Title :
Multiaccess quantum channels
Author :
Concha, Julio I. ; Poor, H. Vincent
Author_Institution :
Dept. of Electr. Eng., Princeton Univ., NJ, USA
fDate :
5/1/2004 12:00:00 AM
Abstract :
Shared communication channels are subject to multiple-access interference. Transmitter and receiver design techniques that explicitly deal with this interference have been shown to improve substantially the performance of communication systems over radio-frequency and other "classical" channels. Quantum multiple-access communication channels, on the other hand, have received comparatively little attention. In this paper, an input-output model for multiple-access quantum channels relevant to optical communications is proposed. The model accounts for multiaccess interference, signal attenuation, and random noise, and can be used in the analysis and design of communication systems. Using a result from optimization, a perturbation method is developed to find the minimum achievable error probability in small-interference channels. It is shown that the quantum measurement that minimizes the error probability in a no-interference channel is robust in the presence of small multiaccess interference. The results are illustrated with numerical examples, which show that optimal quantum detectors can significantly outperform conventional detectors even for moderate levels of crosstalk.
Keywords :
error statistics; multi-access systems; multiuser channels; optical communication; perturbation techniques; quantum communication; quantum theory; random noise; receivers; error probability minimization; input-output model; multiple-access interference; multiuser detection; optical communication; optimal quantum detector; perturbed optimization; quantum measurement; quantum multiple-access communication channel; random noise; receiver design technique; shared communication channel; signal attenuation; small-interference channel; transmitter design technique; Communication channels; Crosstalk; Detectors; Error probability; Multiple access interference; Optical fiber communication; Optical transmitters; Radio frequency; Radio transmitters; Radiofrequency interference;
Journal_Title :
Information Theory, IEEE Transactions on
DOI :
10.1109/TIT.2004.826637