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Tongue contour extraction from ultrasound images using image parts

机译:使用图像部分从超声图像中提取舌轮廓

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In this work we propose automatic tongue contour extraction from ultrasound images based on Convolutional Neural Networks (CNN). The developed deep neural network was trained with ultrasound image parts. In training step the distances of the image patch centers from nearest tongue contour was used as the class label. By taking advantage of the fact that images consist of video frames, the time information was used as training input parameter. In the test phase, the image parts obtained by using the sliding window method are given as input to the training model and distance classes are obtained. A class that is close to zero means a position close to the tongue contour. Candidate points for the tongue contour were created using the centers points of the parts. The tongue contour is extracted by fitting a 3rddegree polynomial on center points of candidates. The work is completed by comparing the manually marked contour with the automatically found contour. The dataset consists of ultrasound videos taken in the experimental environment.
机译:在这项工作中,我们提出了基于卷积神经网络(CNN)从超声图像中自动提取舌轮廓的方法。所开发的深度神经网络已通过超声图像部件进行了训练。在训练步骤中,图像补丁中心与最近的舌头轮廓的距离用作类别标签。利用图像由视频帧组成的事实,将时间信息用作训练输入参数。在测试阶段,将使用滑动窗口方法获得的图像部分作为训练模型的输入,并获得距离类别。接近零的等级表示接近舌头轮廓的位置。舌轮廓的候选点是使用零件的中心点创建的。通过拟合3来提取舌头轮廓 rd 候选中心点上的度多项式。通过将手动标记的轮廓与自动找到的轮廓进行比较,即可完成工作。该数据集由在实验环境中拍摄的超声视频组成。

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