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Predicting dialogue acts for a speech-to-speech translation system

机译:预测对话行为为演讲到语音翻译系统

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Presents the application of statistical language modeling methods for the prediction of the next dialogue act. This prediction is used by different modules of the speech-to-speech translation system VERBMOBIL. The statistical approach uses deleted interpolation of n-gram frequencies as its basis and determines the interpolation weights by a modified version of the standard optimization algorithm. Additionally, we present and evaluate different approaches to improve the prediction process, e.g. including knowledge from a dialogue grammar. Evaluation shows that including the speaker information and mirroring the data delivers the best results.
机译:呈现统计语言建模方法的应用,以预测下一个对话法。这种预测由语音到语音翻译系统的不同模块使用VerbMobil使用。统计方法使用删除N-GR频率的插值作为其基础,并通过标准优化算法的修改版本确定插值权重。另外,我们展示并评估了不同的方法来改善预测过程,例如,包括来自对话语法的知识。评估表明,包括扬声器信息和镜像数据提供最佳结果。

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