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Inferring Rules for Finding Syllables in Spanish

机译:推断西班牙语中音节的规则

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摘要

This paper presents how machine learning can be used to automatically obtain rules to divide words in Spanish into syllables. Machine learning is used in this case not only as a classifier to decide when a rule is used but to generate meaningful rules which then can be used to syllabify new words. Syllabification is an important task in speech recognition and synthesis since every syllable represents the sound in a single effort of articulation. Experiments were carried out using an Inductive Logic Programming (ILP) tool. The experiments were made on different sets of words to ascertain the importance of the number of examples in obtaining useful rules. The results show that it is possible to automatically obtain rules for syllabifying.
机译:本文介绍了如何使用机器学习来自动获取规则,以将西班牙语中的单词分为音节。在这种情况下,机器学习不仅用作分类器来决定何时使用规则,还可以生成有意义的规则,然后将其用于对新单词进行音节化。音节化是语音识别和合成中的重要任务,因为每个音节都通过一次发音就代表了声音。实验使用感应逻辑编程(ILP)工具进行。实验是针对不同的单词集进行的,以确定示例数量在获取有用规则中的重要性。结果表明可以自动获得音节规则。

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