Application of a cognitive-inspired algorithm for detecting communities in mobility networks
Emanuele Massaro, Lorenzo Valerio, Andrea Guazzini, Andrea Passarella, and Franco Bagnoli

TL;DR
This paper presents a cognitive-inspired algorithm to detect dynamic social communities in mobility networks, leveraging physical encounter data from mobile devices to improve understanding of social structures and their evolution.
Contribution
The paper introduces a novel cognitive-inspired algorithm capable of detecting overlapping communities and their temporal evolution in mobility-based social networks.
Findings
Effective detection of social communities from mobility data
Identification of users bridging multiple communities
Algorithm captures community evolution over time
Abstract
The emergence and the global adaptation of mobile devices has influenced human interactions at the individual, community, and social levels leading to the so called Cyber-Physical World (CPW) convergence scenario [1]. One of the most important features of CPW is the possibility of exploiting information about the structure of the social communities of users, revealed by joint movement patterns and frequency of physical co-location. Mobile devices of users that belong to the same social community are likely to "see" each other (and thus be able to communicate through ad-hoc networking techniques) more frequently and regularly than devices outside the community. In mobile opportunistic networks, this fact can be exploited, for example, to optimize networking operations such as forwarding and dissemination of messages. In this paper we present the application of a cognitive-inspired…
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Taxonomy
TopicsOpportunistic and Delay-Tolerant Networks · Complex Network Analysis Techniques · Human Mobility and Location-Based Analysis
