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Two empirical methods for improving the performance of statistical multirate high-resolution signal reconstruction

机译:改善统计多速率高分辨率信号重建性能的两种经验方法

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摘要

The problem of reconstructing a known high-resolution signal from a set of its low-resolution parts exposed to additive white Gaussian noise is addressed in this paper from the perspective of statistical multirate signal processing. To enhance the performance of the existing high-resolution signal reconstruction procedure that is based on using a set of linear periodically time-varying (LPTV) Wiener filter structures, we propose two empirical methods combining empirical mode decomposition- and least squares support vector machine regression-based noise reduction schemes with these filter structures. The methods originate from the idea of reducing the effects of white Gaussian noise present in the low-resolution observations before applying them directly to the LPTV Wiener filters. Performances of the proposed methods are evaluated over one-dimensional simulated signals and two-dimensional images. Simulation results show that, under certain conditions, considerable improvements have been achieved by the proposed methods when compared with the previous study that only uses a set of LPTV Wiener filter structures for the signal reconstruction process.
机译:本文从统计多速率信号处理的角度解决了从暴露于加性高斯白噪声的一组低分辨率部分重建已知高分辨率信号的问题。为了增强基于使用一组线性周期性时变(LPTV)维纳滤波器结构的现有高分辨率信号重建程序的性能,我们提出了两种结合经验模式分解和最小二乘支持向量机回归的经验方法这些滤波器结构的基于噪声的降噪方案。这些方法源自以下想法:在将低分辨率观测中存在的高斯白噪声直接应用到LPTV Wiener滤波器之前,先将其降低。在一维模拟信号和二维图像上评估了所提出方法的性能。仿真结果表明,与仅使用一组LPTV Wiener滤波器结构进行信号重建过程的先前研究相比,在某些条件下,所提出的方法已实现了相当大的改进。

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