Pulse-level noisy quantum circuits with QuTiP

Abstract

The study of the impact of noise on quantum circuits is especially relevant to guide the progress of Noisy Intermediate-Scale Quantum (NISQ) computing. In this paper, we address the pulse-level simulation of noisy quantum circuits with the Quantum Toolbox in Python (QuTiP). We introduce new tools in qutip-qip, QuTiP's quantum information processing package. These tools simulate quantum circuits at the pulse level, leveraging QuTiP's quantum dynamics solvers and control optimization features. We show how quantum circuits can be compiled on simulated processors, with control pulses acting on a target Hamiltonian that describes the unitary evolution of the physical qubits. Various types of noise can be introduced based on the physical model, e.g., by simulating the Lindblad density-matrix dynamics or Monte Carlo quantum trajectories. In particular, the user can define environment-induced decoherence at the processor level and include noise simulation at the level of control pulses. We illustrate how the Deutsch-Jozsa algorithm is compiled and executed on a superconducting-qubit-based processor, on a spin-chain-based processor and using control optimization algorithms. We also show how to easily reproduce experimental results on cross-talk noise in an ion-based processor, and how a Ramsey experiment can be modeled with Lindblad dynamics. Finally, we illustrate how to integrate these features with other software frameworks.

Document Details

Document Type
Pub Defense Publication
Publication Date
Jan 24, 2022
Source ID
10.22331/q-2022-01-24-630

Entities

People

  • Alexander Pitchford
  • Boxi Li
  • Franco Nori
  • Nathan Shammah
  • Neill Lambert
  • Shahnawaz Ahmed
  • Sidhant Saraogi

Organizations

  • Aberystwyth University
  • Army Research Office
  • Chalmers University of Technology
  • Foundational Questions Institute
  • Georgetown University
  • Japan Society for the Promotion of Science
  • RIKEN Center for Quantum Computing
  • University of Michigan

Tags

Fields of Study

  • Physics

Readers

  • Computational Modeling and Simulation
  • Graph Algorithms and Convex Optimization.
  • Quantum Dot Semiconductor Device Photonics and Graphene Optoelectronic Materials and THz Physics.

Technology Areas

  • Quantum Computing