论文标题
量子计算机辅助设计:量子处理器的数字量子模拟
Quantum computer-aided design: digital quantum simulation of quantum processors
论文作者
论文摘要
随着量子处理器尺寸的增加,构成处理器硬件的子模块将变得太大,无法在经典计算机上准确模拟。因此,很快将不得不在设计,制造和实验验证之间进行时间耗费的协调时制造和测试每个新设计原始和参数选择。在这里,我们展示了如何通过使用现有量子计算机设计和测试下一代量子硬件的性能。我们以作为突出的硬件平台将超导型传输处理器作为一个突出的硬件平台,计算了单个和耦合的传输的静态和动态属性。我们展示了如何通过非常适合近期噪声量子计算机的变异杂种量子古典算法来获得传输的能能光谱。此外,通过铃木 - 漫游者分解证明了单量和两倍的栅极模拟。当计算子模块属性的需求超过经典计算资源的功能时,我们的方法是设计候选量子处理器的一种有希望的方法。
With the increasing size of quantum processors, sub-modules that constitute the processor hardware will become too large to accurately simulate on a classical computer. Therefore, one would soon have to fabricate and test each new design primitive and parameter choice in time-consuming coordination between design, fabrication, and experimental validation. Here we show how one can design and test the performance of next-generation quantum hardware -- by using existing quantum computers. Focusing on superconducting transmon processors as a prominent hardware platform, we compute the static and dynamic properties of individual and coupled transmons. We show how the energy spectra of transmons can be obtained by variational hybrid quantum-classical algorithms that are well-suited for near-term noisy quantum computers. In addition, single- and two-qubit gate simulations are demonstrated via Suzuki-Trotter decomposition. Our methods pave a promising way towards designing candidate quantum processors when the demands of calculating sub-module properties exceed the capabilities of classical computing resources.