We analyze the effect of phase fluctuations in an optical communication scheme based on collective detection of sequences of binary coherent state symbols using linear optics and photon counting. When the phase noise is absent, the scheme offers qualitatively improved nonlinear scaling of the spectral efficiency with the mean photon number in the low-power regime compared to individual detection. We show that this feature, providing a demonstration of superaddivitity of accessible information in classical communication over quantum channels, is preserved if random phases imprinted on transmitted symbols fluctuate around a reference fixed over the sequence length
We present the generation and characterization of the class of bracket states, namely phase-sensitiv...
Noise present in an environment has significant impacts on a quantum system affecting properties lik...
In continuous-variables quantum key distribution with coherent states, the advantage of performing t...
We address quantum phase channels, i.e communication schemes where information is encoded in the pha...
Demands for higher transmission rates are ever increasing as a result of requirements imposed by a n...
In all practical communication channels, the code word consists of Gaussian states and the measureme...
We demonstrate a probabilistic scheme capable of increasing the phase information of weak coherent s...
We present the generation and characterization of the class of bracket states, namely phase-sensitiv...
We introduce a general model describing correlated noise effects in quantum optical communication vi...
We consider discrete-alphabet encoding schemes for coherent-state quantum key distribution. The send...
An important problem in quantum information theory is finding the best possible capacity of the opti...
We address binary optical communication channels based on phase-shift-keyed coherent signals in the ...
Phase estimation represents a crucial challenge in many fields of Physics, ranging from Quantum Metr...
We address quantum M-ary phase-shift keyed communication channels in the presence of phase diffusion...
In 2010 Qi et al. [Opt. Lett. 35(3), 312 (2010)] demonstrated a random number generator based on the...
We present the generation and characterization of the class of bracket states, namely phase-sensitiv...
Noise present in an environment has significant impacts on a quantum system affecting properties lik...
In continuous-variables quantum key distribution with coherent states, the advantage of performing t...
We address quantum phase channels, i.e communication schemes where information is encoded in the pha...
Demands for higher transmission rates are ever increasing as a result of requirements imposed by a n...
In all practical communication channels, the code word consists of Gaussian states and the measureme...
We demonstrate a probabilistic scheme capable of increasing the phase information of weak coherent s...
We present the generation and characterization of the class of bracket states, namely phase-sensitiv...
We introduce a general model describing correlated noise effects in quantum optical communication vi...
We consider discrete-alphabet encoding schemes for coherent-state quantum key distribution. The send...
An important problem in quantum information theory is finding the best possible capacity of the opti...
We address binary optical communication channels based on phase-shift-keyed coherent signals in the ...
Phase estimation represents a crucial challenge in many fields of Physics, ranging from Quantum Metr...
We address quantum M-ary phase-shift keyed communication channels in the presence of phase diffusion...
In 2010 Qi et al. [Opt. Lett. 35(3), 312 (2010)] demonstrated a random number generator based on the...
We present the generation and characterization of the class of bracket states, namely phase-sensitiv...
Noise present in an environment has significant impacts on a quantum system affecting properties lik...
In continuous-variables quantum key distribution with coherent states, the advantage of performing t...