拉曼光谱信号的统计模型:检测

Carlos A. Gutiérrez, Xavier García, E. Zurek, Augusto Salazar
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引用次数: 1

摘要

拉曼光谱(RS)是一种寻找被研究材料光谱指纹的技术。为了达到光谱,需要将采集到的信号通过一组称为拉曼信号预处理系统的滤波器,该滤波器应消除伴随信号的所有噪声成分。这些噪声成分的行为,甚至信号本身,都是可以用来优化系统和研究信号本身的有用信息。本文提出了预处理系统接收拉曼信号时的统计模型,给出了信号的噪声成分及其统计行为,包括其数学表示。此外,它还显示了仿真模型实现的结果,为正在进行的验证工作打开了大门。该模型的实现可以作为滤波器组优化的输入信号,因为对于所研究的特定信号,并不总是有足够的拉曼信号来详细研究和开发滤波器。该模型也可作为拉曼光谱识别系统研究的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Statistical model of a signal of Raman spectroscopy: Detection
Raman spectroscopy (RS) is a technique to find the spectral fingerprint of a material under study. To reach the spectrum, it is necessary to pass the acquired signal at the spectrometer by a bank of filters known as Raman signal's preprocessing system, which should eliminate all noise components accompanying the signal. The behavior of these noise components, and even the signal itself, are information that can be useful in order to optimize the system and to study the signal itself. This paper proposes a statistical model of Raman signal as the pre-processing system receives it, the signal's noise components and their statistical behavior, including its mathematical representation are presented. Additionally, it shows the results of the implementation of the simulation model leaving the door open for the validation, on which work is being done. The implementation of this model may be useful as an input signal for the optimization of the filter banks, since there are not always sufficient Raman signals for detailed study and development of filters for a specific signal under study. The model could also be used as a base for the study for systems using Raman spectroscopy to recognize substances.
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