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This paper studies to numerical solutions of an inverse heat conduction problem.The effect of algorithms based on the Newton-Tikhonov method and the Newton-implicit iterative method is investigated,and then several modifications are presented.Numerical examples show the modified algorithms always work and can greatly reduce the computational costs. 相似文献
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1 IntroductionThenonlinearconstrainedoptimizationproblemisaveryimportantmathematicalprogrammingprob lem .Ithasbeenstudiedextensively ,andmanyalgo rithmsforsolvingthis problemhasbeen pro posed[1,2 ] .Mostalgorithmsforsolvingthenonlinearcon strainedoptimization problemislocallyconvergent ,suchastheNewtonmethod ,theBFGSmethodandtheSQPmethod ,etc .Toovercomethisdrawback ,manyextendediterativemethodshavebeendevel oped .Forexample ,theNewtonmethodincorporatedwiththelinesearch[1] andhomotopymeth… 相似文献
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In this paper we present a regularized Newton-type method for ill-posed problems, by using the A-smooth regularization to solve the linearized ill-posed equations. For noisy data a proper a posteriori stopping rule is used that yields convergence of the Newton iteration to a solution, as the noise level goes to zero, under certain smoothness conditions on the nonlinear operator. Some appropriate assumptions on the closedness and smoothness of the starting value and the solution are shown to lead to optimal convergence rates. 相似文献
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