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Reliability-Driven, Spatially-Adaptive Regularization for Deformable Registration

机译:可靠性,可变形配准的可靠​​性驱动,空间自适应正规化

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We propose a reliability measure that identifies informative image cues useful for registration, and present a novel, data-driven approach to spatially adapt regularization to the local image content via use of the proposed measure. We illustrate the generality of this adaptive regularization approach within a powerful discrete optimization framework and present various ways to construct a spatially varying regularization weight based on the proposed measure. We evaluate our approach within the registration process using synthetic experiments and demonstrate its utility in real applications. As our results demonstrate, our approach yielded higher registration accuracy than non-adaptive approaches and the proposed reliability measure performed robustly even in the presences of noise and intensity inhomogenity.
机译:我们提出了一种可靠性测量,其识别有用的注册的信息图像提示,并呈现一种通过使用所提出的测量来空间地适应本地图像内容的新颖,数据驱动方法。我们在强大的离散优化框架内说明了这种自适应正规化方法的一般性,并呈现了基于所提出的测量来构造空间变化的正则化权重的各种方式。我们使用合成实验评估注册过程中的方法,并在实际应用中展示其实用性。随着我们的结果表明,我们的方法比非自适应方法产生较高的登记精度,并且即使在噪声和强度的噪声的可能性中,甚至稳健地进行的所提出的可靠性措施。

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