模拟-数字混合量子信号处理:量子AD/DA转换和傅立叶变换

IF 5.8 2区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Yuan Liu;John M. Martyn;Jasmine Sinanan-Singh;Kevin C. Smith;Steven M. Girvin;Isaac L. Chuang
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引用次数: 0

摘要

信号处理是经典计算和现代信息技术的支柱,对模拟信号和数字信号都适用。最近,量子信息科学的进展表明,量子信号处理(QSP)可以实现更强大的信号处理能力。然而,QSP的发展主要利用了数字量子资源,如离散变量(DV)系统,如量子位,而不是模拟量子资源,如连续变量(CV)系统,如量子振荡器。因此,在理解如何在混合CV-DV量子计算机上执行信号处理方面仍然存在差距。在这里,我们通过开发混合模拟-数字QSP的新范例来解决这一差距。我们通过展示它如何自然地实现量子信号的模数转换,特别是DV和CV量子系统之间的状态转移,来展示这种范式的实用性。然后,我们证明了这种量子模拟-数字转换可以在CV-DV硬件上实现新的量子算法。这是通过量子振荡器的自由演化实现量子比特编码状态的量子傅立叶变换来实现的,尽管由于信息理论的争论,量子比特的数量在运行时呈指数增长。总的来说,这项工作标志着混合CV-DV量子计算向前迈出了重要一步,为量子处理器上可扩展的模拟-数字信号处理奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Toward Mixed Analog-Digital Quantum Signal Processing: Quantum AD/DA Conversion and the Fourier Transform
Signal processing stands as a pillar of classical computation and modern information technology, applicable to both analog and digital signals. Recently, advancements in quantum information science have suggested that quantum signal processing (QSP) can enable more powerful signal processing capabilities. However, the developments in QSP have primarily leveraged digital quantum resources, such as discrete-variable (DV) systems like qubits, rather than analog quantum resources, such as continuous-variable (CV) systems like quantum oscillators. Consequently, there remains a gap in understanding how signal processing can be performed on hybrid CV-DV quantum computers. Here we address this gap by developing a new paradigm of mixed analog-digital QSP. We demonstrate the utility of this paradigm by showcasing how it naturally enables analog-digital conversion of quantum signals—specifically, the transfer of states between DV and CV quantum systems. We then show that such quantum analog-digital conversion enables new implementations of quantum algorithms on CV-DV hardware. This is exemplified by realizing the quantum Fourier transform of a state encoded on qubits via the free-evolution of a quantum oscillator, albeit with a runtime exponential in the number of qubits due to information theoretic arguments. Collectively, this work marks a significant step forward in hybrid CV-DV quantum computation, providing a foundation for scalable analog-digital signal processing on quantum processors.
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来源期刊
IEEE Transactions on Signal Processing
IEEE Transactions on Signal Processing 工程技术-工程:电子与电气
CiteScore
11.20
自引率
9.30%
发文量
310
审稿时长
3.0 months
期刊介绍: The IEEE Transactions on Signal Processing covers novel theory, algorithms, performance analyses and applications of techniques for the processing, understanding, learning, retrieval, mining, and extraction of information from signals. The term “signal” includes, among others, audio, video, speech, image, communication, geophysical, sonar, radar, medical and musical signals. Examples of topics of interest include, but are not limited to, information processing and the theory and application of filtering, coding, transmitting, estimating, detecting, analyzing, recognizing, synthesizing, recording, and reproducing signals.
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