Standardize headers and docstrings (#4417)
* Implement new headers * Reformat 1 * Reformat 2 * Reformat 3 - math * Reformat 4 - yaml
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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name: CI CPU testing
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on: # https://help.github.com/en/actions/reference/events-that-trigger-workflows
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push:
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branches: [ master, develop ]
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branches: [master, develop]
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pull_request:
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# The branches below must be a subset of the branches above
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branches: [ master, develop ]
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branches: [master, develop]
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jobs:
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cpu-tests:
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@ -14,9 +16,9 @@ jobs:
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strategy:
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fail-fast: false
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matrix:
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os: [ ubuntu-latest, macos-latest, windows-latest ]
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python-version: [ 3.8 ]
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model: [ 'yolov5s' ] # models to test
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os: [ubuntu-latest, macos-latest, windows-latest]
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python-version: [3.8]
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model: ['yolov5s'] # models to test
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# Timeout: https://stackoverflow.com/a/59076067/4521646
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timeout-minutes: 50
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strategy:
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fail-fast: false
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matrix:
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language: [ 'python' ]
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language: ['python']
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# CodeQL supports [ 'cpp', 'csharp', 'go', 'java', 'javascript', 'python' ]
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# Learn more:
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# https://docs.github.com/en/free-pro-team@latest/github/finding-security-vulnerabilities-and-errors-in-your-code/configuring-code-scanning#changing-the-languages-that-are-analyzed
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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name: Greetings
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on: [ pull_request_target, issues ]
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on: [pull_request_target, issues]
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jobs:
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greeting:
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@ -3,7 +3,7 @@ name: Automatic Rebase
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on:
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issue_comment:
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types: [ created ]
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types: [created]
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jobs:
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rebase:
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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name: Close stale issues
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on:
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schedule:
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Start FROM Nvidia PyTorch image https://ngc.nvidia.com/catalog/containers/nvidia:pytorch
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FROM nvcr.io/nvidia/pytorch:21.05-py3
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# YOLOv5 🚀 by Ultralytics https://ultralytics.com, licensed under GNU GPL v3.0
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Argoverse-HD dataset (ring-front-center camera) http://www.cs.cmu.edu/~mengtial/proj/streaming/
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# Example usage: python train.py --data Argoverse.yaml
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# parent
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# YOLOv5 🚀 by Ultralytics https://ultralytics.com, licensed under GNU GPL v3.0
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Global Wheat 2020 dataset http://www.global-wheat.com/
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# Example usage: python train.py --data GlobalWheat2020.yaml
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# parent
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# YOLOv5 🚀 by Ultralytics https://ultralytics.com, licensed under GNU GPL v3.0
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Objects365 dataset https://www.objects365.org/
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# Example usage: python train.py --data Objects365.yaml
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# parent
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# YOLOv5 🚀 by Ultralytics https://ultralytics.com, licensed under GNU GPL v3.0
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# SKU-110K retail items dataset https://github.com/eg4000/SKU110K_CVPR19
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# Example usage: python train.py --data SKU-110K.yaml
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# parent
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# YOLOv5 🚀 by Ultralytics https://ultralytics.com, licensed under GNU GPL v3.0
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# PASCAL VOC dataset http://host.robots.ox.ac.uk/pascal/VOC
