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首页> 外文期刊>Medical and Biological Engineering and Computing: Journal of the International Federation for Medical and Biological Engineering >Brain CT and MRI medical image fusion using convolutional neural networks and a dual-channel spiking cortical model
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Brain CT and MRI medical image fusion using convolutional neural networks and a dual-channel spiking cortical model

机译:脑CT和MRI医学图像融合使用卷积神经网络和双通道尖刺皮质模型

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摘要

The aim of medical image fusion is to improve the clinical diagnosis accuracy, so the fused image is generated by preserving salient features and details of the source images. This paper designs a novel fusion scheme for CT and MRI medical images based on convolutional neural networks (CNNs) and a dual-channel spiking cortical model (DCSCM). Firstly, non-subsampled shearlet transform (NSST) is utilized to decompose the source image into a low-frequency coefficient and a series of high-frequency coefficients. Secondly, the low-frequency coefficient is fused by the CNN framework, where weight map is generated by a series of feature maps and an adaptive selection rule, and then the high-frequency coefficients are fused by DCSCM, where the modified average gradient of the high-frequency coefficients is adopted as the input stimulus of DCSCM. Finally, the fused image is reconstructed by inverse NSST. Experimental results indicate that the proposed scheme performs well in both subjective visual performance and objective evaluation and has superiorities in detail retention and visual effect over other current typical ones.
机译:医学图像融合的目的是提高临床诊断精度,因此通过保留源图像的突出特征和细节来产生融合图像。本文设计了基于卷积神经网络(CNNS)和双通道尖刺皮质模型(DCSCM)的CT和MRI医学图像的新型融合方案。首先,利用非分配的Shearlet变换(NSST)来将源图像分解成低频系数和一系列高频系数。其次,低频系数由CNN框架融合,其中通过一系列特征映射和自适应选择规则生成权重映射,然后通过DCSCM融合高频系数,其中修改的平均梯度采用高频系数作为DCSCM的输入刺激。最后,通过反向NSST重建融合图像。实验结果表明,该方案在主观视觉性能和客观评估中表现良好,并在其他当前典型的典型典型效果中具有优越性。

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