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README.md ADDED
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+ ---
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+ license: other
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+ tags:
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+ - stable-diffusion
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+ - text-to-image
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+ - core-ml
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+ ---
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+
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+ # Stable Diffusion XL v0.9 Model Card
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+
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+ This model was generated using [Apple’s repository](https://github.com/apple/ml-stable-diffusion) which has [ASCL](https://github.com/apple/ml-stable-diffusion/blob/main/LICENSE.md). This version contains 6-bit palettized Core ML weights for iOS 17 or macOS 14. To use weights without quantization, please visit this [model instead](https://huggingface.co/coreml-stable-diffusion-xl-v0-9-base).
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+
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+ This model card focuses on the model associated with the Stable Diffusion XL v0.9 Base model, codebase available [here](https://github.com/Stability-AI/generative-models).
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+
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+ SDXL v0.9 consists of a two-step pipeline for latent diffusion:
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+ First, we use a base model to generate latents of the desired output size.
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+ In the second step, we use a specialized high-resolution model and apply a technique called SDEdit (https://arxiv.org/abs/2108.01073, also known as "img2img")
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+ to the latents generated in the first step, using the same prompt.
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+
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+ Only the base model is included here.
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+
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+ These weights here have been converted to Core ML for use on Apple Silicon hardware.
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+
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+ There are 2 variants of the Core ML weights:
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+
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+ ```
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+ coreml-stable-diffusion-xl-v0-9-base
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+ └── original
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+ ├── compiled # Swift inference, "original" attention, 6-bit quantized
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+ └── packages # Python inference, "original" attention, 6-bit quantized
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+ ```
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+
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+ ### Model Description
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+
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+ - **Developed by:** Stability AI
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+ - **Model type:** Diffusion-based text-to-image generative model
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+ - **License:** [SDXL 0.9 Research License](https://huggingface.co/stabilityai/stable-diffusion-xl-base-0.9/blob/main/LICENSE.md)
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+ - **Model Description:** This is a model that can be used to generate and modify images based on text prompts. It is a [Latent Diffusion Model](https://arxiv.org/abs/2112.10752) that uses two fixed, pretrained text encoders ([OpenCLIP-ViT/G](https://github.com/mlfoundations/open_clip) and [CLIP-ViT/L](https://github.com/openai/CLIP/tree/main)).
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+ - **Resources for more information:** [GitHub Repository](https://github.com/Stability-AI/generative-models) [SDXL paper on arXiv](https://arxiv.org/abs/2307.01952).
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+
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+ ### Model Sources
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+
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+ <!-- Provide the basic links for the model. -->
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+
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+ - **Repository:** https://github.com/Stability-AI/generative-models
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+ - **Demo [optional]:** https://clipdrop.co/stable-diffusion
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+
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+ ## Uses
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+
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+ ### Direct Use
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+
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+ The model is intended for research purposes only. Possible research areas and tasks include
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+
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+ - Generation of artworks and use in design and other artistic processes.
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+ - Applications in educational or creative tools.
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+ - Research on generative models.
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+ - Safe deployment of models which have the potential to generate harmful content.
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+ - Probing and understanding the limitations and biases of generative models.
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+
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+ Excluded uses are described below.
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+
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+ ### Out-of-Scope Use
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+
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+ The model was not trained to be factual or true representations of people or events, and therefore using the model to generate such content is out-of-scope for the abilities of this model.
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+
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+ ## Limitations and Bias
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+
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+ ### Limitations
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+
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+ - The model does not achieve perfect photorealism
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+ - The model cannot render legible text
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+ - The model struggles with more difficult tasks which involve compositionality, such as rendering an image corresponding to “A red cube on top of a blue sphere”
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+ - Faces and people in general may not be generated properly.
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+ - The autoencoding part of the model is lossy.
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+
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+ ### Bias
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+ While the capabilities of image generation models are impressive, they can also reinforce or exacerbate social biases.
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+
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+ ## Evaluation
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+ ![comparison](https://huggingface.co/stabilityai/stable-diffusion-xl-base-0.9/resolve/main/comparison.png)
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+ The chart above evaluates user preference for SDXL (with and without refinement) over Stable Diffusion 1.5 and 2.1.
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+ The SDXL base model performs significantly better than the previous variants, and the model combined with the refinement module achieves the best overall performance.
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+ "author": "com.apple.CoreML",
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+ "description": "CoreML Model Specification",
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+ "name": "model.mlmodel",
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+ "path": "com.apple.CoreML/model.mlmodel"
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+ },
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+ "F2DDCE48-882D-4C78-A64E-7D7E2DDFD00B": {
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+ "author": "com.apple.CoreML",
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+ "description": "CoreML Model Weights",
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+ "name": "weights",
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+ "path": "com.apple.CoreML/weights"
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+ }
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+ },
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+ "rootModelIdentifier": "66DC1E90-9AD3-4A7E-9739-A91C75EB5643"
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+ }