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Controllable Paraphrase Generation with a Syntactic Exemplar

机译:具有句法范例的可控制复述生成

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Prior work on controllable text generation usually assumes that the controlled attribute can take on one of a small set of values known a priori. In this work, we propose a novel task, where the syntax of a generated sentence is controlled rather by a sentential exemplar. To evaluate quantitatively with standard metrics, we create a novel dataset with human annotations. We also develop a variational model with a neural module specifically designed for capturing syntactic knowledge and several multitask training objectives to promote disentangled representation learning. Empirically, the proposed model is observed to achieve improvements over baselines and learn to capture desirable characteristics.
机译:关于可控文本生成的现有工作通常假定受控属性可以采用已知先验的一小部分值中的一个。在这项工作中,我们提出了一项新颖的任务,其中,所生成句子的语法是由句型示例控制的。为了使用标准指标进行定量评估,我们创建了带有人工注释的新颖数据集。我们还开发了带有神经模块的变分模型,该模块专门设计用于捕获语法知识,并提供了多个多任务训练目标来促进解开表示学习。从经验上看,可以观察到所提出的模型可以实现对基线的改进,并学会捕获期望的特征。

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