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Adaptive Grid Generation Based Non-rigid Image Registration Using Mutual Information For Breast Mri

机译:基于互信息的乳房Mri的基于自适应网格生成的非刚性图像配准

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In this paper a new approach for non-rigid image registration using mutual information is introduced. A fast parametric method for non-rigid registration is developed by adjusting divergence and curl of an intermediate vector field from which the deformation field is computed using finite-central difference method. Mutual information is newly employed as the similarity measure in the gradient-based cost minimization (or mutual information maximization) of the existing registration framework. The huge amount of data associated with MRI is handled by a fully automated multi-resolution scheme. The adaptive grid system naturally distributes more grids to deprived areas. The positive monitor function disallows grid folding and provides a mean to control the ratio of the areas between the original and transformed domain. The flexibility of the adaptive grid allocation could dramatically reduce processing time with quality preserved. Mutual information facilitates robust registration between different imagernmodalities. Different types of joint histogram estimation are compared and integrated with the system. This scheme is applied on dynamic contrast-enhanced breast MRI, which requires the registration algorithm to be non-rigid, contrast-enhanced features preserving. Preliminary experiments show promising results and great potential for future extension.
机译:本文介绍了一种使用互信息进行非刚性图像配准的新方法。通过调整中间矢量场的发散度和卷曲度,开发了一种用于非刚性配准的快速参数方法,使用有限中心差分法可从中计算出变形场。在现有注册框架的基于梯度的成本最小化(或互信息最大化)中,互信息被新用作相似性度量。全自动多分辨率方案可处理与MRI相关的大量数据。自适应网格系统自然会将更多网格分布到贫困地区。正监视功能不允许网格折叠,并且提供了一种方法来控制原始域和变换域之间的面积比。自适应网格分配的灵活性可以在保持质量的情况下大大减少处理时间。相互信息有助于在不同图像模态之间进行可靠的配准。比较不同类型的联合直方图估计并将其与系统集成。该方案适用于动态对比增强的乳房MRI,该方法要求配准算法必须是非刚性的,增强对比的特征。初步实验显示出令人鼓舞的结果,并且有很大的发展潜力。

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