Analog diversity coding to provide transparent self-healing communication networks

1994 ◽  
Vol 42 (1) ◽  
pp. 110-118 ◽  
Author(s):  
E. Ayanoglu ◽  
Chih-Lin I ◽  
R.D. Gitlin ◽  
I. Bar-David
1993 ◽  
Vol 41 (11) ◽  
pp. 1677-1686 ◽  
Author(s):  
E. Ayanoglu ◽  
Chih-Lin I ◽  
R.D. Gitlin ◽  
J.E. Mazo

Author(s):  
Chih-Lin I ◽  
E. Ayanoglu ◽  
R.D. Gitlin ◽  
J.E. Mazo

Cryptography ◽  
2020 ◽  
pp. 257-276
Author(s):  
Melesio Calderón Muñoz ◽  
Melody Moh

The electrical power grid forms the functional foundation of our modern societies, but in the near future our aging electrical infrastructure will not be able to keep pace with our demands. As a result, nations worldwide have started to convert their power grids into smart grids that will have improved communication and control systems. A smart grid will be better able to incorporate new forms of energy generation as well as be self-healing and more reliable. This paper investigates a threat to wireless communication networks from a fully realized quantum computer, and provides a means to avoid this problem in smart grid domains. We discuss and compare the security aspects, the complexities and the performance of authentication using public-key cryptography and using Merkel trees. As a result, we argue for the use of Merkle trees as opposed to public key encryption for authentication of devices in wireless mesh networks (WMN) used in smart grid applications.


2016 ◽  
Vol 138 (12) ◽  
pp. 34-38
Author(s):  
S. Massoud Amin

This article emphasizes the need to update Ukraine’s end-to-end electric power grid to provide secure, resilient, and reliable electricity for the future. More than any other publicized attack, the Ukrainian attack demonstrated the sophistication of today’s hackers and the malware they now wield. Despite the risks, policymakers nationwide are pushing for clean and reliable electricity. Grid managers count on either in-house meteorologists or third-party vendors to determine the most accurate weather forecast. A self-healing smart grid needs to be supported by secure sensing and communication networks, it needs built-in computational technologies, and it has to be controllable in real time. In order to protect the electrical system from both cyber and physical attacks, each of its components could in theory be replaced or retrofitted. The expert suggests that the sensing and communication technology on far-flung grid elements would give command-and-control centers better situational awareness; they could use this to plan for future conditions.


Author(s):  
Melesio Calderón Muñoz ◽  
Melody Moh

The electrical power grid forms the functional foundation of our modern societies, but in the near future our aging electrical infrastructure will not be able to keep pace with our demands. As a result, nations worldwide have started to convert their power grids into smart grids that will have improved communication and control systems. A smart grid will be better able to incorporate new forms of energy generation as well as be self-healing and more reliable. This paper investigates a threat to wireless communication networks from a fully realized quantum computer, and provides a means to avoid this problem in smart grid domains. We discuss and compare the security aspects, the complexities and the performance of authentication using public-key cryptography and using Merkel trees. As a result, we argue for the use of Merkle trees as opposed to public key encryption for authentication of devices in wireless mesh networks (WMN) used in smart grid applications.


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