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Bo-Kyeong Kim
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Update docs/description.md
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@@ -11,11 +11,12 @@ This demo showcases a lightweight Stable Diffusion model (SDM) for general-purpo
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- This research was accepted to
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- [**ICML 2023 Workshop on Efficient Systems for Foundation Models** (ES-FoMo)](https://es-fomo.com/)
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- [**ICCV 2023 Demo Track**](https://iccv2023.thecvf.com/)
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- Please be aware that your prompts are logged
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- For different images with the same prompt, please change _Random Seed_ in Advanced Settings (because of using the firstly sampled latent code per seed).
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- Some demo codes were borrowed from the repo of Stability AI ([stabilityai/stable-diffusion](https://huggingface.co/spaces/stabilityai/stable-diffusion)) and AK ([akhaliq/small-stable-diffusion-v0](https://huggingface.co/spaces/akhaliq/small-stable-diffusion-v0)). Thanks!
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### Demo Environment
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- Regardless of machine types, our compressed model achieves speedups while preserving visually compelling results.
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- [June/30/2023] **Free CPU-basic** (2 vCPU · 16 GB RAM) — 7~10 min slow inference of the original SDM.
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- [May/31/2023] **NVIDIA T4-small** (4 vCPU · 15 GB RAM · 16GB VRAM) — 5~10 sec inference of the original SDM (for a 512×512 image with 25 denoising steps).
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- This research was accepted to
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- [**ICML 2023 Workshop on Efficient Systems for Foundation Models** (ES-FoMo)](https://es-fomo.com/)
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- [**ICCV 2023 Demo Track**](https://iccv2023.thecvf.com/)
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- Please be aware that your prompts are logged, _without_ any personally identifiable information.
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- For different images with the same prompt, please change _Random Seed_ in Advanced Settings (because of using the firstly sampled latent code per seed).
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- Some demo codes were borrowed from the repo of Stability AI ([stabilityai/stable-diffusion](https://huggingface.co/spaces/stabilityai/stable-diffusion)) and AK ([akhaliq/small-stable-diffusion-v0](https://huggingface.co/spaces/akhaliq/small-stable-diffusion-v0)). Thanks!
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### Demo Environment
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- Regardless of machine types, our compressed model achieves speedups while preserving visually compelling results.
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- [June/30/2023] **Free CPU-basic** (2 vCPU · 16 GB RAM) — 7~10 min slow inference of the original SDM.
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- Because free CPU resources are dynamically allocated with other demos, it may take much longer, depending on the server situation.
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- [May/31/2023] **NVIDIA T4-small** (4 vCPU · 15 GB RAM · 16GB VRAM) — 5~10 sec inference of the original SDM (for a 512×512 image with 25 denoising steps).
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