conference-paper
NEURAL NETWORK AGENT PLAYING SPIN HAMILTONIAN GAMES ON A QUANTUM COMPUTER
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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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