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1ea0405
1
Parent(s):
446de7d
Update app.py
Browse files
app.py
CHANGED
@@ -26,21 +26,6 @@ ENABLE_USE_LORA = os.getenv("ENABLE_USE_LORA", "1") == "1"
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ENABLE_USE_VAE = os.getenv("ENABLE_USE_VAE", "1") == "1"
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device = torch.device("cuda:0" if torch.cuda.is_available() else "cpu")
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models = ["runwayml/stable-diffusion-v1-5",
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"stabilityai/stable-diffusion-xl-base-1.0",
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"stablediffusionapi/juggernaut-xl-v8",
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"emilianJR/epiCRealism",
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"SG161222/Realistic_Vision_V5.1_noVAE",
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"cagliostrolab/animagine-xl-3.0",
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"misri/cyberrealistic_v41BackToBasics",
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"malcolmrey/serenity",
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"SG161222/RealVisXL_V3.0",
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"stablediffusionapi/realistic-stock-photo-v2",
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"stablediffusionapi/pixel-art-diffusion-xl",
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"playgroundai/playground-v2-1024px-aesthetic",
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"dataautogpt3/ProteusV0.3",
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"stablediffusionapi/disney-pixar-cartoon",
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"RunDiffusion/Juggernaut-XL-Lightning"]
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def randomize_seed_fn(seed: int, randomize_seed: bool) -> int:
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if randomize_seed:
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@@ -67,7 +52,7 @@ def generate(
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use_vae: bool = False,
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use_lora: bool = False,
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apply_refiner: bool = False,
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vaecall = 'stabilityai/sd-vae-ft-mse',
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lora = 'amazonaws-la/juliette',
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lora_scale: float = 0.7,
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@@ -75,15 +60,15 @@ def generate(
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if torch.cuda.is_available():
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if not use_vae:
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pipe = DiffusionPipeline.from_pretrained(
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if use_vae:
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vae = AutoencoderKL.from_pretrained(vaecall, torch_dtype=torch.float16)
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pipe = DiffusionPipeline.from_pretrained(
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if use_lora:
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pipe.load_lora_weights(lora)
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pipe.fuse_lora(lora_scale
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if ENABLE_CPU_OFFLOAD:
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pipe.enable_model_cpu_offload()
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@@ -155,7 +140,7 @@ with gr.Blocks(css="style.css") as demo:
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visible=os.getenv("SHOW_DUPLICATE_BUTTON") == "1",
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)
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with gr.Group():
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vaecall = gr.Text(label='VAE')
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lora = gr.Text(label='LoRA')
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lora_scale = gr.Slider(
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@@ -340,7 +325,7 @@ with gr.Blocks(css="style.css") as demo:
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use_vae,
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use_lora,
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apply_refiner,
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vaecall,
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lora,
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lora_scale,
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ENABLE_USE_VAE = os.getenv("ENABLE_USE_VAE", "1") == "1"
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device = torch.device("cuda:0" if torch.cuda.is_available() else "cpu")
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def randomize_seed_fn(seed: int, randomize_seed: bool) -> int:
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if randomize_seed:
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use_vae: bool = False,
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use_lora: bool = False,
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apply_refiner: bool = False,
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model = 'cagliostrolab/animagine-xl-3.0',
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vaecall = 'stabilityai/sd-vae-ft-mse',
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lora = 'amazonaws-la/juliette',
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lora_scale: float = 0.7,
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if torch.cuda.is_available():
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if not use_vae:
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pipe = DiffusionPipeline.from_pretrained(model, torch_dtype=torch.float16)
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if use_vae:
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vae = AutoencoderKL.from_pretrained(vaecall, torch_dtype=torch.float16)
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pipe = DiffusionPipeline.from_pretrained(model, vae=vae, torch_dtype=torch.float16)
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if use_lora:
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pipe.load_lora_weights(lora)
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pipe.fuse_lora(lora_scale)
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if ENABLE_CPU_OFFLOAD:
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pipe.enable_model_cpu_offload()
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visible=os.getenv("SHOW_DUPLICATE_BUTTON") == "1",
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)
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with gr.Group():
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model = gr.Text(label='Model')
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vaecall = gr.Text(label='VAE')
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lora = gr.Text(label='LoRA')
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lora_scale = gr.Slider(
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use_vae,
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use_lora,
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apply_refiner,
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model,
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vaecall,
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lora,
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lora_scale,
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