An Enlarged and efficient Hash-tagger++ Framework for News Stream in Social Tagging issues

Authors

  • M.Vidhya Lakshmi Department of Computer Science, Government Arts College, Bharathiyar University, Coimbatore, Tamil Nadu
  • P. Radha Department of Computer Science, Government Arts College, Bharathiyar University, Coimbatore, Tamil Nadu

Keywords:

Hash Tag Recommendation, Data mining Techniques, Framework for hashtag, MCHC-SVM Algorithm.

Abstract

In the fashionable notion of Hash-tagger can tag the social media news. The advance mechanism of hash tagger is one kind of metadata tagging community. The social media`s one of the micro-blogging of the site – Twitter. The twitter is designed and organized news, stories, group debates and more information’s are via tweets. These functionaries have easily connected the twitter crowds and scattered news from that user in media. If the hash-tagger++ can be applied in twitter subsequent to achieve the effectiveness in hash-tag recommendation and the classification. In this amicable part have easily espoused other hash-taggers namely, Multi-Class Hash-tag Classifier _ Support Vector Machine (MCHC_SVM) algorithm and semantic tagger. In this tagging scenario expeditiously classifies the tweets pedestal on its hash-tag. The tagger of semantic means it can detect the similar tweets and recommending the tags also. The proposed system is to can be utilized and abridged the High D of the feature space. The focal goal of this proposed system is easily ordering the twitter crowds, to improving the hash-tag recommendation and achieve high scalability with efficient performance, obviously.

 

References

R.Dovgopol and M. Nohelty, “A hashtag recommendation system for twitter data streams,” Computational Social Networls , 3:3 (2016).

A. Mazzia and J. Juett, “Suggesting hashtags on twitter,” EECS 545m, Machine Learning, Computer Science and Engineering, University of Michigan (2009).

F. Xiao, T. Noro, and T. Tokuda, “News-topic oriented hashtag recommendation in twitter based on characteristic co-occurrence word detection International Conference on Web Engineering, 2012.

B. Shi, G. Ifrim, and N. Hurley, “Learning-to-rank for real-time high-precision hashtag recommendation for streaming news,” Proceedings of the 25th International Conference on World Wide Web. International World Wide Web Conferences Steering Committee, pp. 1191–1202, 2016.

M. Vidhyalakshmi, and P. Radha, “Socaial Hash Tag Techniques Using Data Mining – A Survey”, International Jouirnal of Scientific Research in Computer Science and Engineering, Vol-6, Issue-3, pp.86-92, Jun 2018.

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Published

2018-12-31

How to Cite

[1]
M. Lakshmi and P. Radha, “An Enlarged and efficient Hash-tagger++ Framework for News Stream in Social Tagging issues”, Int. J. Sci. Res. Comp. Sci. Eng., vol. 6, no. 6, pp. 1–11, Dec. 2018.

Issue

Section

Research Article

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