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Semantic segmentation for cancer detection in digital breast tomosynthesis

机译:语义分割在数字乳腺断层合成中检测癌症

摘要

A method, apparatus and non-transitory computer readable medium are for segmenting different types of structures, including cancerous lesions and regular structures like vessels and skin, in a digital breast tomosynthesis (DBT) volume. In an embodiment, the method includes: pre-classification of the DBT volume in dense and fatty tissue and based on the resu localizing a set of structures in the DBT volume by using a multi-stream deep convolutional neural network; and segmenting the localized structures by calculating a probability for belonging to a specific type of structure for each voxel in the DBT volume by using a deep convolutional neural network for providing a three-dimensional probabilistic map.
机译:一种方法,装置和非暂时性计算机可读介质,用于在数字乳房断层合成(DBT)容积中分割不同类型的结构,包括癌性病变以及诸如血管和皮肤的规则结构。在一个实施例中,该方法包括:在密集和脂肪组织中并基于结果对DBT体积进行预分类;通过使用多流深度卷积神经网络在DBT体积中定位一组结构;通过使用深度卷积神经网络提供三维概率图,为DBT体积中的每个体素计算属于特定类型结构的概率,从而对局部结构进行分割。

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