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使用卷积神经网络对任意数量的输入进行通用图像融合。

General Image Fusion for an Arbitrary Number of Inputs Using Convolutional Neural Networks.

机构信息

Department of Telecommunications and Information Processing, IPI-IMEC, Ghent University, 9000 Ghent, Belgium.

出版信息

Sensors (Basel). 2022 Mar 23;22(7):2457. doi: 10.3390/s22072457.

Abstract

In this paper, we propose a unified and flexible framework for general image fusion tasks, including multi-exposure image fusion, multi-focus image fusion, infrared/visible image fusion, and multi-modality medical image fusion. Unlike other deep learning-based image fusion methods applied to a fixed number of input sources (normally two inputs), the proposed framework can simultaneously handle an arbitrary number of inputs. Specifically, we use the symmetrical function (e.g., Max-pooling) to extract the most significant features from all the input images, which are then fused with the respective features from each input source. This symmetry function enables permutation-invariance of the network, which means the network can successfully extract and fuse the saliency features of each image without needing to remember the input order of the inputs. The property of permutation-invariance also brings convenience for the network during inference with unfixed inputs. To handle multiple image fusion tasks with one unified framework, we adopt continual learning based on Elastic Weight Consolidation (EWC) for different fusion tasks. Subjective and objective experiments on several public datasets demonstrate that the proposed method outperforms state-of-the-art methods on multiple image fusion tasks.

摘要

在本文中,我们提出了一个通用的、灵活的图像融合框架,包括多曝光图像融合、多聚焦图像融合、红外/可见光图像融合和多模态医学图像融合。与其他基于深度学习的应用于固定数量输入源(通常为两个输入)的图像融合方法不同,所提出的框架可以同时处理任意数量的输入。具体来说,我们使用对称函数(例如最大池化)从所有输入图像中提取最重要的特征,然后将这些特征与每个输入源的特征融合。这种对称函数使网络具有置换不变性,这意味着网络可以成功地提取和融合每个图像的显著特征,而无需记住输入的顺序。置换不变性的性质也为网络在处理具有不固定输入的推理时带来了便利。为了使用一个统一的框架处理多种图像融合任务,我们针对不同的融合任务采用了基于弹性权重整合(EWC)的持续学习。在几个公共数据集上的主观和客观实验表明,所提出的方法在多种图像融合任务上优于最先进的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6df0/9002723/5e2d31ccd968/sensors-22-02457-g001.jpg

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