What once seemed to need millions of qubits may now work with ~10,000 physical qubits at ~0.1% error rates.
What once seemed to need millions of qubits may now work with ~10,000 physical qubits at ~0.1% error rates.
Their reconfigurable, long-range links let us run transversal operations across the whole code—no routing detours like in fixed layouts.
Hardware + architecture, co-designed.
Their reconfigurable, long-range links let us run transversal operations across the whole code—no routing detours like in fixed layouts.
Hardware + architecture, co-designed.
• Use operations error correction handles really well
• Generate small-angle magic states with simple procedures, where errors naturally shrink as the angle gets smaller
• Use operations error correction handles really well
• Generate small-angle magic states with simple procedures, where errors naturally shrink as the angle gets smaller
✨ The transversal STAR architecture ✨
It cuts overhead dramatically and makes large-scale quantum simulation achievable much sooner.
✨ The transversal STAR architecture ✨
It cuts overhead dramatically and makes large-scale quantum simulation achievable much sooner.
#QuantumComputing #NeutralAtoms #QuantumErrorCorrection #FaultTolerance #HPC #QuEra #Innovation
#QuantumComputing #NeutralAtoms #QuantumErrorCorrection #FaultTolerance #HPC #QuEra #Innovation
• Reduced runtime overhead: AFT slashes the cost of error correction by a factor of d.
• By combining transversal operations with correlated decoding, AFT maintains exponential error suppression while dramatically speeding up computations.
• Reduced runtime overhead: AFT slashes the cost of error correction by a factor of d.
• By combining transversal operations with correlated decoding, AFT maintains exponential error suppression while dramatically speeding up computations.