Secured hybrid coded modulation for 5G—and beyond—access networks
Aspects of the present disclosure describe systems, methods, and structures that advantageously provide hybrid free-space optical (FSO)-radio frequency (RF) communication links (HFRCLs) that enable building integrated software-defined network (SDN) infrastructure capable of integrating ultra-high-throughput satellite networks, composite wireless infrastructures, heterogeneous networks (HetNets), hybrid networks, satellite networks, and fiber-optics networks—among others.
1. In a communications network comprising a plurality of nodes, said network including hybrid free-space optical (FSO) radio frequency (RF) communications links (HFRCLs) interconnecting the plurality of nodes, said HFRCLs including at least one FSO channel each and at least one RF channel each, an adaptive, energy-efficient hybrid coded modulation technique for the HFRCLs comprising:
an HFRCL channel described by: y=Hx+w, where x=[x 1 x 2 . . . x MTx ] T is a transmitted vector, y=[y 1 y 2 . . . y MRx ] T is a received vector, w=[w 1 . . . w MRx ] T is a noise vector, and H is an M Rx -by-M Tx block channel matrix;
wherein the ith element of x is a super-symbol described by x i =x i (FSO) ,x i (RF) ), where the first component is the symbol(s) transmitted over the FSO channel of the HFRCL channel and the second component is the symbol(s) transmitted over the RF channel of the HFRCL channel.
2. The communications technique according to claim 1 wherein when the FSO channel is in a good condition, only the FSO component is present, and when the FSO channel deteriorates to a pre-determined threshold, both FSO and RF channels are operated simultaneously.
3. The communications technique according to claim 2 wherein the FSO symbol is N-dimensional having different coordinates representing projections along orbital angular momentum (OAM) eigenvectors.
4. The communications technique according to claim 1 wherein the super symbol consists of unequal numbers of FSO and RF symbols.