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Computational analysis of optical coherence tomography images for the detection of soft tissue sarcomas

机译:光学相干断层扫描图像的计算分析,用于检测软组织肉瘤

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We present a computational method for the analysis of optical coherence tomography (OCT) images to detect soft tissue sarcomas. The method combines the quantitative analysis of two aspects of information from the intensity A-lines of OCT images; one is the slope of the intensity A-line with dB unit, which is determined by the optical attenuation characteristics of tissue; the other is the standard deviation (SD) of the slope-removed intensity A-line, which is dependent on the tissue structural features. The method is tested with pilot experiments on ex vivo tissue samples of human fat, muscle, well differentiated liposarcoma (WDLS) and leiomyosarcoma. Our results demonstrate the feasibility of this quantitative method in the differentiation of soft tissue sarcomas from normal tissues. This study indicates that OCT can be a potential computer-aided means of automatically and accurately identifying resection margins of soft tissues sarcomas during surgical treatment.
机译:我们提出了一种计算方法,用于分析光学相干断层扫描(OCT)图像以检测软组织肉瘤。该方法结合了从OCT图像的强度A线对信息的两个方面的定量分析。一个是强度A线的斜率,以dB为单位,它由组织的光学衰减特性决定;另一个是斜率去除强度A线的标准偏差(SD),其取决于组织结构特征。该方法在人脂肪,肌肉,高分化脂肪肉瘤(WDLS)和平滑肌肉瘤的离体组织样本中通过试点实验进行了测试。我们的结果证明了这种定量方法在区分软组织肉瘤和正常组织中的可行性。这项研究表明,OCT可能是自动和准确识别外科治疗期间软组织肉瘤切除边缘的一种潜在的计算机辅助手段。

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