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Data-Driven News Generation for Automated Journalism

2017-09-01WS 2017Unverified0· sign in to hype

Leo Lepp{\"a}nen, Myriam Munezero, Mark Granroth-Wilding, Hannu Toivonen

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Abstract

Despite increasing amounts of data and ever improving natural language generation techniques, work on automated journalism is still relatively scarce. In this paper, we explore the field and challenges associated with building a journalistic natural language generation system. We present a set of requirements that should guide system design, including transparency, accuracy, modifiability and transferability. Guided by the requirements, we present a data-driven architecture for automated journalism that is largely domain and language independent. We illustrate its practical application in the production of news articles about the 2017 Finnish municipal elections in three languages, demonstrating the successfulness of the data-driven, modular approach of the design. We then draw some lessons for future automated journalism.

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