no code implementations • 18 Oct 2023 • Junaid Ali, Matthaeus Kleindessner, Florian Wenzel, Kailash Budhathoki, Volkan Cevher, Chris Russell
We propose a novel taxonomy for bias evaluation of discriminative foundation models, such as Contrastive Language-Pretraining (CLIP), that are used for labeling tasks.
1 code implementation • 10 May 2021 • Junaid Ali, Muhammad Bilal Zafar, Adish Singla, Krishna P. Gummadi
Motivated by extensive literature in behavioral economics and behavioral psychology (prospect theory), we propose a notion of fair updates that we refer to as loss-averse updates.
no code implementations • 10 May 2021 • Junaid Ali, Preethi Lahoti, Krishna P. Gummadi
We further propose methods to achieve our goal of equalizing group error rates arising due to model uncertainty in algorithmic decision making and demonstrate the effectiveness of these methods using synthetic and real-world datasets.
no code implementations • 16 May 2019 • Junaid Ali, Mahmoudreza Babaei, Abhijnan Chakraborty, Baharan Mirzasoleiman, Krishna P. Gummadi, Adish Singla
As we show in this paper, the time-criticality of the information could further exacerbate the disparity of influence across groups.
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