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Non-uniformity correction algorithm for IRFPA based on local scene statistics and improved neural network

机译:基于局部场景统计和改进神经网络的IRFPA非均匀性校正算法

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In this paper a new non-uniformity correction algorithm is proposed which is based on local scene statistics and improved neural network. The new algorithm firstly uses local scene statistics to filter out low frequency noise over infrared image and reduce the ghosting artifacts of a previously developed scene-based non-uniformity correction method, then uses improved neural network algorithm to correct the non-uniformity of infrared focal plane array (IRFPA). Experiments show that the proposed algorithm can effectively filter out low frequency noise and improve corrected image quality.
机译:提出了一种基于局部场景统计和改进神经网络的非均匀性校正算法。新算法首先利用局部场景统计信息滤除红外图像上的低频噪声,减少先前开发的基于场景的非均匀性校正方法的重影伪影,然后使用改进的神经网络算法校正红外焦距的非均匀性。平面阵列(IRFPA)。实验表明,该算法可以有效滤除低频噪声,提高校正后的图像质量。

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