Wang Yan, Li Ning, Xu Kexin
Department of Biomedical Engineering, College of Precision Instrument & Opto-electronics Engineering, Tianjin University, Tianjin 300072, China.
Sheng Wu Yi Xue Gong Cheng Xue Za Zhi. 2006 Jun;23(3):688-91.
Mid-infrared (MIR) spectroscopy is applicable to blood glucose sensing without using any reagent, however, due to a result of inadequate accuracy, till now this method has not been used in clinical detection. The principle and key technologies of blood glucose sensing by MIR spectroscopy are presented in this paper. Along with our experimental results, the paper analyzes ways to enhance measurement accuracy and prediction accuracy by the following four methods: selection of optimized spectral region; application of spectra data processing method; elimination of the interference with other components in the blood, and promotion in system hardware. According to these four improving methods, we designed four experiments, i.e., strict determination of the region where glucose concentration changes most sensitively in MIR, application of genetic algorithm for wavelength selection, normalization of spectra for the purpose of enhancing measuring reproduction, and utilization of CO2 laser as light source. The results show that the measurement accuracy of blood glucose concentration is enhanced almost to a clinical detection level.
中红外(MIR)光谱法适用于无需使用任何试剂的血糖传感,然而,由于准确性不足,到目前为止该方法尚未用于临床检测。本文介绍了通过MIR光谱法进行血糖传感的原理和关键技术。结合我们的实验结果,本文通过以下四种方法分析了提高测量精度和预测精度的途径:选择优化的光谱区域;应用光谱数据处理方法;消除血液中其他成分的干扰,以及改进系统硬件。根据这四种改进方法,我们设计了四个实验,即严格确定MIR中葡萄糖浓度变化最敏感的区域,应用遗传算法进行波长选择,为提高测量重复性对光谱进行归一化,以及使用二氧化碳激光作为光源。结果表明,血糖浓度的测量精度几乎提高到了临床检测水平。