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Article
Publication date: 25 February 2014

186

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South Asian Journal of Global Business Research, vol. 3 no. 1
Type: Research Article
ISSN: 2045-4457

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Article
Publication date: 3 August 2015

Masud Chand

302

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South Asian Journal of Global Business Research, vol. 4 no. 2
Type: Research Article
ISSN: 2045-4457

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Article
Publication date: 5 June 2017

138

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South Asian Journal of Business Studies, vol. 6 no. 2
Type: Research Article
ISSN: 2398-628X

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Book part
Publication date: 2 September 2010

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The Past, Present and Future of International Business & Management
Type: Book
ISBN: 978-0-85724-085-9

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Book part
Publication date: 2 September 2010

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The Past, Present and Future of International Business & Management
Type: Book
ISBN: 978-0-85724-085-9

Open Access
Article
Publication date: 23 July 2020

Rami Mustafa A. Mohammad

Spam emails classification using data mining and machine learning approaches has enticed the researchers' attention duo to its obvious positive impact in protecting internet…

2608

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Spam emails classification using data mining and machine learning approaches has enticed the researchers' attention duo to its obvious positive impact in protecting internet users. Several features can be used for creating data mining and machine learning based spam classification models. Yet, spammers know that the longer they will use the same set of features for tricking email users the more probably the anti-spam parties might develop tools for combating this kind of annoying email messages. Spammers, so, adapt by continuously reforming the group of features utilized for composing spam emails. For that reason, even though traditional classification methods possess sound classification results, they were ineffective for lifelong classification of spam emails duo to the fact that they might be prone to the so-called “Concept Drift”. In the current study, an enhanced model is proposed for ensuring lifelong spam classification model. For the evaluation purposes, the overall performance of the suggested model is contrasted against various other stream mining classification techniques. The results proved the success of the suggested model as a lifelong spam emails classification method.

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Applied Computing and Informatics, vol. 20 no. 1/2
Type: Research Article
ISSN: 2634-1964

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