

Parrot
Overview :
Parrot is a multi-target reinforcement learning framework specifically designed for text-to-image generation. It automatically identifies the best trade-off between different rewards during the reinforcement learning optimization process of T2I by using a batch Pareto optimal selection method. In addition, Parrot employs a joint optimization approach for the T2I model and a tip extension network, promoting the generation of text prompts with quality perception, leading to further improvement in the final image quality. To counteract the potential catastrophic forgetting of the original user prompt that may occur due to prompt extension, we introduce original prompt centralized guidance during inference to ensure that the generated images are faithful to the user's input. Extensive experiments and user research studies show that Parrot is superior to several baseline methods in terms of various quality standards, including aesthetics, human preferences, image emotions, and text-image alignment.
Target Users :
Parrot can generate high-quality images that meet user expectations, suitable for fields such as literature creation, design, and advertising.
Use Cases
{
"title": "Literature Creation",
"description": "Use Parrot to generate images related to literary works, enhancing the visual effect of the work."
}
{
"title": "Design",
"description": "Utilize Parrot to generate high-quality images for design projects, improving design efficiency."
}
{
"title": "Advertising",
"description": "Use Parrot to generate image content that meets the needs of advertising production, enhancing the quality of advertising."
}
Features
Multi-target Reinforcement Learning
Text-to-Image Generation
Batch Pareto Optimal Selection
Tip Extension Network
Image Quality Optimization
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