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Deep Learning Techniques for Colorectal Cancer Tissue Classification

机译:结直肠癌组织分类的深度学习技术

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The objective assessment of histological images is of paramount importance for the early diagnosis of colorectal cancer (CRC). However, the subjectivity of the evaluation interobserver variation and the traditional visual assessment is time-consuming and costly. On the other hand, the automatic recognition and analysis for digital pathology, the challenging remains due to the variability of the histological images containing more than one tissue type and characteristics of the histological images. In this work, we applied different deep learning techniques based on Convolutional Neural Networks (CNNs) to differentiate colorectal cancer from healthy tissues and benign lesions. Firstly, we trained the deep convolution neural network models and in the parts of network layers are extracting modified parameters to identify different tissue types that are abundant in histological images of CRC. Secondly, we used open dataset of histological images of human colorectal cancer including eight different types of tissue to assess the identification rate. In our results, the colorectal cancer tissue identification accuracy rates are significantly superior to the existing known methods. Therefore, the proposed approach could help doctors to enhance their diagnostic abilities and make better clinical decisions for patients.
机译:对组织学图像的客观评估对于结肠直肠癌(CRC)的早期诊断至关重要。然而,评估interobserver变异的主观性和传统的视觉评估是耗时和昂贵的。另一方面,对数字病理学的自动识别和分析,挑战仍然是由于含有多于一种组织类型和组织学图像特性的组织学图像的可变性。在这项工作中,我们基于卷积神经网络(CNNS)应用了不同的深度学习技术,以区分从健康组织和良性病变的结肠直肠癌。首先,我们培训了深度卷积神经网络模型,并且在网络层的部分中提取修改的参数以识别CRC的组织学图像中丰富的不同组织类型。其次,我们使用了人结肠直肠癌的组织学图像的开放数据集,包括八种不同类型的组织来评估识别率。在我们的结果中,结肠直肠癌组织鉴定精度率明显优于现有的已知方法。因此,拟议的方法可以帮助医生提高他们的诊断能力,并为患者做出更好的临床决策。

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