DisTrack: a new Tool for Semi-automatic Misinformation Tracking in Online Social Networks
Guillermo Villar-Rodr\'iguez,\'Alvaro Huertas-Garc\'ia,Alejandro, Mart\'in,Javier Huertas-Tato,David Camacho

TL;DR
DisTrack is a novel tool combining NLP, social network analysis, and visualization to detect, track, and analyze misinformation spread in online social networks, demonstrated through multiple case studies.
Contribution
Introduces DisTrack, a comprehensive methodology and tool for misinformation detection and analysis in OSNs, integrating semantic analysis, graph visualization, and dynamic content tracking.
Findings
DisTrack effectively distinguishes misinformation from accurate content.
It successfully traces misinformation propagation over time.
The tool performs well across different misinformation themes.
Abstract
Introduction: This article introduces DisTrack, a methodology and a tool developed for tracking and analyzing misinformation within Online Social Networks (OSNs). DisTrack is designed to combat the spread of misinformation through a combination of Natural Language Processing (NLP) Social Network Analysis (SNA) and graph visualization. The primary goal is to detect misinformation, track its propagation, identify its sources, and assess the influence of various actors within the network. Methods: DisTrack's architecture incorporates a variety of methodologies including keyword search, semantic similarity assessments, and graph generation techniques. These methods collectively facilitate the monitoring of misinformation, the categorization of content based on alignment with known false claims, and the visualization of dissemination cascades through detailed graphs. The tool is tailored…
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Taxonomy
TopicsSpam and Phishing Detection · Network Security and Intrusion Detection · Misinformation and Its Impacts
