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Broadband hyperspectral imaging for breast tumor detection using spectral and spatial information

机译:使用光谱和空间信息进行乳腺肿瘤检测的宽带高光谱成像

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摘要

Complete tumor removal during breast-conserving surgery remains challenging due to the lack of optimal intraoperative margin assessment techniques. Here, we use hyperspectral imaging for tumor detection in fresh breast tissue. We evaluated different wavelength ranges and two classification algorithms; a pixel-wise classification algorithm and a convolutional neural network that combines spectral and spatial information. The highest classification performance was obtained using the full wavelength range (450-1650 nm). Adding spatial information mainly improved the differentiation of tissue classes within the malignant and healthy classes. High sensitivity and specificity were accomplished, which offers potential for hyperspectral imaging as a margin assessment technique to improve surgical outcome.
机译:由于缺乏最佳的术中切缘评估技术,在保乳手术中完全切除肿瘤仍然具有挑战性。在这里,我们将高光谱成像用于新鲜乳腺组织中的肿瘤检测。我们评估了不同的波长范围和两种分类算法;像素分类算法和结合光谱和空间信息的卷积神经网络。使用全波长范围(450-1650 nm)可获得最高的分类性能。添加空间信息主要改善了恶性和健康类别中组织类别的分化。实现了高灵敏度和特异性,这为高光谱成像作为提高手术结果的余量评估技术提供了潜力。

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