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基于迭代三点零阶萨维茨基-戈莱滤波器的全自动高性能信噪比增强。

Fully automated high-performance signal-to-noise ratio enhancement based on an iterative three-point zero-order Savitzky-Golay filter.

作者信息

Schulze H Georg, Foist Rod B, Ivanov Andre, Turner Robin F B

机构信息

Michael Smith Laboratories, The University of British Columbia, 2185 East Mall, Vancouver, BC, Canada, V6T 1Z4.

出版信息

Appl Spectrosc. 2008 Oct;62(10):1160-6. doi: 10.1366/000370208786049079.

Abstract

The automated processing of data from high-throughput and real-time collection procedures is becoming a pressing problem. Currently the focus is shifting to automated smoothing techniques where, unlike background subtraction techniques, very few methods exist. We have developed a filter based on the widely used and conceptually simple moving average method or zero-order Savitzky-Golay filter and its iterative relative, the Kolmogorov-Zurbenko filter. A crucial difference, however, between these filters and our implementation is that our fully automated smoothing filter requires no parameter specification or parameter optimization. Results are comparable to, or better than, Savitzky-Golay filters with optimized parameters and superior to the automated iterative median filter. Our approach, because it is based on the highly familiar moving average concept, is intuitive, fast, and straightforward to implement and should therefore be of immediate and considerable practical use in a wide variety of spectroscopy applications.

摘要

来自高通量和实时采集程序的数据自动处理正成为一个紧迫的问题。目前,重点正在转向自动平滑技术,与背景减法技术不同,现有的此类方法很少。我们基于广泛使用且概念简单的移动平均法或零阶Savitzky-Golay滤波器及其迭代相关方法Kolmogorov-Zurbenko滤波器开发了一种滤波器。然而,这些滤波器与我们的实现之间的一个关键区别在于,我们的全自动平滑滤波器不需要参数指定或参数优化。结果与具有优化参数的Savitzky-Golay滤波器相当或更好,并且优于自动迭代中值滤波器。我们的方法基于非常熟悉的移动平均概念,直观、快速且易于实现,因此在各种光谱应用中应具有直接且相当大的实际用途。

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