100 citations · 191 across the 8 of their papers we have counts for
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cs.CL2023★ 29 cited
Simple synthetic data reduces sycophancy in large language models
Jerry Wei, Da Huang, Yifeng Lu +2
Sycophancy is an undesirable behavior where models tailor their responses to follow a human user's view even when that view is not objectively correct (e.g., adapting liberal views…
cs.CL2023★ 1 cited
Symbol tuning improves in-context learning in language models
Jerry Wei, Le Hou, Andrew Lampinen +8
We present symbol tuning - finetuning language models on in-context input-label pairs where natural language labels (e.g., "positive/negative sentiment") are replaced with arbitrar…
cs.CL2023★ 100 cited
Larger language models do in-context learning differently
Jerry Wei, Jason Wei, Yi Tay +8
We study how in-context learning (ICL) in language models is affected by semantic priors versus input-label mappings. We investigate two setups-ICL with flipped labels and ICL with…