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Uncertainty-aware asynchronous scattered motion interpolation using Gaussian process regression

机译:使用高斯进程回归的不确定性感知异步分布运动插值

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We address the problem of interpolating randomly non-uniformly spatiotemporally scattered uncertain motion measurements, which arises in the context of soft tissue motion estimation. Soft tissue motion estimation is of great interest in the field of image-guided soft-tissue intervention and surgery navigation, because it enables the registration of pre-interventional/pre-operative navigation information on deformable soft-tissue organs. To formally define the measurements as spatiotemporally scattered motion signal samples, we propose a novel motion field representation. To perform the interpolation of the motion measurements in an uncertainty-aware optimal unbiased fashion, we devise a novel Gaussian process (GP) regression model with a non-constant-mean prior and an anisotropic covariance function and show through an extensive evaluation that it outperforms the state-of-the-art GP models that have been deployed previously for similar tasks. The employment of GP regression enables the quantification of uncertainty in the interpolation result, which would allow the amount of uncertainty present in the registered navigation information governing the decisions of the surgeon or intervention specialist to be conveyed. (C) 2018 Elsevier Ltd. All rights reserved.
机译:我们解决了在软组织运动估计的背景下进行了随机非均匀瞬时散射的不确定运动测量的问题。软组织运动估计对图像引导的软组织干预和手术导航领域具有很大的兴趣,因为它使得能够在可变形软组织器官上注册前介入/预惯例导航信息。为了正式地将测量定义为时尚散射的运动信号样本,我们提出了一种新颖运动场表示。为了以不确定的感知最佳的非偏见方式执行运动测量的插值,我们设计了一种新的高斯过程(GP)回归模型,并通过非常数(GP)回归模型和各向异性协方差函数,并通过广泛的评估来展示它优于它的优势以前用于类似任务的最先进的GP模型。 GP回归的就业能够在插值结果中定量不确定性,这将允许有关监管外科医生或干预专家的决定中的注册导航信息中存在的不确定性。 (c)2018年elestvier有限公司保留所有权利。

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