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Compilation of Trotter-Based Time Evolution for Partially Fault-Tolerant Quantum Computing Architecture
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abstract
Achieving practical quantum speedup with limited resources is a crucial challenge in both academic and industrial communities. To address this, a partially fault-tolerant quantum computing architecture called ``space-time efficient analog rotation quantum computing architecture (STAR architecture)'' has been recently proposed. This architecture focuses on minimizing resource requirements while maximizing the precision of non-Clifford gates, essential for universal quantum computation. However, non-deterministic processes such as the repeat-until-success (RUS) protocol and state injection can introduce significant computational overhead. Therefore, optimizing the logical circuit to minimize this overhead by using efficient fault-tolerant operations is essential. This paper presents an efficient method for simulating the time evolution of the 2D Hubbard model Hamiltonian, a promising application of the STAR architecture. We present two techniques, parallel injection protocol and adaptive injection region updating, to reduce unnecessary time overhead specific to our architecture. By integrating these with the existing fSWAP technique, we develop an efficient Trotter-based time evolution operation for the 2D Hubbard model. Our analysis reveals an acceleration of over 10 times compared to naive serial compilation. This optimized compilation enables us to estimate the computational resources required for quantum phase estimation of the 2D Hubbard model. For devices with a physical error rate of $p_{\rm phys} = 10^{-4}$, we estimate that approximately $6.5 \times 10^4$ physical qubits are required to achieve faster ground state energy estimation of the $8\times8$ Hubbard model compared to classical computation.
Forward citations
Cited by 4 Pith papers
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Suppressing errors in analog logical rotation gates via balanced fusion
Balanced fusion RUS implements small logical rotations with error O(pφ^1.5) instead of O(pφ), by fusing resource states in a balanced tree rather than directly preparing ever-larger angles.
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Fast-forwardability of Jordan-Wigner-transformed Fermion models based on Cartan decomposition
The dimension of the Hamiltonian algebra of Jordan-Wigner-transformed interacting fermion models grows exponentially with the number of sites, making Cartan-based fast-forwarding inefficient for the Hubbard and Anders...
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Transversal architecture for megaquop-scale quantum simulation with neutral atoms
A neutral-atom co-designed 'transversal STAR' architecture could reach megaquop-scale Hamiltonian simulation with about 10,000 physical qubits at 1e-3 error rates, corresponding to over 1e6 to 1e7 T gates.
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High-fidelity initialization a logical qubit with multiple injections
The paper proposes multiple-chain injection for surface code logical rotations, but the key error formulas are algebraically incorrect, so the claimed advantage is not established.
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