Post-sampling aliasing control for natural images

D. Florêncio, R. Schafer
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引用次数: 19

Abstract

Sampling and reconstruction are usually analyzed under the framework of linear signal processing. Powerful tools like the Fourier transform and optimum linear filter design techniques, allow for a very precise analysis of the process. In particular, an optimum linear filter of any length can be derived under most situations. Many of these tools are not available for non-linear systems, and it is usually difficult to find an optimum non-linear system under any criteria. The authors analyze the possibility of using non-linear filtering in the interpolation of subsampled images. They show that a very simple (5/spl times/5) non-linear reconstruction filter outperforms (for the images analyzed) linear filters of up to 256/spl times/256, including optimum (separable) Wiener filters of any size.
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自然图像的采样后混叠控制
采样和重构通常在线性信号处理的框架下进行分析。强大的工具,如傅里叶变换和最佳线性滤波器设计技术,允许一个非常精确的分析过程。特别是,在大多数情况下,可以推导出任意长度的最优线性滤波器。许多这些工具不适用于非线性系统,通常很难在任何标准下找到最优的非线性系统。分析了用非线性滤波对下采样图像进行插值的可能性。他们表明,一个非常简单的(5/spl倍/5)非线性重建滤波器优于(对于分析的图像)高达256/spl倍/256的线性滤波器,包括任何尺寸的最佳(可分离的)维纳滤波器。
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