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Identification of spacewise and time dependent source terms in ID heat conduction equation from temperature measurement at a final time

机译:从最后一次温度测量中识别ID导热方程中空间和时间相关的源项

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Inverse problems of identifying the unknown spacewise and time dependent heat sources F(x) and H(t) of the variable coefficient heat conduction equation u_t-(k(x)u_x)x + F(x)H(t) from supplementary tempera ture measurement (u_T(x):=u(x,T_f)) at a given single instant of time T_f>0, are investigated. For both inverse source problems, defined to be as 1SPF and 1SPH respectively, explicit formulas for the Frechet gra dients of corresponding cost functionals are derived. Fourier analysis of these problems shows that although ISPF has a unique solution, ISPH may not have a unique solution. The conjugate gradient method (CGM) with the explicit gradient formula for the cost functional J_1(F) is then applied for numerical solu tion of ISPF. New collocation algorithm, based on the piecewise linear approximation of the unknown source H(t), is proposed for the numerical solution of the integral equation corresponding to ISPH. The proposed two numerical algorithms are examined through numerical examples for reconstruction of con tinuous and discontinuous heat sources F(x) and H(t). Computational results, with noise free and noisy data, show efficiency and high accuracy of the proposed algorithms.
机译:从补充性气质中识别可变系数热传导方程u_t-(k(x)u_x)x + F(x)H(t)的未知未知与空间和时间相关的热源F(x)和H(t)的反问题研究了在给定的单个时间T_f> 0时刻的测量值(u_T(x):= u(x,T_f))。对于两个反源问题,分别定义为1SPF和1SPH,推导了相应成本函数的Frechet梯度的显式公式。对这些问题的傅立叶分析显示,尽管ISPF有独特的解决方案,但ISPH可能没有独特的解决方案。然后将具有成本函数J_1(F)的显式梯度公式的共轭梯度方法(CGM)用于ISPF的数值求解。针对与ISPH对应的积分方程的数值解,提出了一种基于未知源H(t)的分段线性逼近的新配置算法。通过数值示例对提出的两个数值算法进行了研究,以重构连续和不连续热源F(x)和H(t)。具有无噪声和高噪声数据的计算结果表明了所提出算法的效率和高精度。

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