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耳蜗振动测量对侧骨导传播的影响。

Implications for contralateral bone-conducted transmission as measured by cochlear vibrations.

机构信息

ENT Department, Sahlgrenska University Hospital, Göteborg, Sweden.

出版信息

Otol Neurotol. 2011 Feb;32(2):192-8. doi: 10.1097/MAO.0b013e3182009f16.

DOI:10.1097/MAO.0b013e3182009f16
PMID:21131884
Abstract

HYPOTHESIS

The velocity response at the contralateral cochlea from bone-conducted (BC) stimulation depends on the stimulation position.

BACKGROUND

BC sound transmission in the human skull is complex and differs from air-conducted sound. BC sound stimulates both cochleae with different amplitudes and time delays influencing hearing perception in a way that is not completely understood. One important parameter is the stimulation position on the human skull.

METHOD

By applying BC stimulation at 8 positions on both sides of 7 human cadaver skulls, the contralateral velocity response of the cochlear promontory was investigated in the frequency range of 0.1 to 10 kHz. Using previous data from ipsilateral stimulation, the transcranial transmission (TT) and effects of bilateral stimulation to one cochlea was calculated.

RESULTS

The contralateral transmission from the 8 positions showed small differences, but the TT showed a generally increased cochlear separation when the stimulation position approached the cochlea. The effect of simultaneous bilateral stimulation was calculated, showing a low-frequency negative effect for correlated signals, whereas uncorrelated signals gave 3-dB gain. At higher frequencies, there was less interaction of the combined stimulation because of the greater intercochlear separation. Also, the greatest time difference between ipsilateral transmission and contralateral transmission was at positions close to the cochlea.

CONCLUSION

The stimulation position only slightly affects the amplitude and phase of the contralateral cochlear velocity response. However, because of the great influence from the ipsilateral transmission, a position close to the cochlea would be beneficial for patients with bilateral BC hearing aids.

摘要

假设

骨导(BC)刺激对对侧耳蜗的速度响应取决于刺激位置。

背景

人类颅骨中的 BC 声音传输复杂,与空气传导声音不同。BC 声音以不同的幅度刺激两个耳蜗,并通过尚未完全理解的方式影响听觉感知,其时间延迟也会有所不同。一个重要参数是颅骨上的刺激位置。

方法

通过在 7 个人体头颅骨的两侧的 8 个位置施加 BC 刺激,研究了耳蜗隆起的对侧速度响应在 0.1 到 10 kHz 的频率范围内的情况。利用来自同侧刺激的先前数据,计算了颅间传输(TT)和对一侧耳蜗的双侧刺激的影响。

结果

8 个位置的对侧传输显示出较小的差异,但 TT 显示出当刺激位置接近耳蜗时,耳蜗分离度普遍增加。同时计算了双侧刺激的效果,对于相关信号显示出低频负效应,而对于不相关信号则给出 3dB 的增益。在更高的频率下,由于较大的耳蜗间分离,组合刺激的相互作用较小。此外,同侧传输和对侧传输之间的最大时间差出现在接近耳蜗的位置。

结论

刺激位置仅略微影响对侧耳蜗速度响应的幅度和相位。然而,由于同侧传输的巨大影响,靠近耳蜗的位置对双侧 BC 助听器的患者有益。

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