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Discovering dimensions of perceived vocal expression in semi-structured, unscripted oral history accounts

机译:在半结构化,无文字的口述历史记录中发现感知到的声音表达的维度

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摘要

What do people hear in expressive, unprompted speech? And how can their descriptions be transformed into a representative set of dimensions of vocal expression? This paper presents a methodology for collecting user description of vocal expression, transforms the user descriptions into a set of measurable expressive dimensions, and derives a representative feature set and baseline classifiers across these dimensions. The resulting classifiers recognized the top 13 dimensions over an oral history corpus, with a maximum unweighted recall score of 80.5%.
机译:人们听到表达的言论,言论自题是什么?他们如何将其描述转换为声乐表达的代表性尺寸?本文提出了一种用于收集声乐表达式的用户描述的方法,将用户描述转换为一组可测量的富有敏感尺寸,并导出跨这些维度的代表特征集和基线分类器。由此产生的分类器在口头历史语料库中识别前13个维度,最大未加权召回得分为80.5 \%。

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