Edit workflow:http://i71i.com/mby8
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OneReward is a novel visual domain RLHF approach that significantly improves the generative capabilities of strategy models across multiple subtasks by using Qwen2.5-VL as a generative reward model to enhance multi-task reinforcement learning. Based on OneReward, FLUX.1-Fill-dev-OneReward - Based on FLUX Fill [dev], it surpasses the closed-source FLUX Fill [Pro] in image restoration and epitaxy tasks, providing a powerful new benchmark for future unified image editing research.
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Base model:
black-forest-labs/ : Black Forest Labs.
bytedance-research/OneReward: The OneReward model developed by the ByteDance research team for reinforcement learning optimization.
yichengup/flux.1-fill-dev-OneReward: A model developed by yichengup that combines Flux.1-Fill-dev and OneReward, focusing on image filling and scaling tasks.
Label:
flux : Flux series models.
flux-fill : The image fill feature in the Flux series.
onereward: OneReward reinforcement learning methodology.
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FLUX.1-Fill-dev is an open-source image restoration and scaling model developed by Black Forest Labs, and the following is its detailed description:
Basic information
Model Architecture: Adopts the Rectified Flow Transformer architecture, combined with the generation capabilities of diffusion models, to intelligently fill in missing areas of images based on text prompts.
Parameter scale: 12 billion parameters.
Training method: Guidance distillation is used to optimize inference speed.
Licensing method: Model weights are publicly available and generated content can be used for personal, scientific, and commercial use, subject to the FLUX.1 [dev] Non-Commercial License.
Core features:
Image restoration: It can fill in missing or removed areas in the image based on text descriptions and binary masks, achieving high-precision image restoration.
Image Expansion: Support for outpainting, which seamlessly expands the boundaries of existing images.
Text Understanding and Generation: Understand complex text instructions and combine them with image context to generate natural, coherent restoration results.
Description
Edit workflow:http://i71i.com/mby8
Register for free and get 1000 points. Log in every day and get points
OneReward is a novel visual domain RLHF approach that significantly improves the generative capabilities of strategy models across multiple subtasks by using Qwen2.5-VL as a generative reward model to enhance multi-task reinforcement learning. Based on OneReward, FLUX.1-Fill-dev-OneReward - Based on FLUX Fill [dev], it surpasses the closed-source FLUX Fill [Pro] in image restoration and epitaxy tasks, providing a powerful new benchmark for future unified image editing research.
------------------------------------------------
Base model:
black-forest-labs/ : Black Forest Labs.
bytedance-research/OneReward: The OneReward model developed by the ByteDance research team for reinforcement learning optimization.
yichengup/flux.1-fill-dev-OneReward: A model developed by yichengup that combines Flux.1-Fill-dev and OneReward, focusing on image filling and scaling tasks.
Label:
flux : Flux series models.
flux-fill : The image fill feature in the Flux series.
onereward: OneReward reinforcement learning methodology.
------------------------------------------------
FLUX.1-Fill-dev is an open-source image restoration and scaling model developed by Black Forest Labs, and the following is its detailed description:
Basic information
Model Architecture: Adopts the Rectified Flow Transformer architecture, combined with the generation capabilities of diffusion models, to intelligently fill in missing areas of images based on text prompts.
Parameter scale: 12 billion parameters.
Training method: Guidance distillation is used to optimize inference speed.
Licensing method: Model weights are publicly available and generated content can be used for personal, scientific, and commercial use, subject to the FLUX.1 [dev] Non-Commercial License.
Core features:
Image restoration: It can fill in missing or removed areas in the image based on text descriptions and binary masks, achieving high-precision image restoration.
Image Expansion: Support for outpainting, which seamlessly expands the boundaries of existing images.
Text Understanding and Generation: Understand complex text instructions and combine them with image context to generate natural, coherent restoration results.
Details
Files
Available On (1 platform)
Same model published on other platforms. May have additional downloads or version variants.
