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Improved optimization for the robust and accurate linear registration and motion correction of brain images.

机译:对大脑图像进行鲁棒且准确的线性配准和运动校正的改进优化。

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摘要

Linear registration and motion correction are important components of structural and functional brain image analysis. Most modern methods optimize some intensity-based cost function to determine the best registration. To date, little attention has been focused on the optimization method itself, even though the success of most registration methods hinges on the quality of this optimization. This paper examines the optimization process in detail and demonstrates that the commonly used multiresolution local optimization methods can, and do, get trapped in local minima. To address this problem, two approaches are taken: (1) to apodize the cost function and (2) to employ a novel hybrid global-local optimization method. This new optimization method is specifically designed for registering whole brain images. It substantially reduces the likelihood of producing misregistrations due to being trapped by local minima. The increased robustness of the method, compared to other commonly used methods, is demonstrated by a consistency test. In addition, the accuracy of the registration is demonstrated by a series of experiments with motion correction. These motion correction experiments also investigate how the results are affected by different cost functions and interpolation methods.
机译:线性配准和运动校正是大脑结构和功能分析的重要组成部分。大多数现代方法都优化了一些基于强度的成本函数,以确定最佳配准。迄今为止,尽管大多数注册方法的成功取决于这种优化的质量,但很少有人关注优化方法本身。本文详细研究了优化过程,并证明了常用的多分辨率局部优化方法可以而且确实会陷入局部最小值。为了解决这个问题,采取了两种方法:(1)切趾成本函数;(2)采用新颖的混合全局-局部优化方法。这种新的优化方法是专门为记录全脑图像而设计的。由于被局部极小值所困,它大大降低了产生配准失准的可能性。与其他常用方法相比,该方法具有更高的鲁棒性,可通过一致性测试证明。此外,通过一系列运动校正实验证明了套准的准确性。这些运动校正实验还研究了不同的成本函数和插值方法如何影响结果。

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