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Quit While You're Ahead: Quit for Efficient Candidate Generation in Machine Translation Reranking

arxiv.org/abs/2609.00588

quality89

Updated 6 h ago · first seen 11 Sept 2026

paper_01M294G6876ZBQDV91WTC6CH6B

Published
11 Sept 2026
T1 · 6 h ago
arXiv
2609.00588
T1 · 6 h ago
Category
cs.CL
T1 · 6 h ago

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Abstractabstract1

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ValueValid from → toStatusSourceConfidenceExtractor
Reranking methods, such as Minimum Bayes Risk (MBR) decoding and Quality Estimation (QE) reranking, have been widely used in modern neural machine translation (NMT) to select an output from a set of candidate hypotheses. However, the performance gains come at the cost of high inference latency. Existing acceleration methods target MBR decoding and reduce only the reranking computation, leaving QE reranking unaddressed and candidate generation---which can be the larger computational bottleneck---largely untouched. In this work, we propose Quit (Quantifying Uncertainty for Incremental Termination), a novel early-stopping strategy for the entire generation--reranking pipeline. Quit treats candidate generation as a sequential decision-making process under uncertainty. It incrementally generates and reranks candidates, stopping when the best reranking score stabilizes. Comprehensive experiments with three NMT models across 19 language pairs show that Quit achieves end-to-end speedups of $1.47$--$2.66\times$ for MBR decoding and $3.43$--$4.12\times$ for QE reranking while preserving translation quality for nearly all external quality metrics.currentcurrentarXiv (Atom API + RSS)T1highdeterministic

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