Quantum Computing Report

Mitsui & Co. and Mitsubishi Electric Benchmark Approximate and Logical QFT on Quantinuum Helios

Japanese industrial conglomerates Mitsui & Co. and Mitsubishi Electric have published joint experimental benchmarks evaluating the Quantum Fourier Transform (QFT) on Quantinuum’s 98-qubit Helios trapped-ion quantum computer. Detailed in a co-authored white paper (Experimental Evaluation of the Quantum Fourier Transform on a Trapped-Ion Quantum Computer), the team executed both physical-qubit approximate QFT and Steane-encoded logical QFT circuits.

The experiment evaluates hardware scaling and algorithmic utility across two computational regimes:

  • Physical Qubit Approximate QFT (Up to 98 Qubits): The researchers executed approximate QFT circuits up to the processor’s full 98 physical qubit capacity. By setting the small-angle phase rotation truncation parameter (degs=5), the system preserved a non-zero target-state probability (Ptarget​=0.143 at 98 qubits) while applying leakage-detection (LD) post-selection to mitigate environmental physical errors.
  • Logical QFT with Steane Code (Up to 12 Logical Qubits): Using the 7-qubit Steane error-correcting code ([[7,1,3]]), the team instantiated up to 12 logical qubits across 84 physical qubits. Evaluating error-detection post-selection against active error correction, the team observed that error detection achieved higher logical target-state probabilities (PLtarget = 0.934 for 4 logical qubits, 0.774 for 8 logical qubits) at the cost of reduced shot acceptance rates (31% at 8 logical qubits, 8% at 12 logical qubits).
  • Logical T-Gate Implementation Trade-Offs: In a two-logical-qubit QFT test, the team compared non-fault-tolerant direct analog rotations with fault-tolerant code-switching state injection (using 30 physical qubits across quantum Reed-Muller and Steane blocks). Direct analog rotation yielded higher output fidelity under current physical noise levels, highlighting the operational overheads associated with full fault-tolerant gate construction.
                    [ Physical vs. Logical QFT Execution Benchmarks ]
                                            │
     ┌──────────────────────────────────────┴──────────────────────────────────────┐
     ▼                                                                             ▼
  Physical Approximate QFT (degs=5)                              Logical QFT (Steane Code)
  • Executed across 18 to 98 Physical Qubits.                   • Scaled from 2 to 12 Logical Qubits.
  • P_target = 0.976 (18q) ➔ 0.143 (98q).                        • Uses 7 Physical Qubits per Logical Qubit.
  • Uses Leakage-Detection Post-Selection.                      • Evaluates Direct Analog vs. Code-Switching T-Gates.

The joint research team developed custom quantum error correction software using Quantinuum’s Guppy® hybrid programming language alongside pytket® compilation toolchains, evaluating cross-layer design trade-offs between physical gate noise, code distance overhead, and post-selection acceptance rates.

Review the technical white paper via Mitsubishi Electric here, and explore executive insights on the Quantinuum Blog here.

August 14, 2026

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