Resource-Efficient Quantum Computing by Breaking Abstractions
Building a quantum computer that surpasses the computational power of its classical counterpart is a great engineering challenge. Quantum software optimizations can provide an accelerated pathway to the first generation of quantum computing (QC) applications that might save years of engineering effo...
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Published in | Proceedings of the IEEE Vol. 108; no. 8 |
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Main Authors | , , , , , , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
United States
Institute of Electrical and Electronics Engineers
15.06.2020
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Subjects | |
Online Access | Get full text |
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Summary: | Building a quantum computer that surpasses the computational power of its classical counterpart is a great engineering challenge. Quantum software optimizations can provide an accelerated pathway to the first generation of quantum computing (QC) applications that might save years of engineering effort. Current quantum software stacks follow a layered approach similar to the stack of classical computers, which was designed to manage the complexity. In this review, we point out that greater efficiency of QC systems can be achieved by breaking the abstractions between these layers. Further, we review several works along this line, including two hardware-aware compilation optimizations that break the quantum instruction set architecture (ISA) abstraction and two error-correction/information-processing schemes that break the qubit abstraction. Last, we discuss several possible future directions. |
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Bibliography: | SC0020331; CCF-1730449/1832377/1730082; Phy-1818914; SC0020289 USDOE National Science Foundation (NSF) |
ISSN: | 0018-9219 1558-2256 |