Quantum Crosstalk Robust Quantum Control
arXiv:2208.05978 · doi:10.1103/PhysRevLett.131.210802
Abstract
The prevalence of quantum crosstalk in current quantum devices poses challenges for achieving high-fidelity quantum logic operations and reliable quantum processing. Through quantum control theory, we develop an analytical condition for achieving crosstalk-robust single-qubit control of multi-qubit systems. We examine the effects of quantum crosstalk via a cumulant expansion and develop a condition to suppress the leading order contributions to the dynamics. The efficacy of the condition is illustrated in the domains of quantum state preservation and noise characterization through the development of crosstalk-robust dynamical decoupling and quantum noise spectroscopy (QNS) protocols. Using the IBM Quantum Experience, crosstalk-robust state preservation is demonstrated on 27 qubits, where a improvement in coherence decay is observed for single-qubit product and multipartite entangled states. Through the use of noise injection, we experimentally demonstrate crosstalk-robust dephasing QNS on a seven qubit processor, where a improvement in reconstruction accuracy over ``cross-susceptible" alternatives is found. Together, these experiments highlight the significant impact the crosstalk mitigation condition can have on improving multi-qubit characterization and control on current quantum devices.
References in corpus (29)
- Dynamical decoupling and noise spectroscopy with a superconducting flux qubit
- How to Enhance Dephasing Time in Superconducting Qubits
- Exponential suppression of bit or phase flip errors with repetitive error correction
- Characterization of addressability by simultaneous randomized benchmarking
- Software Mitigation of Crosstalk on Noisy Intermediate-Scale Quantum Computers
- Trapped-ion quantum logic gates based on oscillating magnetic fields
- Resolving catastrophic error bursts from cosmic rays in large arrays of superconducting qubits
- Demonstration of a High-Fidelity CNOT for Fixed-Frequency Transmons with Engineered ZZ Suppression
- Suppression of crosstalk in superconducting qubits using dynamical decoupling
- Charge-noise spectroscopy of Si/SiGe quantum dots via dynamically-decoupled exchange oscillations
- Multiqubit Spectroscopy of Gaussian Quantum Noise
- Quantum crosstalk analysis for simultaneous gate operations on superconducting qubits
- Quantum crosstalk cancellation for fast entangling gates and improved multi-qubit performance
- Simultaneous single-qubit driving of semiconductor spin qubits at the fault-tolerant threshold
- Crosstalk Suppression for Fault-tolerant Quantum Error Correction with Trapped Ions
- Simultaneous execution of quantum circuits on current and near-future NISQ systems
- Experimental Characterization of Crosstalk Errors with Simultaneous Gate Set Tomography
- Error-robust quantum logic optimization using a cloud quantum computer interface
- Crosstalk Suppression in Individually Addressed Two-Qubit Gates in a Trapped-Ion Quantum Computer
- A blueprint for fault-tolerant quantum computation with Rydberg atoms
- Predicting non-Markovian superconducting qubit dynamics from tomographic reconstruction
- Hidden Inverses: Coherent Error Cancellation at the Circuit Level
- Crosstalk error correction through dynamical decoupling of single-qubit gates in capacitively coupled singlet-triplet semiconductor spin qubits
- Frame-Based Filter-Function Formalism for Quantum Characterization and Control
- Suppressing ZZ Crosstalk of Quantum Computers through Pulse and Scheduling Co-Optimization
- The effect of quantum noise on algorithmic perfect quantum state transfer on NISQ processors
- Crosstalk analysis for simultaneously driven two-qubit gates in spin qubit arrays
- Crosstalk- and charge-noise-induced multiqubit decoherence in exchange-coupled quantum dot spin qubit arrays
- SchWARMA: A model-based approach for time-correlated noise in quantum circuits
Cited by in corpus (39)
- Quantum Fourier Transform using Dynamic Circuits
- Qudit Dynamical Decoupling on a Superconducting Quantum Processor
- Dissipative Dynamics of Graph-State Stabilizers with Superconducting Qubits
- Scalable Quantum Simulations of Scattering in Scalar Field Theory on 120 Qubits
- Suppressing Correlated Noise in Quantum Computers via Context-Aware Compiling
- Modeling low- and high-frequency noise in transmon qubits with resource-efficient measurement
- Benchmarking quantum gates and circuits
- SPAM-Robust Multi-axis Quantum Noise Spectroscopy in Temporally Correlated Environments
- Dynamically Generated Decoherence-Free Subspaces and Subsystems on Superconducting Qubits
- Crosstalk Attacks and Defence in a Shared Quantum Computing Environment
- Markovian Noise Modelling and Parameter Extraction Framework for Quantum Devices
- Synergistic Dynamical Decoupling and Circuit Design for Enhanced Algorithm Performance on Near-Term Quantum Devices
- Fidelity-dissipation relations in quantum gates
- Demonstration of Algorithmic Quantum Speedup for an Abelian Hidden Subgroup Problem
- Probing Quantum Telecloning on Superconducting Quantum Processors
- Simulating quantum circuits with arbitrary local noise using Pauli Propagation
- Scalable Parameter Design for Superconducting Quantum Circuits with Graph Neural Networks
- Distributed Partial Quantum Consensus of Qubit Networks with Connected Topologies
- Simulating nonlinear optical processes on a superconducting quantum device
- Empirical learning of dynamical decoupling on quantum processors
- Geometric correspondence of noisy quantum dynamics and universal robust quantum gates
- Scalable protocol to mitigate crosstalk in universal quantum gates
- Optimized Noise Suppression for Quantum Circuits
- Efficient Chromatic-Number-Based Multi-Qubit Decoherence and Crosstalk Suppression
- Virtual Z gates and symmetric gate compilation
- Real-time Sign-Problem-Suppressed Quantum Monte Carlo Algorithm For Noisy Quantum Circuit Simulations
- Randomized Benchmarking Protocol for Dynamic Circuits
- Mitigation of correlated readout errors without randomized measurements
- Demonstration of High-Fidelity Entangled Logical Qubits using Transmons
- Sparse Non-Markovian Noise Modeling of Transmon-Based Multi-Qubit Operations
- Robust implicit quantum control of interacting spin chains
- Engineering Precise and Robust Effective Hamiltonians
- Binary Quantum Control Optimization with Uncertain Hamiltonians
- Experimental Verification of Entangled States in the Adversarial Scenario
- Towards Robust Optimal Measurements Against Noise in Quantum Metrology
- Basic entanglement distillation with realistic noise
- Efficient learning and optimizing non-Gaussian correlated noise in digitally controlled qubit systems
- Non-Markovian Noise in Symmetry-Preserving Quantum Dynamics
- The perfect entangler spectrum as a tool to analyze crosstalk