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首页> 外文期刊>Journal of Real-Time Image Processing >Multi-branch sharing network for real-time 3D brain tumor segmentation
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Multi-branch sharing network for real-time 3D brain tumor segmentation

机译:用于实时3D脑肿瘤细分的多分支共享网络

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摘要

Brain tumors are one of the most lethal diseases in the world. The segmentation of brain tumor is of great significance for physician in formulating appropriate diagnostic and treatment plans, not only accurate but also efficient 3D segmentation algorithms are urgently demanded in clinical practice. Nowadays, several 3D convolution neural networks have achieved impressive segmentation performance. However, these architectures come with extremely high computational overheads due to the extra depth dimensionality in 3D convolution, which may make these models prohibitive from practical large-scale clinic application. In this work, we aim at designing a more efficient and lightweight network without accuracy reduction for real-time segmentation of magnetic resonance images. To this end, we propose a multi-branch sharing network which consists of novel multi-branch sharing units. Different from other works, our proposed multi-branch sharing units focus the information sharing and communication between grouped layers by leveraging a Multiplexer operation, which can reduce the computational cost significantly while maintaining decent performance. Extensive experimental results on the BraTS2018 challenge dataset show that the proposed architecture achieve real-time inference while maintaining high accuracy for 3D brain magnetic resonance image segmentation.
机译:脑肿瘤是世界上最致命的疾病之一。对于制定适当的诊断和治疗计划,脑肿瘤的分割对于医生来说具有重要意义,不仅准确,而且在临床实践中迫切需要高效的3D分段算法。如今,几个3D卷积神经网络已经实现了令人印象深刻的分割性能。然而,由于3D卷积中的额外深度维度,这些架构具有极高的计算开销,这可能使这些模型从实用的大规模诊所应用中达到巨大。在这项工作中,我们的目标是设计更高效和轻量级的网络,而无需准确降低磁共振图像的实时分割。为此,我们提出了一个多分支共享网络,由新型多分支共享单位组成。与其他作品不同,我们所提出的多分支共享单位通过利用多路复用器操作将分组层之间的信息共享和通信聚焦,这可以在保持体面的性能同时显着降低计算成本。在Brats2018挑战数据集上的广泛实验结果表明,所提出的架构实现了实时推断,同时保持3D脑磁共振图像分割的高精度。

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