首页> 外文会议>2011 IEEE 37th Annual Northeast Bioengineering Conference >Segmentation of nodular medulloblastoma using Random Walker and Hierarchical Normalized Cuts
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Segmentation of nodular medulloblastoma using Random Walker and Hierarchical Normalized Cuts

机译:随机沃克和分层归一化切口分割结节性髓母细胞瘤

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Medulloblastoma (MB) is the most common brain tumor in children. Recent studies have demonstrated a relationship between specific signaling pathway abnormalities, a tendency to more favorable outcomes, and a histopathological feature: nodular growth patterns. In this work we present a new segmentation scheme which requires minimal user interaction to segment nodules on MB histopathological sections. Our segmentation scheme consists of two steps: (1) color reduction using Hierarchical Normalized Cuts (HNCut), (2) Random Walker (RW) segmentation within the reduced HNCut color space. Across a cohort of 18 nodular MB images, our integrated HNCut and RW scheme yielded nodule segmentations with a Dice coefficient of 83:55 ± 12:4% and Predictive Positive Value (PPV) of 93:71 ± 9:0%.
机译:髓母细胞瘤(MB)是儿童中最常见的脑肿瘤。最近的研究表明,特定信号通路异常,更有利的结局趋势和组织病理学特征(结节状生长模式)之间存在关联。在这项工作中,我们提出了一种新的分割方案,该方案需要最少的用户交互才能在MB组织病理学切片上分割结节。我们的分割方案包括两个步骤:(1)使用分层归一化剪切(HNCut)进行色彩还原,(2)在缩小的HNCut颜色空间内进行随机Walker(RW)分割。在一组18个节状MB图像中,我们的集成HNCut和RW方案产生了结节分割,骰子系数为83:55±12:4%,预测正值(PPV)为93:71±9:0%。

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