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כתבה arXiv cs.LG ·

תחזית מבצעית עם תוויות בוחרות

Performative Prediction with Selective Labels
במאמר זה, נחקר השפעת תחזית מבצעית על תוויות בוחרות. נציג פתרון חדש לבעיה זו.
תקציר מקורי באנגליתarXiv:2610.08272v1 Announce Type: new Abstract: Many social applications of machine learning exhibit performative effects: population behavior changes in response to deployed models. Performative prediction studies this interaction through a distribution map that relates each model to the population distribution it induces. One of the main results in this framework showed that repeated risk minimization (RRM), which updates models by retraining on the most recent data, can converge to a stable model that minimizes risk on its own induced distribution. However, existing analyses typically assume access to the complete distributions of features and labels after model deployment, ignoring the possibility of selective labels: observing labels only for the accepted subset of the population. In
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