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Sparks: Inspiration for Science Writing using Language Models

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arxiv 2110.07640 v1 pith:KOPB4GPP submitted 2021-10-14 cs.HC cs.CL

classification cs.HCcs.CL
keywords languagesparkswritingmodelsfindsciencesentencessupport
verification ladder T0 review T1 audit T2 compute T3 formal
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Large-scale language models are rapidly improving, performing well on a wide variety of tasks with little to no customization. In this work we investigate how language models can support science writing, a challenging writing task that is both open-ended and highly constrained. We present a system for generating "sparks", sentences related to a scientific concept intended to inspire writers. We find that our sparks are more coherent and diverse than a competitive language model baseline, and approach a human-created gold standard. In a study with 13 PhD students writing on topics of their own selection, we find three main use cases of sparks: aiding with crafting detailed sentences, providing interesting angles to engage readers, and demonstrating common reader perspectives. We also report on the various reasons sparks were considered unhelpful, and discuss how we might improve language models as writing support tools.

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Cited by 1 Pith paper

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    An online experiment finds that showing users an overview of an AI's values reduces reliance on AI suggestions during writing tasks.

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