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Towards the automatic study of the vocal tract from magnetic resonance images.

机译:从磁共振图像走向声带的自动研究。

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Over the last few decades, researchers have been investigating the mechanisms involved in speech production. Image analysis can be a valuable aid in the understanding of the morphology of the vocal tract. The application of magnetic resonance imaging to study these mechanisms has been proven to be reliable and safe. We have applied deformable models in magnetic resonance images to conduct an automatic study of the vocal tract; mainly, to evaluate the shape of the vocal tract in the articulation of some European Portuguese sounds, and then to successfully automatically segment the vocal tract's shape in new images. Thus, a point distribution model has been built from a set of magnetic resonance images acquired during artificially sustained articulations of 21 sounds, which successfully extracts the main characteristics of the movements of the vocal tract. The combination of that statistical shape model with the gray levels of its points is subsequently used to build active shape models and active appearance models. Those models have then been used to segment the modeled vocal tract into new images in a successful and automatic manner. The computational models have thus been revealed to be useful for the specific area of speech simulation and rehabilitation, namely to simulate and recognize the compensatory movements of the articulators during speech production.
机译:在过去的几十年中,研究人员一直在研究语音产生所涉及的机制。图像分析可以帮助理解声道的形态。磁共振成像技术用于研究这些机制已被证明是可靠和安全的。我们已经在磁共振图像中应用了可变形模型来对声道进行自动研究。主要是评估一些欧洲葡萄牙语声音的发音中声道的形状,然后成功地在新图像中自动分割声道的形状。因此,已经从在21种声音的人工持续性发音期间获取的一组磁共振图像中建立了点分布模型,从而成功地提取了声道运动的主要特征。该统计形状模型及其点的灰度级的组合随后用于构建活动形状模型和活动外观模型。这些模型随后被用于以成功和自动的方式将建模的声道分割成新的图像。因此,已经揭示出该计算模型对于语音模拟和康复的特定领域是有用的,即在语音产生期间模拟和识别发音器的补偿运动。

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