Papers › Curiosity-Driven Reinforcement Learning from Human Feedback

Curiosity-Driven Reinforcement Learning from Human Feedback

20 Jan 2025arXiv:2501.11463archive 2025-07-28

Haoran Sun, Yekun Chai, Shuohuan Wang, Yu Sun, Hua Wu, Haifeng Wang

Reinforcement learning from human feedback (RLHF) has proven effective in aligning large language models (LLMs) with human preferences, but often at the cost of reduced output diversity. This trade-off between diversity and alignment quality remains a significant challenge. Drawing inspiration from curiosity-driven exploration in reinforcement learning, we introduce curiosity-driven RLHF (CD-RLHF), a framework that incorporates intrinsic rewards for novel states, alongside traditional sparse extrinsic rewards, to optimize both output diversity and alignment quality. We demonstrate the effectiveness of CD-RLHF through extensive experiments on a range of tasks, including text summarization and instruction following. Our approach achieves significant gains in diversity on multiple diversity-oriented metrics while maintaining alignment with human preferences comparable to standard RLHF. We make our code publicly available at https://github.com/ernie-research/CD-RLHF.

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ForwardModel ernie-research/CD-RLHF/applications/DeepSpeed-Chat/dschat/rlhf/rlhf_engine.py official repository ran MIT (permissive) · e2af18219f32d31d · report
ICM ernie-research/CD-RLHF/applications/DeepSpeed-Chat/dschat/rlhf/rlhf_engine.py official repository ran MIT (permissive) · f31626bb7b058e33 · report

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DiversityInstruction FollowingReinforcement LearningText Summarizationreinforcement-learning

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