Adaptive input representations for neural language modeling
Alexei Baevski and Michael Auli · 2019
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Training language gans from scratch
Cyprien de Masson d’Autume, Shakir Mohamed, Mihaela Rosca, and Jack Rae · 2019
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BERT: pre-training of deep bidirectional transformers for language understanding
Jacob Devlin, Ming-Wei Chang, Kenton Lee, and Kristina Toutanova · 2019
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Implicit generation and generalization in energy-based models
Yilun Du and Igor Mordatch · 2019
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GLTR: statistical detection and visualization of generated text
Sebastian Gehrmann, Hendrik Strobelt, and Alexander M. Rush · 2019
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Bias correction of learned generative models using likelihood-free importance weighting
Aditya Grover, Jiaming Song, Alekh Agarwal, Kenneth Tran, Ashish Kapoor, Eric Horvitz, and Stefano Ermon · 2019
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Unifying human and statistical evaluation for natural language generation
Tatsunori B Hashimoto, Hugh Zhang, and Percy Liang · 2019
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Lagging inference networks and posterior collapse in variational autoencoders
Junxian He, Daniel Spokoyny, Graham Neubig, and Taylor Berg-Kirkpatrick · 2019
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Ctrl: A conditional transformer language model for controllable generation
Original
Nitish Shirish Keskar, Bryan McCann, Lav R. Varshney, Caiming Xiong, and Richard Socher · 2019
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Roberta: A robustly optimized bert pretraining approach
Original
Yinhan Liu, Myle Ott, Naman Goyal, Jingfei Du, Mandar Joshi, Danqi Chen, Omer Levy, Mike Lewis, Luke Zettlemoyer, and Veselin Stoyanov · 2019
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Learning non-convergent non-persistent short-run mcmc toward energy-based model
Erik Nijkamp, Mitch Hill, Song-Chun Zhu, and Ying Nian Wu · 2019
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fairseq: A fast, extensible toolkit for sequence modeling
Myle Ott, Sergey Edunov, Alexei Baevski, Angela Fan, Sam Gross, Nathan Ng, David Grangier, and Michael Auli · 2019
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Global autoregressive models for data-efficient sequence learning
Tetiana Parshakova, Jean-Marc Andreoli, and Marc Dymetman · 2019
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URL https://github.com/openai/gpt-2-output-dataset/blob/master/README.md
Alec Radford and Jeff Wu, 2019 · 2019
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Language models are unsupervised multitask learners
Alec Radford, Jeffrey Wu, Rewon Child, David Luan, Dario Amodei, and Ilya Sutskever · 2019
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Learning energy-based spatial-temporal generative convnets for dynamic patterns
Jianwen Xie, Song-Chun Zhu, and Ying Nian Wu · 2019
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Language models are few-shot learners
Tom B Brown, Benjamin Mann, Nick Ryder, Melanie Subbiah, Jared Kaplan, Prafulla Dhariwal, Arvind Neelakantan, Pranav Shyam, Girish Sastry, Amanda Askell, et al · 2020
Closest in time.
Language gans falling short
Massimo Caccia, Lucas Caccia, William Fedus, Hugo Larochelle, Joelle Pineau, and Laurent Charlin · 2020
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The curious case of neural text degeneration
Ari Holtzman, Jan Buys, Maxwell Forbes, and Yejin Choi · 2020
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Automatic detection of generated text is easiest when humans are fooled
Daphne Ippolito, Daniel Duckworth, Chris Callison-Burch, and Douglas Eck · 2020
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Energy-based reranking: Improving neural machine translation using energy-based models
Original
Subhajit Naskar, Amirmohammad Rooshenas, Simeng Sun, Mohit Iyyer, and Andrew McCallum · 2020
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Coldgans: Taming language gans with cautious sampling strategies
Original
Thomas Scialom, Paul-Alexis Dray, Sylvain Lamprier, Benjamin Piwowarski, and Jacopo Staiano · 2020
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Neural text generation with unlikelihood training
Sean Welleck, Ilia Kulikov, Stephen Roller, Emily Dinan, Kyunghyun Cho, and Jason Weston · 2020
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Trading off diversity and quality in natural language generation
Original
Hugh Zhang, Daniel Duckworth, Daphne Ippolito, and Arvind Neelakantan · 2020
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