A Review of Ensemble Technique for Improving Majority Voting for Classifier

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Provided by: International Journal of Advanced Research in Computer Science and Software Engineering (IJARCSSE)
Topic: Big Data
Format: PDF
Data classification plays important role in the field of data mining. The increasing rate of data diversity and size decrease the performance and efficiency of classifier. The decreasing performance of classifier compromised with unvoted data of classifier. Now the merging of two or more classifier for better prediction and voting of data are used, such techniques are called Ensemble classifier. Initially the resembling of classifier used bogging and boosting technique and later on used random Forest technique. The process of classifier improved the performance and efficiency of data classification.
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