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Multi-modal diffeomorphic demons registration based on mutual information

机译:基于互信息的多模态变态恶魔注册

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Diffeomorphic demons algorithm is an efficient and robust method in nonrigid image registration. It uses mean squared error as the similarity measure and set the gradient and gray level difference as the interior and exterior force respectively to make the points move. However it cannot deal with multiple modality images. In this paper, mutual information is used as the similarity measure instead of mean squared error and the gradient of mutual information respect to parameters is set as the force to make the points move. Then the diffeomorphic demons algorithm is extended to match multi-modal images. The experiment with magnetic resonance T1 image and magnetic resonance T2 image shows that this method is effective and performs better and more quickly compared with B-spline free-form deformation method.
机译:不同形态的恶魔算法是一种非刚性图像配准的有效且鲁棒的方法。它使用均方误差作为相似性度量,并将梯度和灰度级差分别设置为内部和外部力,以使这些点移动。但是,它不能处理多个模态图像。在本文中,互信息被用作相似性度量,而不是均方误差,并且互信息相对于参数的梯度被设置为使点移动的力。然后,微分形恶魔算法被扩展以匹配多模式图像。磁共振T1图像和磁共振T2图像的实验表明,与B样条自由变形法相比,该方法是有效的,并且效果更好,更快。

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