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A new Epsilon Filter for Efficient Composition of Weighted Finite-State Transducers

机译:一种新型的Epsilon滤波器,可有效组成加权有限状态传感器

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In this paper we propose a new composition algorithm for weighted finite-states transducers that are more and more used for speech and pattern recognition applications. Composition joins multiple transducers into one. We have implemented an embedded speech based dialog system for steering applications. Therefore regular grammars are very useful, but they may enlarge strongly by determinization. Composition using the sequential or the matching epsilon-filter does not perform optimal without determinization. Our new algorithm combines the advantages of these two epsilon-filters for size reduction. So composition and decoding time can be saved. It can be applied to many current algorithms including on-the-fly ones.
机译:在本文中,我们为加权有限状态换能器提出了一种新的合成算法,该算法越来越多地用于语音和模式识别应用。合成将多个换能器合并为一个。我们已经为转向应用程序实现了基于嵌入式语音的对话系统。因此,常规语法非常有用,但是通过确定性语法可能会大大扩展。如果没有确定性,使用顺序或匹配的ε滤波器的合成将无法达到最佳效果。我们的新算法结合了这两种epsilon滤波器的优势,可减小尺寸。因此可以节省合成和解码时间。它可以应用于许多当前算法,包括即时算法。

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