Security over the optical communications network presents many challenges to both attackers and network providers. The optical medium is not as simple to intrude because attackers must have specialized know-how, and it is not as easy to secure because of the humongous information each fiber carries and its very long length that is difficult to guard from bad actors who may have the required know-how. Conversely, optical system designers do not have the adequate tools in their disposal that are specially designed for securing the optical network and for monitoring and detecting intrusions. Even though intrusion detection in optical networks is a well understood operation in ITU standards, it is also recognized that optical technology cannot accomplish this yet and that the only tools available are simple optical power detectors and error-detection correction codes that monitor the incoming optical power level and the integrity of the signal. Thus, intrusion detection relies on signal processing in the electronic regime and by mapping in the transported frame test signals in order to accomplish this; such operations however are time consuming, inefficient, they may disrupt client service and inconclusive. In this paper, we present a method with which we discriminate between intrusions, and degradations and faults in-service and real-time. That is, we are able to detect intrusion as it occurs with no service disruption, and we believe that our method is fast, is conclusive, is efficient and it does not add to the network cost.
[1]
S.V. Kartalopoulos.
Optical Network Security: Channel Signature ID
,
2006,
MILCOM 2006 - 2006 IEEE Military Communications conference.
[2]
Stamatios V. Kartalopoulos.
Statistical Noise in Communications
,
2004
.
[3]
S.V. Kartalopoulos.
Optical Network Security: Countermeasures in View of Channel Attacks
,
2006,
MILCOM 2006 - 2006 IEEE Military Communications conference.
[4]
Stamatios V. Kartalopoulos.
Fault Detectability in DWDM
,
2001
.
[5]
Stamatios V. Kartalopoulos,et al.
DWDM: Networks, Devices, and Technology
,
2002
.
[6]
Stamatios V. Kartalopoulos.
NIS03-2: Optical Network Security: Sensing Eavesdropper Intervention
,
2006,
IEEE Globecom 2006.
[7]
Stamatios V. Kartalopoulos,et al.
Per-port statistical estimation of bit error rate and optical signal-to-noise ratio in DWDM telecommunications
,
2004,
SPIE International Symposium on Fluctuations and Noise.
[8]
Stamatios V. Kartalopoulos.
Optical Network Security: Sensing Eavesdropper Intervention.
,
2006
.
[9]
Stamatios V. Kartalopoulos,et al.
Optical Bit Error Rate: An Estimation Methodology
,
2004
.
[10]
Stamatios V. Kartalopoulos.
Channel error estimation in next generation optical networks
,
2004
.