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Local String Transduction as Sequence Labeling

机译:本地字符串转导作为序列标记

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We show that the general problem of string transduction can be reduced to the problem of sequence labeling. While character deletions and insertions are allowed in string transduction, they do not exist in sequence labeling. We show how to overcome this difference. Our approach can be used with any sequence labeling algorithm and it works best for problems in which string transduction imposes a strong notion of locality (no long range dependencies). We experiment with spelling correction for social media, OCR correction, and morphological inflection, and we see that it behaves better than seq2seq models and yields state-of-the-art results in several cases.
机译:我们表明,字符串转导的一般问题可以简化为序列标记问题。尽管在字符串转导中允许删除和插入字符,但在序列标记中不存在它们。我们展示了如何克服这种差异。我们的方法可以与任何序列标记算法一起使用,并且对于字符串转导强加了局部性的概念(无长范围依赖性)的问题最有效。我们对社交媒体的拼写校正,OCR校正和形态学变形进行了实验,我们发现它的性能优于seq2seq模型,并在某些情况下提供了最新的结果。

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