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首页> 外文期刊>The Journal of Artificial Intelligence Research >A Global Model for Concept-to-Text Generation
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A Global Model for Concept-to-Text Generation

机译:概念到文本生成的全球模型

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Concept-to-text generation refers to the task of automatically producing textual output from non-linguistic input. We present a joint model that captures content selection ("what to say") and surface realization ("how to say") in an unsupervised domain-independent fashion. Rather than breaking up the generation process into a sequence of local decisions, we define a probabilistic context-free grammar that globally describes the inherent structure of the input (a corpus of database records and text describing some of them). We recast generation as the task of finding the best derivation tree for a set of database records and describe an algorithm for decoding in this framework that allows to intersect the grammar with additional information capturing fluency and syntactic well-formedness constraints. Experimental evaluation on several domains achieves results competitive with state-of-the-art systems that use domain specific constraints, explicit feature engineering or labeled data.
机译:概念到文本的生成是指从非语言输入自动生成文本输出的任务。我们提出了一种联合模型,该模型以无监督的领域独立方式捕获内容选择(“说什么”)和表面实现(“怎么说”)。我们没有将生成过程分解为一系列本地决策,而是定义了一种概率无关上下文的语法,该语法全局描述了输入的固有结构(数据库记录的语料库和描述其中一些内容的文本)。我们将生成重铸为寻找一组数据库记录的最佳派生树的任务,并描述了在此框架中进行解码的算法,该算法允许将语法与捕获流利性和句法格式正确性约束的其他信息相交。与多个使用领域特定约束,显式特征工程或标记数据的最新系统相比,对多个领域的实验评估可获得与之相竞争的结果。

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