Title :
Multidimensional Pulse-Position Coded-Modulation for Deep-Space Optical Communication
Author :
Djordjevic, Ivan B.
Author_Institution :
ECE Dept., Univ. of Arizona, Tucson, AZ, USA
Abstract :
In order to achieve multigigabit transmission (projected for 2020) for the use in interplanetary communications, in this letter, we propose the use of multidimensional pulse-position modulation (PPM). From Shannon´s theory, we know that information capacity is a logarithmic function of signal-to-noise ratio, but a linear function of number of dimensions. By using pulse-positions as a basis function, we can improve the spectral efficiency of conventional PPM. The N-dimensional PPM (ND-PPM) can, therefore, be used to solve the high-bandwidth requirements of future deep-space optical communications. The N -dimensional signal constellation can be obtained as N-dimensional Cartesian product one-dimensional pulse-amplitude modulation constellation. The improvement of ND-PPM over PPM for N=8 in strong turbulence regime is even 3.21 dB at a bit-error rate (BER) of 10-5. In addition, the spectral efficiency of the proposed scheme is N/log2N times better than that of PPM.
Keywords :
error statistics; information theory; optical communication; optical modulation; pulse position modulation; BER; N-dimensional Cartesian product; N-dimensional PPM; N-dimensional signal constellation; ND-PPM; Shannon theory; bit-error rate; deep-space optical communication; interplanetary communications; multidimensional pulse-position coded-modulation; one-dimensional pulse-amplitude modulation constellation; signal-to-noise ratio; Bit error rate; Decoding; Demodulation; Optical fiber communication; Parity check codes; Photonics; Atmospheric turbulence; coded modulation; deep-space optical communication; low-density parity-check (LDPC) codes; multidimensional pulse-position modulation;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2011.2160940