SD3 DreamBooth LoRA - SteveWCG/trained_narrow_1

Prompt
A photo of a narrow bike lane with a single continuous white solid line on its left and the sharp, well-maintained road edge on its right.
Prompt
A photo of a narrow bike lane with a single continuous white solid line on its left and the sharp, well-maintained road edge on its right.
Prompt
A photo of a narrow bike lane with a single continuous white solid line on its left and the sharp, well-maintained road edge on its right.
Prompt
A photo of a narrow bike lane with a single continuous white solid line on its left and the sharp, well-maintained road edge on its right.

Model description

These are SteveWCG/trained_narrow_1 DreamBooth LoRA weights for stabilityai/stable-diffusion-3-medium-diffusers.

The weights were trained using DreamBooth with the SD3 diffusers trainer.

Was LoRA for the text encoder enabled? True.

Trigger words

You should use A narrow bike lane with a single continuous white solid line on its left and the sharp, well-maintained road edge on its right. to trigger the image generation.

Download model

Download the *.safetensors LoRA in the Files & versions tab.

Use it with the 🧨 diffusers library

from diffusers import AutoPipelineForText2Image
import torch
pipeline = AutoPipelineForText2Image.from_pretrained(stabilityai/stable-diffusion-3-medium-diffusers, torch_dtype=torch.float16).to('cuda')
pipeline.load_lora_weights('SteveWCG/trained_narrow_1', weight_name='pytorch_lora_weights.safetensors')
image = pipeline('A photo of a narrow bike lane with a single continuous white solid line on its left and the sharp, well-maintained road edge on its right.').images[0]

Use it with UIs such as AUTOMATIC1111, Comfy UI, SD.Next, Invoke

For more details, including weighting, merging and fusing LoRAs, check the documentation on loading LoRAs in diffusers

License

Please adhere to the licensing terms as described here.

Intended uses & limitations

How to use

# TODO: add an example code snippet for running this diffusion pipeline

Limitations and bias

[TODO: provide examples of latent issues and potential remediations]

Training details

[TODO: describe the data used to train the model]

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