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Extracting Physiologically Relevant Parameters of Vocal Folds From High-Speed Video Image Series

机译:从高速视频图像序列中提取人耳褶的生理相关参数

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In this paper, a new method is proposed to extract the physiologically relevant parameters of the vocal fold mathematic model including masses, spring constants and damper constants from high-speed video (HSV) image series. This method uses a genetic algorithm to optimize the model parameters until the model and the realistic vocal folds have similar dynamic behavior. Numerical experiments theoretically test the validity of the proposed parameter estimation method. Then the validated method is applied to extract the physiologically relevant parameters from the glottal area series measured by HSV in an excised larynx model. With the estimated parameters, the vocal fold model accurately describes the vibration of the observed vocal folds. Further studies show that the proposed parameter estimation method can successfully detect the increase of longitudinal tension due to the vocal fold elongation from the glottal area signal. These results imply the potential clinical application of this method in inspecting the tissue properties of vocal fold
机译:本文提出了一种从高速视频(HSV)图像序列中提取人耳褶皱数学模型的生理相关参数(包括质量,弹簧常数和阻尼常数)的新方法。该方法使用遗传算法来优化模型参数,直到模型和逼真的人声折痕具有相似的动态行为为止。数值实验从理论上验证了所提出的参数估计方法的有效性。然后,采用经验证的方法,从经切除的喉部模型中的HSV测量的声门区域序列中提取生理相关参数。利用估计的参数,人声折痕模型可以准确地描述观察到的人声折痕的振动。进一步的研究表明,所提出的参数估计方法可以从声门区域信号中成功检测到由于声带伸长而引起的纵向张力的增加。这些结果表明该方法在检查声带组织特性方面的潜在临床应用

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