DocumentCode :
1904698
Title :
On Leveraging Partial Paths in Partially-Connected Networks
Author :
Heimlicher, Simon ; Karaliopoulos, Merkouris ; Levy, Hanoch ; Spyropoulos, Thrasyvoulos
Author_Institution :
Comput. Eng. & Networks Lab., ETH Zurich, Zurich
fYear :
2009
fDate :
19-25 April 2009
Firstpage :
55
Lastpage :
63
Abstract :
Mobile wireless network research focuses on scenarios at the extremes of the network connectivity continuum where the probability of all nodes being connected is either close to unity, assuming connected paths between all nodes (mobile ad hoc networks), or it is close to zero, assuming no multi-hop paths exist at all (delay-tolerant networks). In this paper, we argue that a sizable fraction of networks lies between these extremes and is characterized by the existence of partial paths, i.e., multi-hop path segments that allow forwarding data closer to the destination even when no end-to-end path is available. A fundamental issue in such networks is dealing with disruptions of end-to-end paths. Under a stochastic model, we compare the performance of the established end-to-end retransmission (ignoring partial paths), against a forwarding mechanism that leverages partial paths to forward data closer to the destination even during disruption periods. Perhaps surprisingly, the alternative mechanism is not necessarily superior. However, under a stochastic monotonicity condition between current vs. future path length, which we demonstrate to hold in typical network models, we manage to prove superiority of the alternative mechanism in stochastic dominance terms. We believe that this study could serve as a foundation to design more efficient data transfer protocols for partially-connected networks, which could potentially help reducing the gap between applications that can be supported over disconnected networks and those requiring full connectivity.
Keywords :
mobile radio; probability; protocols; stochastic processes; data transfer protocol; mobile wireless network; multihop path segment; network connectivity continuum; partial path; partially-connected network; probability; stochastic model; Communications Society; Computer networks; Computer science; Disruption tolerant networking; Laboratories; Mobile ad hoc networks; Peer to peer computing; Spread spectrum communication; Stochastic processes; Wireless application protocol;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
INFOCOM 2009, IEEE
Conference_Location :
Rio de Janeiro
ISSN :
0743-166X
Print_ISBN :
978-1-4244-3512-8
Electronic_ISBN :
0743-166X
Type :
conf
DOI :
10.1109/INFCOM.2009.5061906
Filename :
5061906
Link To Document :
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