Title :
Capacity of optical communication in loss and noise with general quantum Gaussian receivers
Author :
Takeoka, Masahiro ; Guha, Saikat
Author_Institution :
NICT Japan, Koganei, Japan
fDate :
June 29 2014-July 4 2014
Abstract :
Laser-light (coherent-state) modulation is sufficient to achieve the ultimate (Holevo) capacity of classical communication over a lossy and noisy optical channel, but requires a receiver that jointly detects long modulated codewords with highly nonlinear quantum operations, which are near-impossible to realize using current technology. We analyze the capacity of the lossy-noisy optical channel when the transmitter uses coherent state modulation but the receiver is restricted to a general quantum-limited Gaussian receiver, i.e., one that may involve arbitrary combinations of Gaussian operations (passive linear optics: beamsplitters and phase-shifters, second order nonlinear process (squeezers), along with homodyne or heterodyne detection measurements) and any amount of classical feedforward within the receiver. Under these assumptions, we show that the Gaussian receiver that attains the maximum mutual information is either homodyne detection, heterodyne detection, or time sharing between the two, depending upon the received power level. In other words, our result shows that to exceed the theoretical limit of conventional coherent optical communications, one has to incorporate non-Gaussian (i.e. higher order nonlinear) operations in the receiver.
Keywords :
Gaussian channels; heterodyne detection; homodyne detection; optical beam splitters; optical communication; optical modulation; optical phase shifters; optical receivers; optical transmitters; Gaussian operations; arbitrary combinations; beamsplitters; coherent optical communications; coherent state modulation; general quantum-limited Gaussian receiver; heterodyne detection measurements; homodyne detection measurements; laser-light modulation; long modulated codewords; lossy-noisy optical channel; nonlinear quantum operations; passive linear optics; phase shifters; second order nonlinear process; squeezers; transmitter; ultimate Holevo capacity; Mutual information; Nickel; Optical receivers; Optical transmitters; Photonics;
Conference_Titel :
Information Theory (ISIT), 2014 IEEE International Symposium on
Conference_Location :
Honolulu, HI
DOI :
10.1109/ISIT.2014.6875344