论文标题

通过实时执行来推进混合量子经典计算

Advancing Hybrid Quantum-Classical Computation with Real-Time Execution

论文作者

Lubinski, Thomas, Granade, Cassandra, Anderson, Amos, Geller, Alan, Roetteler, Martin, Petrenko, Andrei, Heim, Bettina

论文摘要

最近引入了量子程序中的中路测量和量子重置的使用,几种应用表明,基于这些测量值进行有条件的分支。在这项工作中,我们迈出了进一步的一步,并描述了嵌入在量子程序中的经典计算的下一代实现,该计算能够基于测量量子的中路状态实时计算和调整程序变量。功能全功能的量子中间表示(QIR)模型用于描述量子电路,包括其嵌入式经典计算。这种综合方法消除了在量子程序中评估和存储潜在的经典数据和存储潜在的经典数据的需求,以探索多个解决方案路径。它启用了一种新型的量子算法,该算法需要在外部经典驱动程序程序和执行量子程序之间更少的往返,从而大大降低了计算延迟,因为在量子程序执行的相干时间内可以执行许多经典计算。我们审查实施这种方法以及解决这些挑战的实际挑战。与现有的量子计算方法相比,在物理量子计算机上展示了这种新颖而强大的量子编程模式,即一种随机步行阶段估计算法,并在物理量子计算机上进行了分析。

The use of mid-circuit measurement and qubit reset within quantum programs has been introduced recently and several applications demonstrated that perform conditional branching based on these measurements. In this work, we go a step further and describe a next-generation implementation of classical computation embedded within quantum programs that enables the real-time calculation and adjustment of program variables based on the mid-circuit state of measured qubits. A full-featured Quantum Intermediate Representation (QIR) model is used to describe the quantum circuit including its embedded classical computation. This integrated approach eliminates the need to evaluate and store a potentially prohibitive volume of classical data within the quantum program in order to explore multiple solution paths. It enables a new type of quantum algorithm that requires fewer round-trips between an external classical driver program and the execution of the quantum program, significantly reducing computational latency, as much of the classical computation can be performed during the coherence time of quantum program execution. We review practical challenges to implementing this approach along with developments underway to address these challenges. An implementation of this novel and powerful quantum programming pattern, a random walk phase estimation algorithm, is demonstrated on a physical quantum computer with an analysis of its benefits and feasibility as compared to existing quantum computing methods.

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