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# Example usage: python train.py --data VOC.yaml
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# parent
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# YOLOv5 🚀 by Ultralytics https://ultralytics.com, licensed under GNU GPL v3.0
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# VisDrone2019-DET dataset https://github.com/VisDrone/VisDrone-Dataset
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# Example usage: python train.py --data VisDrone.yaml
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# parent
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# YOLOv5 🚀 by Ultralytics https://ultralytics.com, licensed under GNU GPL v3.0
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# COCO 2017 dataset http://cocodataset.org
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# Example usage: python train.py --data coco.yaml
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# parent
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# YOLOv5 🚀 by Ultralytics https://ultralytics.com, licensed under GNU GPL v3.0
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# COCO128 dataset https://www.kaggle.com/ultralytics/coco128 (first 128 images from COCO train2017)
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# Example usage: python train.py --data coco128.yaml
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# parent
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Hyperparameters for VOC finetuning
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# python train.py --batch 64 --weights yolov5m.pt --data VOC.yaml --img 512 --epochs 50
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# See tutorials for hyperparameter evolution https://github.com/ultralytics/yolov5#tutorials
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# Hyperparameter Evolution Results
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# Generations: 306
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# P R mAP.5 mAP.5:.95 box obj cls
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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lr0: 0.00258
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lrf: 0.17
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momentum: 0.779
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Hyperparameters for COCO training from scratch
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# python train.py --batch 32 --cfg yolov5m6.yaml --weights '' --data coco.yaml --img 1280 --epochs 300
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# See tutorials for hyperparameter evolution https://github.com/ultralytics/yolov5#tutorials
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lr0: 0.01 # initial learning rate (SGD=1E-2, Adam=1E-3)
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lrf: 0.2 # final OneCycleLR learning rate (lr0 * lrf)
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momentum: 0.937 # SGD momentum/Adam beta1
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Hyperparameters for COCO training from scratch
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# python train.py --batch 40 --cfg yolov5m.yaml --weights '' --data coco.yaml --img 640 --epochs 300
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# See tutorials for hyperparameter evolution https://github.com/ultralytics/yolov5#tutorials
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lr0: 0.01 # initial learning rate (SGD=1E-2, Adam=1E-3)
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lrf: 0.2 # final OneCycleLR learning rate (lr0 * lrf)
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momentum: 0.937 # SGD momentum/Adam beta1
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#!/bin/bash
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# YOLOv5 🚀 by Ultralytics https://ultralytics.com, licensed under GNU GPL v3.0
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Download latest models from https://github.com/ultralytics/yolov5/releases
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# Example usage: bash path/to/download_weights.sh
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# parent
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#!/bin/bash
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# YOLOv5 🚀 by Ultralytics https://ultralytics.com, licensed under GNU GPL v3.0
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Download COCO 2017 dataset http://cocodataset.org
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# Example usage: bash data/scripts/get_coco.sh
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# parent
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#!/bin/bash
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# YOLOv5 🚀 by Ultralytics https://ultralytics.com, licensed under GNU GPL v3.0
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Download COCO128 dataset https://www.kaggle.com/ultralytics/coco128 (first 128 images from COCO train2017)
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# Example usage: bash data/scripts/get_coco128.sh
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# parent
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# YOLOv5 🚀 by Ultralytics https://ultralytics.com, licensed under GNU GPL v3.0
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# xView 2018 dataset https://challenge.xviewdataset.org
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# -------- DOWNLOAD DATA MANUALLY from URL above and unzip to 'datasets/xView' before running train command! --------
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# Example usage: python train.py --data xView.yaml
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"""Run inference with a YOLOv5 model on images, videos, directories, streams
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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"""
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Run inference on images, videos, directories, streams, etc.
