采样球面谐波对改进概率轨迹成像的重要性

H. E. Çetingül, Laura Dumont, M. Nadar, P. Thompson, G. Sapiro, C. Lenglet
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引用次数: 0

摘要

我们考虑了通过改进内置采样方案来提高概率白质束成像方法的准确性和可靠性的问题,该方案从扩散模型(如方向分布函数(ODF))中随机抽取传播方向。现有的反变换采样方法需要一个特别的阈值步骤来防止不太可能的方向被采样。本文提出了对球面谐波进行重要采样的方法,该方法通过分层采样对球面上的输入点集进行重新分布以匹配ODF。这产生了一个更集中在模式周围的点集,允许随后的反变换采样产生更符合本地光纤配置的方向。集成到基于卡尔曼滤波器的框架中,我们的方法通过合成、模拟和真实数据集的实验进行了评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Importance Sampling Spherical Harmonics to Improve Probabilistic Tractography
We consider the problem of improving the accuracy and reliability of probabilistic white matter tractography methods by improving the built-in sampling scheme, which randomly draws, from a diffusion model such as the orientation distribution function (ODF), a direction of propagation. Existing methods employing inverse transform sampling require an ad hoc thresholding step to prevent the less likely directions from being sampled. We herein propose to perform importance sampling of spherical harmonics, which redistributes an input point set on the sphere to match the ODF using hierarchical sample warping. This produces a point set that is more concentrated around the modes, allowing the subsequent inverse transform sampling to generate orientations that are in better accordance with the local fiber configuration. Integrated into a Kalman filter-based framework, our approach is evaluated through experiments on synthetic, phantom, and real datasets.
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