2023
DOI: 10.1609/aaai.v37i3.25379
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Reject Decoding via Language-Vision Models for Text-to-Image Synthesis

Abstract: Transformer-based text-to-image synthesis generates images from abstractive textual conditions and achieves prompt results. Since transformer-based models predict visual tokens step by step in testing, where the early error is hard to be corrected and would be propagated. To alleviate this issue, the common practice is drawing multi-paths from the transformer-based models and re-ranking the multi-images decoded from multi-paths to find the best one and filter out others. Therefore, the computing procedure of e… Show more

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