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Machine-learning-based classification of the histological subtype of non-small-cell lung cancer using MRI texture analysis

机译:使用MRI纹理分析基于机器学习的非小细胞肺癌组织学亚型的分类

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Objective: Accurate differentiation of the histological sub-type of ono-small-cell lung cancer (NSCLC) at an early stage of diagnosis is crucial in choosing appropriate treatment option as soon as possible. Our study have been undertaken to classify two types of NSCLC - adenocarcinoma (ADC) and squamous cell carcinoma (SCC).Methods: PET / MR images from 44 patients with diagnosed adenocarcinoma (24 patients) and squamous cell carcinoma (20 patients) were used for the study. We managed to obtain 155 regions of interest with a size of 128 x 128 pixels, which were used for further analysis. 135 texture parameters were calculated, which were then used for classification using different types of classifiers.Results: The best results (75.48 %) were achieved using the Support Vector Machines (SVM) classifier and texture parameters histogram of oriented gradients (HOG) while obtaining the highest values of specificity and sensitivity. The other results of the classification are satisfactory to a large extent.Conclusion: The achieved results are satisfactory and give an opportunity to develop and improve the diagnostic process of non-small cell lung tumors at the imaging stage.
机译:目的:准确分化在诊断早期诊断阶段的组织学亚型的组织学亚类(NSCLC)是至关重要的,尽快选择合适的治疗选项。我们的研究已经进行,分类两种类型的NSCLC - 腺癌(ADC)和鳞状细胞癌(SCC)。方法:使用44例患有患者腺癌(24名患者)和鳞状细胞癌(20名患者)的宠物/ MR图像用于研究。我们设法获得了155个兴趣区域,大小为128 x 128像素,用于进一步分析。计算135纹理参数,然后使用不同类型的分类器用于分类。结果:使用支持向量机(SVM)分类器(SVM)分类器和纹理参数直方图在获取时实现了最佳结果(75.48%)特异性和敏感性的最高值。分类的其他结果在很大程度上是令人满意的。结论:达到的结果是令人满意的,并且有机会在成像阶段开发和改善非小细胞肺肿瘤的诊断过程。

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