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Quantification and Analysis of Large Multimodal Clinical Image Studies: Application to Stroke

机译:大型多模式临床影像研究的量化和分析:在卒中中的应用

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摘要

We present an analysis framework for large studies of multimodal clinical quality brain image collections. Processing and analysis of such datasets is challenging due to low resolution, poor contrast, misaligned images, and restricted field of view. We adapt existing registration and segmentation methods and build a computational pipeline for spatial normalization and feature extraction. The resulting aligned dataset enables clinically meaningful analysis of spatial distributions of relevant anatomical features and of their evolution with age and disease progression. We demonstrate the approach on a neuroimaging study of stroke with more than 800 patients. We show that by combining data from several modalities, we can automatically segment important biomarkers such as white matter hyperintensity and characterize pathology evolution in this heterogeneous cohort. Specifically, we examine two sub-populations with different dynamics of white matter hyperintensity changes as a function of patients' age.
机译:我们为大型研究多模式临床质量脑图像集合提供了一个分析框架。由于分辨率低,对比度差,图像未对齐以及视野受限,因此此类数据集的处理和分析具有挑战性。我们采用现有的配准和分割方法,并建立了用于空间归一化和特征提取的计算管道。生成的对齐数据集可对相关解剖特征的空间分布及其随年龄和疾病进展的演变进行临床上有意义的分析。我们在800多名患者的卒中神经影像学研究中演示了该方法。我们表明,通过结合来自多种模式的数据,我们可以自动对重要的生物标记物(例如白质高信号)进行细分,并在此异质队列中表征病理演变。具体来说,我们检查了两个亚群,这些亚群的白质高强度变化随患者年龄的变化而变化。

著录项

  • 来源
    《Multimodal brain image analysis》|2013年|18-30|共13页
  • 会议地点 Nagoya(JP)
  • 作者单位

    Computer Science and Artificial Intelligence Lab, MIT;

    Computer Science and Artificial Intelligence Lab, MIT;

    Department of Neurology, Massachusetts General Hospital, Harvard Medical School;

    Department of Neurology, Massachusetts General Hospital, Harvard Medical School;

    Department of Neurology, Massachusetts General Hospital, Harvard Medical School;

    Department of Neurology, Massachusetts General Hospital, Harvard Medical School;

    Department of Neurology, Rhode Island Hospital, Alpert Medical School of Brown University;

    Department of Neurology, Massachusetts General Hospital, Harvard Medical School;

    Department of Neurology, Massachusetts General Hospital, Harvard Medical School;

    Computer Science and Artificial Intelligence Lab, MIT;

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  • 正文语种 eng
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