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Generating Chinese Classical Poems with Statistical Machine Translation Models

机译:用统计机器翻译模型生成中国古典诗歌

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This paper describes a statistical approach to generation of Chinese classical poetry and proposes a novel method to automatically evaluate poems. The system accepts a set of keywords representing the writing intents from a writer and generates sentences one by one to form a completed poem. A statistical machine translation (SMT) system is applied to generate new sentences, given the sentences generated previously. For each line of sentence a specific model specially trained for that line is used, as opposed to using a single model for all sentences. To enhance the coherence of sentences on every line, a coherence model using mutual information is applied to select candidates with better consistency with previous sentences. In addition, we demonstrate the effectiveness of the BLEU metric for evaluation with a novel method of generating diverse references.
机译:本文介绍了中国古典诗歌生成的统计方法,提出了一种自动评估诗歌的新方法。该系统接受一组代表作者写入意图的一组关键字,并一个接一个地生成句子以形成完成的诗。考虑到先前生成的句子,应用统计机器翻译(SMT)系统来生成新句子。对于每行句子,使用专门为该线路培训的特定模型,而不是使用所有句子的单个模型。为了增强每一行的句子的一致性,使用相互信息的相干模型应用于选择具有更好句子的候选者。此外,我们展示了BLEU度量的有效性,以通过生成不同参考的新方法评估评估。

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