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Reducing the Runtime of Fault-Tolerant Quantum Simulations in Chemistry through Symmetry-Compressed Double Factorization.
Rocca, Dario; Cortes, Cristian L; Gonthier, Jérôme F; Ollitrault, Pauline J; Parrish, Robert M; Anselmetti, Gian-Luca; Degroote, Matthias; Moll, Nikolaj; Santagati, Raffaele; Streif, Michael.
Afiliação
  • Rocca D; QC Ware Corporation, Palo Alto, California 94306, United States.
  • Cortes CL; QC Ware Corporation, Palo Alto, California 94306, United States.
  • Gonthier JF; QC Ware Corporation, Palo Alto, California 94306, United States.
  • Ollitrault PJ; QC Ware Corporation, Palo Alto, California 94306, United States.
  • Parrish RM; QC Ware Corporation, Palo Alto, California 94306, United States.
  • Anselmetti GL; Quantum Lab, Boehringer Ingelheim, 55218 Ingelheim am Rhein, Germany.
  • Degroote M; Quantum Lab, Boehringer Ingelheim, 55218 Ingelheim am Rhein, Germany.
  • Moll N; Quantum Lab, Boehringer Ingelheim, 55218 Ingelheim am Rhein, Germany.
  • Santagati R; Quantum Lab, Boehringer Ingelheim, 55218 Ingelheim am Rhein, Germany.
  • Streif M; Quantum Lab, Boehringer Ingelheim, 55218 Ingelheim am Rhein, Germany.
J Chem Theory Comput ; 20(11): 4639-4653, 2024 Jun 11.
Article em En | MEDLINE | ID: mdl-38788209
ABSTRACT
Quantum phase estimation based on qubitization is the state-of-the-art fault-tolerant quantum algorithm for computing ground-state energies in chemical applications. In this context, the 1-norm of the Hamiltonian plays a fundamental role in determining the total number of required iterations and also the overall computational cost. In this work, we introduce the symmetry-compressed double factorization (SCDF) approach, which combines a CDF of the Hamiltonian with the symmetry shift technique, significantly reducing the 1-norm value. The effectiveness of this approach is demonstrated numerically by considering various benchmark systems, including the FeMoco molecule, cytochrome P450, and hydrogen chains of different sizes. To compare the efficiency of SCDF to other methods in absolute terms, we estimate Toffoli gate requirements, which dominate the execution time on fault-tolerant quantum computers. For the systems considered here, SCDF leads to a sizable reduction of the Toffoli gate count in comparison to other variants of DF or even tensor hypercontraction, which is usually regarded as the most efficient approach for qubitization.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article