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narugo1992
commited on
Commit
·
528f68e
1
Parent(s):
59c1c71
dev(narugo): add halfbody, ci skip
Browse files- app.py +25 -0
- halfbody.py +43 -0
app.py
CHANGED
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@@ -4,6 +4,7 @@ import gradio as gr
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from censor import _CENSOR_MODELS, _DEFAULT_CENSOR_MODEL, _gr_detect_censors
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from face import _FACE_MODELS, _DEFAULT_FACE_MODEL, _gr_detect_faces
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from hand import _gr_detect_hands, _HAND_MODELS, _DEFAULT_HAND_MODEL
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from head import _gr_detect_heads, _HEAD_MODELS, _DEFAULT_HEAD_MODEL
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from manbits import _MANBIT_MODELS, _DEFAULT_MANBIT_MODEL, _gr_detect_manbits
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@@ -84,6 +85,30 @@ if __name__ == '__main__':
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outputs=[gr_person_output_image],
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)
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with gr.Tab('Hand Detection'):
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with gr.Row():
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with gr.Column():
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from censor import _CENSOR_MODELS, _DEFAULT_CENSOR_MODEL, _gr_detect_censors
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from face import _FACE_MODELS, _DEFAULT_FACE_MODEL, _gr_detect_faces
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from halfbody import _HALFBODY_MODELS, _DEFAULT_HALFBODY_MODEL, _gr_detect_halfbodies
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from hand import _gr_detect_hands, _HAND_MODELS, _DEFAULT_HAND_MODEL
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from head import _gr_detect_heads, _HEAD_MODELS, _DEFAULT_HEAD_MODEL
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from manbits import _MANBIT_MODELS, _DEFAULT_MANBIT_MODEL, _gr_detect_manbits
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outputs=[gr_person_output_image],
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)
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with gr.Tab('Half Body Detection'):
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with gr.Row():
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with gr.Column():
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gr_halfbody_input_image = gr.Image(type='pil', label='Original Image')
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gr_halfbody_model = gr.Dropdown(_HALFBODY_MODELS, value=_DEFAULT_HALFBODY_MODEL, label='Model')
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gr_halfbody_infer_size = gr.Slider(480, 960, value=640, step=32, label='Max Infer Size')
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with gr.Row():
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gr_halfbody_iou_threshold = gr.Slider(0.0, 1.0, 0.7, label='IOU Threshold')
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gr_halfbody_score_threshold = gr.Slider(0.0, 1.0, 0.25, label='Score Threshold')
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gr_halfbody_submit = gr.Button(value='Submit', variant='primary')
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with gr.Column():
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gr_halfbody_output_image = gr.Image(type='pil', label="Labeled")
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gr_halfbody_submit.click(
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_gr_detect_halfbodies,
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inputs=[
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gr_halfbody_input_image, gr_halfbody_model,
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gr_halfbody_infer_size, gr_halfbody_score_threshold, gr_halfbody_iou_threshold,
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],
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outputs=[gr_halfbody_output_image],
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)
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with gr.Tab('Hand Detection'):
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with gr.Row():
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with gr.Column():
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halfbody.py
ADDED
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@@ -0,0 +1,43 @@
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from functools import lru_cache
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from typing import List, Tuple
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from huggingface_hub import hf_hub_download
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from imgutils.data import ImageTyping, load_image, rgb_encode
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from onnx_ import _open_onnx_model
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from plot import detection_visualize
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from yolo_ import _image_preprocess, _data_postprocess
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_HALFBODY_MODELS = [
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'halfbody_detect_v0.3_s',
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'halfbody_detect_v0.2_s',
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]
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_DEFAULT_HALFBODY_MODEL = _HALFBODY_MODELS[0]
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@lru_cache()
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def _open_halfbody_detect_model(model_name):
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return _open_onnx_model(hf_hub_download(
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f'deepghs/anime_halfbody_detection',
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f'{model_name}/model.onnx'
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))
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_LABELS = ['haldbody']
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def detect_halfbodies(image: ImageTyping, model_name: str, max_infer_size=640,
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conf_threshold: float = 0.25, iou_threshold: float = 0.5) \
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-> List[Tuple[Tuple[int, int, int, int], str, float]]:
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image = load_image(image, mode='RGB')
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new_image, old_size, new_size = _image_preprocess(image, max_infer_size)
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data = rgb_encode(new_image)[None, ...]
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output, = _open_halfbody_detect_model(model_name).run(['output0'], {'images': data})
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return _data_postprocess(output[0], conf_threshold, iou_threshold, old_size, new_size, _LABELS)
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def _gr_detect_halfbodies(image: ImageTyping, model_name: str, max_infer_size=640,
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conf_threshold: float = 0.25, iou_threshold: float = 0.5):
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ret = detect_halfbodies(image, model_name, max_infer_size, conf_threshold, iou_threshold)
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return detection_visualize(image, ret, _LABELS)
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