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rootonchair/tscd_juggernaut_final
tscd_juggernaut_final is a text-to-image model from rootonchair. Use it when you need an image from a text prompt. It is set up for diffusers. The card lists the license as mit.
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From the Hugging Face model README
Fine-tune a distill LoRA version of digiplay/Juggernaut_final using Trajectory Segmented Consistency Model (TSCD) introduce in Hyper-SD: Trajectory Segmented Consistency Model for Efficient Image Synthesis
This LoRA is fine-tuned on laion/conceptual-captions-12m-webdataset for 16.000 iterations using unofficial training implementation at https://github.com/rootonchair/consistency_models_distill
import os
import torch
from diffusers import StableDiffusionPipeline, TCDScheduler
pipeline = StableDiffusionPipeline.from_pretrained("digiplay/Juggernaut_final", torch_dtype=torch.float16, safety_checker = None).to("cuda")
pipeline.load_lora_weights("rootonchair/tscd_juggernaut_final")
pipeline.scheduler = TCDScheduler.from_config(pipeline.scheduler.config)
test_prompts = [
"cgmech, white mecha robot, cape, science fiction, torn clothes, glowing, standing, robot joints, mecha, armor, cowboy shot, intense sunlight, silver dragonborn, outdoors, landscape, nature, volumetrics dtx",
"Portrait photo of muscular bearded guy in a worn mech suit, elegant, sharp focus, photo by greg rutkowski, soft lighting, vibrant colors",
"photo of a supercar, 8k uhd, high quality, road, sunset, motion blur, depth blur, cinematic, filmic image 4k",
"a portrait of a white cat wearing glasses, highly detailed",
"a beautiful runrise at the beach, cinematic, masterpiece",
"A photo of beautiful mountain with realistic sunset and blue lake, highly detailed, masterpiece",
"Self-portrait oil painting, a beautiful cyborg with golden hair, 8k",
"Astronaut in a jungle, cold color palette, muted colors, detailed, 8k";
]
seed = 1234
images = pipeline(test_prompts, width=512, height=512, num_inference_steps=4, guidance_scale=0, generator=torch.Generator(device="cuda").manual_seed(seed)).images







Weights for this model are available in Safetensors format.
Download them in the Files & versions tab.