Volumetric Multimodality Neural Network For Brain Tumor Segmentation

被引:18
|
作者
Silvana Castillo, Laura [1 ]
Alexandra Daza, Laura [1 ]
Carlos Rivera, Luis [1 ]
Arbelaez, Pablo [1 ]
机构
[1] Univ Los Andes, Biomed Engn Dept, Carrera 1 18A-12, Bogota, Colombia
来源
13TH INTERNATIONAL CONFERENCE ON MEDICAL INFORMATION PROCESSING AND ANALYSIS | 2017年 / 10572卷
关键词
Semantic segmentation; Brain tumor; Deep learning; MRI;
D O I
10.1117/12.2285942
中图分类号
R-058 [];
学科分类号
摘要
Brain lesion segmentation is a challenging biomedical problem. Here we present a convolutional neural network that produces a semantic segmentation of brain tumors, capable of processing volumetric information from multiple MRI modalities at the same time. This results in the ability to learn from small training datasets and highly imbalanced data. We present a new architecture with three parallel contracting pathways that receive inputs in different resolution and then merges their results using three fully connected layers. We tested our method over the 2015 BraTS Challenge dataset, reaching an average dice coefficient of 84%.
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页数:8
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