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An Experimental Microarchitecture for a Superconducting Quantum Processor

机译:超导量子处理器的实验微架构

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Quantum computers promise to solve certain problems that are intractable for classical computers, such as factoring large numbers and simulating quantum systems. To date, research in quantum computer engineering has focused primarily at opposite ends of the required system stack: devising high-level programming languages and compilers to describe and optimize quantum algorithms, and building reliable low-level quantum hardware. Relatively little attention has been given to using the compiler output to fully control the operations on experimental quantum processors. Bridging this gap, we propose and build a prototype of a flexible control microarchitecture supporting quantum-classical mixed code for a superconducting quantum processor. The microarchitecture is based on three core elements: (i) a codeword-based event control scheme, (ii) queue-based precise event timing control, and (iii) a flexible multilevel instruction decoding mechanism for control. We design a set of quantum microinstructions that allows flexible control of quantum operations with precise timing. We demonstrate the microarchitecture and microinstruction set by performing a standard gate-characterization experiment on a transmon qubit.
机译:Quantum计算机承诺解决古典计算机棘手的某些问题,例如对大数字和模拟量子系统进行分解。迄今为止,Quantum计算机工程的研究主要集中在所需系统堆栈的另一端:设计高级编程语言和编译器来描述和优化量子算法,并建立可靠的低电平量子硬件。已经对使用编译器输出进行了相对较少的关注来完全控制实验量子处理器上的操作。桥接这种差距,我们提出并构建了一种用于超导量子处理器的量子古典混合代码的柔性控制微体系结构的原型。微架构基于三个核心元素:(i)基于码字的事件控制方案,(ii)基于队列的精确事件定时控制,以及(iii)控制的灵活多级指令解码机制。我们设计一组量子微指令,允许灵活地控制量子操作,具有精确的定时。我们通过在传输量子比特上执行标准栅极表征实验来展示微架构和微细指示。

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