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Efficient charge-preserving excited state preparation with variational quantum algorithms
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Efficient charge-preserving excited state preparation with variational quantum algorithms
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Determining the spectrum and wave functions of excited states of a system is crucial in quantum physics and chemistry. Low-depth quantum algorithms, such as the Variational Quantum Eigensolver (VQE) and its variants, can be used to determine the ground-state energy. However, current approaches to computing excited states require numerous controlled unitaries, making the application of the original Variational Quantum Deflation (VQD) algorithm to problems in chemistry or physics suboptimal. In this study, we introduce a charge-preserving VQD (CPVQD) algorithm, designed to incorporate symmetry and the corresponding conserved charge into the VQD framework. This results in dimension reduction, significantly enhancing the efficiency of excited-state computations. We present benchmark results with GPU-accelerated simulations using systems up to 24 qubits, showcasing applications in high-energy physics, nuclear physics, and quantum chemistry. This work is performed on NERSC's Perlmutter system using NVIDIA's open-source platform for accelerated quantum supercomputing - CUDA-Q.
Forward citations
Cited by 2 Pith papers
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Quantum simulation of real-time current correlators and DIS-inspired observables in the Schwinger model
The hadronic tensor and longitudinal structure function of the massive Schwinger model are computed from real-time current–current correlators using tensor networks and quantum circuits, benchmarked against exact diag...
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