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Registration of intraoperative optical image sequence

机译:术中光学图像序列的配准

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摘要

In neurosurgery, cortical warping is one of the significant sources of noises during optical imaging after the skull and the dura have been removed. The optical image sequence must be registered for further data analysis. The registration algorithms in widely used medical image tools, e.g. Automated Image Registration (AIR), Statistical Parametric Mapping (SPM), usually express the cortical warping as polynomials or terms of cosine basis. However, these nonlinear models do not faithfully fit the elastic warping of the cortexes, and thus can not achieve a satisfactory result. Based on the elastic model, i.e., the approximating thin-plate splines (aTPS), we propose herein an improved aTPS (iaTPS) algorithm to deal with the elasticity of the cortical warping. In the cost function of the original aTPS algorithm,rnlandmarks with different localization uncertainties should be given different weights, however , due to the absence of a convincing method to specify these weights, a same weight value was manually set for all landmarks in practice. In our iaTPS algorithm, landmarks are categorized into several classes (usually 3~5) by their localization uncertainties, and the weights for each class are decided by an optimization process. The comparison experiment on the intraoperative optical data of human brain has shown that the new algorithm can offer better registration accuracy than the aTPS algorithm.
机译:在神经外科中,在去除颅骨和硬脑膜后的光学成像过程中,皮质翘曲是噪声的重要来源之一。必须注册光学图像序列以进行进一步的数据分析。广泛使用的医学影像工具中的配准算法自动图像配准(AIR),统计参数映射(SPM)通常将皮层翘曲表示为多项式或余弦项。但是,这些非线性模型不能如实地拟合皮质的弹性翘曲,因此不能获得令人满意的结果。基于弹性模型,即近似薄板样条(aTPS),我们在此提出一种改进的aTPS(iaTPS)算法,以处理皮质翘曲的弹性。在原始aTPS算法的成本函数中,应为具有不同定位不确定性的地标赋予不同的权重,但是,由于缺乏令人信服的方法来指定这些权重,因此在实践中为所有地标手动设置了相同的权重值。在我们的iaTPS算法中,根据地标的定位不确定性将地标分为几类(通常为3至5个),并通过优化过程确定每个类的权重。对人脑术中光学数据的对比实验表明,新算法比aTPS算法具有更好的配准精度。

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