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相关论文: Cultural Re-contextualization of Fairness Research…

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Recent research has revealed undesirable biases in NLP data and models. However, these efforts focus on social disparities in West, and are not directly portable to other geo-cultural contexts. In this paper, we focus on NLP fair-ness in…

计算与语言 · 计算机科学 2022-11-22 Shaily Bhatt , Sunipa Dev , Partha Talukdar , Shachi Dave , Vinodkumar Prabhakaran

Language representations are efficient tools used across NLP applications, but they are strife with encoded societal biases. These biases are studied extensively, but with a primary focus on English language representations and biases…

计算与语言 · 计算机科学 2022-05-10 Vijit Malik , Sunipa Dev , Akihiro Nishi , Nanyun Peng , Kai-Wei Chang

Existing studies on fairness are largely Western-focused, making them inadequate for culturally diverse countries such as India. To address this gap, we introduce INDIC-BIAS, a comprehensive India-centric benchmark designed to evaluate…

计算与语言 · 计算机科学 2025-07-01 Janki Atul Nawale , Mohammed Safi Ur Rahman Khan , Janani D , Mansi Gupta , Danish Pruthi , Mitesh M. Khapra

In order for NLP technology to be widely applicable, fair, and useful, it needs to serve a diverse set of speakers across the world's languages, be equitable, i.e., not unduly biased towards any particular language, and be inclusive of all…

计算与语言 · 计算机科学 2023-04-13 Simran Khanuja , Sebastian Ruder , Partha Talukdar

Conventional algorithmic fairness is West-centric, as seen in its sub-groups, values, and methods. In this paper, we de-center algorithmic fairness and analyse AI power in India. Based on 36 qualitative interviews and a discourse analysis…

计算机与社会 · 计算机科学 2021-01-28 Nithya Sambasivan , Erin Arnesen , Ben Hutchinson , Tulsee Doshi , Vinodkumar Prabhakaran

With language models becoming increasingly ubiquitous, it has become essential to address their inequitable treatment of diverse demographic groups and factors. Most research on evaluating and mitigating fairness harms has been concentrated…

计算与语言 · 计算机科学 2023-03-01 Krithika Ramesh , Sunayana Sitaram , Monojit Choudhury

Conventional algorithmic fairness is Western in its sub-groups, values, and optimizations. In this paper, we ask how portable the assumptions of this largely Western take on algorithmic fairness are to a different geo-cultural context such…

计算机与社会 · 计算机科学 2020-12-10 Nithya Sambasivan , Erin Arnesen , Ben Hutchinson , Vinodkumar Prabhakaran

Recent advances and applications of language technology and artificial intelligence have enabled much success across multiple domains like law, medical and mental health. AI-based Language Models, like Judgement Prediction, have recently…

This position paper argues that recent progress with diversity in NLP is disproportionately concentrated on a small number of areas surrounding fairness. We further argue that this is the result of a number of incentives, biases, and…

计算与语言 · 计算机科学 2026-04-17 Joshua Tint

As NLP models become more integrated with the everyday lives of people, it becomes important to examine the social effect that the usage of these systems has. While these models understand language and have increased accuracy on difficult…

计算与语言 · 计算机科学 2022-04-21 Rajas Bansal

Large Language Models (LLMs) have achieved significant success in recent years; yet, issues of intrinsic gender bias persist, especially in non-English languages. Although current research mostly emphasizes English, the linguistic and…

The rapid growth in the usage and applications of Natural Language Processing (NLP) in various sociotechnical solutions has highlighted the need for a comprehensive understanding of bias and its impact on society. While research on bias in…

计算与语言 · 计算机科学 2023-08-28 Pranav Narayanan Venkit

The pervasive influence of social biases in language data has sparked the need for benchmark datasets that capture and evaluate these biases in Large Language Models (LLMs). Existing efforts predominantly focus on English language and the…

Linguistic disparity in the NLP world is a problem that has been widely acknowledged recently. However, different facets of this problem, or the reasons behind this disparity are seldom discussed within the NLP community. This paper…

计算与语言 · 计算机科学 2022-10-21 Surangika Ranathunga , Nisansa de Silva

Existing research in measuring and mitigating gender bias predominantly centers on English, overlooking the intricate challenges posed by non-English languages and the Global South. This paper presents the first comprehensive study delving…

Modern NLP systems exhibit a range of biases, which a growing literature on model debiasing attempts to correct. However current progress is hampered by a plurality of definitions of bias, means of quantification, and oftentimes vague…

计算与语言 · 计算机科学 2023-02-14 Xudong Han , Timothy Baldwin , Trevor Cohn

Research has shown that while large language models (LLMs) can generate their responses based on cultural context, they are not perfect and tend to generalize across cultures. However, when evaluating the cultural bias of a language…

计算与语言 · 计算机科学 2025-12-29 Vitthal Bhandari

Modern models for common NLP tasks often employ machine learning techniques and train on journalistic, social media, or other culturally-derived text. These have recently been scrutinized for racial and gender biases, rooting from inherent…

计算与语言 · 计算机科学 2026-01-27 Scott Friedman , Sonja Schmer-Galunder , Anthony Chen , Jeffrey Rye

Divorce is the legal dissolution of a marriage by a court. Since this is usually an unpleasant outcome of a marital union, each party may have reasons to call the decision to quit which is generally documented in detail in the court…

计算机与社会 · 计算机科学 2023-07-21 Sujan Dutta , Parth Srivastava , Vaishnavi Solunke , Swaprava Nath , Ashiqur R. KhudaBukhsh

Large Language Models (LLMs), now used daily by millions, can encode societal biases, exposing their users to representational harms. A large body of scholarship on LLM bias exists but it predominantly adopts a Western-centric frame and…

计算与语言 · 计算机科学 2024-08-12 Khyati Khandelwal , Manuel Tonneau , Andrew M. Bean , Hannah Rose Kirk , Scott A. Hale
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