A Novel Approach for Face Generator Based on Emotions

P Kumar, Kathir Deivanai, S Srivathsav, M Uthandeeswar, S Senthil Pandi · 2024

The novel approach in facial image generation is achieved through the seamless integration of Superstar GAN and EC-GAN, two powerful GAN variants. Superstar GAN, renowned for its exceptional image-to-image translation capabilities, serves as the foundation for translating facial attributes, expressions, and styles. Meanwhile, the EC-GAN module introduces fine-grained emotion control, enabling users to precisely tailor the generated faces to exhibit specific emotions. By combining these two GAN variants, the proposed hybrid algorithm offers an unparalleled degree of flexibility and control in crafting facial images. This empowers users to create highly expressive and emotive faces while preserving the integrity of other facial features, thereby expanding the possibilities of applications in human- computer interaction, virtual avatars, and content creation. The hybrid model is a testament to the synergy achieved when state-of-the-art GAN architectures collaborate, promising to revolutionize the landscape of emotion-based face generation.

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