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A hybrid genetic algorithm for estimating the equilibrium potential of an ion-selective electrode

机译:用于估计离子选择电极平衡电位的混合遗传算法

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摘要

Non-linear equations can be used to model the measured potential of ion-selective electrodes (ISEs) as a function of time. This can be done by using non-linear least squares regression to fit parameters of non-linear equations to an ISE response curve. In iterative non-linear least squares regression (which can be considered as local optimisers), the determination of starting parameter estimates that yield convergence to the global optimum can be difficult. Starting values away from the global optimum can lead to either abortive divergence or convergence to a local optimum. To address this issue, a global optimisation technique was used to find initial parameter estimates near the global optimum for subsequent further refinement to the absolute optimum. A genetic algorithm has been applied to two non-linear equations relating the measured potential from selected ISEs to time. The parameter estimates found from the genetic algorithm were used as starting values for non-linear least squares regression, and subsequent refinement to the absolute optimum. This approach was successfully used for both expressions with measured data from three different ISEs; namely, calcium, chloride and lead ISEs. (c) 2005 Elsevier B.V. All rights reserved.
机译:非线性方程可用于对离子选择电极(ISE)的测量电位随时间的变化进行建模。这可以通过使用非线性最小二乘回归将非线性方程式的参数拟合到ISE响应曲线来完成。在迭代非线性最小二乘回归(可以视为局部优化器)中,难以确定将参数收敛到全局最优值的起始参数估计值。偏离全局最优值的起始值可能会导致流产差异或收敛到局部最优值。为了解决这个问题,使用了全局优化技术来找到接近全局最优的初始参数估计值,以便随后进一步细化到绝对最优。遗传算法已应用于两个非线性方程,这些方程将来自选定ISE的测量电势与时间相关联。从遗传算法中找到的参数估计值用作非线性最小二乘回归的起始值,然后细化为绝对最佳值。这种方法已成功用于两个表达式,并具有来自三个不同ISE的测量数据。即钙,氯化物和铅离子。 (c)2005 Elsevier B.V.保留所有权利。

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