A Quantum Approach for Exploring the Numerical Results of the Heat Equation

Algorithms Pub Date : 2024-07-25 DOI:10.3390/a17080327
B. Daribayev, Aksultan Mukhanbet, Nurtugan Azatbekuly, Timur Imankulov
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Abstract

This paper presents a quantum algorithm for solving the one-dimensional heat equation with Dirichlet boundary conditions. The algorithm utilizes discretization techniques and employs quantum gates to emulate the heat propagation operator. Central to the algorithm is the Trotter–Suzuki decomposition, enabling the simulation of the time evolution of the temperature distribution. The initial temperature distribution is encoded into quantum states, and the evolution of these states is driven by quantum gates tailored to mimic the heat propagation process. As per the literature, quantum algorithms exhibit an exponential computational speedup with increasing qubit counts, albeit facing challenges such as exponential growth in relative error and cost functions. This study addresses these challenges by assessing the potential impact of quantum simulations on heat conduction modeling. Simulation outcomes across various quantum devices, including simulators and real quantum computers, demonstrate a decrease in the relative error with an increasing number of qubits. Notably, simulators like the simulator_statevector exhibit lower relative errors compared to the ibmq_qasm_simulator and ibm_osaka. The proposed approach underscores the broader applicability of quantum computing in physical systems modeling, particularly in advancing heat conductivity analysis methods. Through its innovative approach, this study contributes to enhancing modeling accuracy and efficiency in heat conduction simulations across diverse domains.
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探索热方程数值结果的量子方法
本文提出了一种量子算法,用于求解具有 Dirichlet 边界条件的一维热方程。该算法利用离散化技术和量子门来模拟热传播算子。该算法的核心是 Trotter-Suzuki 分解,从而能够模拟温度分布的时间演化。初始温度分布被编码为量子态,这些状态的演变由量子门驱动,量子门是为模拟热传播过程而定制的。根据文献记载,量子算法的计算速度随着量子比特数的增加呈指数级增长,但也面临着相对误差和成本函数呈指数级增长等挑战。本研究通过评估量子模拟对热传导建模的潜在影响来应对这些挑战。各种量子设备(包括模拟器和真实量子计算机)的模拟结果表明,随着量子比特数量的增加,相对误差也在减少。值得注意的是,与 ibmq_qasm_simulator 和 ibm_osaka 相比,simulator_statevector 等模拟器表现出更低的相对误差。所提出的方法强调了量子计算在物理系统建模中的广泛适用性,特别是在推进热传导分析方法方面。通过创新方法,本研究有助于提高不同领域热传导模拟的建模精度和效率。
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