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Using a derivative-free optimization method for multiple solutions of inverse transport problems

机译:使用无导数优化方法求解逆运输问题的多种解决方案

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摘要

Identifying unknown components of an object that emits radiation is an important problem for national and global security. Radiation signatures measured from an object of interest can be used to infer object parameter values that are not known. This problem is called an inverse transport problem. An inverse transport problem may have multiple solutions and the most widely used approach for its solution is an iterative optimization method. This paper proposes a stochastic derivative-free global optimization algorithm to find multiple solutions of inverse transport problems. The algorithm is an extension of a multilevel single linkage (MLSL) method where a mesh adaptive direct search (MADS) algorithm is incorporated into the local phase. Numerical test cases using uncollided fluxes of discrete gamma-ray lines are presented to show the performance of this new algorithm.
机译:识别发射辐射的物体的未知成分是国家和全球安全的重要问题。从感兴趣的对象测量的辐射签名可用于推断未知的对象参数值。此问题称为逆传输问题。逆运输问题可能有多种解决方案,其解决方案中使用最广泛的方法是迭代优化方法。提出了一种随机无导数全局优化算法,以找到逆运输问题的多个解。该算法是多级单链接(MLSL)方法的扩展,其中将网格自适应直接搜索(MADS)算法合并到本地阶段。提出了使用离散伽玛射线线非碰撞通量的数值测试案例,以证明该新算法的性能。

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