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April 1, 201445 citations

Ham or spam? A comparative study for some content-based classification algorithms for email filtering

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SSSalwa Adriana SaabNMNicholas MitriMAMariette Awad

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Abstract

Spam emails are widely spreading to constitute a significant share of everyone's daily inbox. Being a source of financial loss and inconvenience for the recipients, spam emails have to be filtered and separated from legitimate ones. This paper presents a survey of some popular filtering algorithms that rely on text classification to decide whether an email is unsolicited or not. A comparison among them is performed on the SpamBase dataset to identify the best classification algorithm in terms of accuracy, computational time, and precision/recall rates.

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Cite This Study

Saab et al. (2014) studied this question.

synapsesocial.com/papers/6a0da52d88250cfcc2a50b57https://doi.org/10.1109/melcon.2014.6820574
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