基于MPSO技术的生物医学图像二维自适应滤波新方法

Bhumika Gupta, Agya Ram Verma
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引用次数: 10

摘要

本文将一维自适应滤波器方案扩展到二维地层,并设计了新的二维自适应滤波器。将所提出的方案的结果与二维变步长归一化最小二乘法、二维VSS仿射投影算法、二维集隶属度NLMS和二维SM APA进行了比较。将所提出的方案的性能与其他已报道的2D自适应滤波器设计方法进行了比较。仿真结果表明,该方法的归一化均方误差和归一化最大误差均值分别降低了85%和90%。此外,与最近报道的算法相比,所提出的用于生物医学图像重建的2D-ANC滤波器显示出6dB的信噪比改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A Novel Approach of 2D Adaptive Filter Based on MPSO Technique for Biomedical Image

A Novel Approach of 2D Adaptive Filter Based on MPSO Technique for Biomedical Image

In this paper, extension of the 1-D adaptive filter schemes to 2D formation and the new 2D adaptive filters are designed. The results of proposed scheme are compared with 2D variable step-size normalized least mean squares, the 2D VSS affine projection algorithms, the 2D set-membership NLMS, and 2D SM APA. The performance of proposed scheme is compared with other reported methods for 2D adaptive filter design. Based on simulation results, it is demonstrated that the proposed method can achieve 85% and 90% reduction in normalized mean square error and normalized maximum error mean, respectively. Moreover, the proposed 2D-ANC filter applied for reconstruction of a biomedical image shows 6 dB signal-to-noise ratio improved as compared to recently reported algorithm.

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