Stories for Images-in-Sequence by using Visual and Narrative Components
May 15, 2018 Β· Declared Dead Β· π ICT Innovations
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Authors
Marko Smilevski, Ilija Lalkovski, Gjorgji Madjarov
arXiv ID
1805.05622
Category
cs.AI: Artificial Intelligence
Cross-listed
cs.CL,
cs.CV
Citations
20
Venue
ICT Innovations
Last Checked
4 months ago
Abstract
Recent research in AI is focusing towards generating narrative stories about visual scenes. It has the potential to achieve more human-like understanding than just basic description generation of images- in-sequence. In this work, we propose a solution for generating stories for images-in-sequence that is based on the Sequence to Sequence model. As a novelty, our encoder model is composed of two separate encoders, one that models the behaviour of the image sequence and other that models the sentence-story generated for the previous image in the sequence of images. By using the image sequence encoder we capture the temporal dependencies between the image sequence and the sentence-story and by using the previous sentence-story encoder we achieve a better story flow. Our solution generates long human-like stories that not only describe the visual context of the image sequence but also contains narrative and evaluative language. The obtained results were confirmed by manual human evaluation.
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