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Comparative study of texture features in OCT images at different scales for human breast tissue classification

机译:用于人乳房组织分类的不同比例的OCT图像中纹理特征的比较研究

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摘要

Breast cancer is the second leading cause of death in women in the United States due to cancer. Early detection of breast cancerous regions will aid the diagnosis, staging, and treatment of breast cancer. Optical coherence tomography (OCT), a non-invasive imaging modality with high resolution, has been widely used to visualize various tissue types within the human breast and has demonstrated great potential for assessing tumor margins. Imaging large resected samples with a fast imaging speed can be accomplished by under-sampling in the spatial domain, resulting in a large image scale. However, it is unclear whether there is an impact on the ability to classify tissue types based on the selected imaging scale. Our objective is to evaluate how the scale at which the images are acquired impacts texture features and the accuracy of an automated classification algorithm. To this end, we present a comparative study of texture features in OCT images at two image scales for human breast tissue classification. Texture features and attenuation coefficients were inputs to a statistical classification model, relevance vector machine. The automated classification results from the two image scales were compared. We found that more informative tissue features are preserved in small image scale and accordingly, small image scale leads to more accurate tissue type classification.
机译:乳腺癌是美国女性因癌症而导致的第二大死亡原因。早期发现乳腺癌区域将有助于乳腺癌的诊断,分期和治疗。光学相干断层扫描(OCT)是一种具有高分辨率的非侵入性成像方式,已被广泛用于可视化人乳房内的各种组织类型,并显示出评估肿瘤边缘的巨大潜力。可以通过在空间域中进行欠采样来对具有快速成像速度的大型切除样本进行成像,从而获得较大的图像比例。但是,尚不清楚是否对基于所选成像比例对组织类型进行分类的能力产生影响。我们的目标是评估获取图像的比例如何影响纹理特征和自动分类算法的准确性。为此,我们对人乳腺组织分类的两种图像比例尺的OCT图像中的纹理特征进行了比较研究。纹理特征和衰减系数被输入到统计分类模型,相关向量机中。比较了两种图像比例尺的自动分类结果。我们发现,在小图像范围内保留了更多信息组织特征,因此,小图像范围导致更准确的组织类型分类。

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