Researchers and industries are increasingly drawn to quantum computing for its computational potential. However, validating new quantumalgorithms is challenging due to current quantum device limitations. Software sim...
详细信息
ISBN:
(纸本)9798331541378
Researchers and industries are increasingly drawn to quantum computing for its computational potential. However, validating new quantumalgorithms is challenging due to current quantum device limitations. Software simulators are time and memory -intensive, making hardware emulators an attractive alternative. This article introduces a digital architecture, designed to emulate quantum computing on low -tier Field -Programmable Gate Arrays (FPGAs), supporting Clifford+T and rotational gate sets. It simplifies and accelerates quantum algorithm verification using a RISC -like structure and efficiently handling sparse quantum gates. A dedicated compiler translates OpenQASM 2.0 into RISC -like instructions. The architecture is validated against the Qiskit state vector simulator, successfully emulating sixteen qubits on a Xilinx Kria KV260 SoM.
Researchers and industries are increasingly drawn to quantum computing for its computational potential. However, validating new quantumalgorithms is challenging due to the limitations of current quantum devices. Soft...
详细信息
ISBN:
(纸本)9798350377217;9798350377200
Researchers and industries are increasingly drawn to quantum computing for its computational potential. However, validating new quantumalgorithms is challenging due to the limitations of current quantum devices. Software simulators are time and memory-consuming, making hardware emulators an attractive alternative. This article introduces AMARETTO (quantum ARchitecture EmulaTion TechnOlogy), designed for quantum computing emulation on low-tier Field-Programmable gate arrays (FPGAs), supporting Clifford+T and rotational gate sets. It simplifies and accelerates the verification of quantumalgorithms using a Reduced-Instruction-Set-Computer (RISC)-like structure and efficient handling of sparse quantum gates. A dedicated compiler translates OpenQASM 2.0 into RISC-like instructions. AMARETTO is validated against the Qiskit simulators. Our results show successful emulation of sixteen qubits on a AMD Kria KV260 SoM. This approach rivals other works in emulated qubit capacity on a smaller, more affordable FPGA.
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