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Target Object Recognition Using Multiresolution SVE) and Guided Filter with Convolutional Neural Network

机译:使用多分辨率SVE的目标对象识别)和带卷积神经网络的引导滤波器

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To design an efficient fusion scheme for the generation of a highly informative fused image by combining multiple images is still a challenging task in computer vision. A fast and effective image fusion scheme based on multi-resolution singular value decomposition (MR-SVD) with guided filter (GF) has been introduced in this paper. The proposed scheme decomposes an image of two-scale by MR-SVD into a lower approximate layer and a detailed layer containing the lower and higher variations of pixel intensity. It generates lower and details of left focused (LF) and right focused (RF) layers by applying the MR-SVD on each series of multi-focus images. GF is utilized to create a refined and smooth-textured weight fusion map by the weighted average approach on spatial features of the lower and detail layers of each image. A fused image of LF and RF has been achieved by the inverse MR-SVD. Finally, a deep convolutional autoencoder (CAE) has been applied to segment the fused results by generating the trained-patches mechanism. Comparing the results by state-of-the-art fusion and segmentation methods, we have illustrated that the proposed schemes provide superior fused and its segment results in terms of both qualitatively and quantitatively.
机译:为了通过组合多个图像来设计用于生成高度信息丰富的融合图像的有效融合方案,在计算机视觉中仍然是一个具有挑战性的任务。本文介绍了一种基于多分辨率奇异值分解(MR-SVD)的快速有效的图像融合方案,本文已经介绍了引导滤波器(GF)。所提出的方案通过MR-SVD将两种尺度的图像分解成较低的近似层和包含像素强度较低和更高变化的详细层。它通过在一系列多焦图像上应用MR-SVD来产生左聚焦(LF)和右聚焦(RF)层的较低和细节。 GF用于通过加权平均方法在每个图像的下层和细节层的空间特征上创建精细和平滑纹理的权重融合图。 LF和RF的融合图像已经由逆MR-SVD实现。最后,已经应用了深度卷积的AutoEncoder(CAE)来通过产生训练贴片机制来分割融合结果。通过最先进的融合和分割方法比较结果,我们示出了所提出的方案提供优异的融合及其分段,以定性和定量地提供卓越的结果。

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