Resumen
The quantum perceptron is a fundamental building block for quantum machine learning. This is a multidisciplinary field that incorporates abilities of quantum computing, such as state superposition and entanglement, to classical machine learning schemes. Motivated by the techniques of shortcuts to adiabaticity, we propose a speed-up quantum perceptron where a control field on the perceptron is inversely engineered leading to a rapid nonlinear response with a sigmoid activation function. This results in faster overall perceptron performance compared to quasi-adiabatic protocols, as well as in enhanced robustness against imperfections in the controls.
| Idioma original | Inglés |
|---|---|
| Número de artículo | 5783 |
| Publicación | Scientific Reports |
| Volumen | 11 |
| N.º | 1 |
| DOI | |
| Estado | Publicada - dic 2021 |
| Publicado de forma externa | Sí |
Huella
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