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Development and Current Status of the Cambridge Loudness Models

机译:剑桥响度模型的发展与现状

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摘要

This article reviews the evolution of a series of models of loudness developed in Cambridge, UK. The first model, applicable to stationary sounds, was based on modifications of the model developed by Zwicker, including the introduction of a filter to allow for the effects of transfer of sound through the outer and middle ear prior to the calculation of an excitation pattern, and changes in the way that the excitation pattern was calculated. Later, modifications were introduced to the assumed middle-ear transfer function and to the way that specific loudness was calculated from excitation level. These modifications led to a finite calculated loudness at absolute threshold, which made it possible to predict accurately the absolute thresholds of broadband and narrowband sounds, based on the assumption that the absolute threshold corresponds to a fixed small loudness. The model was also modified to give predictions of partial loudness—the loudness of one sound in the presence of another. This allowed predictions of masked thresholds based on the assumption that the masked threshold corresponds to a fixed small partial loudness. Versions of the model for time-varying sounds were developed, which allowed prediction of the masked threshold of any sound in a background of any other sound. More recent extensions incorporate binaural processing to account for the summation of loudness across ears. In parallel, versions of the model for predicting loudness for hearing-impaired ears have been developed and have been applied to the development of methods for fitting multichannel compression hearing aids.
机译:本文回顾了英国剑桥开发的一系列响度模型的演变。适用于平稳声音的第一个模型是基于Zwicker开发的模型的修改,包括引入滤波器以允许在计算激励模式之前通过外耳和中耳传递声音的效果,并改变了激励模式的计算方式。后来,对假定的中耳传递函数以及根据激励水平计算特定响度的方式进行了修改。这些修改导致在绝对阈值处计算出的响度有限,从而可以基于绝对阈值对应于固定的小响度的假设来准确预测宽带和窄带声音的绝对阈值。还对该模型进行了修改,以提供部分响度的预测,即一种声音在存在另一种声音时的响度。这允许基于掩蔽阈值对应于固定的小局部响度的假设来预测掩蔽阈值。开发了随时间变化的声音的模型版本,该模型允许预测任何其他声音的背景中任何声音的掩蔽阈值。最近的扩展结合了双耳处理,以说明整个耳朵的响度总和。并行地,已经开发了用于预测听力受损的耳朵的响度的模型版本,并将其应用于装配多通道压缩助听器的方法的开发中。

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