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2020 | 11 | 2 | 118 - 131

Article title

A FAKE NEWS CLASSIFICATION FRAMEWORK: APPLICATION ON IMMIGRATION CASES

Title variants

Languages of publication

EN

Abstracts

EN
In this study we conduct a systematic literature review with the aim of pointing out the characteristics and types of fake news. We use them to formulate a framework to facilitate classification of fake news instances. Using the classification framework of fake news, we analyse 59 different fake news cases regarding immigration. The research team provided a proof of concept of applicability of the proposed framework for categorising immigration fake news cases. Towards this direction, machine learning algorithms were employed to identify association rules among the classification facets of our framework. The findings of the research study show that a number of these rules can be used in order to design a semi-automated tool that fills-in some of the characteristics of our framework and infers the rest, thus utilising the extracted rules. Benefits stemming from this work include a proposition of an easy to use framework for fake news classification, and derivation of commonly occurring patterns that demonstrate how fake news, as well as their types, interrelate.

Year

Volume

11

Issue

2

Pages

118 - 131

Physical description

Contributors

  • School of Science and Technology, International Hellenic University, 14th km Thessaloniki – N. Moudania, 57001 Thermi, Greece

References

Document Type

Publication order reference

Identifiers

YADDA identifier

bwmeta1.element.cejsh-c14d82d4-6554-4dc4-9050-363c77088655
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