DocumentCode
659662
Title
5GNOW: Challenging the LTE Design Paradigms of Orthogonality and Synchronicity
Author
Wunder, Gerhard ; Kasparick, Martin ; ten Brink, Stephan ; Schaich, Frank ; Wild, Thorsten ; Gaspar, Ivan ; Ohlmer, Eckhard ; Krone, S. ; Michailow, Nicola ; Navarro, Antonio ; Fettweis, Gerhard ; Ktenas, Dimitri ; Berg, Vincent ; Dryjanski, Marcin ; Piet
Author_Institution
Fraunhofer Heinrich Hertz Inst., Berlin, Germany
fYear
2013
fDate
2-5 June 2013
Firstpage
1
Lastpage
5
Abstract
LTE and LTE-Advanced have been optimized to deliver high bandwidth pipes to wireless users. The transport mechanisms have been tailored to maximize single cell performance by enforcing strict synchronism and orthogonality within a single cell and within a single contiguous frequency band. Various emerging trends reveal major shortcomings of those design criteria: (1) The fraction of machine-type-communications (MTC) is growing fast. Transmissions of this kind are suffering from the bulky procedures necessary to ensure strict synchronism. (2) Collaborative schemes have been introduced to boost capacity and coverage (CoMP), and wireless networks are becoming more and more heterogeneous following the non-uniform distribution of users. Tremendous efforts must be spent to collect the gains and to manage such systems under the premise of strict synchronism and orthogonality. (3) The advent of the Digital Agenda and the introduction of carrier aggregation are forcing the transmission systems to deal with fragmented spectrum. 5GNOW will question the design targets of LTE and LTE-Advanced having these shortcomings in mind. The obedience of LTE and LTE-Advanced to strict synchronism and orthogonality will be challenged. It will develop new PHY and MAC layer concepts being better suited to meet the upcoming needs with respect to service variety and heterogeneous transmission setups. A demonstrator will be built as Proof-of-Concept relying upon continuously growing capabilities of silicon based processing. Wireless transmission networks following the outcomes of 5GNOW will be better suited to meet the manifoldness of services, device classes and transmission setups being present in envisioned future scenarios like smart cities. The integration of systems relying heavily on MTC, e.g. sensor networks, into the communication network will be eased. The per-user experience will be more uniform and satisfying. To ensure this 5GNOW will contribute to upcoming 5G standardization.
Keywords
Long Term Evolution; access protocols; standardisation; 5G standardization; 5GNOW; CoMP; LTE design paradigms; LTE-Advanced; MAC layer; PRY layer; boost capacity; digital agenda; fragmented spectrum; heterogeneous transmission setups; high bandwidth pipes; machine-type-communications; orthogonality; sensor networks; silicon based processing; single contiguous frequency band; synchronicity; synchronism; transmission setups; transmission systems; transport mechanisms; wireless transmission networks; wireless users; Mobile communication; OFDM; Physical layer; Smart phones; Uplink; Wireless communication; Wireless sensor networks;
fLanguage
English
Publisher
ieee
Conference_Titel
Vehicular Technology Conference (VTC Spring), 2013 IEEE 77th
Conference_Location
Dresden
ISSN
1550-2252
Type
conf
DOI
10.1109/VTCSpring.2013.6691814
Filename
6691814
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