Measuring Sentiment Bias in Machine Translation

Hartung, Kai, Herygers, Aaricia, Kurlekar, Shubham, Zakaria, Khabbab, Volkan, Taylan, Gröttrup, Sören, Georges, Munir

arXiv.org Artificial Intelligence 

Biases induced to text by generative models have become an increasingly large topic in recent years. In this paper we explore how machine translation might introduce a bias in sentiments as classified by sentiment analysis models. For this, we compare three open access machine translation models for five different languages on two parallel corpora to test if the translation process causes a shift in sentiment classes recognized in the texts. Though our statistic test indicate shifts in the label probability distributions, we find none that appears consistent enough to assume a bias induced by the translation process.

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