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Application of genetic algorithms in fundamental study of non-invasive measurement of human blood glucose concentration with near infrared spectroscopy

  • Hong Wang
  • , Qingbo Li
  • , Zeyi Liu
  • , Kexin Xu*
  • *此作品的通讯作者
  • Tianjin University

科研成果: 期刊稿件文章同行评审

摘要

Genetic algorithms is an effective method in wavelength selection applied in building multivariate calibration model based on partial least squares regression. If genetic algorithm is run repeatedly as a block, the optimal solution is obtained faster, the numbers of wavelengths used to build calibration model is further reduced, the prediction precision is further improved. This method was applied to fundamental study of Non-Invasive of measurement of human blood glucose concentration with spectroscopy. The experiments tested in this method are 1 glucose in aqueous matrix, 2 glucose in aqueous matrix containing bovine serum albumin and heucoglobin and 3 human serum containing glucose. The result shows that the numbers of wavelengths for building the models can reduce by 88%, 86% and 85% respectively, while the root mean square error of prediction reduces by 56%, 64% and 63% respectively. It is instructive for the further study of the theory of non-Invasive measurement of human blood glucose with spectroscopy.

源语言英语
页(从-至)779-783
页数5
期刊Chinese Journal of Analytical Chemistry
30
7
出版状态已出版 - 7月 2002
已对外发布

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