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    Anime Eye Detector (YOLOv8) - v1.0
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    Anime Eye Detector (YOLOv8)

    Also available on Hugging Face🤗: https://huggingface.co/killjoyelite/anime-eye-yolov8

    A YOLOv8 object detection model fine-tuned to detect eyes in anime-style character art, intended for use with ComfyUI + Impact Pack for automated eye detailing/inpainting workflows (similar to how face_yolov8n.pt and hand_yolov8n.pt are used).

    Model details

    • Base model: yolov8n.pt/yolov8s.pt (Ultralytics)

    • Task: Object detection, single class (eye)

    • Training data: 212 self-generated anime-style images (AI-generated, primarily female characters), manually labeled with bounding boxes around each visible eye

    • Training config: 100 epochs, image size 640, batch size 8

    Performance (on validation split)

    Known limitations

    • Trained predominantly on female anime characters — detection on male character eyes is less reliable and may miss detections.

    • Struggles with very large, cartoony/chibi-style eyes that deviate significantly from standard anime proportions or sometimes closeup of faces (WIP).

    • Trained entirely on a single generation style/checkpoint's output — may generalize less well to very different art styles (e.g. heavily stylized, painterly, or non-anime art) than to mainstream anime/semi-realistic anime styles.

    • Small dataset (212 images) — while validation metrics are strong, real-world robustness across the full diversity of anime art is inherently more limited than a larger, more varied dataset would provide.

    If you find specific failure cases, feel free to open a discussion — this is a good candidate for community-driven dataset expansion over time.

    Examples

    Detection preview — the model correctly finds eyes across different poses/styles:

    Eye color change/Eye fixing — using the detected eye region with Detailer (SEGS) to redraw eye color/detail from a prompt, while keeping the rest of the image untouched:

    Usage (ComfyUI)

    1. Download the model file — Civitai renames files automatically (e.g. animeEyeDetector_v10.pt, animeEyeDetector_v11Small.pt).

    2. Place it in:

      ComfyUI/models/ultralytics/bbox/
      
    3. Restart ComfyUI.

    4. In your workflow:

      Load Image → UltralyticsDetectorProvider (select the eye detector model) → BboxDetectorSEGS → Detailer (SEGS)
      
    5. Recommended Detailer (SEGS) starting settings for eye detailing:

      • guide_size: 512

      • denoise: 0.5–0.7 (lower = closer to the original eye, higher = more prompt-driven reinterpretation)

      • feather: 5–10

    License

    Released under the MIT License. Training images were self-generated by the author; users should independently verify licensing terms of any base checkpoint used to generate their own training/inference images if that matters for their use case.

    Description

    v1.0 - Initial release. Trained on 212 self-generated anime images (Hassaku XL/Illustrious), 100 epochs, YOLOv8n base. mAP50: 0.995, mAP50-95: 0.681. Known limitations: less reliable on male characters and very large/chibi-style eyes — see model description for details.

    Comments (1)

    mailsacSep 15, 2026
    CivitAI

    thank you for this brother definitly try it and use it

    Other
    Other

    Details

    Downloads
    40
    Platform
    CivitAI
    Platform Status
    Available
    Created
    9/7/2026
    Updated
    9/19/2026
    Deleted
    -

    Files

    animeEyeDetector_v10.pt

    Mirrors

    HuggingFace (2 mirrors)
    CivitAI (1 mirrors)