Tensor-based quantum phase difference estimation for large-scale demonstration

Fuente: arXiv
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Bibliographic Details
Main Authors: Kanno, Shu, Sugisaki, Kenji, Nakamura, Hajime, Yamauchi, Hiroshi, Sakuma, Rei, Kobayashi, Takao, Gao, Qi, Yamamoto, Naoki
Format: Preprint
Published: 2024
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_version_ 1866914031620587520
author Kanno, Shu
Sugisaki, Kenji
Nakamura, Hajime
Yamauchi, Hiroshi
Sakuma, Rei
Kobayashi, Takao
Gao, Qi
Yamamoto, Naoki
author_facet Kanno, Shu
Sugisaki, Kenji
Nakamura, Hajime
Yamauchi, Hiroshi
Sakuma, Rei
Kobayashi, Takao
Gao, Qi
Yamamoto, Naoki
contents We develop an energy calculation algorithm leveraging quantum phase difference estimation (QPDE) scheme and a tensor-network-based unitary compression method in the preparation of superposition states and time-evolution gates. Alongside its efficient implementation, this algorithm reduces depolarization noise affections exponentially. We demonstrated energy gap calculations for one-dimensional Hubbard models on IBM superconducting devices using circuits up to 32-system (plus one-ancilla) qubits, a five-fold increase over previous QPE demonstrations, at the 7242 controlled-Z gate level of standard transpilation, utilizing a Q-CTRL error suppression module. Additionally, we propose a technique towards molecular executions using spatial orbital localization and index sorting, verified linear polyene simulations up to 21 qubits. Since QPDE can handle the same objectives as QPE, our algorithm represents a leap forward in quantum computing on real devices.
format Preprint
id arxiv_https___arxiv_org_abs_2408_04946
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Tensor-based quantum phase difference estimation for large-scale demonstration
Kanno, Shu
Sugisaki, Kenji
Nakamura, Hajime
Yamauchi, Hiroshi
Sakuma, Rei
Kobayashi, Takao
Gao, Qi
Yamamoto, Naoki
Quantum Physics
We develop an energy calculation algorithm leveraging quantum phase difference estimation (QPDE) scheme and a tensor-network-based unitary compression method in the preparation of superposition states and time-evolution gates. Alongside its efficient implementation, this algorithm reduces depolarization noise affections exponentially. We demonstrated energy gap calculations for one-dimensional Hubbard models on IBM superconducting devices using circuits up to 32-system (plus one-ancilla) qubits, a five-fold increase over previous QPE demonstrations, at the 7242 controlled-Z gate level of standard transpilation, utilizing a Q-CTRL error suppression module. Additionally, we propose a technique towards molecular executions using spatial orbital localization and index sorting, verified linear polyene simulations up to 21 qubits. Since QPDE can handle the same objectives as QPE, our algorithm represents a leap forward in quantum computing on real devices.
title Tensor-based quantum phase difference estimation for large-scale demonstration
topic Quantum Physics
url https://arxiv.org/abs/2408.04946