RelEmb: A relevance-based application embedding for Mobile App retrieval and categorization
April 14, 2019 Β· Declared Dead Β· π Journal of Computacion y Sistemas
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Authors
Ahsaas Bajaj, Shubham Krishna, Mukund Rungta, Hemant Tiwari, Vanraj Vala
arXiv ID
1904.06672
Category
cs.IR: Information Retrieval
Citations
5
Venue
Journal of Computacion y Sistemas
Last Checked
4 months ago
Abstract
Information Retrieval Systems have revolutionized the organization and extraction of Information. In recent years, mobile applications (apps) have become primary tools of collecting and disseminating information. However, limited research is available on how to retrieve and organize mobile apps on users' devices. In this paper, authors propose a novel method to estimate app-embeddings which are then applied to tasks like app clustering, classification, and retrieval. Usage of app-embedding for query expansion, nearest neighbor analysis enables unique and interesting use cases to enhance end-user experience with mobile apps.
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