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  Published Paper Details:

  Paper Title

ASPECT BASED SENTIMENT CLASSIFICATION USING MACHINE LEARNING FOR ONLINE REVIEWS

  Authors

  Pratiksha B. Nehe,  Prof. A. N. Nawathe

  Keywords

Machine Learning, Consumer Reviews, Aspect Based Sentiment Analysis, Text mining.

  Abstract


The tourism and travel sector is improving services using a large amount of data collected from different sources. The easy access to comments, evaluations and experiences of different tourists has made the planning of tourism rich and complex. Therefore, a big challenge faced by tourism sector is to use the gathered data for detecting tourist preferences. Unfortunately, some user�s comments are irrelevant and complex for understanding these becomes hard for recommendation. Aspect based sentiment classification methods have shown promise in overcome the noise. In existing not much work on aspect based sentiment with classification. This paper presents a framework of aspect based sentiment classification recommendation system that will not only identify the aspects very efficiently but can perform classification task with high accuracy using machine learning na?ve Bayes and Decision Tree algorithms. The framework helps tourists find the best place, hotel and restaurant in a city, and performance has been evaluated by conducting experiments on Yelp and foursquare real-time datasets

  IJCRT's Publication Details

  Unique Identification Number - IJCRT2004576

  Paper ID - 193918

  Page Number(s) - 4029-4034

  Pubished in - Volume 8 | Issue 4 | April 2020

  DOI (Digital Object Identifier) -   

  Publisher Name - IJCRT | www.ijcrt.org | ISSN : 2320-2882

  E-ISSN Number - 2320-2882

  Cite this article

  Pratiksha B. Nehe,  Prof. A. N. Nawathe,   "ASPECT BASED SENTIMENT CLASSIFICATION USING MACHINE LEARNING FOR ONLINE REVIEWS", International Journal of Creative Research Thoughts (IJCRT), ISSN:2320-2882, Volume.8, Issue 4, pp.4029-4034, April 2020, Available at :http://www.ijcrt.org/papers/IJCRT2004576.pdf

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ISSN: 2320-2882
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Journal Starting Year (ESTD) : 2013
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ISSN and 7.97 Impact Factor Details


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ISSN: 2320-2882
Impact Factor: 7.97 and ISSN APPROVED
Journal Starting Year (ESTD) : 2013
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