Title : 
Robust QoS-guaranteed network engineering in interference-aware wireless networks
         
        
            Author : 
Tizghadam, Ali ; Shariat, Ali ; Leon-Garcia, Alberto ; Naser, Hassan
         
        
            Author_Institution : 
Univ. of Toronto, Toronto, ON, Canada
         
        
        
        
        
        
            Abstract : 
Due to the time-varying nature of wireless networks, it is required to find robust optimal methods to control the behavior and performance of such networks; however, this is a challenging task since robustness metrics and QoS-based (Quality of service) constraints in a wireless environment are typically highly non-linear and non-convex. This paper explores the possibility of using graph theoretic metrics to provide robustness in a wireless network at the presence of a set of QoS constraints. In particular, we are interested in robust planning of a wireless network for a given demand matrix while preserving end-to-end delay for input demands below a given threshold set. To this end, we show that the upper bound of end-to-end round trip time between two nodes of a network can be approximated by point-to-point network criticality (or resistance distance) of the network. We construct a convex optimization problem to provide a delay-guaranteed jointly optimal allocation of transmit powers and link flows. We show that the solution provides a robust behavior, i.e. it is insensitive to the environmental changes such as wireless link disruption, this is expected because network criticality is a robustness metric. Our framework can be applied to a wide range of SINR (Signal to Interference plus Noise Ratio) values.
         
        
            Keywords : 
convex programming; delays; graph theory; interference; quality of service; radio networks; telecommunication network planning; telecommunication network topology; QoS-guaranteed network engineering; SINR; convex optimization problem; demand matrix; end-to-end delay; graph theoretic metrics; interference aware wireless networks; joint optimal allocation; link flows; point-to-point network criticality; quality of service; resistance distance; robust network planning; round trip time; signal to interference plus noise ratio; wireless environment; wireless link disruption; Delays; Interference; Optimization; Quality of service; Robustness; Wireless networks;
         
        
        
        
            Conference_Titel : 
INFOCOM, 2013 Proceedings IEEE
         
        
            Conference_Location : 
Turin
         
        
        
            Print_ISBN : 
978-1-4673-5944-3
         
        
        
            DOI : 
10.1109/INFCOM.2013.6567132