Papers › Semi-Autoregressive Neural Machine Translation

Semi-Autoregressive Neural Machine Translation

26 Aug 2018EMNLP 2018 10arXiv:1808.08583archive 2025-07-28

Chunqi Wang, Ji Zhang, Haiqing Chen

Existing approaches to neural machine translation are typically autoregressive models. While these models attain state-of-the-art translation quality, they are suffering from low parallelizability and thus slow at decoding long sequences. In this paper, we propose a novel model for fast sequence generation --- the semi-autoregressive Transformer (SAT). The SAT keeps the autoregressive property in global but relieves in local and thus is able to produce multiple successive words in parallel at each time step. Experiments conducted on English-German and Chinese-English translation tasks show that the SAT achieves a good balance between translation quality and decoding speed. On WMT'14 English-German translation, the SAT achieves 5.58× speedup while maintains 88\% translation quality, significantly better than the previous non-autoregressive methods. When produces two words at each time step, the SAT is almost lossless (only 1\% degeneration in BLEU score).

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average_gradients chqiwang/sa-nmt/utils.py official repository unverified Apache-2.0 (permissive) · 3ad1487952836d07 · report
decoder_self_attention_bias chqiwang/sa-nmt/models/sat.py official repository unverified Apache-2.0 (permissive) · 36fd928848e6906c · report
expand_feed_dict chqiwang/sa-nmt/utils.py official repository unverified Apache-2.0 (permissive) · d06bd91b2997aec4 · report
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Machine TranslationTranslation

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Absolute Position EncodingsAdamAttentionBPEDense ConnectionsDropoutLabel SmoothingLayer NormalizationLinear LayerMulti-Head AttentionPosition-Wise Feed-Forward LayerReLUResidual ConnectionSoftmaxTransformer

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