End-to-end switchless architecture for fault-tolerant photonic quantum computing
arXiv:2412.12680 · doi:10.22331/q-2025-07-14-1796
Abstract
Photonics represents one of the most promising approaches to large-scale quantum computation with millions of qubits and billions of gates, owing to the potential for room-temperature operation, high clock speeds, miniaturization of photonic circuits, and repeatable fabrication processes in commercial photonic foundries. We present an end-to-end architecture for fault-tolerant continuous variable (CV) quantum computation using only passive on-chip components that can produce photonic qubits above the fault tolerance threshold with probabilities above 90%, and encodes logical qubits using physical qubits sampled from a distribution around the fault tolerance threshold. By requiring only low photon number resolution, the architecture enables the use of high-bandwidth photodetectors in CV quantum computing. Simulations of our qubit generation and logical encoding processes show a Gaussian cluster squeezing threshold of 12 dB to 13 dB. Additionally, we present a novel magic state generation protocol which requires only 13 dB of cluster squeezing to produce magic states with an order of magnitude higher probability than existing approaches, opening up the path to universal fault-tolerant quantum computation at less than 13 dB of cluster squeezing.
References in corpus (75)
- Quantum Computing in the NISQ era and beyond
- Gaussian Quantum Information
- Hardware-efficient Variational Quantum Eigensolver for Small Molecules and Quantum Magnets
- Review article: Linear optical quantum computing
- QuTiP 2: A Python framework for the dynamics of open quantum systems
- Measurement-based quantum computation with cluster states
- Universal Quantum Computation with ideal Clifford gates and noisy ancillas
- Continuous-variable optical quantum state tomography
- Detection of 15 dB Squeezed States of Light and their Application for the Absolute Calibration of Photoelectric Quantum Efficiency
- Universal Quantum Computation with Continuous-Variable Cluster States
- Scalable Quantum Simulation of Molecular Energies
- Demonstration of a small programmable quantum computer with atomic qubits
- How to factor 2048 bit RSA integers in 8 hours using 20 million noisy qubits
- Quantum computing with atomic qubits and Rydberg interactions: Progress and challenges
- Topological fault-tolerance in cluster state quantum computation
- Squeezed states of light and their applications in laser interferometers
- Quantum computing with neutral atoms
- Time-Domain Multiplexed 2-Dimensional Cluster State: Universal Quantum Computing Platform
- Efficient Classical Simulation of Continuous Variable Quantum Information Processes
- High-yield wafer-scale fabrication of ultralow-loss, dispersion-engineered silicon nitride photonic circuits
- A fault-tolerant one-way quantum computer
- A Game of Surface Codes: Large-Scale Quantum Computing with Lattice Surgery
- Fault-Tolerant Measurement-Based Quantum Computing with Continuous-Variable Cluster States
- Quantum computing with nearest neighbor interactions and error rates over 1%
- Quantum Computing with Continuous-Variable Clusters
- Strawberry Fields: A Software Platform for Photonic Quantum Computing
- Modes and states in Quantum Optics
- Blueprint for a Scalable Photonic Fault-Tolerant Quantum Computer
- Building Gaussian Cluster States by Linear Optics
- Magic State Distillation: Not as Costly as You Think
- Bosonic quantum error correction codes in superconducting quantum circuits
- Fault-tolerant bosonic quantum error correction with the surface-GKP code
- All-Gaussian universality and fault tolerance with the Gottesman-Kitaev-Preskill code
- High-threshold fault-tolerant quantum computation with analog quantum error correction
- Progress towards practical qubit computation using approximate Gottesman-Kitaev-Preskill codes
- Temporal-mode continuous-variable cluster states using linear optics
- Quantum Error Correction with the Gottesman-Kitaev-Preskill Code
- Generating Grid States From Schrödinger Cat States without Post-Selection
- Continuous-variable quantum computing in the quantum optical frequency comb
- Demonstration of a quantum nondemolition sum gate
- Sparse Blossom: correcting a million errors per core second with minimum-weight matching
- Foliated Quantum Codes
- Ultracompact Generation of Continuous-Variable Cluster States
- A fault-tolerant continuous-variable measurement-based quantum computation architecture
- Fault-tolerant resource estimate for quantum chemical simulations: Case study on Li-ion battery electrolyte molecules
- Limitations of quantum computing with Gaussian cluster states
- Resolution of 100 photons and quantum generation of unbiased random numbers
- Continuous-variable gate teleportation and bosonic-code error correction
- Fault-tolerant magic state preparation with flag qubits
- All-Optical Long-Distance Quantum Communication with Gottesman-Kitaev-Preskill qubits
- Fault-tolerant quantum computation with static linear optics
- One-way quantum computing with arbitrarily large time-frequency continuous-variable cluster states from a single optical parametric oscillator
- Over-8-dB squeezed light generation by a broadband waveguide optical parametric amplifier toward fault-tolerant ultra-fast quantum computers
- The Optical Frequency Comb as a One-Way Quantum Computer
- Deterministic Generation of Large Fock States
- High-threshold quantum computing by fusing one-dimensional cluster states
- Noise analysis of single-qumode Gaussian operations using continuous-variable cluster states
- High-threshold fault-tolerant quantum computation with the Gottesman-Kitaev-Preskill qubit under noise in an optical setup
- Finite Rate QLDPC-GKP Coding Scheme that Surpasses the CSS Hamming Bound
- Measurement-based generation and preservation of cat and grid states within a continuous-variable cluster state
- Broadband amplitude squeezing in a periodically poled KTiOPO_4 waveguide
- Flexible quantum circuits using scalable continuous-variable cluster states
- Generation of Flying Logical Qubits using Generalized Photon Subtraction with Adaptive Gaussian Operations
- Photon-number-resolving segmented detectors based on single-photon avalanche-photodiodes
- Phase-space methods for representing, manipulating, and correcting Gottesman-Kitaev-Preskill qubits
- Streamlined quantum computing with macronode cluster states
- Quantum error correction with the color-Gottesman-Kitaev-Preskill code
- Lattice Surgery on the Raussendorf Lattice
- Biased Gottesman-Kitaev-Preskill repetition code
- The vacuum provides quantum advantage to otherwise simulatable architectures
- Plug-&-play generation of non-Gaussian states of light at a telecom wavelength
- Linear-optical quantum computation with arbitrary error-correcting codes
- Seeding Gaussian boson samplers with single photons for enhanced state generation
- From the Bloch sphere to phase space representations with the Gottesman-Kitaev-Preskill encoding
- Machine learning for efficient generation of universal hybrid quantum computing resources