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Survey of the State of the Art in Natural Language Generation: Core tasks, applications and evaluation

机译:自然语言生成中最新技术调查:核心任务,应用和评估

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This paper surveys the current state of the art in Natural Language Generation (NLG), defined as the task of generating text or speech from non-linguistic input. A survey of NLG is timely in view of the changes that the field has undergone over the past two decades, especially in relation to new (usually data-driven) methods, as well as new applications of NLG technology. This survey therefore aims to (a) give an up-to-date synthesis of research on the core tasks in NLG and the architectures adopted in which such tasks are organised; (b) highlight a number of recent. research topics that have arisen partly as a result of growing synergies between NW and other areas of artificial intelligence; (c) draw attention to the challenges in NLG evaluation, relating them to similar challenges faced in other areas of NLP, with an emphasis on different evaluation methods and the relationships between them.
机译:本文在自然语言生成(NLG)中调查本领域的当前状态,定义为从非语言输入生成文本或语音的任务。 鉴于过去二十年的变化,对NLG的调查是及时的,特别是与新的(通常是数据驱动的)方法以及NLG技术的新应用相关。 因此,本调查旨在(a)对NLG中的核心任务进行最新综合,并采用这些任务所采用的架构; (b)突出最近的一些。 由于NW和其他人工智能领域之间的增长增长而产生的研究主题部分是部分地出现的; (c)提请注意NLG评估中的挑战,将它们与NLP其他地区面临的类似挑战,重点是不同的评估方法和它们之间的关系。

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