Compilation of QCrank Encoding Algorithm for a Dynamically Programmable Qubit Array Processor
arXiv:2507.10699 · doi:10.1109/QCE65121.2025.00219
Abstract
Algorithm and hardware-aware compilation co-design is essential for the efficient deployment of near-term quantum programs. We present a compilation case-study implementing QCrank -- an efficient encoding protocol for storing sequenced real-valued classical data in a quantum state -- targeting neutral atom-based Dynamically Programmable Qubit Arrays (DPQAs). We show how key features of neutral-atom arrays such as high qubits count, operation parallelism, multi-zone architecture, and natively reconfigurable connectivity can be used to inform effective algorithm deployment. We identify algorithmic and circuit features that signal opportunities to implement them in a hardware-efficient manner. To evaluate projected hardware performance, we define a realistic noise model for DPQAs using parameterized Pauli channels, implement it in Qiskit circuit simulators, and assess QCrank's accuracy for writing and reading back 24-320 real numbers into 6-20 qubits. We compare DPQA results with simulated performances of Quantinuum's H1-1E and with experimental results from IBM Fez, highlighting promising accuracy scaling for DPQAs.
7 pages, 5 figures
References in corpus (13)
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Logical quantum processor based on reconfigurable atom arrays
- Noise tailoring for scalable quantum computation via randomized compiling
- High-fidelity parallel entangling gates on a neutral atom quantum computer
- A Race Track Trapped-Ion Quantum Processor
- IBM Quantum Computers: Evolution, Performance, and Future Directions
- Mid-circuit qubit measurement and rearrangement in a Yb atomic array
- Compiling Quantum Circuits for Dynamically Field-Programmable Neutral Atoms Array Processors
- Integrated photonic structures for photon-mediated entanglement of trapped ions
- An Abstract Model and Efficient Routing for Logical Entangling Gates on Zoned Neutral Atom Architectures
- Compilation for Dynamically Field-Programmable Qubit Arrays with Efficient and Provably Near-Optimal Scheduling
- Reuse-Aware Compilation for Zoned Quantum Architectures Based on Neutral Atoms
- Optimal State Preparation for Logical Arrays on Zoned Neutral Atom Quantum Computers