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Exploiting a Probabilistic Hierarchical Model for Generation

机译:利用概率分层模型进行发电

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Previous stochastic approaches to generation do not include a tree-based representation of syntax. While this may be adequate or even advantageous for some applications, other applications profit from using as much syntactic knowledge as is available, leaving to a stochastic model only those issues that are not determined by the grammar. We present initial results showing that a tree-based model derived from a tree-annotated corpus improves on a tree model derived from an unannotated corpus, and that a tree-based stochastic model with a hand-crafted grammar outperforms both.
机译:先前的随机生成方法不包括语法的基于树的表示。尽管这对于某些应用程序可能是足够的,甚至是有利的,但其他应用程序会从使用尽可能多的语法知识中受益,仅将那些语法未确定的问题留给随机模型。我们提供的初步结果表明,从树注释语料库派生的基于树的模型对从未注释注释语料库派生的树模型进行了改进,并且具有手工语法的基于树的随机模型的性能均优于两者。

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