MUSS-TI: Multi-level Shuttle Scheduling for Large-Scale Entanglement Module Linked Trapped-Ion
Xian Wu, Chenghong Zhu, Jingbo Wang, Xin Wang
Abstract
Trapped-ion computing is a leading architecture in the pursuit of scalable and high fidelity quantum systems. Modular quantum architectures based on photonic interconnects offer a promising path for scaling trapped ion devices. In this design, multiple Quantum Charge Coupled Device (QCCD) units are interconnected through entanglement module. Each unit features a multi-zone layout that separates functionalities into distinct areas, enabling more efficient and flexible quantum operations. However, achieving efficient and scalable compilation of quantum circuits in such entanglement module linked Quantum Charge-Coupled Device (EML-QCCD) remains a primary challenge for practical quantum applications.
In this work, we propose a scalable compiler tailored for largescale trapped-ion architectures, with the goal of reducing the shuttling overhead inherent in EML-QCCD devices. MUSS-TI introduces a multi-level scheduling approach inspired by multi-level memory scheduling in classical computing. This method is designed to be aware of the distinct roles of different zones and to minimize the number of shuttling operations required in EML-QCCD systems. We demonstrate that EML-QCCD architectures are wellsuited for executing large-scale applications. Our evaluation shows that MUSS-TI reduces shuttle operations by 41.74% for applications with 30-32 qubits, and by an average of 73.38% and 59.82% for applications with 117-128 qubits and 256-299 qubits, respectively.
Ask about this paper
Your agent reads all of it.
Lune indexed this paper to the last equation, along with the top-tier papers that cite it. Ask a question and the answer quotes them.
Your agent calls
Luneget_paper_fulltext
Free to start. No credit card required.
Terminal
Install the CLIlune papers fulltext 31d0b6ff-ad98-4775-b315-5f3fedaa8ff3Builds on22
- Optimized Quantum Compilation for Near-Term Algorithms with OpenPulsePranav Gokhale, Ali Javadi-Abhari, Nathan Earnest, Yunong Shi et al.MICRO 2020 · 87 citations
- Architecting Noisy Intermediate-Scale Trapped Ion Quantum ComputersPrakash Murali, Dripto M. Debroy, Kenneth R. Brown, Margaret MartonosiISCA 2020 · 78 citations
- Circuit Compilation Methodologies for Quantum Approximate Optimization AlgorithmMahabubul Alam, Abdullah Ash-Saki, Swaroop GhoshMICRO 2020 · 65 citations
- ADAPT: Mitigating Idling Errors in Qubits via Adaptive Dynamical DecouplingPoulami Das, Swamit S. Tannu, Siddharth Dangwal, Moinuddin K. QureshiMICRO 2021 · 64 citations
- Paulihedral: a generalized block-wise compiler optimization framework for Quantum simulation kernelsGushu Li, Anbang Wu, Yunong Shi, Ali Javadi-Abhari et al.ASPLOS 2022 · 60 citations
Related papers
- S-SYNC: Shuttle and Swap Co-Optimization in Quantum Charge-Coupled DevicesChenghong Zhu, Xian Wu, Jingbo Wang, Xin WangISCA 2025 · 2 citations
- TITAN: A Fast and Distributed Large-Scale Trapped-Ion NISQ ComputerCheng Chu, Zhenxiao Fu, Yilun Xu, Gang Huang et al.DAC 2024 · 5 citations
- Architecting Scalable Trapped Ion Quantum Computers using Surface CodesScott Jones, Prakash MuraliASPLOS 2026
- Reuse-Aware Compilation for Zoned Quantum Architectures Based on Neutral AtomsWan-Hsuan Lin, Daniel Bochen Tan, Jason CongHPCA 2025 · 8 citations
- TILT: Achieving Higher Fidelity on a Trapped-Ion Linear-Tape Quantum Computing ArchitectureXin-Chuan Wu, Dripto M. Debroy, Yongshan Ding, Jonathan M. Baker et al.HPCA 2021 · 22 citations
