EnrichEvent: Enriching Social Data with Contextual Information for Emerging Event Extraction
Mohammadali Sefidi Esfahani, Mohammad Akbari

TL;DR
EnrichEvent is a novel framework that enhances social media data analysis by incorporating contextual knowledge to improve the detection of unspecified events in streaming social data, achieving high accuracy and efficiency.
Contribution
The paper introduces EnrichEvent, an end-to-end framework that enriches social data representations with contextual knowledge for better event detection without prior event definitions.
Findings
Achieves 87% consolidation accuracy, outperforming baselines at 67%.
Reduces runtime by up to 50% through effective filtering.
Enhances event detection in streaming social data with high scalability.
Abstract
Social platforms have emerged as crucial platforms for distributing information and discussing social events, offering researchers an excellent opportunity to design and implement novel event detection frameworks. Identifying unspecified events and detecting events without prior knowledge enables governments, aid agencies, and experts to respond swiftly and effectively to unfolding situations, such as natural disasters, by assessing severity and optimizing aid delivery. Social data is characterized by misspellings, incompleteness, word sense ambiguation, and irregular language. While discussing an ongoing event, users share different opinions and perspectives based on their prior experience, background, and knowledge. Prior works primarily leverage tweets' lexical and structural patterns to capture users' opinions and views about events. In this study, we propose an end-to-end novel…
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Taxonomy
TopicsComplex Network Analysis Techniques · Advanced Text Analysis Techniques · Sentiment Analysis and Opinion Mining
Methodsfail
