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A Novel Blind Separation Method in Magnetic Resonance Images

机译:磁共振图像中的一种新型盲分离方法

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摘要

A novel global search algorithm based method is proposed to separate MR images blindly in this paper. The key point of the method is the formulation of the new matrix which forms a generalized permutation of the original mixing matrix. Since the lowest entropy is closely associated with the smooth degree of source images, blind image separation can be formulated to an entropy minimization problem by using the property that most of neighbor pixels are smooth. A new dataset can be obtained by multiplying the mixed matrix by the inverse of the new matrix. Thus, the search technique is used to searching for the lowest entropy values of the new data. Accordingly, the separation weight vector associated with the lowest entropy values can be obtained. Compared with the conventional independent component analysis (ICA), the original signals in the proposed algorithm are not required to be independent. Simulation results on MR images are employed to further show the advantages of the proposed method.
机译:提出了一种基于新的全球搜索算法的方法,以便在本文中盲目地将MR图像分开。该方法的关键点是制定新矩阵,其形成原始混合矩阵的广义置换。由于最低熵与源图像的光滑程度密切相关,因此可以通过使用大多数邻居像素光滑的性质来配制盲图像分离。可以通过将混合矩阵乘以新矩阵的反转来获得新数据集。因此,搜索技术用于搜索新数据的最低熵值。因此,可以获得与最低熵值相关联的分离权重向量。与传统的独立分量分析(ICA)相比,所提出的算法中的原始信号不需要独立。 MR图像的仿真结果用于进一步展示所提出的方法的优点。

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