利用量子傅立叶变换实现多控 X 门

IF 2.2 3区 物理与天体物理 Q1 PHYSICS, MATHEMATICAL Quantum Information Processing Pub Date : 2024-08-24 DOI:10.1007/s11128-024-04511-w
Vladimir V. Arsoski
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引用次数: 0

摘要

量子计算有可能解决优化、算术、结构搜索、金融风险分析、机器学习、图像处理等领域的许多复杂算法。为实现这些算法而构建的量子电路通常需要多控制门作为基本构件,其中多控制托福利就是最突出的例子。为了在量子硬件中实现,这些门应该被分解成许多基本门,从而导致最终量子电路的深度很大。然而,由于退相干效应,即使中等深度的量子电路保真度也很低,因此输出结果的分布可能几乎完全一致。本文提出了一种不同的方法,利用量子傅立叶变换实现高效低成本的多控制门。我们展示了如何仅使用几个辅助量子比特就能显著降低电路深度,从而使我们的方法能够应用于噪声中等规模的量子计算机。这种基于量子算术的方法可以有效地用于实现许多复杂的量子门。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Implementing multi-controlled X gates using the quantum Fourier transform

Quantum computing has the potential to solve many complex algorithms in the domains of optimization, arithmetics, structural search, financial risk analysis, machine learning, image processing, and others. Quantum circuits built to implement these algorithms usually require multi-controlled gates as fundamental building blocks, where the multi-controlled Toffoli stands out as the primary example. For implementation in quantum hardware, these gates should be decomposed into many elementary gates, which results in a large depth of the final quantum circuit. However, even moderately deep quantum circuits have low fidelity due to decoherence effects and, thus, may return an almost perfectly uniform distribution of the output results. This paper proposes a different approach for efficient cost multi-controlled gates implementation using the quantum Fourier transform. We show how the depth of the circuit can be significantly reduced using only a few ancilla qubits, making our approach viable for application to noisy intermediate-scale quantum computers. This quantum arithmetic-based approach can be efficiently used to implement many complex quantum gates.

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来源期刊
Quantum Information Processing
Quantum Information Processing 物理-物理:数学物理
CiteScore
4.10
自引率
20.00%
发文量
337
审稿时长
4.5 months
期刊介绍: Quantum Information Processing is a high-impact, international journal publishing cutting-edge experimental and theoretical research in all areas of Quantum Information Science. Topics of interest include quantum cryptography and communications, entanglement and discord, quantum algorithms, quantum error correction and fault tolerance, quantum computer science, quantum imaging and sensing, and experimental platforms for quantum information. Quantum Information Processing supports and inspires research by providing a comprehensive peer review process, and broadcasting high quality results in a range of formats. These include original papers, letters, broadly focused perspectives, comprehensive review articles, book reviews, and special topical issues. The journal is particularly interested in papers detailing and demonstrating quantum information protocols for cryptography, communications, computation, and sensing.
期刊最新文献
Secure sharing of one-sided quantum randomness using entangled coherent states Classification and transformations of quantum circuit decompositions for permutation operations Secure multiparty quantum computation for summation and data sorting Fusion of atomic W-like states in cavity QED systems Cryptanalysis of a quantum identity-based signature and its improvement
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