Soderi, Mucchi, Hämäläinen, Piva, and Iinatti
140
8 Maurer, U. and Wolf, S. (2000) From weak to strong information‐theoretic key
agreement. Proceedings of the 2000 IEEE International Symposium on Information
Theory, p. 18.
9 Malvar, H. and Florencio, D. (2003) Improved spread spectrum: a new modulation
technique for robust watermarking. IEEE Transactions on Signal Processing, 51(4),
898–905.
10 Goldsmith, A. (2005) Wireless Communications. Cambridge University Press:
New York.
11 Barros, J. and Rodrigues, M.R.D. (2006) Secrecy capacity of wireless channels.
Proceedings of the 2006 IEEE International Symposium on Information Theory,
pp. 356–360.
12 Fitzek, F. and Katz, M. (eds) (2007) Cognitive Wireless Networks: Concepts,
Methodologies and Visions Inspiring the Age of Enlightenment of Wireless
Communications, Springer, Dordrecht, The Netherlands.
13 Bloch, M., Barros, J., Rodrigues, M. and McLaughlin, S. (2008) Wireless information‐
theoretic security. IEEE Transactions on Information Theory, 54(6), 2515–2534.
14 Jeon, H., Kim, N., Kim, M., Lee, H. and Ha, J. (2008) Secrecy capacity over correlated
ergodic fading channel. Proceedings of the IEEE Military Communications Conference,
MILCOM 2008, pp. 1–7.
15 Anderson, R.J. (2008) Security Engineering – A Guide to Building Dependable
Distributed Systems, 2nd edition. Wiley, Indianapolis, Indiana, USA.
16 Win, M., Pinto, P. and Shepp, L. (2009) A mathematical theory of network interference
and its applications. Proceedings of the IEEE, 97(2), 205–230.
17 Bloch, M. and Barros, J. (2011) Physical‐Layer Security: From Information Theory to
Security Engineering. Cambridge University Press, New York.
18 Rabbachin, A., Conti, A. and Win, M. (2011) Intentional network interference for denial
of wireless eavesdropping. Proceedings of the 2011 IEEE Global Telecommunications
Conference (GLOBECOM 2011), pp. 1–6.
19 Vilela, J., Bloch, M., Barros, J. and McLaughlin, S. (2011) Wireless secrecy regions
with friendly jamming. IEEE Transactions on Information Forensics and Security, 6(2),
256–266.
20 Gollakota, S. and Katabi, D. (2011) Physical layer wireless security made fast and
channel independent. 2011 Proceedings of the. IEEE INFOCOM, pp. 1125–1133.
21 Harrison, W., Almeida, J., Bloch, M., McLaughlin, S. and Barros, J. (2013) Coding
for secrecy: an overview of error‐control coding techniques for physical‐layer security.
IEEE Signal Processing Magazine, 30(5), 41–50.
22 Li, X., Yu, C., Hizlan, M., tae Kim, W. and Park, S. (2013) Physical layer watermarking
of direct sequence spread spectrum signals. Proceedings of the IEEE Military
Communications Conference, MILCOM 2013, pp. 476–481.
23 Soderi, S., Dainelli, G., Iinatti, J. and Hamalainen, M. (2014) Signal fingerprinting in
cognitive wireless networks. Proceedings of the 2014 9th International Conference on
Cognitive Radio Oriented Wireless Networks and Communications (CROWNCOM),
Oulu, pp. 266–270.
24 Politis, C. (2015) 5G – on the count of three … … paradigm shifts. In: 5G Radio
Technology Seminar. Exploring Technical Challenges in the Emerging 5G Ecosystem,
pp. 1–29.
140
8 Maurer, U. and Wolf, S. (2000) From weak to strong information‐theoretic key
agreement. Proceedings of the 2000 IEEE International Symposium on Information
Theory, p. 18.
9 Malvar, H. and Florencio, D. (2003) Improved spread spectrum: a new modulation
technique for robust watermarking. IEEE Transactions on Signal Processing, 51(4),
898–905.
10 Goldsmith, A. (2005) Wireless Communications. Cambridge University Press:
New York.
11 Barros, J. and Rodrigues, M.R.D. (2006) Secrecy capacity of wireless channels.
Proceedings of the 2006 IEEE International Symposium on Information Theory,
pp. 356–360.
12 Fitzek, F. and Katz, M. (eds) (2007) Cognitive Wireless Networks: Concepts,
Methodologies and Visions Inspiring the Age of Enlightenment of Wireless
Communications, Springer, Dordrecht, The Netherlands.
13 Bloch, M., Barros, J., Rodrigues, M. and McLaughlin, S. (2008) Wireless information‐
theoretic security. IEEE Transactions on Information Theory, 54(6), 2515–2534.
14 Jeon, H., Kim, N., Kim, M., Lee, H. and Ha, J. (2008) Secrecy capacity over correlated
ergodic fading channel. Proceedings of the IEEE Military Communications Conference,
MILCOM 2008, pp. 1–7.
15 Anderson, R.J. (2008) Security Engineering – A Guide to Building Dependable
Distributed Systems, 2nd edition. Wiley, Indianapolis, Indiana, USA.
16 Win, M., Pinto, P. and Shepp, L. (2009) A mathematical theory of network interference
and its applications. Proceedings of the IEEE, 97(2), 205–230.
17 Bloch, M. and Barros, J. (2011) Physical‐Layer Security: From Information Theory to
Security Engineering. Cambridge University Press, New York.
18 Rabbachin, A., Conti, A. and Win, M. (2011) Intentional network interference for denial
of wireless eavesdropping. Proceedings of the 2011 IEEE Global Telecommunications
Conference (GLOBECOM 2011), pp. 1–6.
19 Vilela, J., Bloch, M., Barros, J. and McLaughlin, S. (2011) Wireless secrecy regions
with friendly jamming. IEEE Transactions on Information Forensics and Security, 6(2),
256–266.
20 Gollakota, S. and Katabi, D. (2011) Physical layer wireless security made fast and
channel independent. 2011 Proceedings of the. IEEE INFOCOM, pp. 1125–1133.
21 Harrison, W., Almeida, J., Bloch, M., McLaughlin, S. and Barros, J. (2013) Coding
for secrecy: an overview of error‐control coding techniques for physical‐layer security.
IEEE Signal Processing Magazine, 30(5), 41–50.
22 Li, X., Yu, C., Hizlan, M., tae Kim, W. and Park, S. (2013) Physical layer watermarking
of direct sequence spread spectrum signals. Proceedings of the IEEE Military
Communications Conference, MILCOM 2013, pp. 476–481.
23 Soderi, S., Dainelli, G., Iinatti, J. and Hamalainen, M. (2014) Signal fingerprinting in
cognitive wireless networks. Proceedings of the 2014 9th International Conference on
Cognitive Radio Oriented Wireless Networks and Communications (CROWNCOM),
Oulu, pp. 266–270.
24 Politis, C. (2015) 5G – on the count of three … … paradigm shifts. In: 5G Radio
Technology Seminar. Exploring Technical Challenges in the Emerging 5G Ecosystem,
pp. 1–29.
