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Automatic segmentation of white matter hyperintensities by an extended FitzHugh & nagumo reaction diffusion model

机译:通过扩展的FitzHugh和nagumo反应扩散模型自动分割白质高强度

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Purpose: To evaluate the efficiency and reproducibility of the extended FitzHugh & Nagumo (FHN) reaction-diffusion model proposed in this study for white matter hyperintensities (WMH) segmentation. Materials and Methods: Five types of magnetic resonance T2-weighted fluid-attenuated inversion-recovery (T2FLAIR) images of 127 patients with different scanning parameters from five clinical scanner systems were selected for this study. After skull and scalp removal and denoise, the T2FLAIR images were processed by the proposed extended FHN model to obtain WMH. This new technique replaced the global threshold constant with a local threshold matrix. Results: There was no significant difference between the segmentation results of the training set and the manual contouring against those between the test set and the manual contouring based on similarity index (SI) values (P = 0.5217). The SI values of the five types of T2FLAIR images were 86.0% ± 15.4%, 85.8% ± 10.5%, 84.1% ± 14.8%, 87.2% ± 14.6%, 86.3% ± 12.7%, respectively, comparing the segmentation results using the proposed method to the manual delineations. The overall SI value of the images was 86.5% ± 14.5%. This approach also demonstrated a better WMH segmentation performance over its classic form (P < 0.001). Conclusion: The proposed approach is efficient and could provide a more effective and convenient tool for clinical quantitative WMH analysis.
机译:目的:为了评估本研究中提出的扩展的FitzHugh和Nagumo(FHN)反应扩散模型对白质高强度(WMH)分割的效率和可重复性。材料与方法:选择来自五个临床扫描系统的127例具有不同扫描参数的患者的五种磁共振T2加权液体衰减倒置恢复(T2FLAIR)图像。在颅骨和头皮去除和去噪之后,通过提出的扩展FHN模型处理T2FLAIR图像以获得WMH。这项新技术用局部阈值矩阵代替了全局阈值常数。结果:训练集和手动轮廓的分割结果与测试集和基于相似性指数(SI)值的手动轮廓的分割结果之间没有显着差异(P = 0.5217)。五种类型的T2FLAIR图像的SI值分别为86.0%±15.4%,85.8%±10.5%,84.1%±14.8%,87.2%±14.6%,86.3%±12.7%手工划定方法。图像的整体SI值为86.5%±14.5%。与经典形式相比,该方法还显示出更好的WMH分割性能(P <0.001)。结论:该方法是有效的,可以为临床定量WMH分析提供更有效,方便的工具。

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