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Quantum Hamiltonian Identification With Classical Colored Measurement Noise

Lingyu Tan, Daoyi Dong, Dewei Li, Shibei Xue·May 5, 2019·DOI: 10.1109/TCST.2020.2991611
PhysicsComputer ScienceMathematics

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Abstract

In this brief, we present a Hamiltonian-identification method for a closed quantum system whose time-trace observables are measured with colored measurement noise. The dynamics of the quantum system are described by a Liouville equation that can be converted into a coherence vector representation. Since the measurement process is disturbed by classical colored noise, we introduce an augmented system model to describe the total dynamics, where the classical colored noise is parameterized. Based on the augmented system model as well as the measurement data, we can find a realization of the quantum system with unknown parameters by employing an eigenstate-realization algorithm. The unknown parameters can be identified using a transfer-function-based technique. An example of a two-qubit system with colored measurement noise is shown to verify the effectiveness of our method.

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