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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Neural Coding of Interaural Time Differences with Bilateral Cochlear Implants in Unanesthetized Rabbits
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Neural Coding of Interaural Time Differences with Bilateral Cochlear Implants in Unanesthetized Rabbits

机译:麻醉兔双侧人工耳蜗的耳间时差的神经编码

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Although bilateral cochlear implants (CIs) provide improvements in sound localization and speech perception in noise over unilateral CIs, bilateral CI users' sensitivity to interaural time differences (ITDs) is still poorer than normal. In particular, ITD sensitivity of most CI users degrades with increasing stimulation rate and is lacking at the high carrier pulse rates used in CI processors to deliver speech information. To gain a better understanding of the neural basis for this degradation, we characterized ITD tuning of single neurons in the inferior colliculus (IC) for pulse train stimuli in an unanesthetized rabbit model of bilateral CIs. Approximately 73% of IC neurons showed significant ITD sensitivity in their overall firing rates. On average, ITD sensitivity was best for pulse rates near 80-160 pulses per second (pps) and degraded for both lower and higher pulse rates. The degradation in ITD sensitivity at low pulse rates was caused by strong, unsynchronized background activity that masked stimulus-driven responses in many neurons. Selecting synchronized responses by temporal windowing revealed ITD sensitivity in these neurons. With temporal windowing, both the fraction of ITD-sensitive neurons and the degree of ITD sensitivity decreased monotonically with increasing pulse rate. To compare neural ITD sensitivity to human performance in ITD discrimination, neural just-noticeable differences (JNDs) in ITD were computed using signal detection theory. Using temporal windowing at lower pulse rates, and overall firing rate at higher pulse rates, neural ITD JNDs were within the range of perceptual JNDs in human CI users over a wide range of pulse rates.
机译:尽管双侧人工耳蜗(CI)较单侧CI改善了声音的声音定位和语音感知能力,但双侧CI用户对耳间时差(ITD)的敏感性仍然比正常情况差。特别是,大多数CI用户的ITD灵敏度会随着刺激速率的增加而降低,并且缺少CI处理器用于传递语音信息的高载波脉冲速率。为了更好地了解这种降解的神经基础,我们在未麻醉的双侧CI兔模型中对下丘脑(IC)中单个神经元的ITD调整进行了脉冲训练。大约73%的IC神经元在其总体放电率中显示出显着的ITD敏感性。平均而言,ITD灵敏度最适合于每秒80-160脉冲(pps)的脉冲速率,而对于较低和较高的脉冲速率均降低。低脉冲频率下ITD敏感性的下降是由强烈的,未同步的背景活动引起的,该活动掩盖了许多神经元中刺激驱动的反应。通过时间窗选择同步响应揭示了这些神经元中的ITD敏感性。通过时间窗,ITD敏感神经元的分数和ITD敏感度随脉冲率的增加而单调降低。为了比较神经ITD对ITD识别中人的行为的敏感性,使用信号检测理论计算了ITD中神经的明显差异(JND)。在较低脉冲率下使用时间窗口,而在较高脉冲率下使用整体触发率,神经ITD JND在较宽的脉冲率范围内在人类CI用户的感知JND范围内。

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