
AbstractWe experimentally perform the simulation of open quantum dynamics in single-qudit systems. Using a spatial light modulator as a dissipative optical device, we implement dissipative-dynamical maps onto qudits encoded in the transverse momentum of spontaneous parametric down-converted photon pairs. We show a well-controlled technique to prepare entangled qudits states as well as to implement dissipative local measurements; the latter realize two specific dynamics: dephasing and amplitude damping. Our work represents a new analogy-dynamical experiment for simulating an open quantum system.
Dissipative system, Photonic Reservoir Computing for Neural Computation, Quantum decoherence, Foundations of Quantum Mechanics and Interpretations, FOS: Physical sciences, Quantum mechanics, Article, Quantum, Neuromorphic Photonics, Artificial Intelligence, FOS: Mathematics, Classical mechanics, Quantum Physics, Physics, Statistics, Photon, Computer science, Quantum Information and Computation, Atomic and Molecular Physics, and Optics, Photonics, Physics and Astronomy, Parametric statistics, Computer Science, Physical Sciences, Dephasing, Statistical physics, Quantum Physics (quant-ph), Mathematics
Dissipative system, Photonic Reservoir Computing for Neural Computation, Quantum decoherence, Foundations of Quantum Mechanics and Interpretations, FOS: Physical sciences, Quantum mechanics, Article, Quantum, Neuromorphic Photonics, Artificial Intelligence, FOS: Mathematics, Classical mechanics, Quantum Physics, Physics, Statistics, Photon, Computer science, Quantum Information and Computation, Atomic and Molecular Physics, and Optics, Photonics, Physics and Astronomy, Parametric statistics, Computer Science, Physical Sciences, Dephasing, Statistical physics, Quantum Physics (quant-ph), Mathematics
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