Wigner State and Process Tomography on Near-Term Quantum Devices
ORAL
Abstract
With the growing interest and rapid development in near-term quantum devices, the migration of theoretical and experimental approaches from existing devices to near-term quantum devices are imperative. We present an experimental scanning-based tomography approach in the context of finite-dimensional Wigner representations. These representations provide a rich visualization of quantum operators using shapes assembled from a linear combination of spherical harmonics. These shapes, i.e., spherical droplets, can be recreated experimentally by measuring the expectation values of rotated axial tensor operators. This study provides a reformulation of the theory of Wigner state and process tomography for the case of a general-purpose pure-state quantum computer. We present an experimental framework for implementing the scanning-based tomography technique for circuit-based quantum computers and showcase results from IBM quantum experience. We also present a method for estimating the density and process matrices from experimentally tomographed
spherical droplets. This tomography approach can be directly accessed using python packages.
spherical droplets. This tomography approach can be directly accessed using python packages.
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Publication: Wigner State and Process Tomography on Near-Term Quantum Devices, In preparation.
Presenters
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Amit Devra
Technical University of Munich, Germany
Authors
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Amit Devra
Technical University of Munich, Germany
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Niklas Glaser
TU Munich & Walther-Meissner-Institute, Walther Meissner Institute, Germany, Walther-Meißner-Institut, Munich
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Dennis Huber
Technical University of Munich, Germany
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Steffen J Glaser
Technical University of Munich, Germany