4 citations · 6 across the 2 of their papers we have counts for
8 papers
Extending XACC for Quantum Optimal Control
Thien Nguyen, Anthony Santana, Alexander McCaskey
Quantum computing vendors are beginning to open up application programming interfaces for direct pulse-level quantum control. With this, programmers can begin to describe quantum k…
Scalable quantum processor noise characterization
Kathleen E. Hamilton, Tyler Kharazi, Titus Morris +3
Measurement fidelity matrices (MFMs) (also called error kernels) are a natural way to characterize state preparation and measurement errors in near-term quantum hardware. They can…
Enabling Pulse-level Programming, Compilation, and Execution in XACC
Thien Nguyen, Alexander McCaskey
Noisy gate-model quantum processing units (QPUs) are currently available from vendors over the cloud, and digital quantum programming approaches exist to run low-depth circuits on…
XACC: A System-Level Software Infrastructure for Heterogeneous Quantum-Classical Computing
Alexander J. McCaskey, Dmitry I. Lyakh, Eugene F. Dumitrescu +2
Quantum programming techniques and software have advanced significantly over the past five years, with a majority focusing on high-level language frameworks targeting remote REST l…
QCOR: A Language Extension Specification for the Heterogeneous Quantum-Classical Model of Computation
Tiffany M. Mintz, Alexander J. Mccaskey, Eugene F. Dumitrescu +3
Quantum computing is an emerging computational paradigm that leverages the laws of quantum mechanics to perform elementary logic operations. Existing programming models for quantum…
Quantum Chemistry as a Benchmark for Near-Term Quantum Computers
Alexander J. McCaskey, Zachary P. Parks, Jacek Jakowski +4
We present a quantum chemistry benchmark for noisy intermediate-scale quantum computers that leverages the variational quantum eigensolver, active space reduction, a reduced unitar…