Efficient Packet Transmission in Wireless Ad Hoc Networks with Partially Informed Nodes
Sara Berri, Samson Lasaulce, Mohammed Said Radjef

TL;DR
This paper develops a game-theoretic framework for wireless ad hoc networks that accounts for link fluctuations and partial information, providing strategies for energy-efficient packet transmission under realistic conditions.
Contribution
It introduces a comprehensive approach to model partial information and link variability, characterizes optimal performance, and derives adaptive transmission strategies.
Findings
Proposed strategy adapts to link fluctuations and node actions.
Achieves better energy efficiency than existing methods.
Operates effectively despite channel variability.
Abstract
One formal way of studying cooperation and incentive mechanisms in wireless ad hoc networks is to use game theory. In this respect, simple interaction models such as the forwarder's dilemma have been proposed and used successfully. However, this type of models is not suited to account for possible fluctuations of the wireless links of the network. Additionally, it does not allow one to study the way a node transmits its own packets. At last, the repeated game models used in the related literature do not allow the important scenario of nodes with partial information (about the link state and nodes actions) to be studied. One of the contributions of the present work is precisely to provide a general approach to integrate all of these aspects. Second, the best performance the nodes can achieve under partial information is fully characterized for a general form of utilities. Third, we…
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Taxonomy
TopicsMobile Ad Hoc Networks · Cooperative Communication and Network Coding · Opportunistic and Delay-Tolerant Networks
