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首页> 外文期刊>Magnetic resonance imaging: An International journal of basic research and clinical applications >Fully-automated approach to hippocampus segmentation using a graph-cuts algorithm combined with atlas-based segmentation and morphological opening
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Fully-automated approach to hippocampus segmentation using a graph-cuts algorithm combined with atlas-based segmentation and morphological opening

机译:结合图谱分割和形态学开放的图割算法对海马进行全自动分割

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摘要

The hippocampus has been known to be an important structure as a biomarker for Alzheimer's disease (AD) and other neurological and psychiatric diseases. However, it requires accurate, robust and reproducible delineation of hippocampal structures. In this study, an automated hippocampal segmentation method based on a graph-cuts algorithm combined with atlas-based segmentation and morphological opening was proposed. First of all, the atlas-based segmentation was applied to define initial hippocampal region for a priori information on graph-cuts. The definition of initial seeds was further elaborated by incorporating estimation of partial volume probabilities at each voxel. Finally, morphological opening was applied to reduce false positive of the result processed by graph-cuts. In the experiments with twenty-seven healthy normal subjects, the proposed method showed more reliable results (similarity index. = 0.81. ±. 0.03) than the conventional atlas-based segmentation method (0.72. ±. 0.04). Also as for segmentation accuracy which is measured in terms of the ratios of false positive and false negative, the proposed method (precision. = 0.76. ±. 0.04, recall. = 0.86. ±. 0.05) produced lower ratios than the conventional methods (0.73. ±. 0.05, 0.72. ±. 0.06) demonstrating its plausibility for accurate, robust and reliable segmentation of hippocampus.
机译:已知海马是阿尔茨海默氏病(AD)以及其他神经和精神疾病的生物标志物的重要结构。但是,它需要准确,可靠和可重现的海马结构轮廓。在这项研究中,提出了一种基于图割算法结合基于图集的分割和形态学开放的自动海马分割方法。首先,基于图集的分割用于定义初始海马区,以获取关于图切割的先验信息。通过合并每个体素的部分体积概率的估计,可以进一步详细定义初始种子。最后,应用形态学开口来减少图形切割处理的结果的假阳性。在二十七个健康正常受试者的实验中,与传统的基于图集的分割方法(0.72。±0.04)相比,所提出的方法显示出更可靠的结果(相似性指数= 0.81±0.03)。同样,对于以误报率和误报率之比衡量的分割精度,所提出的方法(精度= 0.76。±。0.04,召回率= 0.86。±。0.05)比传统方法产生的比率要低( 0.73。±。0.05、0.72。±。0.06)证明了其对海马的准确,稳健和可靠分割的合理性。

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