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3D deep feature fusion in contrast-enhanced MR for malignancy characterization of hepatocellular carcinoma

机译:3D对比度增强肝细胞癌恶性肿瘤MR中的深度特征融合

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The malignancy of hepatocellular carcinoma (HCC) is of great significance to prognosis. Recently, deep feature in the arterial phase of Contrast-enhanced MR has been shown to be superior to texture features for malignancy characterization of HCCs. However, such extracted deep feature of HCCs was limited to be 2D, which apparently disregards the contextual information of the third dimension in volumes. Furthermore, only arterial phase was used for deep feature extraction, ignoring the impact of other phases in Contrast-enhanced MR for malignancy characterization. To further enhance volumetric spatial information and take full advantage of multi-phasic information in Contrast-enhanced MR for malignancy characterization of HCC, this study proposes a systematic method to automatically extract 3D deep feature of HCCs by utilizing 3D convolution neural network (CNN), followed by deep feature fusion from multiple phases of Contrast-enhanced MR for more accurate malignancy characterization. Experimental results on 46 clinical patients with Contrast-enhanced MR images show several intriguing conclusions as follows: (1) 3D deep feature outperforms 2D deep feature for malignancy characterization; (2) fusion of 3D deep features from multiple phases of Contrast-enhanced MR yields better performance for malignancy characterization; (3) 3D deep features in Arterial phase is best, followed by portal vein phase and pre-contrast phase for malignancy characterization.
机译:肝细胞癌(HCC)的恶性肿瘤对预后具有重要意义。最近,对比增强MR的动脉阶段的深度特征被证明优于HCC的恶性表征的纹理特征。然而,HCC的这种提取的深度特征仅限于2D,这显然无视第三维的上下文信息。此外,仅使用动脉阶段进行深度特征提取,忽略对比增强的恶性表征中其他相的影响。为了进一步增强体积空间信息并充分利用与HCC的对比度增强的对比度的多相信息,提出了通过利用3D卷积神经网络(CNN)来自动提取HCC的3D深度特征的系统方法,其次是从对比度增强MR的多阶段进行深度特征融合,以获得更准确的恶性表征。 46临床患者对比增强MR图像的实验结果表明了几种有趣的结论,如下所示:(1)3D深度特征优于2D恶性特征的深度特征; (2)来自对比度增强MR的多阶段的3D深度融合产生了更好的恶性表征性能; (3)动脉阶段的3D深度特征是最佳的,其次是门静脉相和恶性表征的预造影阶段。

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