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首页> 外文期刊>Journal of Quantitative Spectroscopy & Radiative Transfer >Inverse transient radiation analysis in one-dimensional participating slab using improved Ant Colony Optimization algorithms
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Inverse transient radiation analysis in one-dimensional participating slab using improved Ant Colony Optimization algorithms

机译:使用改进的蚁群优化算法在一维参与平板中进行反向瞬态辐射分析

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摘要

As a heuristic intelligent optimization algorithm, the Ant Colony Optimization (ACO) algorithm was applied to the inverse problem of a one-dimensional (1-D) transient radiative transfer in present study. To illustrate the performance of this algorithm, the optical thickness and scattering albedo of the 1-D participating slab medium were retrieved simultaneously. The radiative reflectance simulated by Monte-Carlo Method (MCM) and Finite Volume Method (FVM) were used as measured and estimated value for the inverse analysis, respectively. To improve the accuracy and efficiency of the Basic Ant Colony Optimization (BACO) algorithm, three improved ACO algorithms, i.e., the Region Ant Colony Optimization algorithm (RACO), Stochastic Ant Colony Optimization algorithm (SACO) and Homogeneous Ant Colony Optimization algorithm (HACO), were developed. By the HACO algorithm presented, the radiative parameters could be estimated accurately, even with noisy data. In conclusion, the HACO algorithm is demonstrated to be effective and robust, which had the potential to be implemented in various fields of inverse radiation problems.
机译:作为一种启发式智能优化算法,本文将蚁群优化算法应用于一维(1-D)瞬态辐射传递的反问题。为了说明该算法的性能,同时检索了一维参与平板介质的光学厚度和散射反照率。通过蒙特卡洛方法(MCM)和有限体积方法(FVM)模拟的辐射反射率分别用作反分析的测量值和估计值。为了提高基本蚁群优化算法(BACO)的准确性和效率,对区域蚁群优化算法(RACO),随机蚁群优化算法(SACO)和同质蚁群优化算法(HACO)进行了三种改进),已开发。通过提出的HACO算法,即使有嘈杂的数据也可以准确估计辐射参数。总之,HACO算法被证明是有效且健壮的,具有在反辐射问题的各个领域中实现的潜力。

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