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A CAD system for assessment of MRI findings to track the progression of multiple sclerosis

机译:用于评估MRI结果以跟踪多发性硬化进展的CAD系统

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摘要

Multiple sclerosis (MS) is a progressive neurological disease affecting myelin pathways. MRI has become the medical imaging study of choice both for the diagnosis and for the follow-up and monitoring of multiple sclerosis. The progression of the disease is variable, and requires routine follow-up to document disease exacerbation, improvement, or stability of the characteristic MS lesions or plaques. The difficulties with using MRI as a monitoring tool are the significant quantities of time needed by the radiologist to actually measure the size of the lesions, and the poor reproducibility of these manual measurements. A CAD system for automatic image analysis improves clinical efficiency and standardizes the lesion measurements. Multiple sclerosis is a disease well suited for automated analysis. The segmentation algorithm devised classifies normal and abnormal brain structures and measures the volume of multiple sclerosis lesions using fuzzy c-means clustering with incorporated spatial (sFCM) information. First, an intracranial structures mask in T1 image data is localized and then superimposed in FLAIR image data. Next, MS lesions are identified by sFCM and quantified within a predefined volume. The initial validation process confirms a satisfactory comparison of automatic segmentation to manual outline by a neuroradiologist and the results will be presented.
机译:多发性硬化症(MS)是一种影响髓磷脂途径的进行性神经系统疾病。 MRI已成为多发性硬化症的诊断以及随访和监测的首选医学影像学研究。疾病的进展是可变的,需要常规随访以记录疾病恶化,特征性MS病变或斑块的恶化或稳定性。使用MRI作为监测工具的困难在于放射科医生实际测量病变大小所需的大量时间,以及这些手动测量的可重复性差。用于自动图像分析的CAD系统可提高临床效率并标准化病变测量。多发性硬化症非常适合自动分析。设计的分割算法对正常和异常的大脑结构进行分类,并使用模糊c均值聚类并结合空间(sFCM)信息来测量多发性硬化症病变的体积。首先,对T1图像数据中的颅内结构遮罩进行定位,然后将其叠加在FLAIR图像数据中。接下来,通过sFCM识别MS病变并在预定义的体积内对其进行量化。最初的验证过程确认了神经放射科医生将自动分割与手动轮廓进行了令人满意的比较,并将给出结果。

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