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    Anime Eye Detector (YOLOv8) - v2.0
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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 / YOLOv8s (Ultralytics)

    • Task: Object detection, single class (eye)

    • Training data: 286 self-generated anime and semi-realistic 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

    • Detection on male character eyes is improved as of v2.0 but still less reliable than on female characters.

    • Trained on anime and semi-realistic style images — also tested well on realistic styles, though not extensively validated across every art style.

    • Dataset size (286 images as of v2.0) — strong validation metrics, but a larger dataset would improve robustness further.

    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)

    Easiest method: Search "eye" in ComfyUI-Manager's Install Models menu and install directly — no manual download needed.

    Manual method:

    1. Download the model file — Civitai renames files automatically (e.g. animeEyeDetector_v20.pt)

    2. (Optional) Rename it to something clear, like eye_yolov8n.pt or eye_yolov8s.pt depending on which size you downloaded — this just determines what shows up in the dropdown menu, doesn't affect how it works.

    3. Place it in:

      ComfyUI/models/ultralytics/bbox/
      
    4. Restart ComfyUI.

    5. In your workflow:

      Load Image → UltralyticsDetectorProvider (select the eye detector model) → BboxDetectorSEGS → Detailer (SEGS)
      
    6. 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

    v2.0 - Retrained on an expanded dataset (286 images, up from 212), specifically targeting known weak spots. Updated both Nano and Small models.

    Fixes:
    - Close-up/face-only shots (previously failed to detect entirely)
    - Chibi-style and large cartoony eyes
    - 2D/flat anime art styles

    Improvements:

    - Higher detection confidence across the board, even on previously working cases
    - Better handling of unusual/extreme eye angles and zoomed-in crops

    Notes:
    - Small model performs best on extreme/wild cases and unusual eye styles
    - Nano model slightly outperforms Small on very tiny or oddly-shaped eyes
    - Both models still improving on male character detection — not fully solved, but noticeably better than v1

    FAQ

    Other
    Other

    Details

    Downloads
    22
    Platform
    CivitAI
    Platform Status
    Available
    Created
    9/27/2026
    Updated
    9/28/2026
    Deleted
    -

    Files

    animeEyeDetector_v20_3251817.pt

    Mirrors

    HuggingFace (1 mirrors)

    animeEyeDetector_v20_3251821.pt

    Mirrors

    HuggingFace (1 mirrors)