Rigging programs that summarize texts.
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Even worse than a tool that is known to fail in subtle and unpredictable ways is one that is believed to be flawless, whose errors are so subtle that they remain undetected, despite the havoc they wreak as their subtle, consistent errors pile up over time
This is the great risk of machine-learning models, whether we call them "classifiers" or "decision support systems." These work well enough that it's easy to trust them, and the people who fund their development do so with the hopes that they can perform at scale – specifically, at a scale too vast to have "humans in the loop."
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