Purification-based quantum error mitigation of pair-correlated electron simulations
Abstract
An important measure of the development of quantum computing platforms has been the simulation of increasingly complex physical systems. Prior to fault-tolerant quantum computing, robust error mitigation strategies are necessary to continue this growth. Here, we study physical simulation within the seniority-zero electron pairing subspace, which affords both a computational stepping stone to a fully correlated model, and an opportunity to validate recently introduced ``purification-based'' error-mitigation strategies. We compare the performance of error mitigation based on doubling quantum resources in time (echo verification) or in space (virtual distillation), on up to qubits of a superconducting qubit quantum processor. We observe a reduction of error by one to two orders of magnitude below less sophisticated techniques (e.g. post-selection); the gain from error mitigation is seen to increase with the system size. Employing these error mitigation strategies enables the implementation of the largest variational algorithm for a correlated chemistry system to-date. Extrapolating performance from these results allows us to estimate minimum requirements for a beyond-classical simulation of electronic structure. We find that, despite the impressive gains from purification-based error mitigation, significant hardware improvements will be required for classically intractable variational chemistry simulations.
Cite
@article{arxiv.2210.10799,
title = {Purification-based quantum error mitigation of pair-correlated electron simulations},
author = {T. E. O'Brien and G. Anselmetti and F. Gkritsis and V. E. Elfving and S. Polla and W. J. Huggins and O. Oumarou and K. Kechedzhi and D. Abanin and R. Acharya and I. Aleiner and R. Allen and T. I. Andersen and K. Anderson and M. Ansmann and F. Arute and K. Arya and A. Asfaw and J. Atalaya and D. Bacon and J. C. Bardin and A. Bengtsson and S. Boixo and G. Bortoli and A. Bourassa and J. Bovaird and L. Brill and M. Broughton and B. Buckley and D. A. Buell and T. Burger and B. Burkett and N. Bushnell and J. Campero and Y. Chen and Z. Chen and B. Chiaro and D. Chik and J. Cogan and R. Collins and P. Conner and W. Courtney and A. L. Crook and B. Curtin and D. M. Debroy and S. Demura and I. Drozdov and A. Dunsworth and C. Erickson and L. Faoro and E. Farhi and R. Fatemi and V. S. Ferreira and L. Flores Burgos and E. Forati and A. G. Fowler and B. Foxen and W. Giang and C. Gidney and D. Gilboa and M. Giustina and R. Gosula and A. Grajales Dau and J. A. Gross and S. Habegger and M. C. Hamilton and M. Hansen and M. P. Harrigan and S. D. Harrington and P. Heu and J. Hilton and M. R. Hoffmann and S. Hong and T. Huang and A. Huff and L. B. Ioffe and S. V. Isakov and J. Iveland and E. Jeffrey and Z. Jiang and C. Jones and P. Juhas and D. Kafri and J. Kelly and T. Khattar and M. Khezri and M. Kieferová and S. Kim and P. V. Klimov and A. R. Klots and R. Kothari and A. N. Korotkov and F. Kostritsa and J. M. Kreikebaum and D. Landhuis and P. Laptev and K. Lau and L. Laws and J. Lee and K. Lee and B. J. Lester and A. T. Lill and W. Liu and W. P. Livingston and A. Locharla and E. Lucero and F. D. Malone and S. Mandra and O. Martin and S. Martin and J. R. McClean and T. McCourt and M. McEwen and A. Megrant and X. Mi and A. Mieszala and K. C. Miao and M. Mohseni and S. Montazeri and A. Morvan and R. Movassagh and W. Mruczkiewicz and O. Naaman and M. Neeley and C. Neill and A. Nersisyan and H. Neven and M. Newman and J. H. Ng and A. Nguyen and M. Nguyen and M. Y. Niu and S. Omonije and A. Opremcak and A. Petukhov and R. Potter and L. P. Pryadko and C. Quintana and C. Rocque and P. Roushan and N. Saei and D. Sank and K. Sankaragomathi and K. J. Satzinger and H. F. Schurkus and C. Schuster and M. J. Shearn and A. Shorter and N. Shutty and V. Shvarts and J. Skruzny and V. Smelyanskiy and W. C. Smith and R. Somma and G. Sterling and D. Strain and M. Szalay and D. Thor and A. Torres and G. Vidal and B. Villalonga and C. Vollgraff Heidweiller and T. White and B. W. K. Woo and C. Xing and Z. J. Yao and P. Yeh and J. Yoo and G. Young and A. Zalcman and Y. Zhang and N. Zhu and N. Zobrist and C. Gogolin and R. Babbush and N. C. Rubin},
journal= {arXiv preprint arXiv:2210.10799},
year = {2023}
}
Comments
10 pages, 13 page supplementary material, 12 figures. Experimental data available at https://doi.org/10.5281/zenodo.7225821