Learning from Label Proportions by Learning with Label Noise
–Neural Information Processing Systems
Learning from label proportions (LLP) is a weakly supervised classification problem where data points are grouped into bags, and the label proportions within each bag are observed instead of the instance-level labels. The task is to learn a classifier to predict the labels of future individual instances.
Neural Information Processing Systems
Aug-17-2025, 14:40:46 GMT
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