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Generative adversarial text to image synthesis / Adel Al-Laham ; Ahmad Hassouneh ; Yazan Al-Khatib ; Mhd Anas Kamel

Publication Date: 2020

ISBN: CCE00014

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Synthesizing high-quality images from text descriptions is a challenging problem in computer vision and has many practical applications. Samples generated by existing text-to-image approaches can roughly reflect the meaning of the given descriptions, but they fail to contain necessary details and vivid object parts. In order to make the project more specialized, it was approved that the project be dedicated to fashion image generation, we present an effective approach for generating new clothing through generative adversarial learning. Generative Adversarial Networks (GANs) successfully show the capability of synthesizing sharper images compared to other generative models.


Subject: Computer Sceince, Mobile application, Images, GANs, StackGAN, Quality, Generative Adversarial Networks