Characterizing randomness in parameterized quantum circuits through expressibility and average entanglement

IF 5.6 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY
Guilherme Ilário Correr, Ivan Medina, Pedro C Azado, Alexandre Drinko and Diogo O Soares-Pinto
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Abstract

While scalable error correction schemes and fault tolerant quantum computing seem not to be universally accessible in the near sight, the efforts of many researchers have been directed to the exploration of the contemporary available quantum hardware. Due to these limitations, the depth and dimension of the possible quantum circuits are restricted. This motivates the study of circuits with parameterized operations that can be classically optimized in hybrid methods as variational quantum algorithms, enabling the reduction of circuit depth and size. The characteristics of these Parameterized Quantum Circuits (PQCs) are still not fully understood outside the scope of their principal application, motivating the study of their intrinsic properties. In this work, we analyse the generation of random states in PQCs under restrictions on the qubits connectivities, justified by different quantum computer architectures. We apply the expressibility quantifier and the average entanglement as diagnostics for the characteristics of the generated states and classify the circuits depending on the topology of the quantum computer where they can be implemented. As a function of the number of layers and qubits, circuits following a Ring topology will have the highest entanglement and expressibility values, followed by Linear/All-to-all almost together and the Star topology. In addition to the characterization of the differences between the entanglement and expressibility of these circuits, we also place a connection between how steep is the increase on the uniformity of the distribution of the generated states and the generation of entanglement. Circuits generating average and standard deviation for entanglement closer to values obtained with the truly uniformly random ensemble of unitaries present a steeper evolution when compared to others.
通过可表达性和平均纠缠表征参数化量子电路的随机性
尽管可扩展的纠错方案和容错量子计算似乎在不久的将来还无法普遍实现,但许多研究人员的努力方向都是探索当代可用的量子硬件。由于这些限制,可能的量子电路的深度和维度都受到了限制。这就促使人们研究具有参数化操作的电路,这些参数化操作可以通过变量子算法的混合方法进行经典优化,从而降低电路的深度和尺寸。这些参数化量子电路(PQC)的特性在其主要应用范围之外仍未被完全理解,这促使我们对其内在特性进行研究。在这项工作中,我们根据不同量子计算机体系结构的要求,分析了在限制量子比特连接性的情况下,在 PQC 中生成随机状态的问题。我们将可表达性量子化和平均纠缠作为生成状态特征的诊断方法,并根据量子计算机的拓扑结构对电路进行分类。作为层数和量子比特数的函数,采用环形拓扑结构的电路具有最高的纠缠度和可表达性值,其次是线性/全对全几乎在一起和星形拓扑结构。除了描述这些电路的纠缠度和可表达性之间的差异外,我们还将生成状态分布均匀性的陡峭程度与纠缠度的产生联系起来。与其他电路相比,产生纠缠的平均值和标准偏差更接近真正均匀随机的单元集合所得到的值,呈现出更陡峭的演化过程。
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来源期刊
Quantum Science and Technology
Quantum Science and Technology Materials Science-Materials Science (miscellaneous)
CiteScore
11.20
自引率
3.00%
发文量
133
期刊介绍: Driven by advances in technology and experimental capability, the last decade has seen the emergence of quantum technology: a new praxis for controlling the quantum world. It is now possible to engineer complex, multi-component systems that merge the once distinct fields of quantum optics and condensed matter physics. Quantum Science and Technology is a new multidisciplinary, electronic-only journal, devoted to publishing research of the highest quality and impact covering theoretical and experimental advances in the fundamental science and application of all quantum-enabled technologies.
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