过滤器。基于分布式算术(DA)的原理,提出了两个硬件架构,广义过滤器架构(GFA)和可分离滤波器架构(SFA)。与GFA相比,SFA实现了面积,延迟,电源,面积延迟产品(ADP)和区域电力产品(APP)的改进。另一方面,GFA与SFA模型相比实现了高性能。根据最大速度和每秒度量的帧分析了架构的性能,并显示了与所有现有技术相比,所提出的架构实现显着更好的性能。 (c)2019年Elsevier GmbH。版权所有。

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