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nudenet3.4.2

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Lightweight Nudity Detection

pip install nudenet

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Requires Python

>=3.6.0

Looking for contributors/ maintainers for this repo: I have become busy with other stuff in the last years, still trying to maintain this repo as it is the current best OSS option for nudity detection, Looking for interested mainttainer, who can add/ work on more features for this repo (with my help of course)

NudeNet: lightweight Nudity detection

https://nudenet.notai.tech/ in-browser demo (the detector is run client side, i.e: in your browser, images are not sent to a server)

pip install --upgrade "nudenet>=3.4.2"
from nudenet import NudeDetector
detector = NudeDetector()
# the 320n model included with the package will be used

detector.detect('image.jpg') # Returns list of detections

detector.detect_batch(['image_1.jpg', 'image_2.jpg']) # Returns list of [list of detections]
  • Python package example in colab

  • detect and detect_batch accept file path(s), opencv image(s), image bytes(s), open(image_path, 'rb') (buffereader) objects

Available models

Modelresolution trainedbased ononnx linkpytorch link
320n320x320ultralytics yolov8nlinklink
640m640x640ultralytics yolov8mlinklink
# To use the 640m model, download the onnx file and pass the path to the model_path argument

detector = NudeDetector(model_path="downloaded_640m.onnx path", inference_resolution=640)
  • 320n is the default model and is included in the nudenet python package by default
detection_example = [
 {'class': 'BELLY_EXPOSED',
  'score': 0.799403190612793,
  'box': [64, 182, 49, 51]},
 {'class': 'FACE_FEMALE',
  'score': 0.7881264686584473,
  'box': [82, 66, 36, 43]},
 ]
nude_detector.censor('image.jpg') # returns censored image output path

# optional censor(self, image_path, classes=[], output_path=None) classes and output_path can be passed
all_labels = [
    "FEMALE_GENITALIA_COVERED",
    "FACE_FEMALE",
    "BUTTOCKS_EXPOSED",
    "FEMALE_BREAST_EXPOSED",
    "FEMALE_GENITALIA_EXPOSED",
    "MALE_BREAST_EXPOSED",
    "ANUS_EXPOSED",
    "FEET_EXPOSED",
    "BELLY_COVERED",
    "FEET_COVERED",
    "ARMPITS_COVERED",
    "ARMPITS_EXPOSED",
    "FACE_MALE",
    "BELLY_EXPOSED",
    "MALE_GENITALIA_EXPOSED",
    "ANUS_COVERED",
    "FEMALE_BREAST_COVERED",
    "BUTTOCKS_COVERED",
]

Docker

docker run -it -p8080:8080 ghcr.io/notai-tech/nudenet:latest
curl -F f1=@"images.jpeg" "http://localhost:8080/infer"

{"prediction": [[{"class": "BELLY_EXPOSED", "score": 0.8511635065078735, "box": [71, 182, 31, 50]}, {"class": "FACE_FEMALE", "score": 0.8033977150917053, "box": [83, 69, 21, 37]}, {"class": "FEMALE_BREAST_EXPOSED", "score": 0.7963727712631226, "box": [85, 137, 24, 38]}, {"class": "FEMALE_BREAST_EXPOSED", "score": 0.7709134817123413, "box": [63, 136, 20, 37]}, {"class": "ARMPITS_EXPOSED", "score": 0.7005534172058105, "box": [60, 127, 10, 20]}, {"class": "FEMALE_GENITALIA_EXPOSED", "score": 0.6804671287536621, "box": [81, 241, 14, 24]}]], "success": true}⏎

Some interesting projects based on NudeNet

1 - by https://github.com/w-e-w, censor extension ps://github.com/notAI-tech/NudeNet/issues/131