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Seed point discontinuity‐based segmentation method for the substantia nigra and the red nucleus in quantitative susceptibility maps

机译:基于种子点不连续的基于基于性的分割方法和定量易感性图中的红色核

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摘要

Background The automatic segmentation of cerebral nuclei in the quantitative susceptibility mapping (QSM) images can provide assistance for surgical treatment and pathological mechanism studies. However, as the most frequently used segmentation method, the atlas method provides unsatisfactory results when segmenting the substantia nigra (SN) and the red nucleus (RN). Purpose To propose and evaluate an improved automatic method based on seed points‐discontinuity for segmentations of the SN and the RN in QSM images. Study Type Prospective. Subjects In all, 22 subjects, 11 patients with Parkinson's disease (PD), and 11 healthy subjects (mean age of 68.0?±?6.9 years) underwent MR scans. Field Strength/Sequence 3T system and a 3D multiecho gradient echo sequence with monopolar readout gradient. Assessment Manual segmentations by two radiologists (both with over 10 years of experience in neuroimaging) were used to establish a baseline for assessment. The Dice coefficient and the center‐of‐gravity distance was employed to evaluate the segmentation accuracy. Statistical Tests The mean value and standard deviation of the Dice coefficient and center‐of‐gravity distance were calculated separately to compare segmentation results from the proposed method, the level set method, the atlas method (including the single‐atlas method and the multi‐atlas majority voting method). Results The statistical results of Dice coefficient of the SN and the RN between the ground truth and the segmentation were 0.79?±?0.14 and 0.77?±?0.06 for the proposed method, 0.40?±?0.10 and 0.65?±?0.09 for the level set method, 0.68?±?0.09 and 0.64?±?0.07 for the single‐atlas method, 0.70?±?0.06 and 0.68?±?0.05 for the multi‐atlas majority voting method, respectively. The proposed method also provides the lowest center‐of‐gravity distance value (1.05?±?0.71 for the SN and 0.74?±?0.35 for the RN). Data Conclusion The segmentation results of the proposed method performed well on the in vivo data and were closer to the manual segmentation than the atlas method. Level of Evidence: 1 Technical Efficacy: Stage 1 J. Magn. Reson. Imaging 2018;48:1112–1119.
机译:背景技术在定量敏感性映射中的脑核的自动分割(QSM)图像可以提供用于外科治疗和病理机制研究的辅助。然而,作为最常用的分割方法,在分割体内NIGRA(SN)和红色核(RN)时,ATLAS方法提供不令人满意的结果。目的,提出并评估基于种子点的改进的自动方法 - 用于QSM图像中Sn的Sn和RN的分割。研究类型预期。所有,22名受试者,11例帕金森病(PD)和11名健康受试者(平均年龄为68.0±6.9岁)。实场强度/序列3T系统和具有单极读出梯度的3D多电梯度回波序列。使用两个放射科医生的评估手册分割(两者都有超过10年的神经影像经验)来建立评估基线。采用骰子系数和重心距离来评估分割精度。统计测试分别计算骰子系数和重心距离的平均值和标准偏差,以比较来自所提出的方法,水平集方法,atlas方法(包括单atlas方法和多个 - 阿特拉斯大多数投票方法)。结果SN的骰子系数的统计结果和地面真理与分割之间的统计结果为0.79≤0.79°0.14和0.77?±0.406,0.40?±0.10和0.65?±0.09电平法方法,0.68?±0.09和0.64?±0.07,用于单齿性法,0.70?±0.06和0.68?±0.68?0.05,分别为多纳拉斯多数投票方法。所提出的方法还提供了最低的重心中心(1.05?±0.71,对于RN的0.74±0.35)。数据结论所提出的方法的分割结果对体内数据进行良好,并且比ATLAS方法更接近手动分段。证据水平:1技术疗效:第1阶段J. MANG。恢复。 2018年成像; 48:1112-1119。

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  • 作者单位

    Shanghai Key Laboratory of Magnetic Resonance and Department of Physics and Material ScienceEast;

    Shanghai Key Laboratory of Magnetic Resonance and Department of Physics and Material ScienceEast;

    Shanghai Key Laboratory of Magnetic Resonance and Department of Physics and Material ScienceEast;

    Shanghai Key Laboratory of Magnetic Resonance and Department of Physics and Material ScienceEast;

    MR Collaboration NE Asia Siemens HealthcareShanghai China;

    School of MedicineEast Hospital affiliated to Tongji UniversityShanghai China;

    School of MedicineEast Hospital affiliated to Tongji UniversityShanghai China;

    Shanghai Key Laboratory of Multidimensional Information Processing and Department of Computer;

    Shanghai Key Laboratory of Multidimensional Information Processing and Department of Computer;

    Shanghai Key Laboratory of Magnetic Resonance and Department of Physics and Material ScienceEast;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 诊断学;
  • 关键词

    quantitative susceptibility mapping; cerebral nuclei segmentation; seed‐points discontinuity; level set method;

    机译:定量易感性映射;脑核细胞分割;种子点不连续;水平集方法;

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