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Mathew Hardy
Mathew Hardy
Andra namnMatthew Hardy, Mathew D. Hardy
Verifierad e-postadress på princeton.edu - Startsida
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Embers of autoregression: Understanding large language models through the problem they are trained to solve
RT McCoy, S Yao, D Friedman, M Hardy, TL Griffiths
arXiv preprint arXiv:2309.13638, 2023
1302023
Large language models meet cognitive science: Llms as tools, models, and participants
M Hardy, I Sucholutsky, B Thompson, T Griffiths
Proceedings of the annual meeting of the cognitive science society 45 (45), 2023
302023
Embers of autoregression show how large language models are shaped by the problem they are trained to solve
RT McCoy, S Yao, D Friedman, MD Hardy, TL Griffiths
Proceedings of the National Academy of Sciences 121 (41), e2322420121, 2024
232024
Optimal nudging for cognitively bounded agents: A framework for modeling, predicting, and controlling the effects of choice architectures.
F Callaway, M Hardy, TL Griffiths
Psychological Review 130 (6), 1457, 2023
162023
How do humans overcome individual computational limitations by working together?
N Vélez, B Christian, M Hardy, BD Thompson, TL Griffiths
Cognitive science 47 (1), e13232, 2023
112023
Resampling reduces bias amplification in experimental social networks
MD Hardy, BD Thompson, PM Krafft, TL Griffiths
Nature Human Behaviour, 1-15, 2023
8*2023
Overcoming individual limitations through distributed computation: Rational information accumulation in multigenerational populations
MD Hardy, PM Krafft, B Thompson, TL Griffiths
Topics in Cognitive Science 14 (3), 550-573, 2022
82022
Optimal nudging
F Callaway, MD Hardy, TL Griffiths
Proceedings of the Annual Meeting of the Cognitive Science Society 42, 2020
72020
AI-generated visuals of car-free US cities help improve support for sustainable policies
R Dubey, MD Hardy, TL Griffiths, R Bhui
Nature Sustainability 7 (4), 399-403, 2024
62024
When a language model is optimized for reasoning, does it still show embers of autoregression? An analysis of OpenAI o1
RT McCoy, S Yao, D Friedman, MD Hardy, TL Griffiths
arXiv preprint arXiv:2410.01792, 2024
42024
Population-level amplification of perceptual bias.
MD Hardy, B Thompson, PM Krafft, T Griffiths
CogSci, 2020
22020
Improving out-of-population prediction: The complementary effects of model assistance and judgmental bootstrapping
MD Hardy, S Zhang, J Hullman, JM Hofman, DG Goldstein
International Journal of Forecasting, 2024
2024
Improving Choice by Automatically Restructuring Decision Environments
MD Hardy
Princeton University, 2024
2024
Using Large Language Models to Predict Responses to Public Opinion Polls
M Hardy
78th Annual AAPOR Conference, 2023
2023
Using resource-rational analysis to model pre-choice and post-choice suggestions
M Hardy, F Callaway, T Griffiths
OSF, 2020
2020
Population-level amplification of individual biases
M Hardy, B Thompson, PM Krafft, T Griffiths
OSF, 2019
2019
Demonstrating the Impact of Prior Knowledge in Risky Choice
M Hardy, T Griffiths
OSF, 2019
2019
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Artiklar 1–17