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OOV Word Detection using Hybrid Models with Mixed Types of Fragments

机译:使用具有混合片段类型的混合模型进行OOV单词检测

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This paper presents initial studies to improve the out-of-vocabulary (OOV) word detection performance by using mixed types of fragment units in one hybrid system. Three types of fragment units, subwords, syllables, and graphones. were combined in two different ways to build the hybrid lexicon and language model. The experimental results show that hybrid systems with mixed types of fragment units perform better than hybrid systems using only one type of fragment unit. After comparing the OOV word detection performance with the number and length of fragment units of each system, we proposed future work to better utilize mixed types of fragment units in a hybrid system.
机译:本文提出了通过在一个混合系统中使用片段单元的混合类型来提高词汇量(OOV)单词检测性能的初步研究。片段单元,子词,音节和音素的三种类型。以两种不同的方式进行组合以构建混合词典和语言模型。实验结果表明,具有混合类型片段单元的混合系统比仅使用一种类型片段单元的混合系统性能更好。在将OOV字检测性能与每个系统的片段单元的数量和长度进行比较之后,我们提出了未来的工作,以在混合系统中更好地利用片段单元的混合类型。

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