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An objective measure for selecting microphone modes in OMNI/DIR hearing aid circuits.

机译:在OMNI / DIR助听器电路中选择麦克风模式的客观措施。

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OBJECTIVES: Studies have shown that listener preferences for omnidirectional (OMNI) or directional (DIR) processing in hearing aids depend largely on the characteristics of the listening environment, including the relative locations of the listener, signal sources, and noise sources; and whether reverberation is present. Many modern hearing aids incorporate algorithms to switch automatically between microphone modes based on an analysis of the acoustic environment. Little work has been done, however, to evaluate these devices with respect to user preferences, or to compare the outputs of different signal processing algorithms directly to make informed choices between the different microphone modes. This study describes a strategy for automatically switching between DIR and OMNI microphone modes based on a direct comparison between acoustic speech signals processed by DIR and OMNI algorithms in the same listening environment. In addition, data are shown regarding how a decision to choose one microphone mode over another might change as a function of speech to noise ratio (SNR) and spatial orientation of the listener. DESIGN: Speech and noise signals were presented at a variety of SNR's and in different spatial orientations relative to a listener's head. Monaural recordings, made in both OMNI and DIR microphone processing modes, were analyzed using a model of auditory processing that highlights the spectral and temporal dynamics of speech. Differences between OMNI and DIR processing were expressed in terms of a modified spectrotemporal modulation index (mSTMI) developed specifically for this hearing aid application. Differences in mSTMI values were compared with intelligibility measures and user preference judgments made under the same listening conditions. RESULTS: A comparison between the results of the mSTMI analyses and behavioral data (intelligibility and preference judgments) showed excellent agreement, especially in stationary noise backgrounds. In addition, the mSTMI was found to be sensitive to changes in SNR as well as spatial orientation of the listener relative to signal and noise sources. Subsequent mSTMI analyses on hearing aid recordings obtained from real-life environments with more than one talker and modulated noise backgrounds also showed promise for predicting the preferred microphone setting in varied and complex listening environments.
机译:目的:研究表明,助听器对全向(OMNI)或定向(DIR)处理的收听者偏好在很大程度上取决于收听环境的特征,包括收听者的相对位置,信号源和噪声源;以及是否存在混响。许多现代助听器都结合了基于对声学环境的分析而在麦克风模式之间自动切换的算法。但是,针对用户偏好评估这些设备或直接比较不同信号处理算法的输出以在不同麦克风模式之间做出明智选择的工作很少。这项研究描述了一种基于DIR和OMNI算法在相同收听环境下处理的语音语音信号之间直接比较的自动在DIR和OMNI麦克风模式之间切换的策略。此外,还显示了有关如何选择一个麦克风模式而不是另一个麦克风模式的决定如何根据语音信噪比(SNR)和听众的空间方向而变化的数据。设计:语音和噪声信号以各种SNR和相对于听者头部的不同空间方向呈现。使用听觉处理模型来分析以OMNI和DIR麦克风处理模式制作的单声道录音,该模型突出了语音的频谱和时间动态。 OMNI和DIR处理之间的差异以专门为该助听器应用开发的改进的光谱时间调制指数(mSTMI)表示。将mSTMI值的差异与在相同聆听条件下做出的清晰度测度和用户偏好判断进行了比较。结果:mSTMI分析的结果与行为数据(可理解性和偏好判断)之间的比较显示出极好的一致性,尤其是在平稳噪声背景下。此外,还发现mSTMI对SNR的变化以及收听者相对于信号和噪声源的空间方向敏感。随后的mSTMI分析从具有多个讲话者和调制噪声背景的现实环境中获得的助听器记录进行分析,也显示出预测在各种复杂听音环境中首选麦克风设置的希望。

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