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Usage:
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$ python path/to/detect.py --source path/to/img.jpg --weights yolov5s.pt --img 640
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"""Export a YOLOv5 *.pt model to TorchScript, ONNX, CoreML formats
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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"""
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Export a PyTorch model to TorchScript, ONNX, CoreML formats
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Usage:
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$ python path/to/export.py --weights yolov5s.pt --img 640 --batch 1
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"""YOLOv5 PyTorch Hub models https://pytorch.org/hub/ultralytics_yolov5/
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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"""
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PyTorch Hub models https://pytorch.org/hub/ultralytics_yolov5/
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Usage:
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import torch
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# YOLOv5 common modules
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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"""
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Common modules
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"""
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import logging
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import math
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import warnings
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from copy import copy
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from pathlib import Path
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import math
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import numpy as np
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import pandas as pd
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import requests
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# YOLOv5 experimental modules
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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"""
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Experimental modules
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"""
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import numpy as np
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import torch
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import torch.nn as nn
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from models.common import Conv, DWConv
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from models.common import Conv
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from utils.downloads import attempt_download
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# Default YOLOv5 anchors for COCO data
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Default anchors for COCO data
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# P5 -------------------------------------------------------------------------------------------------------------------
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 1.0 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 1.0 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 1.0 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 1.0 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 1.0 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 1.0 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 1.0 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 1.0 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 1.0 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 1.0 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 0.67 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 0.33 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 0.33 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 0.33 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 1.33 # model depth multiple
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"""YOLOv5-specific modules
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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"""
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YOLO-specific modules
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Usage:
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$ python path/to/models/yolo.py --cfg yolov5s.yaml
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 1.0 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 0.67 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 0.33 # model depth multiple
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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# Parameters
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nc: 80 # number of classes
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depth_multiple: 1.33 # model depth multiple
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6
train.py
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train.py
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"""Train a YOLOv5 model on a custom dataset
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# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
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"""
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Train a YOLOv5 model on a custom dataset
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Usage:
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$ python path/to/train.py --data coco128.yaml --weights yolov5s.pt --img 640
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@ -6,6 +8,7 @@ Usage:
|
|||
|
||||
import argparse
|
||||
import logging
|
||||
import math
|
||||
import os
|
||||
import random
|
||||
import sys
|
||||
|
|
@ -13,7 +16,6 @@ import time
|
|||
from copy import deepcopy
|
||||
from pathlib import Path
|
||||
|
||||
import math
|
||||
import numpy as np
|
||||
import torch
|
||||
import torch.distributed as dist
|
||||
|
|
|
|||
|
|
@ -1,4 +1,7 @@
|
|||
# Activation functions
|
||||
# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
|
||||
"""
|
||||
Activation functions
|
||||
"""
|
||||
|
||||
import torch
|
||||
import torch.nn as nn
|
||||
|
|
|
|||
|
|
@ -1,10 +1,13 @@
|
|||
# YOLOv5 image augmentation functions
|
||||
# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
|
||||
"""
|
||||
Image augmentation functions
|
||||
"""
|
||||
|
||||
import logging
|
||||
import math
|
||||
import random
|
||||
|
||||
import cv2
|
||||
import math
|
||||
import numpy as np
|
||||
|
||||
from utils.general import colorstr, segment2box, resample_segments, check_version
|
||||
|
|
|
|||
|
|
@ -1,4 +1,7 @@
|
|||
# Auto-anchor utils
|
||||
# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
|
||||
"""
|
||||
Auto-anchor utils
|
||||
"""
|
||||
|
||||
import random
|
||||
|
||||
|
|
|
|||
|
|
@ -1,4 +1,8 @@
|
|||
#!/usr/bin/env python
|
||||
# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
|
||||
"""
|
||||
Callback utils
|
||||
"""
|
||||
|
||||
|
||||
class Callbacks:
|
||||
""""
|
||||
|
|
|
|||
|
|
@ -1,4 +1,7 @@
|
|||
# YOLOv5 dataset utils and dataloaders
|
||||
# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
|
||||
"""
|
||||
Dataloaders and dataset utils
|
||||
"""
|
||||
|
||||
import glob
|
||||
import hashlib
|
||||
|
|
|
|||
|
|
@ -1,4 +1,7 @@
|
|||
# Download utils
|
||||
# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
|
||||
"""
|
||||
Download utils
|
||||
"""
|
||||
|
||||
import os
|
||||
import platform
|
||||
|
|
|
|||
|
|
@ -1,9 +1,13 @@
|
|||
# Flask REST API
|
||||
[REST](https://en.wikipedia.org/wiki/Representational_state_transfer) [API](https://en.wikipedia.org/wiki/API)s are commonly used to expose Machine Learning (ML) models to other services. This folder contains an example REST API created using Flask to expose the YOLOv5s model from [PyTorch Hub](https://pytorch.org/hub/ultralytics_yolov5/).
|
||||
|
||||
[REST](https://en.wikipedia.org/wiki/Representational_state_transfer) [API](https://en.wikipedia.org/wiki/API)s are
|
||||
commonly used to expose Machine Learning (ML) models to other services. This folder contains an example REST API
|
||||
created using Flask to expose the YOLOv5s model from [PyTorch Hub](https://pytorch.org/hub/ultralytics_yolov5/).
|
||||
|
||||
## Requirements
|
||||
|
||||
[Flask](https://palletsprojects.com/p/flask/) is required. Install with:
|
||||
|
||||
```shell
|
||||
$ pip install Flask
|
||||
```
|
||||
|
|
@ -65,4 +69,5 @@ The model inference results are returned as a JSON response:
|
|||
]
|
||||
```
|
||||
|
||||
An example python script to perform inference using [requests](https://docs.python-requests.org/en/master/) is given in `example_request.py`
|
||||
An example python script to perform inference using [requests](https://docs.python-requests.org/en/master/) is given
|
||||
in `example_request.py`
|
||||
|
|
|
|||
|
|
@ -1,8 +1,12 @@
|
|||
# YOLOv5 general utils
|
||||
# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
|
||||
"""
|
||||
General utils
|
||||
"""
|
||||
|
||||
import contextlib
|
||||
import glob
|
||||
import logging
|
||||
import math
|
||||
import os
|
||||
import platform
|
||||
import random
|
||||
|
|
@ -16,7 +20,6 @@ from pathlib import Path
|
|||
from subprocess import check_output
|
||||
|
||||
import cv2
|
||||
import math
|
||||
import numpy as np
|
||||
import pandas as pd
|
||||
import pkg_resources as pkg
|
||||
|
|
|
|||
|
|
@ -1,4 +1,8 @@
|
|||
# YOLOv5 experiment logging utils
|
||||
# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
|
||||
"""
|
||||
Logging utils
|
||||
"""
|
||||
|
||||
import warnings
|
||||
from threading import Thread
|
||||
|
||||
|
|
|
|||
|
|
@ -1,4 +1,7 @@
|
|||
# Loss functions
|
||||
# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
|
||||
"""
|
||||
Loss functions
|
||||
"""
|
||||
|
||||
import torch
|
||||
import torch.nn as nn
|
||||
|
|
|
|||
|
|
@ -1,9 +1,12 @@
|
|||
# Model validation metrics
|
||||
# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
|
||||
"""
|
||||
Model validation metrics
|
||||
"""
|
||||
|
||||
import math
|
||||
import warnings
|
||||
from pathlib import Path
|
||||
|
||||
import math
|
||||
import matplotlib.pyplot as plt
|
||||
import numpy as np
|
||||
import torch
|
||||
|
|
|
|||
|
|
@ -1,4 +1,7 @@
|
|||
# Plotting utils
|
||||
# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
|
||||
"""
|
||||
Plotting utils
|
||||
"""
|
||||
|
||||
import math
|
||||
from copy import copy
|
||||
|
|
|
|||
|
|
@ -1,7 +1,11 @@
|
|||
# YOLOv5 PyTorch utils
|
||||
# YOLOv5 🚀 by Ultralytics, GPL-3.0 license
|
||||
"""
|
||||
PyTorch utils
|
||||
"""
|
||||
|
||||
import datetime
|
||||
import logging
|
||||
import math
|
||||
import os
|
||||
import platform
|
||||
import subprocess
|
||||
|
|
@ -10,7 +14,6 @@ from contextlib import contextmanager
|
|||
from copy import deepcopy
|
||||
from pathlib import Path
|
||||
|
||||
import math
|
||||
import torch
|
||||
import torch.backends.cudnn as cudnn
|
||||
import torch.distributed as dist
|
||||
|
|
|
|||
Loading…
Reference in New Issue