Papers › Cascade Reward Sampling for Efficient Decoding-Time Alignment

Cascade Reward Sampling for Efficient Decoding-Time Alignment

24 Jun 2024arXiv:2406.16306archive 2025-07-28

Bolian Li, Yifan Wang, Anamika Lochab, Ananth Grama, Ruqi Zhang

Aligning large language models (LLMs) with human preferences is essential for their applications. Recently, decoding-time alignment has emerged as an effective plug-and-play technique that avoids fine-tuning model parameters. This approach retains the general utility of pretrained LLMs but often suffers from significant inefficiencies during decoding, primarily due to wasted token generation and excessive reward evaluations. To address these challenges, we introduce Cascade Reward Sampling (CARDS) to resolve both efficiency bottlenecks in decoding-time alignment. Specifically, we develop a segment-level rejection sampling algorithm that minimizes redundant computations of both LLMs and reward models (RMs). Central to CARDS is an uncertainty-based segmentation mechanism, which ensures the accuracy of RMs evaluations on incomplete segments. Furthermore, we provide a detailed analysis of reward scores on segments to elucidate the improved alignment performance. Experimental results demonstrate that CARDS significantly improves decoding efficiency, alignment quality, and general utility compared to existing decoding-time alignment methods, achieving approximately a 70% reduction in decoding time and over 90% win-ties in utility and safety benchmarks.

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clean lblaoke/CARDS/evaluation/eval_wintie.py official repository ran fingerprinted no licence file found · pointer only · 9d741ca160b48466 · report
clean lblaoke/CARDS/evaluation/metric.py official repository ran fingerprinted no licence file found · pointer only · 3cf2a6616e939e43 · report
extract_content lblaoke/CARDS/evaluation/eval_ai.py official repository ran fingerprinted no licence file found · pointer only · cf6e7912b92ce301 · report
gpt4_eval lblaoke/CARDS/evaluation/eval_wintie.py official repository ran fingerprinted no licence file found · pointer only · 84540b0af0e4d7ea · report
load_responses lblaoke/CARDS/evaluation/eval_ai.py official repository ran no licence file found · pointer only · 3ab2f8d7ec77d909 · report
parse_json lblaoke/CARDS/data_loader.py official repository ran no licence file found · pointer only · e24a02f57af303dc · report
parse_plain lblaoke/CARDS/data_loader.py official repository ran fingerprinted no licence file found · pointer only · 514c234b6e525f37 · report
compute_diversity lblaoke/CARDS/evaluation/metric.py official repository unverified no licence file found · pointer only · 93c198d58d919707 · report
compute_rep_n lblaoke/CARDS/evaluation/metric.py official repository unverified no licence file found · pointer only · 6c1c5b07ef997d49 · report
extract_out lblaoke/CARDS/evaluation/measure_reward.py official repository unverified no licence file found · pointer only · 160c4a9ab3f8bda1 · report

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