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High speed imaging and measurement of laryngeal vibration during phonation using ultrafast ultrasonography: A preliminary study

机译:使用超快速超声对声像时的喉部振动进行高速成像和测量:初步研究

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Observation and measurement of laryngeal vibration during phonation is essential for study of voice production. Due to the advantages in noninvasiveness and penetration, conventional B mode ultrasonography has been introduced in our previous studies of laryngeal tissue vibration. However, its main drawbacks are the insufficient frame rate, drastically narrowed field of view(FOV) and line to line acquisition lag. Thus, ultrafast ultrasonography that offers a much wider FOV and ultrahigh frame rate is introduced in the present study for observation and measurement of laryngeal vibration. Ultrafast ultrasonography is achieved by emitting a plane wave using the full aperture of a linear array transducer on a scanner(SonixTouch, Ultrasonix, Canada) and then applying beamforming on received raw RF data. The FOV covers the whole glottis as well as sub- and supraglottal structures of the larynx. Non-stationary laryngeal vibration are recorded at 5000 fps when subjects start voicing vowel /u:/ during experiments. To measure the vibration, a RF speckle tracking algorithm based on normalized cross correlation is used. The cross correlation coefficient between the displaced and best matched reference speckle is also obtained at each point within the region of interest. The electroglottogram(EGG) is recorded as a reference indicator of vibration phase. The vibration of the vocal fold can be easily identified and shows clear correlation with EGG waveform. The non-stationary process of the vibration of sub and supra glottal tissue during onset of voicing is well quantified with high temporal resolution, while the vibration of the body and cover of the vocal fold appears chaotic and against mechanical principle. Measurement of vibration of the vocal fold body is compromised by its low signal-to-noise ratio. Measurement of vibration of the vocal fold edge is compromised by severe signal decorrelation. Nevertheless, ultrafast ultrasonography still can be used in visualization and me- surement of the vibration and deformation of certain structures in the larynx. Thus, there is potential value of this technique being used in estimation of mechanical properties of laryngeal tissue.
机译:观察和测量发声期间的喉部振动对于研究发声至关重要。由于无创性和穿透性的优势,传统的B型超声检查已被引入我们以前的喉部组织振动研究中。但是,它的主要缺点是帧速率不足,视场(FOV)大大变窄以及线对线采集滞后。因此,在本研究中引入了可提供更宽的FOV和超高帧频的超快超声检查技术,用于观察和测量喉部振动。通过使用扫描仪(SonixTouch,Ultrasonix,加拿大)上的线性阵列换能器的整个孔径发射平面波,然后对接收到的原始RF数据进行波束成形,可以实现超快超声检查。 FOV覆盖整个声门以及喉的声门下和声门上结构。在实验过程中,当受试者开始给元音/ u:/发声时,会以5000 fps的速度记录非固定的喉咙振动。为了测量振动,使用了基于归一化互相关的RF斑点跟踪算法。还可以在感兴趣区域内的每个点处获得位移和最佳匹配的参考散斑之间的互相关系数。电描记图(EGG)被记录为振动相位的参考指标。声带的振动很容易识别,并且与EGG波形具有明显的相关性。语音开始时,声门下和上声门组织振动的非平稳过程可以通过高时间分辨率很好地量化,而身体和声带覆盖物的振动则显得混乱并且违反机械原理。人声折叠体的振动测量因其低信噪比而受到影响。严重的信号去相关影响了声带边缘振动的测量。然而,超快速超声检查仍可用于可视化和测量喉部某些结构的振动和变形。因此,该技术的潜在价值可用于估计喉组织的机械性能。

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