Are bleu and meaning representation in opposition?

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Abstract

One of possible ways of obtaining continuous-space sentence representations is by training neural machine translation (NMT) systems. The recent attention mechanism however removes the single point in the neural network from which the source sentence representation can be extracted. We propose several variations of the attentive NMT architecture bringing this meeting point back. Empirical evaluation suggests that the better the translation quality, the worse the learned sentence representations serve in a wide range of classification and similarity tasks.

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APA

Cífka, O., & Bojar, O. (2018). Are bleu and meaning representation in opposition? In ACL 2018 - 56th Annual Meeting of the Association for Computational Linguistics, Proceedings of the Conference (Long Papers) (Vol. 1, pp. 1362–1371). Association for Computational Linguistics (ACL). https://doi.org/10.18653/v1/p18-1126

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