Learning Architectures from an Extended Search Space for Language Modeling
Yinqiao Li, Chi Hu, Yuhao Zhang, Nuo Xu, Yufan Jiang, Tong Xiao, Jingbo Zhu, Tongran Liu, Changliang Li
摘要
Neural architecture search (NAS) has advanced significantly in recent years but most NAS systems restrict search to learning architectures of a recurrent or convolutional cell. In this paper, we extend the search space of NAS. In particular, we present a general approach to learn both intra-cell and inter-cell architectures (call it ESS). For a better search result, we design a joint learning method to perform intra-cell and inter-cell NAS simultaneously. We implement our model in a differentiable architecture search system. For recurrent neural language modeling, it outperforms a strong baseline significantly on the PTB and Wiki-Text data, with a new state-of-the-art on PTB. Moreover, the learned architectures show good transferability to other systems. E.g., they improve state-of-the-art systems on the CoNLL and WNUT named entity recognition (NER) tasks and CoNLL chunking task, indicating a promising line of research on large-scale prelearned architectures.
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引用它的顶会 Paper3
- Leveraging Similar Users for Personalized Language Modeling with Limited DataCharles Welch, Chenxi Gu, Jonathan K. Kummerfeld, Verónica Pérez-Rosas 等ACL 2022 · 被引用 37 次
- RankNAS: Efficient Neural Architecture Search by Pairwise RankingChi Hu, Chenglong Wang, Xiangnan Ma, Xia Meng 等EMNLP 2021 · 被引用 10 次
- Compositional Demographic Word EmbeddingsCharles Welch, Jonathan K. Kummerfeld, Verónica Pérez-Rosas, Rada MihalceaEMNLP 2020
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