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Rule acquisition for a new speech translation method with waveforms using inductive learning

机译:基于归纳学习的波形新语音翻译方法的规则获取

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摘要

Conventional speech translation is a integration of the three processing techniques that contain several complicated parts. Generally, realizing the speech translation had a condition that speech had been transformed to the characteristics. However, achieving high translation performance is like combination among all processings. It is very difficult because each processing is so complicated and has many problems. Then, we propose a new speech translation method that independent on any characteristics of all languages. Our approach hiss some advantages that we use time-varying characteristics of speech without transform to characteristics and we would prevent declining the precision of translation by omitting some processings that were indispensable for traditional methods: morphological analysis, syntactic analysis and others.
机译:常规语音翻译是包含几种复杂部分的三种处理技术的集成。通常,实现语音翻译的条件是语音已转变为特征。但是,实现高翻译性能就像所有处理之间的结合。这是非常困难的,因为每个处理都非常复杂并且存在许多问题。然后,我们提出了一种新的语音翻译方法,该方法独立于所有语言的任何特征。我们的方法具有一些优势,即我们使用了随时间变化的语音特征而无需转换为特征,并且通过省略一些传统方法必不可少的处理方法(形态分析,句法分析等),可以防止翻译的准确性下降。

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