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首页> 外文期刊>International Journal of Industrial Ergonomics >Echo threshold between passive and electro-acoustic transmission paths in digital hearing protection devices
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Echo threshold between passive and electro-acoustic transmission paths in digital hearing protection devices

机译:数字听力保护设备中被动和电声传输路径之间的回声阈值

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摘要

Electronic hearing protection devices are increasingly used in noisy environments. Theses devices feature a miniaturized external microphone and internal loudspeaker in addition to an analog or digital electronic circuit. They can transmit useful audio signals such as speech and warning signals to the protected ear and can reduce the sound pressure level using dynamic range compression. In the case of a digital electronic circuit, the transmission of audio signals may be noticeably delayed because of the latency introduced by the digital signal processor and by the analog-to-digital and digital-to-analog converters. These delayed audio signals will hence interfere with the audio signals perceived naturally through the passive acoustical path of the device. The proposed study presents an original procedure to evaluate, for two representative passive earplugs, the shortest delay at which human listeners start to perceive two sounds composed of the signal transmitted through the electronic circuit and the passively transmitted signal. This shortest delay is called the echo threshold and represents the delay between the time of perception of one fused sound from two separate sounds. In this study, a transient signal, a clean speech signal, a speech signal corrupted by factory noise, and a speech signal corrupted by babble noise are used to determine the echo thresholds of the two earplugs. Twenty untrained listeners participated in this study, and were asked to determine the echo thresholds using a test software in which attenuated signals are delayed from the original signals in real-time. The findings show that when using hearing devices, the echo threshold depends on four parameters: (a) the attenuation function of the device, (b) the duration of the signal, (c) the level of the background noise and (d) the type of background noise. Defined here as the shortest time delay at which at least 20% of the participants noticed an echo, the echo threshold was found to be 8 ms for a bell signal, 16 ms for clean speech and 22 ms for speech corrupted by babble noise when using a shallow earplug fit. When using a deep fit, the echo threshold was found to be 18 ms for a bell signal and 26 ms for clean speech and 68 ms for speech in factory. No echo threshold could be clearly determined for the speech signal in babble noise with a deep earplug fit. (C) 2016 Elsevier B.V. All rights reserved.
机译:电子听力保护装置越来越多地用于嘈杂的环境中。这些设备除了具有模拟或数字电子电路外,还具有小型化的外部麦克风和内部扬声器。它们可以将有用的音频信号(例如语音和警告信号)传输到受保护的耳朵,并可以使用动态范围压缩来降低声压级。在数字电子电路的情况下,由于数字信号处理器以及模数和数模转换器引入的等待时间,音频信号的传输可能会明显延迟。因此,这些延迟的音频信号将干扰通过设备的被动声学路径自然感知的音频信号。拟议的研究提出了一种原始程序,用于评估两个代表性的无源耳塞,人类听众开始感知由电子电路传输的信号和无源传输的信号组成的两种声音时的最短延迟。这个最短的延迟称为回声阈值,表示从两种分离的声音中感知一种融合声音的时间之间的延迟。在这项研究中,使用瞬态信号,干净的语音信号,被工厂噪声破坏的语音信号和被ba啪声噪声破坏的语音信号来确定两个耳塞的回声阈值。 20名未经训练的听众参加了这项研究,并被要求使用测试软件确定回声阈值,在该软件中,衰减信号会实时从原始信号中延迟出来。研究结果表明,在使用助听器时,回声阈值取决于四个参数:(a)助听器的衰减功能,(b)信号的持续时间,(c)背景噪声的水平和(d)背景噪音的类型。此处定义为最短的时间延迟,至少有20%的参与者注意到回声,使用时发现回声阈值对于铃声信号为8毫秒,对于干净语音为16毫秒,对于由于ba不休声而损坏的语音为22毫秒浅耳塞。当使用深度配合时,在工厂中,对于铃声信号,回声阈值为18 ms,对于干净的语音为26 ms,对于语音为68 ms。对于深沉的耳塞配合声,无法清晰地确定语音信号的回声阈值。 (C)2016 Elsevier B.V.保留所有权利。

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