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基于最小二乘支持向量机的纳米金免疫层析试条快速定量
引用本文:姜海燕,杜民.基于最小二乘支持向量机的纳米金免疫层析试条快速定量[J].南昌大学学报(工科版),2012,34(3):283-286,290.
作者姓名:姜海燕  杜民
作者单位:福州大学电气工程与自动化学院; 福建省医疗器械和医药技术重点实验室
基金项目:福建省自然科学基金资助项目
摘    要:通过光电反射式的光路扫描纳米金免疫层析试条测试线和质控线信号,研究基于最小二乘支持向量机的纳米金免疫层析试条快速定量方法,建立遗传算法优化的最小二乘支持向量机纳米金免疫层析试条定量研究方法。该方法对纳米金免疫层析试条甲胎蛋白(AFP)检验样本的统计数据中,样本相对均方差RMSE为12.2%,实验结果表明:遗传算法优化的纳米金免疫层析试条最小二乘支持向量机定量拟合模型有较好的整体性能和局部性能,适用于纳米金免疫层析试条的快速定量。

关 键 词:金免疫层析    定量测定    最小二乘支持向量机  

Quantitative Determination of Gold Immunochromatographic Assay based on Least Squares Support Vector Machine
JIANG Hai-yan , DU Min.Quantitative Determination of Gold Immunochromatographic Assay based on Least Squares Support Vector Machine[J].Journal of Nanchang University(Engineering & Technology Edition),2012,34(3):283-286,290.
Authors:JIANG Hai-yan  DU Min
Affiliation:1. School of Electrical Engineering and Automation, Fuzhou University, Fuzhou 350002, China ; 2. Fujian Key Lab of Medical Instrumentation & Pharmaceutical Technology, Fuzhou 350002, China)
Abstract:The least squares support vector machine (LSSVM) was applied to build the fitting model for quanti tative determination of nanogold immunochromatographic assay (GICA) strip based on the reflective optical detec tion. The genetic algorithm (GA) was used to solve the optimization problem of the I_SSVM model between the char acteristic parameters and the sample concentration. In the statistical data of the alphafetoprotein (AFP) GICA strip test samples ,the sample relative mean square error was 12.2%. The experimental results indicated that the least squares support vector machine model which optimizing by the genetic algorithm performed well, and proved to be appropriate in quantitative determination of GICA strip.
Keywords:gold immunochromatographic assay strip  quantitative determination  least squares support vector machine
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