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Social Network Link Prediction using Semantics Deep Learning

Authors :
Javed Ferzund
Maria Ijaz
Anam Sardar
Muhammad Asif Suryani
Source :
International Journal of Advanced Computer Science and Applications. 9
Publication Year :
2018
Publisher :
The Science and Information Organization, 2018.

Abstract

Currently, social networks have brought about an enormous number of users connecting to such systems over a couple of years, whereas the link mining is a key research track in this area. It has pulled the consideration of several analysts as a powerful system to be utilized as a part of social networks study to understand the relations between nodes in social circles. Numerous data sets of today’s interest are most appropriately called as a collection of interrelated linked objects. The main challenge faced by analysts is to tackle the problem of structured data sets among the objects. For this purpose, we design a new comprehensive model that involves link mining techniques with semantics to perform link mining on structured data sets. The past work, to our knowledge, has investigated on these structured datasets using this technique. For this purpose, we extracted real-time data of posts using different tools from one of the famous SN platforms and check the society’s behavior against it. We have verified our model utilizing diverse classifiers and the derived outcomes inspiring.

Details

ISSN :
21565570 and 2158107X
Volume :
9
Database :
OpenAIRE
Journal :
International Journal of Advanced Computer Science and Applications
Accession number :
edsair.doi...........7581a5d8ddf687ec391df3e240534f20
Full Text :
https://doi.org/10.14569/ijacsa.2018.090138