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@alphonse mucha

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bf16 SafeTensor

@alphonse_mucha_v0_0_0_epoch_10.safetensors

BF16, good balance • 66.18 MB

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Type
LoRA
Stats

123

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Reviews
Published

Jul 29, 2026

Base Model

Anima

Training
Steps: 2,000
Epochs: 10
Usage Tips
Strength: 1
Hash
AutoV2
3FE9E34743
Trigger Words
@alphonse mucha
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Followers - 405

405

Likes - 2633

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License:

Anima

The Anima Model is licensed by CircleStone Labs LLC. Copyright CircleStone Labs LLC. IN NO EVENT SHALL CIRCLESTONE LABS LLC BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH USE OF THIS MODEL.

Built on NVIDIA Cosmos

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@alphonse mucha

First of all, I want to clarify that one of the main purposes of training this LoRA was to automate the captioning process through vibe coding.

There are 171 Alphonse Mucha artworks registered on WikiArt, and this LoRA was trained on all of them randomly. The dataset includes not only Mucha's famous Art Nouveau decorative style, but also other types of works such as self-portraits, sculptures, and oil paintings. Therefore, this LoRA is also intended to generate those less commonly associated aspects of Mucha's work.

For tagging, I used "SmilingWolf/wd-eva02-large-tagger-v3", and for natural language captioning, I used "qwen2.5-vl-7b-instruct-heretic-i1". I combined the outputs of both systems into a single TXT caption file. However, I am not fully satisfied with the accuracy of either method.

The former, in particular, frequently produces incorrect tags, such as miscounting the number of people or hallucinating objects that do not exist in the artwork (for example, tagging "mask" when there is no mask, "weapon" when there is no weapon, "deer" when there is no deer, etc.).

Despite these imperfect captions and inaccurate tags, Krea 2 is still able to generate reasonably good results. Even with such a rough captioning process, the model performs surprisingly well.

However, the recognizable "Art Nouveau decorative elements" tend to appear quite strongly, and those decorations are often generated in circular or ring-like patterns.