Update
Browse files- .pre-commit-config.yaml +4 -13
- README.md +4 -1
- app.py +57 -95
- model.py +8 -6
- requirements.txt +1 -1
.pre-commit-config.yaml
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exclude: ^
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repos:
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- repo: https://github.com/pre-commit/pre-commit-hooks
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rev: v4.2.0
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- id: docformatter
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args: ['--in-place']
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- repo: https://github.com/pycqa/isort
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rev: 5.
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hooks:
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- id: isort
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- repo: https://github.com/pre-commit/mirrors-mypy
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rev: v0.
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hooks:
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- id: mypy
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args: ['--ignore-missing-imports']
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- repo: https://github.com/google/yapf
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rev: v0.32.0
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hooks:
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- id: yapf
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args: ['--parallel', '--in-place']
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- repo: https://github.com/kynan/nbstripout
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rev: 0.5.0
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hooks:
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- id: nbstripout
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args: ['--extra-keys', 'metadata.interpreter metadata.kernelspec cell.metadata.pycharm']
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- repo: https://github.com/nbQA-dev/nbQA
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rev: 1.3.1
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hooks:
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- id: nbqa-isort
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- id: nbqa-yapf
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exclude: ^patch
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repos:
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- repo: https://github.com/pre-commit/pre-commit-hooks
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rev: v4.2.0
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- id: docformatter
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args: ['--in-place']
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- repo: https://github.com/pycqa/isort
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rev: 5.12.0
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hooks:
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- id: isort
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- repo: https://github.com/pre-commit/mirrors-mypy
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rev: v0.991
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hooks:
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- id: mypy
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args: ['--ignore-missing-imports']
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additional_dependencies: ['types-python-slugify']
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- repo: https://github.com/google/yapf
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rev: v0.32.0
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hooks:
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- id: yapf
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args: ['--parallel', '--in-place']
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README.md
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colorFrom: gray
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colorTo: green
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sdk: gradio
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sdk_version: 3.
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app_file: app.py
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pinned: false
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---
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Check out the configuration reference at https://huggingface.co/docs/hub/spaces#reference
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colorFrom: gray
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colorTo: green
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sdk: gradio
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sdk_version: 3.35.2
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app_file: app.py
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pinned: false
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suggested_hardware: t4-small
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---
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Check out the configuration reference at https://huggingface.co/docs/hub/spaces#reference
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https://arxiv.org/abs/2107.00420
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app.py
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from __future__ import annotations
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import argparse
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import pathlib
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import gradio as gr
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from model import Model
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DESCRIPTION = '
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samples=[[path.as_posix()]
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for path in paths])
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gr.Markdown(FOOTER)
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detector_name.change(fn=model.set_model_name,
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inputs=[detector_name],
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outputs=None)
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detect_button.click(fn=model.detect_and_visualize,
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inputs=[
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input_image,
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visualization_score_threshold,
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],
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outputs=[
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detection_results,
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detection_visualization,
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])
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redraw_button.click(fn=model.visualize_detection_results,
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inputs=[
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input_image,
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detection_results,
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visualization_score_threshold,
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],
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outputs=[detection_visualization])
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example_images.click(fn=set_example_image,
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inputs=[example_images],
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outputs=[input_image])
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demo.launch(
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enable_queue=args.enable_queue,
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server_port=args.port,
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share=args.share,
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)
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if __name__ == '__main__':
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main()
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from __future__ import annotations
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import pathlib
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import gradio as gr
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from model import Model
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DESCRIPTION = '# [CBNetV2](https://github.com/VDIGPKU/CBNetV2)'
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model = Model()
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with gr.Blocks(css='style.css') as demo:
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gr.Markdown(DESCRIPTION)
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with gr.Row():
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with gr.Column():
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with gr.Row():
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input_image = gr.Image(label='Input Image', type='numpy')
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with gr.Row():
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detector_name = gr.Dropdown(label='Detector',
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choices=list(model.models.keys()),
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value=model.model_name)
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with gr.Row():
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detect_button = gr.Button('Detect')
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detection_results = gr.Variable()
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with gr.Column():
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with gr.Row():
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detection_visualization = gr.Image(label='Detection Result',
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type='numpy')
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with gr.Row():
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visualization_score_threshold = gr.Slider(
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label='Visualization Score Threshold',
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minimum=0,
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maximum=1,
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step=0.05,
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value=0.3)
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with gr.Row():
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redraw_button = gr.Button('Redraw')
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with gr.Row():
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paths = sorted(pathlib.Path('images').rglob('*.jpg'))
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gr.Examples(examples=[[path.as_posix()] for path in paths],
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inputs=input_image)
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detector_name.change(fn=model.set_model_name,
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inputs=[detector_name],
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outputs=None)
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detect_button.click(fn=model.detect_and_visualize,
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inputs=[
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input_image,
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visualization_score_threshold,
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],
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outputs=[
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detection_results,
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detection_visualization,
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])
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redraw_button.click(fn=model.visualize_detection_results,
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inputs=[
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input_image,
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detection_results,
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visualization_score_threshold,
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],
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outputs=[detection_visualization])
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demo.queue(max_size=10).launch()
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model.py
CHANGED
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import os
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import pathlib
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import subprocess
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import sys
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mim.uninstall('mmcv-full', confirm_yes=True)
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mim.install('mmcv-full==1.5.0', is_yes=True)
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subprocess.run('pip uninstall -y opencv-python'
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subprocess.run('pip uninstall -y opencv-python-headless'
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subprocess.run('pip install opencv-python-headless==4.
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with open('patch') as f:
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subprocess.run('patch -p1'
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subprocess.run('mv palette.py CBNetV2/mmdet/core/visualization/'.split())
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import numpy as np
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class Model:
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def __init__(self
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self.device = torch.device(
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self.models = self._load_models()
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self.model_name = 'Improved HTC (DB-Swin-B)'
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import os
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import pathlib
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import shlex
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import subprocess
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import sys
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mim.uninstall('mmcv-full', confirm_yes=True)
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mim.install('mmcv-full==1.5.0', is_yes=True)
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subprocess.run(shlex.split('pip uninstall -y opencv-python'))
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subprocess.run(shlex.split('pip uninstall -y opencv-python-headless'))
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subprocess.run(shlex.split('pip install opencv-python-headless==4.8.0.74'))
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with open('patch') as f:
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subprocess.run(shlex.split('patch -p1'), cwd='CBNetV2', stdin=f)
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subprocess.run('mv palette.py CBNetV2/mmdet/core/visualization/'.split())
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import numpy as np
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class Model:
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def __init__(self):
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self.device = torch.device(
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'cuda:0' if torch.cuda.is_available() else 'cpu')
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self.models = self._load_models()
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self.model_name = 'Improved HTC (DB-Swin-B)'
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requirements.txt
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mmcv-full==1.5.0
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mmdet==2.24.1
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numpy==1.22.4
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opencv-python-headless==4.
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openmim==0.1.5
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timm==0.5.4
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torch==1.11.0
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mmcv-full==1.5.0
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mmdet==2.24.1
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numpy==1.22.4
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opencv-python-headless==4.8.0.74
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openmim==0.1.5
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timm==0.5.4
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torch==1.11.0
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