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首页> 外文期刊>Medical image analysis >Application of independent component analysis to dynamic contrast-enhanced imaging for assessment of cerebral blood perfusion.
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Application of independent component analysis to dynamic contrast-enhanced imaging for assessment of cerebral blood perfusion.

机译:独立成分分析在动态对比增强成像中评估脑血流灌注的应用。

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Dynamic contrast-enhanced (DCE) imaging is widely used for in vivo assessment of the cerebral blood perfusion. In this work, we investigate the use of independent component analysis (ICA) on DCE imaging data for assessment of cerebral blood perfusion, without any prior knowledge of the underlying tissue vasculature and arterial input function. The minimum description length (MDL) criterion and principle component analysis (PCA) were employed to reduce the dimension of the data. An oscillating index method was used to select the components of interest. Numerical simulation and patient case studies were carried out to investigate the performance of ICA. The results show that ICA is able to extract physiologically meaningful components from the DCE imaging data. The advantages of ICA include its efficiency of computation, clarity of obtained component maps, and no need of the manually selected input function. The obtained independent component maps can provide reliable reference to identify the arterial and venous structure, and allow better demarcation of the tumor territories. The potential of ICA to be a useful clinical tool for diagnosis of cerebral vascular disease and for the assessment of treatment response has been demonstrated.
机译:动态对比增强(DCE)成像被广泛用于体内脑血流灌注评估。在这项工作中,我们调查了DCE成像数据上独立成分分析(ICA)的使用,以评估脑血流灌注情况,而无需事先了解基础组织的脉管系统和动脉输入功能。最小描述长度(MDL)准则和主成分分析(PCA)用于减小数据的维数。使用振荡指数法选择感兴趣的成分。进行了数值模拟和患者案例研究,以研究ICA的性能。结果表明,ICA能够从DCE成像数据中提取具有生理意义的成分。 ICA的优点包括其计算效率,获得的组件图的清晰度以及无需手动选择的输入功能。获得的独立成分图可以提供可靠的参考,以识别动脉和静脉结构,并允许更好地划分肿瘤区域。 ICA的潜力已成为诊断脑血管疾病和评估治疗反应的有用临床工具。

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