Skip to Main Content (Press Enter)

Logo UNIMORE
  • ×
  • Home
  • Corsi
  • Insegnamenti
  • Professioni
  • Persone
  • Pubblicazioni
  • Strutture
  • Terza Missione
  • Attività
  • Competenze

UNI-FIND
Logo UNIMORE

|

UNI-FIND

unimore.it
  • ×
  • Home
  • Corsi
  • Insegnamenti
  • Professioni
  • Persone
  • Pubblicazioni
  • Strutture
  • Terza Missione
  • Attività
  • Competenze
  1. Pubblicazioni

Demystifying Quantum Gate Fidelity for Electronics Engineers

Articolo
Data di Pubblicazione:
2025
Citazione:
Demystifying Quantum Gate Fidelity for Electronics Engineers / Borgarino, Mattia; Badiali, Alessandro. - In: APPLIED SCIENCES. - ISSN 2076-3417. - 15:5(2025), pp. 1-26. [10.3390/app15052675]
Abstract:
The implementation of quantum gates by means of microwave cryo-RFICs controlling qubits is a promising path toward scalable quantum processors. Quantum gate fidelity quantifies how well an actual quantum gate produces a quantum state close to the desired ideal one. Regrettably, the literature usually reports on quantum gate fidelity in a highly theoretical way, making it hard for RFIC designers to understand. This paper explains quantum gate fidelity by moving from Shannon’s concept of fidelity and proposing a detailed mathematical proof of a valuable integral formulation of quantum gate fidelity. Shannon’s information theory and the simple mathematics adopted for the proof are both expected to be in the background of electronics engineers. By using Shannon’s fidelity, this paper rationalizes the integral formulation of quantum gate fidelity. Because of the simple mathematics adopted, this paper also demystifies to electronics engineers how this integral formulation can be reduced to a more practical algebraic product matrix. This paper makes evident the practical utility of this matrix formulation by applying it to the specific examples of one- and two-qubit quantum gates. Moreover, this paper also compares mixed states, entanglement fidelity, and the error rate’s upper bound.
Tipologia CRIS:
Articolo su rivista
Keywords:
fidelity, quantum fidelity, RFICs, quantum gate, hyperspace integrals, energy efficiency, logical qubit
Elenco autori:
Borgarino, Mattia; Badiali, Alessandro
Autori di Ateneo:
BORGARINO Mattia
Link alla scheda completa:
https://iris.unimore.it/handle/11380/1373749
Link al Full Text:
https://iris.unimore.it//retrieve/handle/11380/1373749/749951/applsci-15-02675.pdf
Pubblicato in:
APPLIED SCIENCES
Journal
  • Dati Generali

Dati Generali

URL

https://www.mdpi.com/2076-3417/15/5/2675
  • Utilizzo dei cookie

Realizzato con VIVO | Designed by Cineca | 26.5.0.0