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Semidefinite Optimization Providing Guaranteed Bounds on Linear Functionals of Solutions of Linear Integral Equations with Smooth Kernels

机译:SEMIDEFINITE优化提供了具有光滑内核的线性整体方程解的线性功能上的保证界限

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Based on recent progress on moment problems, semidefinite optimization approach is proposed for estimating upper and lower bounds on linear functionals defined on solutions of linear integral equations with smooth kernels. The approach is also suitable for linear integrodifferential equations with smooth kernels. Firstly, the primal problem with smooth kernel is converted to a series of approximative problems with Taylor polynomials obtained by expanding the smooth kernel. Secondly, two semidefinite programs (SDPs) are constructed for every approximative problem. Thirdly, upper and lower bounds on related functionals are gotten by applying SeDuMi 1.1R3 to solve the two SDPs. Finally, upper and lower bounds series obtained by solving two SDPs, respectively infinitely approach the exact value of discussed functional as approximative order of the smooth kernel increases. Numerical results show that the proposed approach is effective for the discussed problems.
机译:基于最近的时刻问题的进展,提出了SEMIDEFINITE优化方法,用于估算线性泛函数上限定的线性泛函数,与光滑核相积分式。该方法也适用于具有光滑内核的线性积分型方程。首先,通过通过扩展光滑内核而获得的泰勒多项式转换为一系列近似问题的原始问题。其次,为每个近似问题构建两个半纤维化程序(SDP)。第三,通过应用SEDumi 1.1R3来解决两个SDP来解决相关功能的上限和下限。最后,通过求解两个SDP获得的上限和下限系列,分别无限地接近讨论的功能的确切值,作为平滑内核的近似阶数增加。数值结果表明,该方法对讨论的问题有效。

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