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Automated Segmentation of White Matter Lesions Using Global Neighbourhood Given Contrast Feature-Based Random Forest and Markov Random Field

机译:给定基于对比度特征的随机森林和马尔可夫随机场,使用全局邻域对白色物质病变进行自动分割

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Recent studies show that, cerebral White Matter Lesion (WML) is related to cerebrovascular diseases, cardiovascular diseases, dementia and psychiatric disorders. Manual segmentation of WML is not appropriate for long term longitudinal studies because it is time consuming and it shows high intra-and inter-rater variability. In this paper, a fully automated segmentation method is utilized to segment WML from brain Magnetic Resonance Imaging (MRI). The segmentation method uses a combination of global neighbourhood given contrast feature-based Random Forest (RF) classifier and Markov Random Field (MRF) to segment WML. To remove false positive lesions we use a rule based morphological postprocessing operation. Quantitative evaluation of the proposed method was performed on 24 subjects of ENVIS-ion study. The segmentation results were validated against the manual segmentation, performed by an experienced radiologist and were compared to a recently published WML segmentation method. The results show a dice similarity index of 0.75 for high lesion load, 0.71 for medium lesion load and 0.60 for low lesion load.
机译:最近的研究表明,脑白质病变(WML)与脑血管疾病,心血管疾病,痴呆和精神疾病有关。 WML的手动细分不适用于长期的纵向研究,因为它很耗时,并且显示出评分者内部和评分者之间的高度可变性。在本文中,一种全自动的分割方法用于从脑磁共振成像(MRI)分割WML。分割方法使用基于给定的基于对比度特征的全局邻域的随机森林(RF)分类器和马尔可夫随机场(MRF)的组合来分割WML。为了去除假阳性病变,我们使用基于规则的形态学后处理操作。对24种ENVIS-ion研究对象进行了拟议方法的定量评估。由经验丰富的放射科医生对照人工分割对分割结果进行了验证,并将其与最近发布的WML分割方法进行了比较。结果显示,对于高病变负荷,骰子相似性指数为0.75,对于中等病变负荷,骰子相似性指数为0.71,对于低病变负荷,骰子相似性指数为0.60。

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