conference-paper
NEURAL NETWORK AGENT PLAYING SPIN HAMILTONIAN GAMES ON A QUANTUM COMPUTER
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Paper overview
Abstract
We develop an autonomous agent effectively interacting with noisy quantum computer to solve magnetism problems. By using the reinforcement learning the agent is trained to find the best-possible approximation of a spin Hamiltonian ground state from self-conducted ex-periments on quantum devices.
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Publication details
- OpenAlex
- W3099166966
- Document type
- conference-paper
- Language
- EN
- Source
- Electronic Archive of Ural Federal University (ELAR UrFU)
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