Neural Network-Based Design of Approximate Gottesman-Kitaev-Preskill Code
arXiv:2411.01265 · doi:10.1103/PhysRevLett.134.060601
Abstract
Gottesman-Kitaev-Preskill (GKP) encoding holds promise for continuous-variable fault-tolerant quantum computing. While an ideal GKP encoding is abstract and impractical due to its nonphysical nature, approximate versions provide viable alternatives. Conventional approximate GKP codewords are superpositions of multiple {large-amplitude} squeezed coherent states. This feature ensures correctability against single-photon loss and dephasing {at short times}, but also increases the difficulty of preparing the codewords. To minimize this trade-off, we utilize a neural network to generate optimal approximate GKP states, allowing effective error correction with just a few squeezed coherent states. We find that such optimized GKP codes outperform the best conventional ones, requiring fewer squeezed coherent states, while maintaining simple and generalized stabilizer operators. Specifically, the former outperform the latter with just \textit{one third} of the number of squeezed coherent states at a squeezing level of 9.55 dB. This optimization drastically decreases the complexity of codewords while improving error correctability.
References in corpus (47)
- Machine learning and the physical sciences
- QuTiP 2: A Python framework for the dynamics of open quantum systems
- QuTiP: An open-source Python framework for the dynamics of open quantum systems
- Hybrid quantum circuits: Superconducting circuits interacting with other quantum systems
- Quantum Error Correction for Quantum Memories
- Atomic physics and quantum optics using superconducting circuits
- Real-time quantum error correction beyond break-even
- New class of quantum error-correcting codes for a bosonic mode
- Quantum information processing with superconducting qubits in a microwave field
- Performance and structure of single-mode bosonic codes
- Exponential suppression of bit-flips in a qubit encoded in an oscillator
- Beating the break-even point with a discrete-variable-encoded logical qubit
- Fast Universal Control of an Oscillator with Weak Dispersive Coupling to a Qubit
- Experimental neural network enhanced quantum tomography
- Progress towards practical qubit computation using approximate Gottesman-Kitaev-Preskill codes
- Designing quantum memories with embedded control: photonic circuits for autonomous quantum error correction
- All-optical generation of states for "Encoding a qubit in an oscillator"
- Towards Scalable Bosonic Quantum Error Correction
- Quantum Error Correction with the Gottesman-Kitaev-Preskill Code
- Generating Grid States From Schrödinger Cat States without Post-Selection
- General conditions for approximate quantum error correction and near-optimal recovery channels
- Error-transparent operations on a logical qubit protected by quantum error correction
- Analog quantum error correction with encoding a qubit into an oscillator
- Optimum Quantum Error Recovery using Semidefinite Programming
- Iterative Optimization of Quantum Error Correcting Codes
- A fault-tolerant continuous-variable measurement-based quantum computation architecture
- Error Analysis For Encoding A Qubit In An Oscillator
- Stabilization of Finite-Energy Gottesman-Kitaev-Preskill States
- Robust preparation of Wigner-negative states with optimized SNAP-displacement sequences
- Optimizing Completely Positive Maps using Semidefinite Programming
- Robust Quantum Error Correction via Convex Optimization
- Approximate Autonomous Quantum Error Correction with Reinforcement Learning
- Creation of Optical Cat and GKP States Using Shaped Free Electrons
- Quantum Error Correction via Convex Optimization
- Generation of optical Gottesman-Kitaev-Preskill states with cavity QED
- Approximate quantum error correction for generalized amplitude damping errors
- Room-Temperature Photonic Logical Qubits via Second-Order Nonlinearities
- Measurement-free fault-tolerant quantum error correction in near-term devices
- Introduction to Quantum Error Correction and Fault Tolerance
- Performance of teleportation-based error correction circuits for bosonic codes with noisy measurements
- Unconditional preparation of squeezed vacuum from Rabi interactions
- Stabilizer subsystem decompositions for single- and multi-mode Gottesman-Kitaev-Preskill codes
- Accurate phonon blockade detector composed of a quadratically coupled optomechanical system
- Gottesman-Kitaev-Preskill state preparation using periodic driving
- Gaussian conversion protocol for heralded generation of qunaught states
- Optimized Entanglement-Assisted Quantum Error Correction
- Efficient Concatenated Bosonic Code for Additive Gaussian Noise
Cited by in corpus (4)
- Deterministic generation of nonclassical mechanical states in cavity optomechanics via reinforcement learning
- Estimating the performance boundary of Gottesman-Kitaev-Preskill codes and number-phase codes
- Quantum Error Correction with Superpositions of Squeezed Fock States
- On the interpretability of neural network decoders