Comparison of Classification Algorithms Like Neural Network (NN), Support Vector Machine (SVM), and Naïve Theorem (NB) and Back Propagation TECHNIQUE for Automatic Email Classification

Comparison of Classification Algorithms Like Neural Network (NN), Support Vector Machine (SVM), and Naïve Theorem (NB) and Back Propagation TECHNIQUE for Automatic Email Classification

Authors

  • Dr.V. Khanna, Dr.R. Udayakumar

Keywords:

Datamining, Classification, Support Vector Machine, Backpropagation, Neural Network.

Abstract

This paper proposes a replacement email classification model using a supervised
technique of multi-layer neural network to implement back propagation technique.
Backpropagation adjusts the loads in Associate in Nursing quantity proportional to the
error for the given unit (hidden or output) increased by the weight and its input. The
coaching method continues till some termination criterion, like a predefined mean-squared
error, or a most range of interations. Email has become one altogether the fastest and
therefore the best styles of communication. However, the increase of email users with high
volume of email messages might result in un-structured mail boxes, email congestion,
email overload, unprioritised email messages, and resulted at intervals the dramatic
increase of email classification management tools throughout the past few years. Our aim is
to the use of empirical Analysis to select out Associate in Nursing optimum, novel
assortment of choices of a users’ email contents that modify the speedy detection of the
foremost important words, phrases in emails

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Published

30-07-2018

Issue

Section

Articles
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