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      Using Deep Networks and Transfer Learning to Address Disinformation

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          Abstract

          We apply an ensemble pipeline composed of a character-level convolutional neural network (CNN) and a long short-term memory (LSTM) as a general tool for addressing a range of disinformation problems. We also demonstrate the ability to use this architecture to transfer knowledge from labeled data in one domain to related (supervised and unsupervised) tasks. Character-level neural networks and transfer learning are particularly valuable tools in the disinformation space because of the messy nature of social media, lack of labeled data, and the multi-channel tactics of influence campaigns. We demonstrate their effectiveness in several tasks relevant for detecting disinformation: spam emails, review bombing, political sentiment, and conversation clustering.

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          Information credibility on twitter

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            Automating power: Social bot interference in global politics

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              Faking Sandy

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                Author and article information

                Journal
                24 May 2019
                Article
                1905.10412
                1eeb6f73-098b-46b6-acbb-7fba87a8f263

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

                History
                Custom metadata
                AI for Social Good Workshop at the International Conference on Machine Learning, Long Beach, United States (2019)
                cs.CL cs.AI cs.LG

                Theoretical computer science,Artificial intelligence
                Theoretical computer science, Artificial intelligence

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