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RicemanT/Anima-Telescopa
Anima-Telescopa is a text-to-image model from RicemanT. Use it when you need an image from a text prompt. The card lists the license as other.
ALL PREVIEW IMAGES HAVE COMFYUI METADATA. <p align="center" <img src="https://huggingface.co/RicemanT/Anima-Telescopa/resolve/main/images/hero.png" width="80%" / </p
Downloads · 30 days
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Updated Aug 9, 2026
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.safetensors5.9 GB · 100%
From the Hugging Face model README
ALL PREVIEW IMAGES HAVE COMFYUI METADATA.
<p align="center"> <img src="https://huggingface.co/RicemanT/Anima-Telescopa/resolve/main/images/hero.png" width="80%" /> </p> <table> <tr> <td width="25%"><img src="https://huggingface.co/RicemanT/Anima-Telescopa/resolve/main/images/sample1.png" width="100%"/></td> <td width="25%"><img src="https://huggingface.co/RicemanT/Anima-Telescopa/resolve/main/images/sample2.png" width="100%"/></td> <td width="25%"><img src="https://huggingface.co/RicemanT/Anima-Telescopa/resolve/main/images/sample3.png" width="100%"/></td> <td width="25%"><img src="https://huggingface.co/RicemanT/Anima-Telescopa/resolve/main/images/sample4.png" width="100%"/></td> </tr> <tr> <td width="25%"><img src="https://huggingface.co/RicemanT/Anima-Telescopa/resolve/main/images/sample5.png" width="100%"/></td> <td width="25%"><img src="https://huggingface.co/RicemanT/Anima-Telescopa/resolve/main/images/sample6.png" width="100%"/></td> <td width="25%"><img src="https://huggingface.co/RicemanT/Anima-Telescopa/resolve/main/images/sample7.png" width="100%"/></td> <td width="25%"><img src="https://huggingface.co/RicemanT/Anima-Telescopa/resolve/main/images/sample8.png" width="100%"/></td> </tr> </table>A full matrix LoKr of Anima Base v1.0 by CircleStone Labs, trained using the LyCoRIS full matrix LoKr method (paper).
This was my first attempt at fine-tuning an image model on a dataset above 10k samples. Alongside general practice, the run was also used to:
Compared to other Anima fine-tunes such as Tdrussel's Aes B, Motimalu's KirazuriV4, duongve's AnimaYume, and the Silvermoon mixes, Telescopa is perhaps a lil worse on fine detail, stability, and knowledge/style retention — but it shows slightly stronger background composition and detail than the base model and most contemporaries. For a first larger-scale training run, I'm happy with the result.
This model is produced independently, as a hobbyist project, with no external funding. This repo contain 3 model variant, the ideal epoch 10 LoKR, a earlier and more unstable epoch 3 that also doesnt have as much style bias or potential knowledge forgetting, and a failed epoch 10 full finetune.
| Base model | circlestone-labs/Anima (v1.0) |
| Method | Full Matrix LoKr (LyCoRIS) |
| Trainer | Bluvoll diffusion-pipe fork (originally by Anima's creator, Tdrussel) |
| Hardware | 2x NVIDIA RTX A4000 16GB, courtesy of Astromahdi's gpu.garden |
| Total training time | ~3 days (~68 hours) |
| Total samples seen (unbatched steps) | ~100,000 |
| Training resolutions | 1024², 1280² |
Full config: TelescopaLOKR.toml
These are the settings used for the sample images above (ComfyUI, ModelSamplingAuraFlow node):
er_sdeThese are just my usual settings — feel free to experiment and really go buck wild with it, 'euler a' at same steps and sa_solver_pece at a lower 15–20 steps also recommended.
Sourced from Danbooru (curated by artist background quality) and Akanyan's personal anime screencap collection scattered throughout his reddit account. Dataset tooling lives in the utils folder of the training repo.
Curation: ~43k Danbooru images plus ~7-8k screencaps (50k+ raw) were hand-reviewed for background quality — about two weeks of manual review, landing on a final 10,143-image dataset.
Processing: PNGs converted to lossless WebP, resolutions capped at 2000px (cv2 INTER_AREA), deduplicated, and filtered for unusual aspect ratios. A YOLO → IOPaint watermark/logo removal pass was planned but skipped due to time constraints and unreliable open-source detection models.
Tagging: convnextv2_huge.dbv4-full by animetimm/DeepGHS, run on a free Colab T4.
Captioning: Qwen 3.6 27B FP8 via VLLM on an H100 (~3h for ~9k images, non-thinking mode), with the remaining ~1k finished on Qwen 3.6 27B Q6_K via llama.cpp on 2x A4000. Captioning system prompt.
A full finetune run with matching settings was also attempted on 4x A4000, finishing in 1.5 days. Training was stable, but the resulting model lost a significant amount of character and artist-style knowledge, making it uncompetitive as an Anima tune — likely because a learning rate of 3e-6 was still too high for full finetuning at the batch size available. That config is included in the training repo for reference. Model file is included here.
Full training diary (unedited, written without LLM assistance) (yes I used Claude to help partially write this model page because lazy, sorry lol): TelescopaLOKR-diary.md
This model is a Derivative of Anima and is distributed under the same CircleStone Labs Non-Commercial License v1.1 as the base model, with no additional restrictions. Non-commercial use only — see the license for full terms.
Beeg thanks to: