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A Temperature Compensation Method for Piezo-Resistive Pressure Sensor Utilizing Chaotic Ions Motion Algorithm Optimized Hybrid Kernel LSSVM

机译:利用混沌离子运动算法优化混合核LSSVM的压阻式压力传感器温度补偿方法

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摘要

A piezo-resistive pressure sensor is made of silicon, the nature of which is considerably influenced by ambient temperature. The effect of temperature should be eliminated during the working period in expectation of linear output. To deal with this issue, an approach consists of a hybrid kernel Least Squares Support Vector Machine (LSSVM) optimized by a chaotic ions motion algorithm presented. To achieve the learning and generalization for excellent performance, a hybrid kernel function, constructed by a local kernel as Radial Basis Function (RBF) kernel, and a global kernel as polynomial kernel is incorporated into the Least Squares Support Vector Machine. The chaotic ions motion algorithm is introduced to find the best hyper-parameters of the Least Squares Support Vector Machine. The temperature data from a calibration experiment is conducted to validate the proposed method. With attention on algorithm robustness and engineering applications, the compensation result shows the proposed scheme outperforms other compared methods on several performance measures as maximum absolute relative error, minimum absolute relative error mean and variance of the averaged value on fifty runs. Furthermore, the proposed temperature compensation approach lays a foundation for more extensive research.
机译:压阻式压力传感器由硅制成,其性质在很大程度上受到环境温度的影响。在工作期间,应消除温度影响,以实现线性输出。为了解决这个问题,一种方法包括通过提出的混沌离子运动算法优化的混合内核最小二乘支持向量机(LSSVM)。为了获得出色的性能学习和归纳,将最小二乘支持向量机中集成了混合核函数,该混合核函数由本地核构造为径向基函数(RBF)内核,将全局核构造为多项式内核。引入混沌离子运动算法以找到最小二乘支持向量机的最佳超参数。进行了来自校准实验的温度数据以验证所提出的方法。着重于算法的鲁棒性和工程应用,补偿结果表明该方案在五十个运行次数上的最大绝对相对误差,最小绝对相对误差均值和平均值方差在几个性能指标上均优于其他比较方法。此外,提出的温度补偿方法为更广泛的研究奠定了基础。

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