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Differential Diagnosis for Pancreatic Cysts in CT Scans Using Densely-Connected Convolutional Networks

机译:使用密集连接的卷积网络对CT扫描胰囊肿的鉴别诊断

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The lethal nature of pancreatic ductal adenocarcinoma (PDAC) calls for early differential diagnosis of pancreatic cysts, which are identified in up to 16% of normal subjects, and some of them may develop into PDAC. Pancreatic cysts have a large variation in size and shape, and the precise segmentation of them remains rather challenging, which restricts the computer-aided interpretation of CT images acquired for differential diagnosis. We propose a computer-aided framework for early differential diagnosis of pancreatic cysts without pre-segmenting the lesions using densely-connected convolutional networks (Dense-Net). The Dense-Net learns high-level features from whole abnormal pancreas and builds mappings between medical imaging appearance to different pathological types of pancreatic cysts. To enhance the clinical applicability, we integrate saliency maps in the framework to assist the physicians to understand the decision of the deep learning method. The test on a cohort of 206 patients with 4 pathologically confirmed subtypes of pancreatic cysts has achieved an overall accuracy of 72.8%, which is significantly higher than the baseline accuracy of 48.1%. The superior performance on this challenging dataset strongly supports the clinical potential of our developed method.
机译:胰腺导管腺癌(PDAC)的致命性呼叫胰囊肿早期差异诊断,其在高达16%的正常受试者中鉴定,其中一些可能会发展成PDAC。胰腺囊肿的尺寸和形状具有很大的变化,它们的精确分割仍然是挑战性,这限制了所获得的CT图像对鉴别诊断的计算机辅助解释。我们提出了一种计算机辅助框架,用于胰囊肿的早期差异诊断,而无需使用密集连接的卷积网络(密集网)预先分割病变。密集网从整个异常胰腺中学习高级功能,并在医学成像外观之间构建映射到不同的病理类型的胰腺囊肿。为了提高临床适用性,我们将框架中的显着性图集成,以帮助医生了解深度学习方法的决定。对4种病理证实胰囊肿的4例患者的群组的测试已经实现了72.8%的总精度,显着高于基线精度为48.1%。这一具有挑战性的数据集的卓越性能强烈支持开发方法的临床潜力。

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