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Computational Modelling of the Recognition of Foreign-Accented Speech

机译:识别外商言论的计算建模

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In foreign-accented speech, pronunciation typically deviates from the canonical form to some degree. For native listeners, it has been shown that word recognition is more difficult for strongly-accented words than for less strongly-accented words. Furthermore recognition of strongly-accented words becomes easier with additional exposure to the foreign accent. In this paper, listeners' behaviour was simulated with Fine-tracker, a computational model of word recognition that uses real speech as input. The simulations showed that, in line with human listeners, 1) Fine-Tracker's recognition outcome is modulated by the degree of accentedness and 2) it improves slightly after brief exposure with the accent. On the level of individual words, however, Fine-tracker failed to correctly simulate listeners' behaviour, possibly due to differences in overall familiarity with the chosen accent (German-accented Dutch) between human listeners and Fine-Tracker.
机译:在外语的演讲中,发音通常偏离规范形式到某种程度上。对于本机听众,已经表明,对于强烈的单词而言,Word识别比对于更强烈的令人强调的单词更难。此外,识别强调的单词随着外国口音的额外暴露而变得更容易。在本文中,用细追踪器模拟听众的行为,使用真实语音作为输入的单词识别的计算模型。模拟表明,符合人类听众,1)细追踪器的识别结果是通过缩小程度调节的,2)在短暂暴露于口音后略微改善。然而,在单个单词的水平上,细追踪器未能正确地模拟听众的行为,可能是由于人类听众和微跟踪者之间的所选口音(德国重点荷兰语)的整体熟悉程度的差异。

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