English

Walsh-synthesized noise-filtering quantum logic

Quantum Physics 2014-10-08 v1 Mesoscale and Nanoscale Physics

Abstract

We study a novel class of open-loop control protocols constructed to perform arbitrary nontrivial single-qubit logic operations robust against time-dependent non-Markovian noise. Amplitude and phase modulation protocols are crafted leveraging insights from functional synthesis and the basis set of Walsh functions. We employ the experimentally validated generalized filter-transfer function formalism in order to find optimized control protocols for target operations in SU(2) by defining a cost function for the filter-transfer function to be minimized through the applied modulation. Our work details the various techniques by which we define and then optimize the filter-synthesis process in the Walsh basis, including the definition of specific analytic design rules which serve to efficiently constrain the available synthesis space. This approach yields modulated-gate constructions consisting of chains of discrete pulse-segments of arbitrary form, whose modulation envelopes possess intrinsic compatibility with digital logic and clocking. We derive novel families of Walsh-modulated noise filters designed to suppress dephasing and coherent amplitude-damping noise, and describe how well-known sequences derived in NMR also fall within the Walsh-synthesis framework. Finally, our work considers the effects of realistic experimental constraints such as limited modulation bandwidth on achievable filter performance.

Cite

@article{arxiv.1410.1624,
  title  = {Walsh-synthesized noise-filtering quantum logic},
  author = {H. Ball and M. J. Biercuk},
  journal= {arXiv preprint arXiv:1410.1624},
  year   = {2014}
}

Comments

Related manuscripts here: http://www.physics.usyd.edu.au/~mbiercuk/Publications.html

R2 v1 2026-06-22T06:14:43.845Z