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Application of neural networks to the inverse light scattering problem for spheres

机译:神经网络在球体反光散射问题中的应用

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摘要

A new approach suitable for solving inverse problems in multiangle light scattering is presented. The method takes advantage of multidimensional function approximation capability of radial basis function neural networks. An algorithm for training the networks is described in detail. It is shown that the radius and refractive index of homogeneous spheres can be recovered accurately and quickly, with maximum relative errors of the order of 10(-3) and mean errors as low as 10(-5). The influence of the angular range of available scattering data on the loss of information and inversion accuracy is investigated, and it is shown that more than two thirds of input data can be removed before substantial degradation of accuracy occurs. (C) 1998 Optical Society of America. [References: 20]
机译:提出了一种适合解决多角度光散射反问题的新方法。该方法利用了径向基函数神经网络的多维函数逼近能力。详细描述了用于训练网络的算法。结果表明,均匀球体的半径和折射率可以准确,快速地恢复,最大相对误差约为10(-3),平均误差低至10(-5)。研究了可用散射数据的角度范围对信息损失和反演精度的影响,结果表明,在发生精度大幅下降之前,可以删除三分之二以上的输入数据。 (C)1998年美国眼镜学会。 [参考:20]

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