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Multimodal medical image fusion using PCNN optimized by the QPSO algorithm

机译:使用QPSO算法优化的PCNN进行多模式医学图像融合

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This paper proposed a method to fuse multimodal medical images using the adaptive pulse-coupled neural networks (PCNN), which was optimized by the quantum-behaved particle swarm optimization ( QPSO) algorithm. In this fusion model, two source images, A and B, were first processed by the QPSO-PCNN model, respectively. Through the QPSO algorithm, the PCNN model could find the optimal parameters for the source images, A and B. To improve the efficiency and quality of QPSO, three evaluation criteria, image entropy (EN), average gradient (AG) and spatial frequency (SF) were selected as the hybrid fitness function. Then, the output of the fusion model was obtained by the judgment factor according to the firing maps of two source images, which maybe was the pixel value of the image A, or that of the image B, or the tradeoff value of them. Based on the output of the fusion model, the fused image was gained. Finally, we used five pairs of multimodal medical images as experimental data to test and verify the proposed method. Furthermore, the mutual information (MI), structural similarity (SSIM), image entropy (EN), etc. were used to judge the performances of different methods. The experimental results illustrated that the proposed method exhibited better performances. (C) 2016 Elsevier B.V. All rights reserved.
机译:本文提出了一种利用自适应脉冲耦合神经网络(PCNN)融合多模态医学图像的方法,该方法是通过量子行为粒子群算法(QPSO)进行优化的。在此融合模型中,首先分别通过QPSO-PCNN模型处理两个源图像A和B。通过QPSO算法,PCNN模型可以找到源图像A和B的最佳参数。为提高QPSO的效率和质量,需要使用三个评估标准:图像熵(EN),平均梯度(AG)和空间频率( SF)被选为混合适应度函数。然后,根据判断因子,根据两个源图像的发射图获得融合模型的输出,可能是图像A的像素值,图像B的像素值或它们的折衷值。基于融合模型的输出,获得融合图像。最后,我们使用五对多模式医学图像作为实验数据来测试和验证所提出的方法。此外,使用互信息(MI),结构相似度(SSIM),图像熵(EN)等来判断不同方法的性能。实验结果表明,该方法具有较好的性能。 (C)2016 Elsevier B.V.保留所有权利。

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