AnimeBoysXL
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AnimeAnime StyleBoyStyle Boost
2.0
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AnimeBoysXL
Features
- ✔️ Good for inference: AnimeBoysXL is a flexible model which is good at generating images of anime boys and males-only content in a wide range of styles.
- ✔️ Good for training: AnimeBoysXL is suitable for further training, thanks to its neutral style and ability to recognize a great deal of concepts. Feel free to train your own anime boy model/LoRA from AnimeBoysXL.
- ❌ AnimeBoysXL is not optimized for creating anime girls. Please consider using other models for that purpose.
Inference Guide
- Prompt: Use tag-based prompts to describe your subject.Tag ordering matters. It is highly recommended to structure your prompt with the following templates:1boy, male focus, character name, series name, anything else you'd like to describe2boys, male focus, multiple boys, character name(s), series name, anything else you'd like to describeAppend , best quality, amazing quality, best aesthetic, absurdres to the prompt to improve image quality.(Optional) Append , year YYYY to the prompt to shift the output toward the prevalent style of that year. YYYY is a 4 digit year, e.g. , year 2023For more detailed documentation, you can visit my article on Ko-fi (available to supporters only).
- Negative prompt: Choose from one of the following two presets.Heavy (recommended): lowres, (bad:1.05), text, error, missing, extra, fewer, cropped, jpeg artifacts, worst quality, bad quality, watermark, bad aesthetic, unfinished, chromatic aberration, scan, scan artifacts, 1girl, breastsLight: lowres, jpeg artifacts, worst quality, watermark, blurry, bad aesthetic, 1girl, breasts(Optional) Add , realistic, lips, nose to the negative prompt if you need a flat anime-like style face.
- VAE: Make sure you're using SDXL VAE.
- Sampling method, sampling steps and CFG scale: I find (Euler a, 28, 5) good. You are encouraged to experiment with other settings.
- Width and height: 832*1216 for portrait, 1024*1024 for square, and 1216*832 for landscape.
Training Details
AnimeBoysXL is trained from Stable Diffusion XL Base 1.0, on ~516k images.
The following tags are attached to the training data to make it easier to steer toward either more aesthetic or more flexible results.
Quality tags
- best quality: score >= 150
- amazing quality: score in the range of [100, 150)
- great quality: score in the range of [75, 100)
- normal quality: score in the range of [0, 75)
- bad quality: score in the range of (-5, 0)
- worst quality: score <= -5
Aesthetic tags
- best aesthetic: score >= 6.675
- great aesthetic: score in the range of [6.0, 6.675)
- normal aesthetic: score in the range of [5.0, 6.0)
- bad aesthetic: score < 5.0
Year tags
year YYYY where YYYY is in the range of [2005, 2023].
Training configurations
- Hardware: 4 * Nvidia A100 80GB GPUs
- Optimizer: AdaFactor
- Gradient accumulation steps: 8
- Batch size: 4 * 8 * 4 = 128
- Learning rates:8e-6 for U-Net5.2e-6 for text encoder 1 (CLIP ViT-L)4.8e-6 for text encoder 2 (OpenCLIP ViT-bigG)
Changes from v1.0
- Train with tag ordering.
- Add sfw rating tag.
- More epochs on the questionable and explicit rating subset.
- FP16 mixed-precision training for final epochs.
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