1KU Leuven Department of Neurosciences, ExpORL, Belgium; 2The Bionics Institute, Melbourne, Victoria, Australia; and 3Department of Otolaryngology and Medical Bionics, The University of Melbourne, Victoria, Australia.
Ear Hear. 2013 Nov-Dec;34(6):685-700. doi: 10.1097/AUD.0b013e31829d14cb.
The addition of acoustic stimulation to electric stimulation via a cochlear implant has been shown to be advantageous for speech perception in noise, sound quality, music perception, and sound source localization. However, the signal processing and fitting procedures of current cochlear implants and hearing aids were developed independently, precluding several potential advantages of bimodal stimulation, such as improved sound source localization and binaural unmasking of speech in noise. While there is a large and increasing population of implantees who use a hearing aid, there are currently no generally accepted fitting methods for this configuration. It is not practical to fit current commercial devices to achieve optimal binaural loudness balance or optimal binaural cue transmission for arbitrary signals and levels. There are several promising experimental signal processing systems specifically designed for bimodal stimulation. In this article, basic psychophysical studies with electric acoustic stimulation are reviewed, along with the current state of the art in fitting, and experimental signal processing techniques for electric acoustic stimulation.
通过人工耳蜗将声学刺激与电刺激相结合已被证明有利于噪声环境下的言语感知、音质、音乐感知和声源定位。然而,当前的人工耳蜗和助听器的信号处理和适配程序是独立开发的,从而排除了双模态刺激的几个潜在优势,例如改善声源定位和噪声中语音的双耳掩蔽。虽然有越来越多的植入者使用助听器,但目前针对这种配置还没有普遍接受的适配方法。要使当前的商业设备达到最佳双耳响度平衡或任意信号和水平的最佳双耳线索传递,是不切实际的。有几个有前途的实验信号处理系统是专门为双模态刺激设计的。本文回顾了电声刺激的基本心理物理研究,以及电声刺激的适配现状和实验信号处理技术。