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Pitch discrimination of patterned electric stimulation

机译:图案化电刺激的音高辨别

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One reason for the poor pitch performance in current cochlear-implant users may be the highly synchronized neural firing in electric hearing that lacks stochastic properties of neural firing in normal acoustic hearing. This study used three different electric stimulation patterns, jittered, probabilistic, and auditory-model-generated pulses, to mimic some aspects of the normal neural firing pattern in acoustic hearing. Pitch discrimination was measured at standard frequencies of 100, 250, 500, and 1000 Hz on three Nucleus-24 cochlear-implant users. To test the utility of the autocorrelation pitch perception model in electric hearing, one, two, and four electrodes were stimulated independently with the same patterned electric stimulation. Results showed no improvement in performance with any experimental pattern compared to the fixed-rate control. Pitch discrimination was actually worsened with the jittered pattern at low frequencies (125 and 250 Hz) than that of the control, suggesting that externally introduced stochastic properties do not improve pitch perception in electric stimulation. The multiple-electrode stimulation did not improve performance but did not degrade performance either. The present results suggest that both "the right time and the right place" may be needed to restore normal pitch perception in cochlear-implant users. (c) 2005 Acoustical Society of America.
机译:当前的人工耳蜗使用者音调表现不佳的原因之一可能是电听力中高度同步的神经放电,而正常听力中缺乏神经放电的随机特性。这项研究使用了三种不同的电刺激模式,即抖动的,概率的和听觉模型生成的脉冲,以模拟听觉中正常神经放电模式的某些方面。在三个Nucleus-24人工耳蜗使用者上,以100、250、500和1000 Hz的标准频率测量音高判别。为了测试自相关音高感知模型在电听中的效用,用相同的图案化电刺激分别刺激一个,两个和四个电极。结果表明,与固定速率对照相比,任何实验模式下的性能都没有改善。在低频(125和250 Hz)下,抖动模式的音高分辨力实际上比对照组差,这表明外部引入的随机特性并不能改善电刺激中的音高感知。多电极刺激不能改善性能,但是也不会降低性能。目前的结果表明,可能需要“在正确的时间在正确的位置”来恢复人工耳蜗使用者的正常音调知觉。 (c)2005年美国声学学会。

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