TeCS: A Dataset and Benchmark for Tense Consistency of Machine Translation

Ai, Yiming, He, Zhiwei, Yu, Kai, Wang, Rui

arXiv.org Artificial Intelligence 

Tense inconsistency frequently occurs in machine translation. However, there are few criteria to assess the model's mastery of tense prediction from a linguistic perspective. In this paper, we present a parallel tense test set, containing French-English 552 utterances. We also introduce a corresponding benchmark, tense prediction accuracy. With the tense test set and the benchmark, researchers are able to measure the tense consistency performance of machine translation systems for the first time.

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