TY - JOUR
T1 - Chaotic Polarization-Assisted DPSK-MPPM Modulation for Free-Space Optical Communications
AU - Elfiqi, Abdulaziz E.
AU - Khallaf, Haitham S.
AU - Hegazy, Salem F.
AU - Elsonbaty, Amr
AU - Shalaby, Hossam M.H.
AU - Obayya, Salah S.A.
N1 - Publisher Copyright:
© 2002-2012 IEEE.
PY - 2019/9
Y1 - 2019/9
N2 - In this paper, we present a polarization-Assisted L-Ary differential phase-shift keying multipulse pulse-position modulation (PA. L DPSK-MPPM) technique that is secured in the physical layer by a discrete-chaos system. The all-optical PA. L DPSK-MPPM scheme benefits from the polarization as an additional degree of freedom which greatly reduces the system complexity relative to prior implementations. The discrete-chaos scrambling is based on a message-seeded two-dimensional chaotic map tailored for independent perturbation of the occupied time-slot positions (MPPM information) and their relative phase shift ( L DPSK information). Synchronized and non-synchronized implementations of the chaotic PA. L DPSK-MPPM technique are proposed with expressions for the corresponding spectral efficiencies being determined and compared with prior L DPSK-MPPM setups. The performance of PA. L DPSK-MPPM under gamma-gamma (GG) free-space optical (FSO) fading channels is analytically verified to outperform the prior designs for different FSO channel states which is supplemented by Monte Carlo (MC) simulations. The system security is numerically examined against various types of attacks, including brute-force, differential, and statistical attacks.
AB - In this paper, we present a polarization-Assisted L-Ary differential phase-shift keying multipulse pulse-position modulation (PA. L DPSK-MPPM) technique that is secured in the physical layer by a discrete-chaos system. The all-optical PA. L DPSK-MPPM scheme benefits from the polarization as an additional degree of freedom which greatly reduces the system complexity relative to prior implementations. The discrete-chaos scrambling is based on a message-seeded two-dimensional chaotic map tailored for independent perturbation of the occupied time-slot positions (MPPM information) and their relative phase shift ( L DPSK information). Synchronized and non-synchronized implementations of the chaotic PA. L DPSK-MPPM technique are proposed with expressions for the corresponding spectral efficiencies being determined and compared with prior L DPSK-MPPM setups. The performance of PA. L DPSK-MPPM under gamma-gamma (GG) free-space optical (FSO) fading channels is analytically verified to outperform the prior designs for different FSO channel states which is supplemented by Monte Carlo (MC) simulations. The system security is numerically examined against various types of attacks, including brute-force, differential, and statistical attacks.
KW - Chaos-based communications
KW - Differential phase-shift keying (DPSK)
KW - Discrete chaos
KW - free-space optics (FSO)
KW - multipulse pulse-position modulation (MPPM)
KW - physical encryption
UR - http://www.scopus.com/inward/record.url?scp=85072222807&partnerID=8YFLogxK
U2 - 10.1109/TWC.2019.2920970
DO - 10.1109/TWC.2019.2920970
M3 - Article
AN - SCOPUS:85072222807
SN - 1536-1276
VL - 18
SP - 4225
EP - 4237
JO - IEEE Transactions on Wireless Communications
JF - IEEE Transactions on Wireless Communications
IS - 9
M1 - 8736026
ER -