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Generalization of Quantum Machine Learning Models Using Quantum Fisher Information Metric

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arxiv 2303.13462 v3 pith:O3IMU3EV submitted 2023-03-23 quant-ph cs.LGstat.ML

classification quant-phcs.LGstat.ML
keywords dataquantumtraininggeneralizationlearningmachinemodelsdqfim
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Generalization is the ability of machine learning models to make accurate predictions on new data by learning from training data. However, understanding generalization of quantum machine learning models has been a major challenge. Here, we introduce the data quantum Fisher information metric (DQFIM). It describes the capacity of variational quantum algorithms depending on variational ansatz, training data and their symmetries. We apply the DQFIM to quantify circuit parameters and training data needed to successfully train and generalize. Using the dynamical Lie algebra, we explain how to generalize using a low number of training states. Counter-intuitively, breaking symmetries of the training data can help to improve generalization. Finally, we find that out-of-distribution generalization, where training and testing data are drawn from different data distributions, can be better than using the same distribution. Our work provides a useful framework to explore the power of quantum machine learning models.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Data-Dependent Generalization Bounds for Parameterized Quantum Models Under Noise

    cs.LG 2024-12 reject novelty 4.0 of 10

    A generalization bound for noisy parameterized quantum classifiers is derived from quantum Fisher information, parameter-space volume, and sample size, with local refinements claimed to tighten it.

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