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af21d86
1
Parent(s):
622cd3b
iterative outputs (#4)
Browse files- add support for iterative outputs (8eec9984643bab8d5bc212f4044c724e2e115cb3)
Co-authored-by: Ahsen Khaliq <akhaliq@users.noreply.huggingface.co>
README.md
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@@ -4,7 +4,7 @@ emoji: 🧨
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colorFrom: blue
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colorTo: pink
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sdk: gradio
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sdk_version: 3.
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app_file: app.py
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pinned: false
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---
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colorFrom: blue
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colorTo: pink
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sdk: gradio
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sdk_version: 3.2.1b0
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app_file: app.py
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pinned: false
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---
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app.py
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@@ -7,10 +7,10 @@ import numpy as np
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pipeline = LDMPipeline.from_pretrained("CompVis/ldm-celebahq-256")
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def predict(steps
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generator = torch.manual_seed(seed)
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random_seed = random.randint(0, 2147483647)
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gr.Interface(
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css="#output_image{width: 256px}",
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title="ldm-celebahq-256 - 🧨 diffusers library",
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description="This Spaces contains an unconditional Latent Diffusion process for the <a href=\"https://huggingface.co/CompVis/ldm-celebahq-256\">ldm-celebahq-256</a> face generator model by <a href=\"https://huggingface.co/CompVis\">CompVis</a> using the <a href=\"https://github.com/huggingface/diffusers\">diffusers library</a>. The goal of this demo is to showcase the diffusers library capabilities. If you want the state-of-the-art experience with Latent Diffusion text-to-image check out the <a href=\"https://huggingface.co/spaces/multimodalart/latentdiffusion\">main Spaces</a>.",
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).launch()
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pipeline = LDMPipeline.from_pretrained("CompVis/ldm-celebahq-256")
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def predict(steps, seed):
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generator = torch.manual_seed(seed)
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for i in range(1,steps):
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yield pipeline(generator=generator, num_inference_steps=i)["sample"][0]
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random_seed = random.randint(0, 2147483647)
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gr.Interface(
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css="#output_image{width: 256px}",
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title="ldm-celebahq-256 - 🧨 diffusers library",
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description="This Spaces contains an unconditional Latent Diffusion process for the <a href=\"https://huggingface.co/CompVis/ldm-celebahq-256\">ldm-celebahq-256</a> face generator model by <a href=\"https://huggingface.co/CompVis\">CompVis</a> using the <a href=\"https://github.com/huggingface/diffusers\">diffusers library</a>. The goal of this demo is to showcase the diffusers library capabilities. If you want the state-of-the-art experience with Latent Diffusion text-to-image check out the <a href=\"https://huggingface.co/spaces/multimodalart/latentdiffusion\">main Spaces</a>.",
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).queue().launch()
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