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Dynamic topic-based adaptation of language models: a comparison between different approaches

机译:动态基于主题的语言模型调整:不同方法之间的比较

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摘要

This paper presents a dynamic LM adaptation based on the topic that has been identified on a speech segment. We use LSA and the given topic labels in the training dataset to obtain and use the topic models. We propose a dynamic language model adaptation to improve the recognition performance in "a two stages" AST system. The final stage makes use of the topic identification with two variants: the first on uses just the most probable topic and the other one depends on the relative distances of the topics that have been identified. We perform the adaptation of the LM as a linear interpolation between a background model and topic-based LM. The interpolation weight id dynamically adapted according to different parameters. The proposed method is evaluated on the Spanish partition of the EPPS speech database. We achieved a relative reduction in WER of 11.13% over the baseline system which uses a single blackground LM.
机译:本文提出了一种基于语音段上已确定的主题的动态LM自适应。我们在训练数据集中使用LSA和给定的主题标签来获取和使用主题模型。我们提出了一种动态语言模型调整,以提高“两阶段” AST系统中的识别性能。最后一个阶段使用主题标识,有两个变体:第一个仅使用最可能的主题,而另一个则取决于已确定的主题的相对距离。我们将LM作为背景模型和基于主题的LM之间的线性插值来执行。插值权重id根据不同参数动态调整。该方法在EPPS语音数据库的西班牙语分区上进行了评估。与使用单个黑底LM的基准系统相比,我们的WER相对降低了11.13%。

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