摘要
Advanced neutral atom quantum systems are being developed by the industry due to its unique hardware features that enable efficient quantum circuit execution. In fact, neutral atom quantum systems are the only platforms that simultaneously support both long-range qubit interactions and native multi-qubit gates. However, the unique characteristics of neutral atom devices limit the applicability of existing qubit mapping methods developed for other quantum devices, and the state-of-the-art mapping approach [13] for neutral atom devices suffers from long runtime and low shuttle scheduling parallelism. We introduce a novel mapping and shuttling framework for neutral atom devices. We first partition the input circuit into a sequence of subcircuits, each associated with a mapping that enables the execution of all gates in the subcircuit. To find these mappings efficiently, we adopt a flexible strategy that dynamically switches between two mapping search methods. Then, for each pair of consecutive mappings, we schedule the shuttling operations required to transition between them and prioritize timing-critical operations to improve parallelism. We performed experiments on three benchmark sets, including circuits with up to 1617 qubits and more than𝟏 𝟎 𝟎, 𝟎 𝟎 𝟎gates. Our proposed framework resulted in high-quality routing solutions and consistently achieves higher fidelity with shorter runtime compared to existing approaches.