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Interpolation of Longitudinal Shape and Image Data via Optimal Mass Transport

机译:通过最佳质量传输对纵向形状和图像数据进行插值

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摘要

Longitudinal analysis of medical imaging data has become central to the study of many disorders. Unfortunately, various constraints (study design, patient availability, technological limitations) restrict the acquisition of data to only a few time points, limiting the study of continuous disease/treatment progression. Having the ability to produce a sensible time interpolation of the data can lead to improved analysis, such as intuitive visualizations of anatomical changes, or the creation of more samples to improve statistical analysis. In this work, we model interpolation of medical image data, in particular shape data, using the theory of optimal mass transport (OMT), which can construct a continuous transition from two time points while preserving “mass” (e.g., image intensity, shape volume) during the transition. The theory even allows a short extrapolation in time and may help predict short-term treatment impact or disease progression on anatomical structure. We apply the proposed method to the hippocampus-amygdala complex in schizophrenia, the heart in atrial fibrillation, and full head MR images in traumatic brain injury.
机译:医学成像数据的纵向分析已成为许多疾病研究的中心。不幸的是,各种限制因素(研究设计,患者可得性,技术限制)将数据采集限制在仅几个时间点,从而限制了疾病/治疗持续进展的研究。具有对数据进行合理的时间插值的能力可以导致改善的分析,例如对解剖变化的直观可视化,或创建更多样本以改善统计分析。在这项工作中,我们使用最佳质量传输(OMT)理论对医学图像数据(尤其是形状数据)进行插值建模,该理论可以构造两个时间点的连续过渡,同时保留“质量”(例如图像强度,形状音量)。该理论甚至允许对时间进行短暂的推断,并可能有助于预测短期治疗影响或疾病在解剖结构上的进展。我们将拟议的方法应用于精神分裂症的海马体-杏仁核复合体,心房颤动的心脏以及颅脑外伤的全头MR图像。

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