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Automatic point correspondence using an artificial immune system optimization technique for medical image registration.

机译:使用人工免疫系统优化技术进行医学图像配准的自动点对应。

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摘要

In this paper, an automatic method for determining pairs of corresponding points between medical images is proposed. The method is based on the implementation of an artificial immune system (AIS). AIS is a relatively novel, population based category of algorithms, inspired by theoretical immunologic models. When used as function optimizers, AIS have the attractive property of locating the global optimum of a function as well as a large number of strong local optimum points. In this work, AIS has been applied both for the extraction of an optimal set of candidate points on the reference image and the definition of their corresponding ones on the second image. The performance of the proposed AIS algorithm is evaluated against the widely used Iterative Closest Point (ICP) algorithm in terms of the accuracy of the obtained correspondences and in terms of the accuracy of the point-based registration by the two correspondence algorithms and the Mutual Information criterion, as an intensity-based registration method. Qualitative and quantitative results involving 92 X-ray dental and 10 retinal image pairs subject to known and unknown transformations are presented. The results indicate a superior performance of the proposed AIS algorithm with respect to the ICP algorithm and the Mutual Information, in terms of both correct correspondence and registration accuracy.
机译:本文提出了一种自动确定医学图像之间对应点对的方法。该方法基于人工免疫系统(AIS)的实现。 AIS是一种相对新颖的,基于种群的算法类别,受到理论免疫模型的启发。当用作函数优化器时,AIS具有定位函数的全局最优值以及大量强大的局部最优点的吸引人的特性。在这项工作中,AIS已被应用于在参考图像上提取最佳候选点集以及在第二张图像上定义它们对应的候选点。根据获得的对应关系的准确性以及两种对应算法和互信息的基于点的注册的准确性,针对广泛使用的迭代最近点(ICP)算法评估了所提出的AIS算法的性能标准,作为基于强度的配准方法。给出了定性和定量结果,涉及92个X射线牙科图像和10个视网膜图像对,这些图像对经历了已知和未知的转换。结果表明,相对于ICP算法和互信息,所提出的AIS算法在正确的对应性和配准精度方面均具有出色的性能。

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