Building Entity Association Mining Framework for Knowledge Discovery
Anshika Rawal, Abhijeet Kumar, Mridul Mishra

TL;DR
This paper presents a flexible, domain-independent framework for entity association mining from unstructured text, supporting various extraction techniques and applications in business analytics.
Contribution
It introduces a generalized, modular pipeline for document filtering, entity extraction, and association mining, enabling rapid development of text mining applications.
Findings
Framework effectively supports financial use-cases like brand discovery and risk monitoring.
Utilizes multiple entity extraction techniques for comprehensive analysis.
Provides a scoring metric for ranking entity associations.
Abstract
Extracting useful signals or pattern to support important business decisions for example analyzing investment product traction and discovering customer preference, risk monitoring etc. from unstructured text is a challenging task. Capturing interaction of entities or concepts and association mining is a crucial component in text mining, enabling information extraction and reasoning over and knowledge discovery from text. Furthermore, it can be used to enrich or filter knowledge graphs to guide exploration processes, descriptive analytics and uncover hidden stories in the text. In this paper, we introduce a domain independent pipeline i.e., generalized framework to enable document filtering, entity extraction using various sources (or techniques) as plug-ins and association mining to build any text mining business use-case and quantitatively define a scoring metric for ranking purpose.…
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Taxonomy
TopicsData Mining Algorithms and Applications · Service-Oriented Architecture and Web Services · Web Data Mining and Analysis
