Shahabuddin, Rahaman, Rehman, Ahmad, and Khan
28
used efficiently in addition to the licensed bands. Different technologies, such as massive MIMO and millimeter‐wave MIMO, will play a key part for spectral efficiency in
5G networks and new radio interfaces have to be designed for these technologies.
The 5G system architecture and security models will be discussed in subsequent
chapters. While this chapter provides basic information regarding the earlier cellular
communications, we invite interested readers to go through the publications referenced
in this chapter to gain a comprehensive knowledge of the evolution of cellular systems.
References
1 Al‐Tawil, K. (King Fahd University of Petroleum and Minerals), Akrami, A. and Youssef, H.
(1998) A new authentication protocol for GSM networks. IEEE Conference on Local
Computer Networks, 11–14 October.
2 Andrews, J., Ghosh, A. and Muhamed, R. (2007) Fundamentals of WiMAX. Upper
Saddle River, NJ: Prentice Hall.
3 Sankaran, C.B (2009) Network access security in next‐ generation 3GPP systems:
A tutorial. Communications Magazine, IEEE, 47(2), 84–91.
4 Dahlman E. and Parkvall S. (2011) 4G: LTE or LTE‐Advanced for Mobile Broadband.
West Sussex, UK: John Wiley & Sons, Ltd.
5 Johnston, D. and Walker, J. (2004) Overview of IEEE 802.16 security. Security & Privacy,
IEEE, 2(3), 40–48.
6 Chin‐Tser, H. and Chang, J.M. (2008) Responding to security issues in WiMAX
networks. IT Professional, 10(5), 15–21.
7 Holma, H. et al. (2007) High‐speed packet access evolution in 3GPP release 7. IEEE
Communications Magazine, 45(12), 29–35.
8 Holma, H. and Toskala, A. (2002) High‐speed downlink packet access. In: Chapter 11,
WCDMA for UMTS. New York: John Wiley & Sons, Inc.
9 Hudderman A.A. (2003) The Worldwide History of Telecommunications. West Sussex,
UK: John Wiley & Sons, Ltd.
10 IEEE Communications Magazine, Special issue on LTE–LTE Part I: Core Network,
February 2009.
11 ITU Telecommunications indicators update 2016. www.itu.int/ITU‐D/ict/statistics/
12 Josyula, R., Pankaj Rohatgi, R., Scherzer, H. and Tinguely, S. (2002) Partitioning
attacks: or how to rapidly clone some GSM cards. IEEE Symposium on Security and
Privacy, 12–15 May.
13 Korhonen, J. (2001) Introduction to 3G Mobile Communications. Norwood, MA:
Artech House, Inc.
14 Lo, C.‐C. and Chen, Y.‐J. (1999) Secure Communication architecture for GSM
networks. IEEE Pacific RIM Conference on Communications, Computers and Signal
Processing Proceedings, 22–24 August.
15 Chang, M.J., Abichar, Z. and Chau‐Yun, H. (2010) WiMAX or LTE: who will lead the
broadband mobile internet? IT Professional, 12(3), 26–32.
16 Shin, M., Ma, J., Mishra, A. and Arbaugh, W.A. (2006) Wireless network security and
interworking. Proceedings of the IEEE, 94(2), 455–466.
17 Marshall, P. (2008) HSPA+ challenges both WiMAX and LTE on the road to 4G. Yankee
Group Trend Analysis, 19 September.
28
used efficiently in addition to the licensed bands. Different technologies, such as massive MIMO and millimeter‐wave MIMO, will play a key part for spectral efficiency in
5G networks and new radio interfaces have to be designed for these technologies.
The 5G system architecture and security models will be discussed in subsequent
chapters. While this chapter provides basic information regarding the earlier cellular
communications, we invite interested readers to go through the publications referenced
in this chapter to gain a comprehensive knowledge of the evolution of cellular systems.
References
1 Al‐Tawil, K. (King Fahd University of Petroleum and Minerals), Akrami, A. and Youssef, H.
(1998) A new authentication protocol for GSM networks. IEEE Conference on Local
Computer Networks, 11–14 October.
2 Andrews, J., Ghosh, A. and Muhamed, R. (2007) Fundamentals of WiMAX. Upper
Saddle River, NJ: Prentice Hall.
3 Sankaran, C.B (2009) Network access security in next‐ generation 3GPP systems:
A tutorial. Communications Magazine, IEEE, 47(2), 84–91.
4 Dahlman E. and Parkvall S. (2011) 4G: LTE or LTE‐Advanced for Mobile Broadband.
West Sussex, UK: John Wiley & Sons, Ltd.
5 Johnston, D. and Walker, J. (2004) Overview of IEEE 802.16 security. Security & Privacy,
IEEE, 2(3), 40–48.
6 Chin‐Tser, H. and Chang, J.M. (2008) Responding to security issues in WiMAX
networks. IT Professional, 10(5), 15–21.
7 Holma, H. et al. (2007) High‐speed packet access evolution in 3GPP release 7. IEEE
Communications Magazine, 45(12), 29–35.
8 Holma, H. and Toskala, A. (2002) High‐speed downlink packet access. In: Chapter 11,
WCDMA for UMTS. New York: John Wiley & Sons, Inc.
9 Hudderman A.A. (2003) The Worldwide History of Telecommunications. West Sussex,
UK: John Wiley & Sons, Ltd.
10 IEEE Communications Magazine, Special issue on LTE–LTE Part I: Core Network,
February 2009.
11 ITU Telecommunications indicators update 2016. www.itu.int/ITU‐D/ict/statistics/
12 Josyula, R., Pankaj Rohatgi, R., Scherzer, H. and Tinguely, S. (2002) Partitioning
attacks: or how to rapidly clone some GSM cards. IEEE Symposium on Security and
Privacy, 12–15 May.
13 Korhonen, J. (2001) Introduction to 3G Mobile Communications. Norwood, MA:
Artech House, Inc.
14 Lo, C.‐C. and Chen, Y.‐J. (1999) Secure Communication architecture for GSM
networks. IEEE Pacific RIM Conference on Communications, Computers and Signal
Processing Proceedings, 22–24 August.
15 Chang, M.J., Abichar, Z. and Chau‐Yun, H. (2010) WiMAX or LTE: who will lead the
broadband mobile internet? IT Professional, 12(3), 26–32.
16 Shin, M., Ma, J., Mishra, A. and Arbaugh, W.A. (2006) Wireless network security and
interworking. Proceedings of the IEEE, 94(2), 455–466.
17 Marshall, P. (2008) HSPA+ challenges both WiMAX and LTE on the road to 4G. Yankee
Group Trend Analysis, 19 September.
