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Peter J. Liu
Peter J. Liu
ex-Google Research, Brain Team, peterjliu.com
Verified email at google.com - Homepage
Title
Cited by
Cited by
Year
Exploring the limits of transfer learning with a unified text-to-text transformer
C Raffel, N Shazeer, A Roberts, K Lee, S Narang, M Matena, Y Zhou, W Li, ...
Journal of Machine Learning Research, 2019
291912019
Get To The Point: Summarization with Pointer-Generator Networks
A See, PJ Liu, CD Manning
ACL 2017, 2017
41672017
Scalable and accurate deep learning with electronic health records
A Rajkomar, E Oren, K Chen, AM Dai, N Hajaj, M Hardt, PJ Liu, X Liu, ...
NPJ digital medicine 1 (1), 18, 2018
32822018
Pegasus: Pre-training with extracted gap-sentences for abstractive summarization
J Zhang, Y Zhao, M Saleh, PJ Liu
ICML 2020, 2019
29412019
Gemma 2: Improving open language models at a practical size
G Team, M Riviere, S Pathak, PG Sessa, C Hardin, S Bhupatiraju, ...
arXiv preprint arXiv:2408.00118, 2024
16912024
Generating Wikipedia by Summarizing Long Sequences
PJ Liu, M Saleh, E Pot, G Ben, R Sepassi, L Kaiser, N Shazeer
ICLR 2018, 2018
11662018
Likelihood ratios for out-of-distribution detection
J Ren, PJ Liu, E Fertig, J Snoek, R Poplin, M Depristo, J Dillon, ...
Advances in neural information processing systems 32, 2019
9492019
Slic-hf: Sequence likelihood calibration with human feedback
Y Zhao, R Joshi, T Liu, M Khalman, M Saleh, PJ Liu
arXiv preprint arXiv:2305.10425, 2023
4072023
Unsupervised Pretraining for Sequence to Sequence Learning
P Ramachandran, PJ Liu, QV Le
EMNLP 2017, 2016
3742016
Online and Linear-Time Attention by Enforcing Monotonic Alignments
C Raffel, T Luong, PJ Liu, RJ Weiss, D Eck
ICML 2017, 2017
3512017
Statistical rejection sampling improves preference optimization
T Liu, Y Zhao, R Joshi, M Khalman, M Saleh, PJ Liu, J Liu
arXiv preprint arXiv:2309.06657, 2023
3102023
Beyond Word Importance: Contextual Decomposition to Extract Interactions from LSTMs
WJ Murdoch, PJ Liu, B Yu
ICLR 2018, 2018
2892018
MeanSum: a neural model for unsupervised multi-document abstractive summarization
E Chu, P Liu
International Conference on Machine Learning, 1223-1232, 2019
2832019
Assessing The Factual Accuracy of Generated Text
B Goodrich, V Rao, M Saleh, PJ Liu
KDD 2019, 2019
2742019
Exploring the limits of transfer learning with a unified text-to-text transformer. arXiv
C Raffel, N Shazeer, A Roberts, K Lee, S Narang, M Matena, Y Zhou, W Li, ...
Access mode: https://arxiv. org/abs, 1910
2611910
Beyond human data: Scaling self-training for problem-solving with language models
A Singh, JD Co-Reyes, R Agarwal, A Anand, P Patil, X Garcia, PJ Liu, ...
arXiv preprint arXiv:2312.06585, 2023
2062023
Out-of-distribution detection and selective generation for conditional language models
J Ren, J Luo, Y Zhao, K Krishna, M Saleh, B Lakshminarayanan, PJ Liu
arXiv preprint arXiv:2209.15558, 2022
1772022
Calibrating sequence likelihood improves conditional language generation
Y Zhao, M Khalman, R Joshi, S Narayan, M Saleh, PJ Liu
arXiv preprint arXiv:2210.00045, 2022
1762022
Small-scale proxies for large-scale transformer training instabilities
M Wortsman, PJ Liu, L Xiao, K Everett, A Alemi, B Adlam, JD Co-Reyes, ...
arXiv preprint arXiv:2309.14322, 2023
1392023
Gemma 2: Improving open language models at a practical size, 2024
G Team, M Riviere, S Pathak, PG Sessa, C Hardin, S Bhupatiraju, ...
URL https://arxiv. org/abs/2408.00118 1 (3), 2024
1312024
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