On Balancing Sparsity with Reliable Connectivity in Distributed Network Design with Random K-out Graphs
Mansi Sood, Eray Can Elumar, Osman Yagan

TL;DR
This paper provides theoretical bounds and analysis for the connectivity and robustness of random K-out graphs, guiding their use in designing sparse, reliable distributed networks with adversarial considerations.
Contribution
It offers finite-node bounds, robustness analysis, and adversarial impact modeling for random K-out graphs, advancing network design under practical constraints.
Findings
Derived bounds for finite-node connectivity probabilities.
Analyzed r-robustness for resilient consensus.
Modeled adversarial deletions affecting connectivity.
Abstract
In several applications in distributed systems, an important design criterion is ensuring that the network is sparse, i.e., does not contain too many edges, while achieving reliable connectivity. Sparsity ensures communication overhead remains low, while reliable connectivity is tied to reliable communication and inference on decentralized data reservoirs and computational resources. A class of network models called random K-out graphs appear widely as a heuristic to balance connectivity and sparsity, especially in settings with limited trust, e.g., privacy-preserving aggregation of networked data in which networks are deployed. However, several questions remain regarding how to choose network parameters in response to different operational requirements, including the need to go beyond asymptotic results and the ability to model the stochastic and adversarial environments. To address…
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Taxonomy
TopicsEnergy Efficient Wireless Sensor Networks · Cooperative Communication and Network Coding · Interconnection Networks and Systems
