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An Impartial Transformer for Story Visualization

9 January 2023
N. Tsakas
Maria Lymperaiou
Giorgos Filandrianos
Giorgos Stamou
    ViT
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Abstract

Story Visualization is an advanced task of computed vision that targets sequential image synthesis, where the generated samples need to be realistic, faithful to their conditioning and sequentially consistent. Our work proposes a novel architectural and training approach: the Impartial Transformer achieves both text-relevant plausible scenes and sequential consistency utilizing as few trainable parameters as possible. This enhancement is even able to handle synthesis of 'hard' samples with occluded objects, achieving improved evaluation metrics comparing to past approaches.

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