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Detail enhancement of blurred infrared images based on frequency extrapolation

机译:基于频率外推的模糊红外图像细节增强

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摘要

A novel algorithm for enhancing the details of the blurred infrared images based on frequency extrapolation has been raised in this paper. Unlike other researchers' work, this algorithm mainly focuses on how to predict the higher frequency information based on the Laplacian pyramid separation of the blurred image. This algorithm uses the first level of the high frequency component of the pyramid of the blurred image to reverse-generate a higher, non-existing frequency component, and adds back to the histogram equalized input blurred image. A simple nonlinear operator is used to analyze the extracted first level high frequency component of the pyramid. Two critical parameters are participated in the calculation known as the clipping parameter C and the scaling parameter S. The detailed analysis of how these two parameters work during the procedure is figure demonstrated in this paper. The blurred image will become clear, and the detail will be enhanced due to the added higher frequency information. This algorithm has the advantages of computational simplicity and great performance, and it can definitely be deployed in the real-time industrial applications. We have done lots of experiments and gave illustrations of the algorithm's performance in this paper to convince its effectiveness. (C) 2016 Elsevier B.V. All rights reserved.
机译:提出了一种基于频率外推的模糊红外图像细节增强算法。与其他研究人员的工作不同,该算法主要关注如何基于模糊图像的拉普拉斯金字塔分离来预测更高频率的信息。该算法使用模糊图像金字塔的高频分量的第一级来反向生成更高的,不存在的频率分量,并将其加回到直方图均衡后的输入模糊图像。一个简单的非线性算子被用于分析金字塔的提取的第一级高频分量。两个关键参数参与了计算,称为削波参数C和缩放参数S。本文演示了对这两个参数在过程中如何工作的详细分析。由于添加了更高的频率信息,模糊的图像将变得清晰,细节也将得到增强。该算法具有计算简单,性能好的优点,可以肯定地部署在实时工业应用中。为了说明其有效性,我们在本文中进行了大量实验并给出了算法性能的说明。 (C)2016 Elsevier B.V.保留所有权利。

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