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Use of a variable thresholding-based image segmentation technique for magnetic resonance guided High Intensity Focused Ultrasound therapy: An in vivo validation

机译:基于可变阈值的图像分割技术在磁共振引导下的高强度聚焦超声治疗中的应用:体内验证

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In this paper, the implementation of a segmentation technique based on Otsu's method, region growing algorithm and selection of regions using global and variable thresholding for the treatment planning of Magnetic Resonance guided High Intensity Focused Ultrasound (MRgHIFU) is described. The method is used to classify the pixels of real Magnetic Resonance (MR) images obtained for the study of the distribution of heat in abscess treatment in a murine model with High-Intensity Focused Ultrasound (HIFU). Using a discrepancy measure for evaluation, the proposed technique (segmentation technique I) demonstrated to be more efficient than an approach technique (segmentation technique II) based on Otsu's method, global thresholding, edge detection and region growing algorithm. In the evaluation, a total of nine surveys of 48 images each were used. For axial images the performance of segmentation technique I and the performance of segmentation technique II is very similar, having an average value of 92.05% for the former and an average value of 91.45% for the latter. On the other hand, for sagittal images, segmentation technique I presented an average performance of 85.46% while segmentation technique II presented an average performance of 69.01%.
机译:在本文中,描述了一种基于Otsu方法的分割技术的实现,区域增长算法以及使用全局和可变阈值进行区域选择的磁共振引导高强度聚焦超声(MRgHIFU)治疗计划的实现。该方法用于对为研究高强度聚焦超声(HIFU)小鼠模型中脓肿治疗中的热量分布而获得的真实磁共振(MR)图像进行分类。使用差异度量进行评估,所提出的技术(分段技术I)比基于Otsu方法,全局阈值,边缘检测和区域增长算法的逼近技术(分段技术II)更有效。在评估中,总共使用了9份调查,每份调查48幅图像。对于轴向图像,分割技术I的性能和分割技术II的性能非常相似,前者的平均值为92.05%,后者的平均值为91.45%。另一方面,对于矢状位图像,分割技术I的平均性能为85.46%,而分割技术II的平均性能为69.01%。

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