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QUANTUM ALGORITHMS FOR SUPERVISED TRAINING OF QUANTUM BOLTZMANN MACHINES

机译:Quantum Boltzmann机器监督训练量子算法

摘要

Embodiments of a new approach for training a class of quantum neural networks called quantum Boltzmann machines are disclosed. in particular examples, methods for supervised training of a quantum Boltzmann machine are disclosed using an ensemble of quantum states that the Boltzmann machine is trained to replicate. Unlike existing approaches to Boltzmann training, example embodiments as disclosed herein allow for supervised training even in cases where only quantum examples are known (and not probabilities from quantum measurements of a set of states). Further, this approach does not require the use of approximations such as the Golden-Thompson inequality.
机译:公开了一种新方法,用于训练一种称为量子Boltzmann机器的量子神经网络。在特定的示例中,使用QuttzMann机器训练以复制的​​量子状态,公开了用于监督Quantum Boltzmann机器的训练的方法。与Boltzmann训练的现有方法不同,如本文所公开的示例实施例允许监督训练,即使在仅仅已知量子示例(以及来自一组状态的量子测量的概率)。此外,这种方法不需要使用近似,例如金汤普森不等式。

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