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ANALYSIS OF ACOUSTIC-SEMANTIC RELATIONSHIP FOR DIVERSELY ANNOTATED REAL-WORLD AUDIO DATA

机译:用于多样注释的现实世界音频数据的声学语义关系分析

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A common problem of freely annotated or user contributed audio databases is the high variability of the labels, related to homonyms, synonyms, plurals, etc. Automatically re-labeling audio data based on audio similarity could offer a solution to this problem. This paper studies the relationship between audio and labels in a sound event database, by evaluating semantic similarity of labels of acoustically similar sound event instances. The assumption behind the study is that acoustically similar events are annotated with semantically similar labels. Indeed, for 43% of the tested data, there was at least one in ten acoustically nearest neighbors having a synonym as label, while the closest related term is on average one level higher or lower in the semantic hierarchy.
机译:自由注释或用户贡献的音频数据库的常见问题是标签的高可变性,与同音义,同义词,复数等相关的标签。基于音频相似性自动重新标记音频数据可以为此问题提供解决方案。本文通过评估声学上类似的声音事件实例的标签的语义相似性,研究了声音事件数据库中音频和标签之间的关系。研究背后的假设是声学上类似的事件用语义相似的标签注释。实际上,对于43%的测试数据,十个声学上最近的邻居中至少有一个是标签的同义词,而最接近的相关术语在语义层次结构中的平均一个级别或更低。

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