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使用支持向量机融合不同焦距的图像。

Fusing images with different focuses using support vector machines.

作者信息

Li Shutao, Kwok James Tin-Yau, Tsang Ivor Wai-Hung, Wang Yaonan

机构信息

College of Electrical and Information Engineering, Hunan University, 410082 Changsha, PROC.

出版信息

IEEE Trans Neural Netw. 2004 Nov;15(6):1555-61. doi: 10.1109/TNN.2004.837780.

Abstract

Many vision-related processing tasks, such as edge detection, image segmentation and stereo matching, can be performed more easily when all objects in the scene are in good focus. However, in practice, this may not be always feasible as optical lenses, especially those with long focal lengths, only have a limited depth of field. One common approach to recover an everywhere-in-focus image is to use wavelet-based image fusion. First, several source images with different focuses of the same scene are taken and processed with the discrete wavelet transform (DWT). Among these wavelet decompositions, the wavelet coefficient with the largest magnitude is selected at each pixel location. Finally, the fused image can be recovered by performing the inverse DWT. In this paper, we improve this fusion procedure by applying the discrete wavelet frame transform (DWFT) and the support vector machines (SVM). Unlike DWT, DWFT yields a translation-invariant signal representation. Using features extracted from the DWFT coefficients, a SVM is trained to select the source image that has the best focus at each pixel location, and the corresponding DWFT coefficients are then incorporated into the composite wavelet representation. Experimental results show that the proposed method outperforms the traditional approach both visually and quantitatively.

摘要

当场景中的所有物体都聚焦良好时,许多与视觉相关的处理任务,如边缘检测、图像分割和立体匹配,都可以更轻松地执行。然而,在实际中,这可能并不总是可行的,因为光学镜头,尤其是那些长焦镜头,景深有限。一种恢复全聚焦图像的常见方法是使用基于小波的图像融合。首先,拍摄同一场景的几个不同焦点的源图像,并使用离散小波变换(DWT)进行处理。在这些小波分解中,在每个像素位置选择幅度最大的小波系数。最后,通过执行离散小波逆变换可以恢复融合图像。在本文中,我们通过应用离散小波框架变换(DWFT)和支持向量机(SVM)改进了这种融合过程。与DWT不同,DWFT产生平移不变的信号表示。利用从DWFT系数中提取的特征,训练一个SVM来选择在每个像素位置具有最佳焦点的源图像,然后将相应的DWFT系数合并到复合小波表示中。实验结果表明,该方法在视觉和定量方面均优于传统方法。

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