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首页> 外文期刊>The Journal of the Acoustical Society of America >Predictions of diotic tone-in-noise detection based on a nonlinear optimal combination of energy, envelope, and fine-structure cues
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Predictions of diotic tone-in-noise detection based on a nonlinear optimal combination of energy, envelope, and fine-structure cues

机译:基于能量,包络线和精细结构线索的非线性最佳组合的二分音色噪声检测预测

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摘要

Tone-in-noise detection has been studied for decades; however, it is not completely understood what cue or cues are used by listeners for this task. Model predictions based on energy in the critical band are generally more successful than those based on temporal cues, except when the energy cue is not available. Nevertheless, neither energy nor temporal cues can explain the predictable variance for all listeners. In this study, it was hypothesized that better predictions of listeners' detection performance could be obtained using a nonlinear combination of energy and temporal cues, even when the energy cue was not available. The combination of different cues was achieved using the logarithmic likelihood-ratio test (LRT), an optimal detector in signal detection theory. A nonlinear LRT-based combination of cues was proposed, given that the cues have Gaussian distributions and the covariance matrices of cue values from noise-alone and tone-plus-noise conditions are different. Predictions of listeners' detection performance for three different sets of reproducible noises were computed with the proposed model. Results showed that predictions for hit rates approached the predictable variance for all three datasets, even when an energy cue was not available.
机译:噪声检测已经研究了数十年;但是,对于此任务,听众使用的是哪种提示还是完全不了解。通常,基于关键频带能量的模型预测要比基于时间线索的模型预测更为成功,除非没有能量线索。然而,能量和时间线索都不能解释所有听众的可预测方差。在这项研究中,假设即使没有能量提示,也可以使用能量和时间提示的非线性组合来更好地预测听众的检测性能。对数似然比测试(LRT)是信号检测理论中的最佳检测器,可以实现不同提示的组合。提出了基于非线性LRT的提示组合,因为提示具有高斯分布,并且来自单独噪声和音加噪声条件下提示值的协方差矩阵不同。使用该模型计算了听众对三组不同的可再现噪声的检测性能的预测。结果表明,即使没有能量提示,命中率的预测也接近所有三个数据集的可预测方差。

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