Multi-focus image fusion using wavelet-domain statistics

Jing Tian, Li Chen
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引用次数: 41

Abstract

The aim of multi-focus image fusion is to combine multiple images with different focuses for enhancing the perception of a scene. The critical issue in the design of multi-focus image fusion algorithms is to evaluate the local content information of the input images. Motivated by the observation that the marginal distribution of the wavelet coefficients is different for images with different focus levels, an image fusion approach using wavelet-domain statistics is proposed in this paper. The proposed approach exploits the spreading of the wavelet coefficients distribution to measure the degree of the image's blur. Furthermore, the wavelet coefficients distribution is evaluated using a locally-adaptive Laplacian mixture model. Extensive experiments are conducted using three sets of test images under three objective metrics to demonstrate the superior performance of the proposed approach.
基于小波域统计的多焦点图像融合
多焦点图像融合的目的是将不同焦点的多幅图像融合在一起,以增强对场景的感知。多焦点图像融合算法设计的关键问题是对输入图像的局部内容信息进行评估。针对不同聚焦级别图像的小波系数边缘分布不同的特点,提出了一种基于小波域统计的图像融合方法。该方法利用小波系数分布的扩散性来测量图像的模糊程度。此外,利用局部自适应拉普拉斯混合模型对小波系数的分布进行了估计。在三个客观指标下使用三组测试图像进行了广泛的实验,以证明所提出方法的优越性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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