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Gender bias in machine translation (MT) systems has been extensively documented, but bias in automatic quality estimation (QE) metrics remains comparatively underexplored. Existing studies suggest that QE metrics can also exhibit gender…

In this paper, as a case study, we present a systematic study of gender bias in machine translation with Google Translate. We translated sentences containing names of occupations from Hungarian, a language with gender-neutral pronouns, into…

机器学习 · 统计学 2021-12-21 Anna Farkas , Renáta Németh

Neural Machine Translation systems built on top of Transformer-based architectures are routinely improving the state-of-the-art in translation quality according to word-overlap metrics. However, a growing number of studies also highlight…

计算与语言 · 计算机科学 2022-10-18 Shanya Sharma , Manan Dey , Koustuv Sinha

Human gender bias is reflected in language and text production. Because state-of-the-art machine translation (MT) systems are trained on large corpora of text, mostly generated by humans, gender bias can also be found in MT. For instance…

计算与语言 · 计算机科学 2021-07-27 Jonas-Dario Troles , Ute Schmid

Machine Translation (MT) systems frequently encounter gender-ambiguous occupational terms, where they must assign gender without explicit contextual cues. While individual translations in such cases may not be inherently biased, systematic…

计算与语言 · 计算机科学 2025-09-23 Orfeas Menis Mastromichalakis , Giorgos Filandrianos , Maria Symeonaki , Giorgos Stamou

Neural Machine Translation (NMT) models, though state-of-the-art for translation, often reflect social biases, particularly gender bias. Existing evaluation benchmarks primarily focus on English as the source language of translation. For…

计算与语言 · 计算机科学 2023-12-08 Pushpdeep Singh

We present the first challenge set and evaluation protocol for the analysis of gender bias in machine translation (MT). Our approach uses two recent coreference resolution datasets composed of English sentences which cast participants into…

计算与语言 · 计算机科学 2019-06-04 Gabriel Stanovsky , Noah A. Smith , Luke Zettlemoyer

Neural Machine Translation (NMT) models are state-of-the-art for machine translation. However, these models are known to have various social biases, especially gender bias. Most of the work on evaluating gender bias in NMT has focused…

计算与语言 · 计算机科学 2024-11-05 Pushpdeep Singh

Gender-inclusive machine translation (MT) should preserve gender ambiguity in the source to avoid misgendering and representational harms. While gender ambiguity often occurs naturally in notional gender languages such as English,…

计算与语言 · 计算机科学 2025-06-19 Hillary Dawkins , Isar Nejadgholi , Chi-kiu Lo

The predictive uncertainty of machine translation (MT) models is typically used as a quality estimation proxy. In this work, we posit that apart from confidently translating when a single correct translation exists, models should also…

计算与语言 · 计算机科学 2025-10-22 Ieva Raminta Staliūnaitė , Julius Cheng , Andreas Vlachos

Recently there has been a growing concern about machine bias, where trained statistical models grow to reflect controversial societal asymmetries, such as gender or racial bias. A significant number of AI tools have recently been suggested…

计算机与社会 · 计算机科学 2019-03-12 Marcelo O. R. Prates , Pedro H. C. Avelar , Luis Lamb

Although recent years have brought significant progress in improving translation of unambiguously gendered sentences, translation of ambiguously gendered input remains relatively unexplored. When source gender is ambiguous, machine…

计算与语言 · 计算机科学 2023-03-08 Spencer Rarrick , Ranjita Naik , Varun Mathur , Sundar Poudel , Vishal Chowdhary

Translating from languages without productive grammatical gender like English into gender-marked languages is a well-known difficulty for machines. This difficulty is also due to the fact that the training data on which models are built…

Machine translation (MT) technology has facilitated our daily tasks by providing accessible shortcuts for gathering, elaborating and communicating information. However, it can suffer from biases that harm users and society at large. As a…

计算与语言 · 计算机科学 2021-05-10 Beatrice Savoldi , Marco Gaido , Luisa Bentivogli , Matteo Negri , Marco Turchi

Recent instruction fine-tuned models can solve multiple NLP tasks when prompted to do so, with machine translation (MT) being a prominent use case. However, current research often focuses on standard performance benchmarks, leaving…

计算与语言 · 计算机科学 2023-10-26 Giuseppe Attanasio , Flor Miriam Plaza-del-Arco , Debora Nozza , Anne Lauscher

Gender bias is a significant issue in machine translation, leading to ongoing research efforts in developing bias mitigation techniques. However, most works focus on debiasing bilingual models without much consideration for multilingual…

计算与语言 · 计算机科学 2023-11-13 Minwoo Lee , Hyukhun Koh , Kang-il Lee , Dongdong Zhang , Minsung Kim , Kyomin Jung

Ethics regarding social bias has recently thrown striking issues in natural language processing. Especially for gender-related topics, the need for a system that reduces the model bias has grown in areas such as image captioning, content…

计算与语言 · 计算机科学 2019-05-29 Won Ik Cho , Ji Won Kim , Seok Min Kim , Nam Soo Kim

Gender bias in artificial intelligence (AI) and natural language processing has garnered significant attention due to its potential impact on societal perceptions and biases. This research paper aims to analyze gender bias in Large Language…

计算与语言 · 计算机科学 2023-09-04 Vishesh Thakur

With language models being deployed increasingly in the real world, it is essential to address the issue of the fairness of their outputs. The word embedding representations of these language models often implicitly draw unwanted…

计算与语言 · 计算机科学 2021-06-17 Gauri Gupta , Krithika Ramesh , Sanjay Singh

Gender bias in machine translation (MT) is recognized as an issue that can harm people and society. And yet, advancements in the field rarely involve people, the final MT users, or inform how they might be impacted by biased technologies.…

计算与语言 · 计算机科学 2024-10-08 Beatrice Savoldi , Sara Papi , Matteo Negri , Ana Guerberof , Luisa Bentivogli
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