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A comparison of feature extraction techniques for diagnosis of lumbar intervertebral degenerative disc disease

机译:特征提取技术在腰椎间盘退行性椎间盘疾病诊断中的比较

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The reduction of fluid that acts as shock absorber placed in lumbar intervertebral discs causes pains and this case is named as degenerative disc disease. Magentic Resonance Imaging is generally used for diagnosis of this disease by radiologists or doctors. However, due to personal errors such as fatigue, inexperience, oversight, wrong diagnosis is possible. In order to prevent these, computer-aided diagnostic (CAD) methods are mostly preferred. In this work, the performance of two different feature extraction methods is compared. The saggital MR images taken from 9 patients were feature extracted by using grey level co-occurrence matrix (GLCM) and average absolute deviation (AAD) methods. The obtained feature vectors were classified by using multi-layered perceptron (MLP) artificial neural networks.
机译:减少作为腰椎间盘放置的减震器的液体会引起疼痛,这种情况被称为变性椎间盘疾病。 Magentic共振成像通常由放射科医生或医生用于诊断该疾病。但是,由于人为错误,例如疲劳,经验不足,疏忽大意,可能会导致错误的诊断。为了防止这些情况,最优选使用计算机辅助诊断(CAD)方法。在这项工作中,比较了两种不同特征提取方法的性能。使用灰度共生矩阵(GLCM)和平均绝对偏差(AAD)方法提取9例患者的矢状MR图像。通过使用多层感知器(MLP)人工神经网络对获得的特征向量进行分类。

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