DOE OSTI · 1986255
Qompress: Efficient Compilation for Ququarts Exploiting Partial and Mixed Radix Operations for Communication Reduction
Abstract
Quantum computing is in an era of limited resources. Current hardware lacks high fidelity gates, long coherence times, and the number of computational units required to perform meaningful computation. Contemporary quantum devices typically use a binary system, where each qubit exists in a superposition of the 0 and 1 states. Furthermore, it is often possible to access the 2 or even 3 states in the same physical unit by manipulating the system in different ways. In this work, we consider automatically encoding two qubits into one four-state ququart via a compression scheme. We use quantum optimal control to design efficient proof-of-concept gates that fully replicate standard qubit computation on these encoded qubits.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Litteken, Andrew, Seifert, Lennart Maximilian, Chadwick, Jason, Nottingham, Natalia, Chong, Frederic T., Baker, Jonathan M.. 2023-01-30. Qompress: Efficient Compilation for Ququarts Exploiting Partial and Mixed Radix Operations for Communication Reduction. https://doi.org/10.1145/3575693.3575726
Cite the original work for its findings. Save a collection to share your selection of sources.