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Medical Image Fusion Based on Rolling Guidance Filter and Spiking Cortical Model

机译:基于轧制引导滤光片和尖刺皮质模型的医学图像融合

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Medical image fusion plays an important role in diagnosis and treatment of diseases such as image-guided radiotherapy and surgery. Although numerous medical image fusion methods have been proposed, most of these approaches are sensitive to the noise and usually lead to fusion image distortion, and image information loss. Furthermore, they lack universality when dealing with different kinds of medical images. In this paper, we propose a new medical image fusion to overcome the aforementioned issues of the existing methods. It is achieved by combining with rolling guidance filter (RGF) and spiking cortical model (SCM). Firstly, saliency of medical images can be captured by RGF. Secondly, a self-adaptive threshold of SCM is gained by utilizing the mean and variance of the source images. Finally, fused image can be gotten by SCM motivated by RGF coefficients. Experimental results show that the proposed method is superior to other current popular ones in both subjectively visual performance and objective criteria.
机译:医学图像融合在诊断和治疗等疾病中起着重要作用,如图像引导的放射疗法和手术。尽管已经提出了许多医学图像融合方法,但这些方法中的大多数对噪声敏感,并且通常导致融合图像失真和图像信息丢失。此外,在处理不同类型的医学图像时,它们缺乏普遍性。在本文中,我们提出了一种新的医学图像融合来克服现有方法的上述问题。通过与轧制引导滤波器(RGF)和尖刺皮质模型(SCM)组合来实现。首先,RGF可以捕获医学图像的显着性。其次,通过利用源图像的平均值和方差来获得SCM的自适应阈值。最后,通过RGF系数的SCM可以得到融合图像。实验结果表明,该方法在主观视觉性能和客观标准中优于其他电流流行的方法。

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