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Multi-atlas segmentation with particle-based group-wise image registration

机译:基于粒子的逐组图像配准的多图集分割

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摘要

We propose a novel multi-atlas segmentation method that employs a group-wise image registration method for the brain segmentation on rodent magnetic resonance (MR) images. The core element of the proposed segmentation is the use of a particle-guided image registration method that extends the concept of particle correspondence into the volumetric image domain. The registration method performs a group-wise image registration that simultaneously registers a set of images toward the space defined by the average of particles. The particle-guided image registration method is robust with low signal-to-noise ratio images as well as differing sizes and shapes observed in the developing rodent brain. Also, the use of an implicit common reference frame can prevent potential bias induced by the use of a single template in the segmentation process. We show that the use of a particle guided-image registration method can be naturally extended to a novel multi-atlas segmentation method and improves the registration method to explicitly use the provided template labels as an additional constraint. In the experiment, we show that our segmentation algorithm provides more accuracy with multi-atlas label fusion and stability against pair-wise image registration. The comparison with previous group-wise registration method is provided as well.
机译:我们提出了一种新颖的多图集分割方法,该方法采用分组图像配准方法对啮齿动物磁共振(MR)图像进行大脑分割。提出的分割的核心元素是使用粒子引导的图像配准方法,该方法将粒子对应的概念扩展到体积图像域中。配准方法执行逐组图像配准,同时将一组图像朝着由粒子平均值定义的空间配准。粒子引导图像配准方法在低信噪比图像以及在发育中的啮齿动物大脑中观察到的不同大小和形状的情况下具有鲁棒性。同样,使用隐式公共参考系可以防止在分割过程中使用单个模板引起的潜在偏差。我们表明,使用粒子引导图像配准方法可以自然地扩展到一种新颖的多图集分割方法,并改进了配准方法,以明确使用提供的模板标签作为附加约束。在实验中,我们证明了我们的分割算法可提供更高的准确性,包括多图谱标签融合以及针对成对图像配准的稳定性。还提供了与以前的逐组注册方法的比较。

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