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---
license: other
base_model: "stabilityai/stable-diffusion-3.5-large"
tags:
- sd3
- sd3-diffusers
- text-to-image
- diffusers
- simpletuner
- safe-for-work
- lora
- template:sd-lora
- lycoris
inference: true
widget:
- text: 'unconditional (blank prompt)'
parameters:
negative_prompt: 'blurry, cropped, ugly'
output:
url: ./assets/image_0_0.png
- text: 'A scene from the animated Studio Ghibli movie Spirited Away, where a man with kind eyes and a worn hat sits by a window, lost in thought, as light filters gently through sheer curtains.'
parameters:
negative_prompt: 'blurry, cropped, ugly'
output:
url: ./assets/image_1_0.png
- text: 'A scene from the animated Studio Ghibli movie Spirited Away, where a woman with long, windswept hair reads a book at an outdoor cafe, surrounded by blooming flowers and soft afternoon light.'
parameters:
negative_prompt: 'blurry, cropped, ugly'
output:
url: ./assets/image_2_0.png
- text: 'A scene from the animated Studio Ghibli movie Spirited Away, where a fluffy white cat curls up on a windowsill, basking in the warm sunlight, while soft curtains flutter in the breeze.'
parameters:
negative_prompt: 'blurry, cropped, ugly'
output:
url: ./assets/image_3_0.png
- text: 'A scene from the animated Studio Ghibli movie Spirited Away, where a glowing, antlered spirit wanders through a quiet forest, leaving a trail of shimmering footprints among the ferns.'
parameters:
negative_prompt: 'blurry, cropped, ugly'
output:
url: ./assets/image_4_0.png
- text: 'A photo-realistic image of a cat'
parameters:
negative_prompt: 'blurry, cropped, ugly'
output:
url: ./assets/image_5_0.png
---
# sd35-spirited-away-lokr
This is a LyCORIS adapter derived from [stabilityai/stable-diffusion-3.5-large](https://huggingface.co./stabilityai/stable-diffusion-3.5-large).
The main validation prompt used during training was:
```
A photo-realistic image of a cat
```
## Validation settings
- CFG: `5.0`
- CFG Rescale: `0.0`
- Steps: `20`
- Sampler: `None`
- Seed: `42`
- Resolution: `1024x1024`
Note: The validation settings are not necessarily the same as the [training settings](#training-settings).
You can find some example images in the following gallery:
<Gallery />
The text encoder **was not** trained.
You may reuse the base model text encoder for inference.
## Training settings
- Training epochs: 6
- Training steps: 1300
- Learning rate: 1e-07
- Max grad norm: 0.01
- Effective batch size: 4
- Micro-batch size: 4
- Gradient accumulation steps: 1
- Number of GPUs: 1
- Prediction type: flow-matching
- Rescaled betas zero SNR: False
- Optimizer: adamw_bf16
- Precision: Pure BF16
- Quantised: Yes: int8-quanto
- Xformers: Not used
- LyCORIS Config:
```json
{
"bypass_mode": true,
"algo": "lokr",
"multiplier": 1.0,
"linear_dim": 1000000,
"linear_alpha": 1,
"factor": 1,
"full_matrix": true,
"apply_preset": {
"target_module": [
"JointTransformerBlock"
],
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"factor": 1,
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"linear_alpha": 1,
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"linear_dim": 1000000,
"linear_alpha": 1,
"full_matrix": true
},
"transformer_blocks.29.norm1*": {
"algo": "lokr",
"factor": 4,
"linear_dim": 1000000,
"linear_alpha": 1,
"full_matrix": true
},
"transformer_blocks.29.norm1_context*": {
"algo": "lokr",
"factor": 4,
"linear_dim": 1000000,
"linear_alpha": 1,
"full_matrix": true
},
"transformer_blocks.29.ff*": {
"algo": "lokr",
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},
"transformer_blocks.29.*": {
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},
"transformer_blocks.30.norm1*": {
"algo": "lokr",
"factor": 3,
"linear_dim": 1000000,
"linear_alpha": 1,
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},
"transformer_blocks.30.norm1_context*": {
"algo": "lokr",
"factor": 3,
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"linear_alpha": 1,
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},
"transformer_blocks.30.ff*": {
