TY - GEN
T1 - Design of an FPGA-Based Neutral Atom Rearrangement Accelerator for Quantum Computing
AU - Guo, Xiaorang
AU - Winklmann, Jonas
AU - Stober, Dirk
AU - Elsharkawy, Amr
AU - Schulz, Martin
N1 - Publisher Copyright:
© 2025 EDAA.
PY - 2025
Y1 - 2025
N2 - Neutral atoms have emerged as a promising technology for implementing quantum computers due to their scalability and long coherence times. However, the execution frequency of neutral atom quantum computers is constrained by image processing procedures, particularly the assembly of defect-free atom arrays, which is a crucial step in preparing qubits (atoms) for execution. To optimize this assembly process, we propose a novel quadrant-based rearrangement algorithm that employs a divide-and-conquer strategy and also enables the simultaneous movement of multiple atoms, even across different columns and rows. We implement the algorithm on Field Programmable Gate Arrays (FPGAs) to handle each quadrant independently (hardware-level optimization) while maximizing parallelization. To the best of our knowledge, this is the first hardware acceleration work for atom rearrangement, and it significantly reduces the processing time. This achievement also contributes to the ongoing efforts of tightly integrating quantum accelerators into High-Performance Computing (HPC) systems. Tested on a Zynq RFSoC FPGA at 250 MHz, our hardware implementation is able to complete the rearrangement process of a 30 × 30 compact target array, derived from a 50 × 50 initial loaded array, in approximately 1.0 μs. Compared to a comparable CPU implementation and to state-of-the-art FPGA work, we achieved about 54 x and 300 x speedups in the rearrangement analysis time, respectively. Additionally, the FPGA-based acceleration demonstrates good scalability, allowing for seamless adaptation to varying sizes of the atom array, which makes this algorithm a promising solution for large-scale quantum systems.
AB - Neutral atoms have emerged as a promising technology for implementing quantum computers due to their scalability and long coherence times. However, the execution frequency of neutral atom quantum computers is constrained by image processing procedures, particularly the assembly of defect-free atom arrays, which is a crucial step in preparing qubits (atoms) for execution. To optimize this assembly process, we propose a novel quadrant-based rearrangement algorithm that employs a divide-and-conquer strategy and also enables the simultaneous movement of multiple atoms, even across different columns and rows. We implement the algorithm on Field Programmable Gate Arrays (FPGAs) to handle each quadrant independently (hardware-level optimization) while maximizing parallelization. To the best of our knowledge, this is the first hardware acceleration work for atom rearrangement, and it significantly reduces the processing time. This achievement also contributes to the ongoing efforts of tightly integrating quantum accelerators into High-Performance Computing (HPC) systems. Tested on a Zynq RFSoC FPGA at 250 MHz, our hardware implementation is able to complete the rearrangement process of a 30 × 30 compact target array, derived from a 50 × 50 initial loaded array, in approximately 1.0 μs. Compared to a comparable CPU implementation and to state-of-the-art FPGA work, we achieved about 54 x and 300 x speedups in the rearrangement analysis time, respectively. Additionally, the FPGA-based acceleration demonstrates good scalability, allowing for seamless adaptation to varying sizes of the atom array, which makes this algorithm a promising solution for large-scale quantum systems.
KW - Atom rearrangement
KW - FPGA
KW - Neutral Atoms
KW - Quantum Computing
UR - https://www.scopus.com/pages/publications/105006918887
U2 - 10.23919/DATE64628.2025.10992700
DO - 10.23919/DATE64628.2025.10992700
M3 - Conference contribution
AN - SCOPUS:105006918887
T3 - Proceedings -Design, Automation and Test in Europe, DATE
BT - 2025 Design, Automation and Test in Europe Conference, DATE 2025 - Proceedings
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2025 Design, Automation and Test in Europe Conference, DATE 2025
Y2 - 31 March 2025 through 2 April 2025
ER -