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Borealis AI Research Introduces fAux: A New Approach To Test Individual Fairness via Gradient Alignment
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Machine learning models are trained on massive datasets with hundreds of thousands, if not billions, of parameters. However, how these models translate the input parameters into results is unknown. Having said that, the decision-making behavior of the model is difficult to comprehend. Furthermore, models are frequently skewed towards specific parameters due to faulty assumptions made […]
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