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Computation of physiological human vocal fold parameters by mathematical optimization of a biomechanical model

机译:通过生物力学模型的数学优化计算人的生理声带参数

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摘要

With the use of an endoscopic, high-speed camera, vocal fold dynamics may be observed clinically during phonation. However, observation and subjective judgment alone may be insufficient for clinical diagnosis and documentation of improved vocal function, especially when the laryngeal disease lacks any clear morphological presentation. In this study, biomechanical parameters of the vocal folds are computed by adjusting the corresponding parameters of a three-dimensional model until the dynamics of both systems are similar. First, a mathematical optimization method is presented. Next, model parameters (such as pressure, tension and masses) are adjusted to reproduce vocal fold dynamics, and the deduced parameters are physiologically interpreted. Various combinations of global and local optimization techniques are attempted. Evaluation of the optimization procedure is performed using 50 synthetically generated data sets. The results show sufficient reliability, including 0.07 normalized error, 96% correlation, and 91% accuracy. The technique is also demonstrated on data from human hemilarynx experiments, in which a low normalized error (0.16) and high correlation (84%) values were achieved. In the future, this technique may be applied to clinical high-speed images, yielding objective measures with which to document improved vocal function of patients with voice disorders.
机译:使用内窥镜高速相机,可以在发声期间临床观察声带动态。但是,仅靠观察和主观判断可能不足以进行临床诊断和声音功能改善的记录,特别是当喉病缺乏任何清晰的形态学表现时。在这项研究中,通过调整三维模型的相应参数,直到两个系统的动力学相似,才能计算出声带的生物力学参数。首先,提出了一种数学优化方法。接下来,调整模型参数(例如压力,张力和质量)以重现声带动态,并从生理角度解释推导的参数。尝试了全局和局部优化技术的各种组合。使用50个综合生成的数据集对优化过程进行评估。结果显示出足够的可靠性,包括0.07的归一化误差,96%的相关性和91%的准确性。这项技术还通过来自人类喉部实验的数据进行了证明,其中获得了较低的归一化误差(0.16)和较高的相关性(84%)值。将来,该技术可能会应用于临床高速图像,从而产生客观的措施来记录语音障碍患者的语音功能。

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