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Filter design for molecular factor computing using wavelet functions

delete2015-06-01
delete22
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李
李小勇 (Xiaoyong Li)
徐志宏 cover
徐志宏 (Zhihong Xu)
蔡文生 cover
蔡文生 (Wensheng Cai)
邵学广 cover
邵学广 (Xueguang Shao) *
DOI:10.1016/j.aca.2015.04.026delete
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Abstract

Abstract

En 中文
Molecular factor computing (MFC) is a new strategy that employs chemometric methods in an optical instrument to obtain analytical results directly using an appropriate filter without data processing. In the present contribution, a method for designing an MFC filter using wavelet functions was proposed for spectroscopic analysis. In this method, the MFC filter is designed as a linear combination of a set of wavelet functions. A multiple linear regression model relating the concentration to the wavelet coefficients is constructed, so that the wavelet coefficients are obtained by projecting the spectra onto the selected wavelet functions. These wavelet functions are selected by optimizing the model using a genetic algorithm (GA). Once the MFC filter is obtained, the concentration of a sample can be calculated directly by projecting the spectrum onto the filter. With three NIR datasets of corn, wheat and blood, it was shown that the performance of the designed filter is better than that of the optimized partial least squares models, and commonly used signal processing methods, such as background correction and variable selection, were not needed. More importantly, the designed filter can be used as an MFC filter in designing MFC-based instruments. (C) 2015 Elsevier B.V. All rights reserved.
Keywords:
Molecular factor computing
Multivariate optical computing
Wavelet filter
Genetic algorithm
Near-infrared spectroscopy
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Journal

Analytica Chimica Acta cover
Analytica Chimica Acta
IF:
6
Papers:
3.3W
Citations:
6.1W

Organization

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nankai university
Scholars:
4.8W
Papers: 3.3W
Citations: 74
Cited Papers

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