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COMPUTER-AIDED DIAGNOSTIC TOOL FOR EARLY DETECTION OF PROSTATE CANCER

机译:用于早期检测前列腺癌的计算机辅助诊断工具

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In this paper, we propose a novel non-invasive framework for the early diagnosis of prostate cancer from diffusion-weighted magnetic resonance imaging (DW-MRI). The proposed approach consists of three main steps. In the first step, the prostate is localized and segmented based on a new level-set model. In the second step, the apparent diffusion coefficient (ADC) of the segmented prostate volume is mathematically calculated for different b-values. To preserve continuity, the calculated ADC values are normalized and refined using a Generalized Gauss-Markov Random Field (GGMRF) image model. The cumulative distribution function (CDF) of refined ADC for the prostate tissues at different b-values are then constructed. These CDFs are considered as global features describing water diffusion which can be used to distinguish between benign and malignant tumors. Finally, a deep learning auto-encoder network, trained by a stacked non-negativity constraint algorithm (SNCAE), is used to classify the prostate tumor as benign or malignant based on the CDFs extracted from the previous step. Preliminary experiments on 53 clinical DW-MRI data sets resulted in 100% correct classification, indicating the high accuracy of the proposed framework and holding promise of the proposed CAD system as a reliable non-invasive diagnostic tool.
机译:在本文中,我们提出了一种新的非侵入性框架,用于从扩散加权磁共振成像(DW-MRI)的前列腺癌早期诊断。建议的方法包括三个主要步骤。在第一步中,前列腺基于新的级别模型本地化和分割。在第二步中,为不同的B值来数学计算分段前列腺体积的表观扩散系数(ADC)。为了保持连续性,使用通用高斯-Markov随机场(GGMRF)图像模型来标准化和改进计算的ADC值。然后构建了不同B值的前列腺组织的精制ADC的累积分布函数(CDF)。这些CDF被认为是描述水扩散的全局特征,其可用于区分良性和恶性肿瘤。最后,由堆叠的非消极性约束算法(SNCAE)训练的深度学习自动编码网络用于将前列腺肿瘤分类为良性或恶性基于从前一步骤中提取的CDF。 53临床DW-MRI数据集的初步实验导致了100%正确的分类,表明所提出的框架和拟议CAD系统的承诺作为可靠的非侵入性诊断工具的高精度。

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