用于信号处理的低面积高能效混合加法器的分析与设计

G. R, Sathish Kumar N, Senthilkumar B
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引用次数: 0

摘要

乳房x光成像为放射科医生发现和治疗乳腺癌提供了非常有用的支持。所有的检测方法都需要预处理支持,以使图像清晰,不受任何不需要的信息。高精度滤波器是所有预处理方法的主要要求。加法器是滤波器设计中使用的主要组成部分。提出了一种新的质量确认方法(QCA)加法器,将现有的Brent Kung, Sklansky和Kogge Stone加法器逻辑结合起来,采用树嫁接技术(TGT)提高了速度,降低了复杂性和功耗。本文提出的加法器在改进的低范围修改(MLRM)滤波器中表现良好,该滤波器用于对乳房x光图像进行有效的预处理,以检测乳腺癌。对现有的和提出的基于加法器的MLRM方法进行了功耗降低、功率延迟积(PDP)和精度测试。所提出的基于QCA加法器的MLRM性能良好,功耗为891.842 μ W,比基于Brent Kung加法器的方法节能0.21%,PDP值为16.613 pJ,比基于Han Carlson加法器的方法低0.81%。对现有的和提出的MLRM方法进行了对比度提高、均方误差(MSE)降低和峰值信噪比(PSNR)提高的测试。对于测试图像mdb072,与次优的基于BKA的方法相比,对比度提高了7.4%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis and Design of Low Area and Highly Energy Efficient Hybrid Adder for Signal Processing Applications
Mammogram imaging provides very useful support for the radiologist in detecting and treating the breast cancer. All the detection methods need pre-processing support to make the image clear and free from any unwanted information. Filters with high accuracy are the major requirement for all pre-processing methods. Adders are the main building blocks used in the filter design. A new Quality Confirmed Approach (QCA) adder has been proposed by combining the existing Brent Kung, Sklansky and Kogge Stone adder logic by using Tree Grafting Technique (TGT) for improvement in speed, reduction in complexity and power consumption. The proposed new adder performs well in the Modified Low Range Modification (MLRM) filter, which is used for the effective pre-processing of mammogram image towards the detection of breast cancer. The existing and proposed adder based MLRM method has been tested for Power reduction, Power Delay Product (PDP) and accuracy. The proposed QCA adder based MLRM performed well and have consumed 891.842 µW power with 0.21 % of power saving over Brent Kung adder based approach, achieved the PDP value of 16.613 pJ, which is 0.81 % less than that of the Han Carlson Adder based approach. The existing and proposed MLRM methods have been tested for contrast improvement, mean square error (MSE) reduction and peak signal to noise ratio (PSNR) improvement. For the test image mdb072, 7.4 % improvement achieved in contrast percentage than the next best BKA based approach.
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