Performance Analysis of Machine Learning Algorithms for Big Data Classification

Author:

Punia Sanjeev Kumar1,Kumar Manoj2ORCID,Stephan Thompson3,Deverajan Ganesh Gopal4ORCID,Patan Rizwan5ORCID

Affiliation:

1. JIMS Engineering Management Technical Campus, India

2. School of Computer Science, University of Petroleum and Energy Studies (UPES), Dehradun, India

3. Department of Computer Science and Engineering, Faculty of Engineering and Technology, M. S. Ramaiah University of Applied Sciences, Bangalore,Noida, India

4. Galgotias University, India

5. Velagapudi Ramakrishna Siddhartha Engineering College, India

Abstract

In broad, three machine learning classification algorithms are used to discover correlations, hidden patterns, and other useful information from different data sets known as big data. Today, Twitter, Facebook, Instagram, and many other social media networks are used to collect the unstructured data. The conversion of unstructured data into structured data or meaningful information is a very tedious task. The different machine learning classification algorithms are used to convert unstructured data into structured data. In this paper, the authors first collect the unstructured research data from a frequently used social media network (i.e., Twitter) by using a Twitter application program interface (API) stream. Secondly, they implement different machine classification algorithms (supervised, unsupervised, and reinforcement) like decision trees (DT), neural networks (NN), support vector machines (SVM), naive Bayes (NB), linear regression (LR), and k-nearest neighbor (K-NN) from the collected research data set. The comparison of different machine learning classification algorithms is concluded.

Publisher

IGI Global

Subject

Health Informatics,Computer Science Applications

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