How to understand limitations of generative networks

SCIPOST PHYSICS(2024)

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摘要
Well-trained classifiers and their complete weight distributions provide us with a wellmotivated and practicable method to test generative networks in particle physics. We illustrate their benefits for distribution-shifted jets, calorimeter showers, and reconstruction-level events. In all cases, the classifier weights make for a powerful test of the generative network, identify potential problems in the density estimation, relate them to the underlying physics, and tie in with a comprehensive precision and uncertainty treatment for generative networks.
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generative networks,understand limitations
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