Robust Sampling for Active Statistical Inference
–Neural Information Processing Systems
Active statistical inference [51] is a new method for inference with AI-assisted data collection. Given a budget on the number of labeled data points that can be collected and assuming access to an AI predictive model, the basic idea is to improve estimation accuracy by prioritizing the collection of labels where the model is most uncertain. The drawback, however, is that inaccurate uncertainty estimates can make active sampling produce highly noisy results, potentially worse than those from naive uniform sampling.
Neural Information Processing Systems
Jun-17-2026, 20:42:41 GMT
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- Research Report
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- Government > Regional Government (0.46)
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