论文标题

关于神经钥匙塑料生成的实证研究

An Empirical Study on Neural Keyphrase Generation

论文作者

Meng, Rui, Yuan, Xingdi, Wang, Tong, Zhao, Sanqiang, Trischler, Adam, He, Daqing

论文摘要

近年来,神经钥匙拼(KPG)的作品蓬勃发展,包括发布了几个大型数据集和许多针对它们的新型号。随着深度学习研究的发展,毕马威任务上的模型绩效大大提高。但是,在不同的模型设计之间缺乏全面的比较,并且对可能影响KPG系统的概括性能的相关因素进行了详尽的研究。在这项实证研究中,我们旨在通过提供广泛的实验结果并分析影响KPG模型的普遍性的最关键因素来填补这一空白。我们希望这项研究可以帮助阐明围绕毕马威会任务的一些不确定性,并促进对此主题的未来研究。

Recent years have seen a flourishing of neural keyphrase generation (KPG) works, including the release of several large-scale datasets and a host of new models to tackle them. Model performance on KPG tasks has increased significantly with evolving deep learning research. However, there lacks a comprehensive comparison among different model designs, and a thorough investigation on related factors that may affect a KPG system's generalization performance. In this empirical study, we aim to fill this gap by providing extensive experimental results and analyzing the most crucial factors impacting the generalizability of KPG models. We hope this study can help clarify some of the uncertainties surrounding the KPG task and facilitate future research on this topic.

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