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Embedding of quantum-dot cellular automata circuits onto a quantum annealing processor

机译:将量子点元胞自动机电路嵌入到量子退火处理器中

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Simulations of quantum-dot cellular automata (QCA) on classical computers are highly limited due to the exponential growth in resources required for the numerical simulation of quantum mechanics involving networks of finite state nodes. Recent advancements in computing based on networks of flux-qubits, and in particular the platform technology developed by D-Wave Systems Inc., have made it possible to explore QCA networks that are intractable on classical machines. However, the embedding of such networks onto the available processor architecture is a key challenge in setting up such simulations. In this work, two approaches to embedding QCA circuits are characterized: a dense placement algorithm that uses a routing method based on negotiated congestion; and a heuristic method implemented in D-Wave's SAPI package. Both embedding methods are characterized using a set of basic QCA benchmark circuits of various sizes and complexities. When including diagonal interactions only in the case of an inverter, both methods were able to embed a 4-bit 2-1 multiplexer circuit containing 192 non-driver QCA cells onto the 512 qubit D-Wave Vesuvius chip architecture. Including diagonal interactions for all cells, both methods successfully embedded a serial adder circuit containing 126 non-driver cells.
机译:由于涉及有限状态节点网络的量子力学的数值模拟所需的资源的指数增长,古典电脑上量子点蜂窝自动机(QCA)的模拟受到高度限制。基于磁通额度网络的计算的最新进展,特别是D-Wave Systems Inc.开发的平台技术,使得可以探索古典机器难以解决的QCA网络。但是,将这些网络嵌入到可用的处理器架构上是建立此类模拟时的关键挑战。在这项工作中,有两种嵌入QCA电路的方法是:一种密集的放置算法,它使用基于协商拥塞的路由方法;和D-Wave的SAPI包中实现的启发式方法。嵌入方法都使用各种尺寸和复杂性的一组基本QCA基准电路来表征。当仅在逆变器的情况下包括对角相互作用时,两种方法都能够将包含192个非驱动器QCA小区的4位2-1多路复用器电路嵌入到512个QUBit D-Wave VESUVIUS芯片架构上。包括所有单元的对角线相互作用,两种方法都成功地嵌入了包含126个非驱动器单元的串行加法器电路。

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