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METHOD AND SYSTEM FOR INTRACEREBRAL HEMORRHAGE DETECTION AND SEGMENTATION BASED ON A MULTI-TASK FULLY CONVOLUTIONAL NETWORK

机译:基于多任务全卷积网络的脑内出血检测与分割方法及系统

摘要

Embodiments of the disclosure provide systems and methods for detecting an intracerebral hemorrhage (ICH). The system includes a communication interface configured to receive a sequence of image slices and an end-to-end multi-task learning model. The sequence of image slices is the head scan images of a subject acquired by an image acquisition device. The end-to-end multi-task learning model includes an encoder, a bi-directional Convolutional Recurrent Neural Network (ConvRNN), a decoder, and a classifier. The system further includes at least one processor configured to extract feature maps from each image slice using the encoder, capture contextual information between adjacent image slices using the bi-directional ConvRNN, and detect the ICH of the subject using the classifier based on the extracted feature maps of the image slices and the contextual information or segment each image slice using the decoder to obtain an ICH region based on the extracted feature maps of the image slice.
机译:本公开的实施例提供了用于检测脑出血(ICH)的系统和方法。该系统包括配置为接收图像切片序列的通信接口和端到端多任务学习模型。图像切片序列是由图像获取装置获取的对象的头部扫描图像。端到端多任务学习模型包括编码器,双向卷积递归神经网络(ConvRNN),解码器和分类器。该系统还包括至少一个处理器,该至少一个处理器被配置为使用编码器从每个图像切片中提取特征图,使用双向ConvRNN捕获相邻图像切片之间的上下文信息,并基于所提取的特征使用分类器来检测对象的ICH。图像切片的地图和上下文信息,或使用解码器对每个图像切片进行分割,以基于提取的图像切片的特征图获得ICH区域。

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