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C4Synth: Cross-caption cycle-consistent text-to-image synthesis
K.J. Joseph, A. Pal, S. Rajanala,
Published in Institute of Electrical and Electronics Engineers Inc.
2019
Pages: 358 - 366
Abstract
Generating an image from its description is a challenging task worth solving because of its numerous practical applications ranging from image editing to virtual reality. All existing methods use one single caption to generate a plausible image. A single caption by itself, can be limited and may not be able to capture the variety of concepts and behavior that would be present in the image. We propose two deep generative models that generate an image by making use of multiple captions describing it. This is achieved by ensuring ‘Cross-Caption Cycle Consistency’ between the multiple captions and the generated image(s). We report quantitative and qualitative results on the standard Caltech-UCSD Birds (CUB) and Oxford-102 Flowers datasets to validate the efficacy of the proposed approach. © 2019 IEEE