作者
Jamal Alasadi, Ramanathan Arunachalam, Pradeep K Atrey, Vivek K Singh
发表日期
2020/9/24
研讨会论文
2020 IEEE Sixth International Conference on Multimedia Big Data (BigMM)
页码范围
166-173
出版商
IEEE
简介
Recent reports of bias in multimedia algorithms (e.g., lesser accuracy of face detection for women and persons of color) have underscored the urgent need to devise approaches which work equally well for different demographic groups. Hence, we posit that ensuring fairness in multimodal cyber-bullying detectors (e.g., equal performance irrespective of the gender of the victim) is an important research challenge. We propose a fairness-aware fusion framework that ensures that both fairness and accuracy remain important considerations when combining data coming from multiple modalities. In this Bayesian fusion framework, the inputs coming from different modalities are combined in a way that is cognizant of the different confidence levels associated with each feature and the interdependencies between features. Specifically, this framework assigns weights to different modalities not just based on accuracy but also …
引用总数
20212022202320243141
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