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Dilated Convolutions for Brain Tumor Segmentation in MRI Scans

机译:MRI扫描中脑肿瘤细分的扩张卷曲

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We present a novel method to detect and segment brain tumors in Magnetic Resonance Imaging scans using a novel network based on the Dilated Residual Network. Dilated convolutions provide efficient multi-scale analysis for dense prediction tasks without losing resolution by downsampling the input. To the best of our knowledge, our work is the first to evaluate a dilated residual network for brain tumor segmentation in magnetic resonance imaging scans. We train and evaluate our method on the Brain Tumor Segmentation (BraTS) 2017 challenge dataset. To address the severe label imbalance in the data, we adopt a balanced, patch-based sampling approach for training. An ablation study establishes the importance of residual connections in the performance of our network.
机译:我们使用基于扩张的剩余网络的新型网络介绍一种检测和分割磁共振成像扫描中的脑肿瘤的脑肿瘤。扩张的卷曲提供了致密预测任务的有效多尺度分析,而不会通过对输入采样来失去分辨率。据我们所知,我们的作品是第一个评估磁共振成像扫描中脑肿瘤细分的扩张残留网络。我们在脑肿瘤细分(BRATS)2017挑战数据集上培训和评估我们的方法。为了解决数据中的严重标签不平衡,我们采用了基于补丁的采样方法进行培训。一个消融研究在我们网络表现中建立了残余连接的重要性。

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