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Comparisons and improvements concerning the accuracy and robustness of inverse heat conduction algorithms

机译:逆导热算法的精度和鲁棒性的比较和改进

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This article describes a detailed investigation concerning the accuracy and robustness of several algorithms for solving the inverse heat conduction problem (IHCP). A variety of existing methods are classified into three categories: the direct inverse solutions, the observer-based solutions, and the optimization type solutions, The typical methods in each category are briefly analyzed and reviewed, i.e. whole domain regularization, optimal solution, and singular value decomposition (SVD) in the direct inverse category; sequential estimation in the observer-based category; and conjugate gradient functional optimization in the optimization category. An algorithm calibration procedure is used to ensure the best performance with each method. A detailed uncertainty analysis including systematic uncertainties and auto-correlations is described and used to calculate the uncertainty due to system parameters and temperature measurements. Accuracy and robustness indices are suggested to evaluate the performance of each method considered. Finally, a zero-phase, low-pass filter post-processing technique is proposed to improve the robustness in performance of the methods with weak accuracy or robustness. Several simulation results show comparisons of the concerned algorithm in terms of accuracy and robustness, and the effect of the proposed post-processing technique.
机译:本文介绍了有关解决逆热传导问题(IHCP)的几种算法的准确性和鲁棒性的详细研究。现有的各种方法分为三类:直接逆解,基于观测器的解决方案和优化类型的解决方案。简要分析和回顾了每一类中的典型方法,即全域正则化,最优解和奇异直接逆类别中的值分解(SVD);基于观察者的类别中的顺序估计;优化类别中的共轭梯度函数优化。算法校准过程用于确保每种方法的最佳性能。描述了详细的不确定性分析,包括系统不确定性和自相关,并用于计算由于系统参数和温度测量而引起的不确定性。建议使用准确性和鲁棒性指标来评估所考虑的每种方法的性能。最后,提出了一种零相位低通滤波器后处理技术,以提高精度或鲁棒性较弱的方法的性能鲁棒性。若干仿真结果表明,在准确性和鲁棒性方面,以及所提出的后处理技术的效果方面,该算法均得到了比较。

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