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Tableau-Based Framework for Efficient Logical Quantum Compilation

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arxiv 2509.02721 v1 pith:YRQ43S54 submitted 2025-09-02 quant-ph

classification quant-ph
keywords ftqcoverheadquantumphysicalruntimetimesunderlinearchitectures
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Quantum computing holds the promise of solving problems intractable for classical computers, but practical large-scale quantum computation requires error correction to protect against errors. Fault-tolerant quantum computing (FTQC) enables reliable execution of quantum algorithms, yet they often demand substantial physical qubit overhead. Resource-efficient FTQC architectures minimize the number of physical qubits required, saving more than half compared to other architectures, but impose constraints that introduce up to 4.7$\times$ higher runtime overhead. In this paper, we present TQC, a \underline{T}ableau-based \underline{Q}uantum \underline{C}ompiler framework that minimizes FTQC runtime overhead without requiring additional physical qubits. By leveraging operation reorderability and latency hiding through parallel execution, TQC reduces FTQC runtime overhead by \textbf{2.57$\times$} on average. Furthermore, FTQC circuits often contain millions of gates, leading to substantial compilation overhead. To address this, we optimize the core data structure, the tableau, used in stabilizer formalism. We provide two tailored versions of the Tableau data type, each designed for different usage scenarios. These optimizations yield an overall performance improvement of more than \textbf{1000$\times$} compared to state-of-the-art FTQC optimization tools.

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Cited by 1 Pith paper

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  1. Encoding Choices and Fault-Tolerant Resource Estimates for Digital Quantum Hamiltonian Descent

    quant-ph 2026-07 conditional novelty 6.0 of 10

    For digital quantum Hamiltonian descent, binary amplitude encoding uses O(d log N) qubits and fewer R_z rotations than one-hot encoding in all tested benchmarks, making it the preferred starting point for fault-tolera...

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