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Understanding Rare Spurious Correlations in Neural Networks
[article]
2022
Neural networks are known to use spurious correlations for classification; for example, they commonly use background information to classify objects. But how many examples does it take for a network to pick up these correlations? This is the question that we empirically investigate in this work. We introduce spurious patterns correlated with a specific class to a few examples and find that it takes only a handful of such examples for the network to pick up on the spurious correlation. Through
doi:10.48550/arxiv.2202.05189
fatcat:nx63nwz5b5a7rbzaczc2ticene