Literature DB >> 33431969

Fusing the single-excitation subspace with [Formula: see text].

Michael R Geller1.   

Abstract

There is a tremendous interest in developing practical applications for noisy intermediate-scale quantum processors without the overhead required by full error correction. Near-term quantum information processing is especially challenging within the standard gate model, as algorithms quickly lose fidelity as the problem size and circuit depth grow. This has lead to a number of non-gate-model approaches such as analog quantum simulation and quantum annealing. These come with specific hardware requirements that are different than that of a universal gate-based quantum computer. We have previously proposed an approach called the single-excitation subspace (SES) method, which uses a complete graph of superconducting qubits with tunable coupling. Without error correction the SES method is not scalable, but it offers several algorithmic components with constant depth, which is highly desirable for near-term use. The challenge of the SES method is that it requires a physical qubit for every basis state in the computer's Hilbert space. This imposes exponentially large resource costs for algorithms using registers of ancillary qubits, as each ancilla would double the required graph size. Here we show how to circumvent this doubling by leaving the SES and fusing it with a multi-ancilla Hilbert space. Specifically, we implement the tensor product of an SES register holding "data" with one or more ancilla qubits, which are able to independently control arbitrary [Formula: see text] unitary operations on the data in a constant number of steps. This enables a hybrid form of quantum computation where fast SES operations are performed on the data, traditional logic gates and measurements are performed on the ancillas, and controlled-unitaries act between. As example applications, we give ancilla-assisted SES implementations of quantum phase estimation and the quantum linear system solver of Harrow, Hassidim, and Lloyd.

Entities:  

Year:  2021        PMID: 33431969      PMCID: PMC7801700          DOI: 10.1038/s41598-020-79853-3

Source DB:  PubMed          Journal:  Sci Rep        ISSN: 2045-2322            Impact factor:   4.379


  12 in total

1.  Quantum circuits for general multiqubit gates.

Authors:  Mikko Möttönen; Juha J Vartiainen; Ville Bergholm; Martti M Salomaa
Journal:  Phys Rev Lett       Date:  2004-09-20       Impact factor: 9.161

2.  Preconditioned quantum linear system algorithm.

Authors:  B D Clader; B C Jacobs; C R Sprouse
Journal:  Phys Rev Lett       Date:  2013-06-18       Impact factor: 9.161

3.  Coherent Josephson qubit suitable for scalable quantum integrated circuits.

Authors:  R Barends; J Kelly; A Megrant; D Sank; E Jeffrey; Y Chen; Y Yin; B Chiaro; J Mutus; C Neill; P O'Malley; P Roushan; J Wenner; T C White; A N Cleland; John M Martinis
Journal:  Phys Rev Lett       Date:  2013-08-22       Impact factor: 9.161

4.  Quantum algorithm for linear systems of equations.

Authors:  Aram W Harrow; Avinatan Hassidim; Seth Lloyd
Journal:  Phys Rev Lett       Date:  2009-10-07       Impact factor: 9.161

5.  Qubit Architecture with High Coherence and Fast Tunable Coupling.

Authors:  Yu Chen; C Neill; P Roushan; N Leung; M Fang; R Barends; J Kelly; B Campbell; Z Chen; B Chiaro; A Dunsworth; E Jeffrey; A Megrant; J Y Mutus; P J J O'Malley; C M Quintana; D Sank; A Vainsencher; J Wenner; T C White; Michael R Geller; A N Cleland; John M Martinis
Journal:  Phys Rev Lett       Date:  2014-11-26       Impact factor: 9.161

6.  Solving Systems of Linear Equations with a Superconducting Quantum Processor.

Authors:  Yarui Zheng; Chao Song; Ming-Cheng Chen; Benxiang Xia; Wuxin Liu; Qiujiang Guo; Libo Zhang; Da Xu; Hui Deng; Keqiang Huang; Yulin Wu; Zhiguang Yan; Dongning Zheng; Li Lu; Jian-Wei Pan; H Wang; Chao-Yang Lu; Xiaobo Zhu
Journal:  Phys Rev Lett       Date:  2017-05-26       Impact factor: 9.161

7.  Experimental quantum computing to solve systems of linear equations.

Authors:  X-D Cai; C Weedbrook; Z-E Su; M-C Chen; Mile Gu; M-J Zhu; Li Li; Nai-Le Liu; Chao-Yang Lu; Jian-Wei Pan
Journal:  Phys Rev Lett       Date:  2013-06-06       Impact factor: 9.161

8.  Quantum supremacy using a programmable superconducting processor.

Authors:  Frank Arute; Kunal Arya; Ryan Babbush; Dave Bacon; Joseph C Bardin; Rami Barends; Rupak Biswas; Sergio Boixo; Fernando G S L Brandao; David A Buell; Brian Burkett; Yu Chen; Zijun Chen; Ben Chiaro; Roberto Collins; William Courtney; Andrew Dunsworth; Edward Farhi; Brooks Foxen; Austin Fowler; Craig Gidney; Marissa Giustina; Rob Graff; Keith Guerin; Steve Habegger; Matthew P Harrigan; Michael J Hartmann; Alan Ho; Markus Hoffmann; Trent Huang; Travis S Humble; Sergei V Isakov; Evan Jeffrey; Zhang Jiang; Dvir Kafri; Kostyantyn Kechedzhi; Julian Kelly; Paul V Klimov; Sergey Knysh; Alexander Korotkov; Fedor Kostritsa; David Landhuis; Mike Lindmark; Erik Lucero; Dmitry Lyakh; Salvatore Mandrà; Jarrod R McClean; Matthew McEwen; Anthony Megrant; Xiao Mi; Kristel Michielsen; Masoud Mohseni; Josh Mutus; Ofer Naaman; Matthew Neeley; Charles Neill; Murphy Yuezhen Niu; Eric Ostby; Andre Petukhov; John C Platt; Chris Quintana; Eleanor G Rieffel; Pedram Roushan; Nicholas C Rubin; Daniel Sank; Kevin J Satzinger; Vadim Smelyanskiy; Kevin J Sung; Matthew D Trevithick; Amit Vainsencher; Benjamin Villalonga; Theodore White; Z Jamie Yao; Ping Yeh; Adam Zalcman; Hartmut Neven; John M Martinis
Journal:  Nature       Date:  2019-10-23       Impact factor: 49.962

9.  A two-qubit photonic quantum processor and its application to solving systems of linear equations.

Authors:  Stefanie Barz; Ivan Kassal; Martin Ringbauer; Yannick Ole Lipp; Borivoje Dakić; Alán Aspuru-Guzik; Philip Walther
Journal:  Sci Rep       Date:  2014-08-19       Impact factor: 4.379

10.  Hybrid quantum linear equation algorithm and its experimental test on IBM Quantum Experience.

Authors:  Yonghae Lee; Jaewoo Joo; Soojoon Lee
Journal:  Sci Rep       Date:  2019-03-18       Impact factor: 4.379

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