"algo": "lokr",
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"linear_alpha": 1,
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},
"transformer_blocks.30.*": {
"algo": "lokr",
"factor": 6,
"linear_dim": 1000000,
"linear_alpha": 1,
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},
"transformer_blocks.31.norm1*": {
"algo": "lokr",
"factor": 1,
"linear_dim": 1000000,
"linear_alpha": 1,
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},
"transformer_blocks.31.norm1_context*": {
"algo": "lokr",
"factor": 1,
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},
"transformer_blocks.31.ff*": {
"algo": "lokr",
"factor": 1,
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},
"transformer_blocks.31.*": {
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},
"transformer_blocks.32.norm1_context*": {
"algo": "lokr",
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},
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"transformer_blocks.32.*": {
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},
"transformer_blocks.35.norm1_context*": {
"algo": "lokr",
"factor": 1,
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},
"transformer_blocks.35.ff*": {
"algo": "lokr",
"factor": 1,
"linear_dim": 1000000,
"linear_alpha": 1,
"full_matrix": true
},
"transformer_blocks.35.*": {
"algo": "lokr",
"factor": 2,
"linear_dim": 1000000,
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},
"transformer_blocks.36.norm1*": {
"algo": "lokr",
"factor": 3,
"linear_dim": 1000000,
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},
"transformer_blocks.36.norm1_context*": {
"algo": "lokr",
"factor": 3,
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},
"transformer_blocks.36.ff*": {
"algo": "lokr",
"factor": 3,
"linear_dim": 1000000,
"linear_alpha": 1,
"full_matrix": true
},
"transformer_blocks.36.*": {
"algo": "lokr",
"factor": 6,
"linear_dim": 1000000,
"linear_alpha": 1,
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},
"transformer_blocks.37.norm1*": {
"algo": "lokr",
"factor": 3,
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"linear_alpha": 1,
"full_matrix": true
},
"transformer_blocks.37.norm1_context*": {
"algo": "lokr",
"factor": 3,
"linear_dim": 1000000,
"linear_alpha": 1,
"full_matrix": true
},
"transformer_blocks.37.ff*": {
"algo": "lokr",
"factor": 3,
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"linear_alpha": 1,
"full_matrix": true
},
"transformer_blocks.37.*": {
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"factor": 6,
"linear_dim": 1000000,
"linear_alpha": 1,
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}
},
"use_fnmatch": true
}
}
```
## Datasets
### screencaps-1024
- Repeats: 0
- Total number of images: 379
- Total number of aspect buckets: 1
- Resolution: 1.048576 megapixels
- Cropped: False
- Crop style: None
- Crop aspect: None
- Used for regularisation data: No
### screencaps-1024-crop
- Repeats: 0
- Total number of images: 379
- Total number of aspect buckets: 1
- Resolution: 1.048576 megapixels
- Cropped: True
- Crop style: random
- Crop aspect: square
- Used for regularisation data: No
## Inference
```python
import torch
from diffusers import DiffusionPipeline
from lycoris import create_lycoris_from_weights
model_id = 'stabilityai/stable-diffusion-3.5-large'
adapter_id = 'pytorch_lora_weights.safetensors' # you will have to download this manually
lora_scale = 1.0
wrapper, _ = create_lycoris_from_weights(lora_scale, adapter_id, pipeline.transformer)
wrapper.merge_to()
prompt = "A photo-realistic image of a cat"
negative_prompt = 'blurry, cropped, ugly'
pipeline.to('cuda' if torch.cuda.is_available() else 'mps' if torch.backends.mps.is_available() else 'cpu')
image = pipeline(
prompt=prompt,
negative_prompt=negative_prompt,
num_inference_steps=20,
generator=torch.Generator(device='cuda' if torch.cuda.is_available() else 'mps' if torch.backends.mps.is_available() else 'cpu').manual_seed(1641421826),
width=1024,
height=1024,
guidance_scale=5.0,
).images[0]
image.save("output.png", format="PNG")
```