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Intelligent color temperature estimation using fuzzy neural network with application to automatic white balance

机译:基于模糊神经网络的智能色温估计及其在自动白平衡中的应用

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摘要

In this paper, a novel white balance method is proposed, which consists of two fundamental steps, i.e., color temperature estimation of the illuminant and adjustment of the components of the color separates. A fuzzy logic system is constructed to infer the color temperature of an illuminant which a digitally acquired image subjected to. The fuzzy logic system is further optimized by representing the system as a fuzzy neural network and a training scheme of the FNN parameters is proposed. The estimated color temperature is then employed to determine the required amount of adjustment for each color separate of the image. Experimental procedures are outlined and performed, which validates the feasibility and performance of the proposed method. A comparative study is also made based on two quantitative indices. The study shows that the proposed approach is preferable to most methods in the literatures in terms of performance and robustness to varieties of illuminants and scenes.
机译:在本文中,提出了一种新颖的白平衡方法,其包括两个基本步骤,即发光体的色温估计和色分离的成分的调整。构造模糊逻辑系统以推断数字获取的图像经受的光源的色温。通过将系统表示为模糊神经网络,进一步优化了模糊逻辑系统,并提出了FNN参数的训练方案。然后,将估计的色温用于确定图像每种颜色的所需调整量。概述并执行了实验程序,这验证了所提出方法的可行性和性能。还基于两个定量指标进行了比较研究。研究表明,就各种光源和场景的性能和鲁棒性而言,所提出的方法优于文献中的大多数方法。

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