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In this perspective we discuss verification of quantum devices in the context of specific examples, formulated as proposed experiments. Our first example is verification of analog quantum simulators as Hamiltonian learning, where the input Hamiltonian as design goal is compared with the parent Hamiltonian for the quantum states prepared on the device. The second example discusses crossdevice verification on the quantum level, i.e. by comparing quantum states prepared on different quantum devices. We focus in particular on protocols using randomized measurements, and we propose establishing a central data repository, where existing experimental devices and platforms can be compared. In our final example, we address verification of the output of a quantum device from a computer science perspective, addressing the question of how a user of a quantum processor can be certain about the correctness of its output, and propose minimal demonstrations on present day devices.
FOS: Computer and information sciences, Quantum Physics, Physics, QC1-999, Computer Science - Information Theory, Information Theory (cs.IT), FOS: Physical sciences, QA76.75-76.765, ENTANGLEMENT ENTROPY, Quantum Gases (cond-mat.quant-gas), SUPREMACY, SIMULATION, Computer software, Condensed Matter - Quantum Gases, Quantum Physics (quant-ph)
FOS: Computer and information sciences, Quantum Physics, Physics, QC1-999, Computer Science - Information Theory, Information Theory (cs.IT), FOS: Physical sciences, QA76.75-76.765, ENTANGLEMENT ENTROPY, Quantum Gases (cond-mat.quant-gas), SUPREMACY, SIMULATION, Computer software, Condensed Matter - Quantum Gases, Quantum Physics (quant-ph)
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