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Development of Computer Aids ASPECTS System for Acute Ischemic Stroke Patient: A Preliminary Study

机译:急性缺血性卒中患者的计算机辅助技术开发系统:初步研究

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In recent years, stroke ranked within the top ten leading causes of death and the incidence is still rising. As a result of clinical interpretation of Alberta Stroke Program Early CT Score (ASPECTS), the relevant personnel to define stroke area and score range are not consistent and cause difficulty to make treatment decision. This study was to develop a computer-aided scoring system for ischemic stroke patient to help doctors effectively determine the severity of ischemic stroke. Image processing technology was used to develop the system. First, an adaptive median filter was used to filter noise in computed tomography (CT) image, and then bi-level and regional growth methods were used to obtain effective image information. After texture parameters selection through t-test and support vector machine (SVM), regions of interesting (ROI) were automatically selected. Finally, the ischemic severity were obtained based on calculated ASPECTS score (by compared the left and right sides of the brain image). The CT images of 80 sets (40 training sets and 40 test sets) were used to evaluate the system by comparing with corresponding DWI-MRI. The results showed that the area under the ROC curve of the training sets and the test sets were 0.952 and 0.938, respectively, when four parameters (autocorrelation, variance, maximum probability, and homogeneity) were chosen. Accuracy was 0.90, sensitivity was 0.76, specificity was 1, and Kappa value was 0.52 for test data respectively, and the performance was superior to the physician group.
机译:近年来,中风排名在十大死亡原因之内,发病率仍在上升。由于艾伯塔省中风计划早期CT得分(方面),相关人员定义行程区域和得分范围并不一致,并导致难以做出治疗决策。本研究是为缺血性卒中患者开发一种计算机辅助评分系统,以帮助医生有效地确定缺血性卒中的严重程度。图像处理技术用于开发系统。首先,使用自适应中值滤波器来滤除计算机断层摄影(CT)图像中的噪声,然后使用双级和区域生长方法来获得有效的图像信息。通过T检验和支持向量机(SVM)选择纹理参数选择后,自动选择有趣(ROI)的区域。最后,基于计算的方面得分获得缺血性严重程度(通过脑图像的左侧和右侧进行比较)。通过与相应的DWI-MRI进行比较,使用80组(40次训练集和40个测试集)的CT图像来评估系统。 The results showed that the area under the ROC curve of the training sets and the test sets were 0.952 and 0.938, respectively, when four parameters (autocorrelation, variance, maximum probability, and homogeneity) were chosen.精度为0.90,灵敏度为0.76,特异性为1,kappa值分别为0.52,分别为0.52,性能优于医生组。

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