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Design of multi-feature class models for Speech Recognition Security systems with under-resourced languages

机译:资源不足语言的语音识别安全系统的多特征类模型设计

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One of the goals of Speech Recognition Security (SRS) systems is to have appropriately tools to recognize speech password spoken based on elements such as words, sub-word or speakers. The main goal of the present work is to design robust ASR systems based on alternative ways to the classical evaluation rates, which often depend on the vocabulary of the task and on the language resources available. The drawback of this approach is that it is not straightforward that a system with a slightly lower WER during tests will adapt properly to new utterances, and this is much more sensible when the baseline system has a big error rate since there are many features that could be improved. This tends to be the case of under-resourced languages, since the lack of resources has a great impact in the performance of the system and not all the standard methods are suitable to any kind of language or task. The novel approach is to choose balanced multi-features of the acoustic models and the sub-word units based on rates related to entropy, mutual information and similitude. Selected models are integrated in an ontology-driven Audio Information Retrieval system that suits the requirements of under-resourced languages.
机译:语音识别安全(SRS)系统的目标之一是要有适当的工具来识别基于单词,子单词或说话者之类的元素而说出的语音密码。当前工作的主要目的是基于经典评估率的替代方法设计健壮的ASR系统,该方法通常取决于任务的词汇和可用的语言资源。这种方法的缺点是,在测试过程中WER稍低的系统是否能够正确适应新的话语并不是一件容易的事,而当基线系统的错误率很大时,这会更加明智,因为有很多功能可以有待改进。资源匮乏的情况往往如此,因为资源的缺乏对系统的性能有很大的影响,并且并非所有标准方法都适合于任何一种语言或任务。新颖的方法是根据与熵,互信息和相似度有关的比率来选择声学模型和子词单元的平衡多特征。所选模型已集成到本体驱动的音频信息检索系统中,该系统可满足资源不足语言的要求。

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