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The EarLens system: new sound transduction methods.

机译:EarLens系统:新的声音转换方法。

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The hypothesis is tested that an open-canal hearing device, with a microphone in the ear canal, can be designed to provide amplification over a wide bandwidth and without acoustic feedback. In the design under consideration, a transducer consisting of a thin silicone platform with an embedded magnet is placed directly on the tympanic membrane. Sound picked up by a microphone in the ear canal, including sound-localization cues thought to be useful for speech perception in noisy environments, is processed and amplified, and then used to drive a coil near the tympanic-membrane transducer. The perception of sound results from the vibration of the transducer in response the electromagnetic field produced by the coil. Sixteen subjects (ranging from normal-hearing to moderately hearing-impaired) wore this transducer for up to a 10-month period, and were monitored for any adverse reactions. Three key functional characteristics were measured: (1) the maximum equivalent pressure output (MEPO) of the transducer; (2) the feedback gain margin (GM), which describes the maximum allowable gain before feedback occurs; and (3) the tympanic-membrane damping effect (D(TM)), which describes the change in hearing level due to placement of the transducer on the eardrum. Results indicate that the tympanic-membrane transducer remains in place and is well tolerated. The system can produce sufficient output to reach threshold for those with as much as 60 dBHL of hearing impairment for up to 8 kHz in 86% of the study population, and up to 11.2 kHz in 50% of the population. The feedback gain margin is on average 30 dB except at the ear-canal resonance frequencies of 3 and 9 kHz, where the average was reduced to 12 dB and 23 dB, respectively. The average value of D(TM) is close to 0 dB everywhere except in the 2-4 kHz range, where it peaks at 8dB. A new alternative system that uses photonic energy to transmit both the signal and power to a photodiode and micro-actuator on an EarLens platform is also described.
机译:该假设经过测试,可以设计出在耳道中带有麦克风的开放式耳道式听力设备,以在较宽的带宽上提供放大功能,而无需声学反馈。在所考虑的设计中,由薄硅树脂平台和嵌入式磁体组成的换能器直接放置在鼓膜上。由耳道中的麦克风拾取的声音,包括被认为对嘈杂环境中的语音感知有用的声音定位线索,经过处理和放大,然后用于驱动鼓膜换能器附近的线圈。响应于线圈产生的电磁场,声音的感知来自于换能器的振动。 16名受试者(从正常听力到中度听力障碍)佩戴了该换能器长达10个月,并监测了任何不良反应。测量了三个关键功能特性:(1)传感器的最大等效压力输出(MEPO); (2)反馈增益裕度(GM),它描述了发生反馈之前的最大允许增益; (3)鼓膜阻尼效应(DTM),它描述了由于换能器放在鼓膜上而引起的听力水平的变化。结果表明鼓膜换能器保持在原位并且被很好地耐受。该系统可以为86%的研究人群中高达8 kHz的听力障碍者和高达50%的人群中高达11.2 kHz的听力障碍者提供足够的输出,以达到阈值。反馈增益裕度平均为30 dB,除了耳道共振频率为3 kHz和9 kHz时,平均分别降低到12 dB和23 dB。除了在2-4 kHz范围内达到峰值的8dB之外,DTM的平均值在所有地方都接近0 dB。还描述了一种新的替代系统,该系统使用光子能量将信号和功率传输到EarLens平台上的光电二极管和微致动器。

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