update readme
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@ -7,7 +7,7 @@ jobs:
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runs-on: ubuntu-latest
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strategy:
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matrix:
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python-version: ["3.8", "3.9", "3.10"]
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python-version: ["3.8", "3.9", "3.10", "3.11", "3.12"]
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steps:
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- uses: actions/checkout@v3
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- name: Set up Python ${{ matrix.python-version }}
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55
README.md
55
README.md
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@ -1,7 +1,5 @@
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# Labelme2YOLO
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**Forked from [rooneysh/Labelme2YOLO](https://github.com/rooneysh/Labelme2YOLO)**
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[](https://pypi.org/project/labelme2yolo)
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[](https://pypi.org/project/labelme2yolo)
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@ -11,7 +9,7 @@ Labelme2YOLO is a powerful tool for converting LabelMe's JSON format to [YOLOv5]
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## New Features
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* export data as yolo polygon annotation (for YOLOv5 v7.0 segmentation)
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* export data as yolo polygon annotation (for YOLOv5 & YOLOV8 segmentation)
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* Now you can choose the output format of the label text. The two available alternatives are `polygon` and bounding box (`bbox`).
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## Installation
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@ -26,7 +24,7 @@ pip install labelme2yolo
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**--val\_size (Optional)** Validation dataset size, for example 0.2 means 20% for validation.
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**--test\_size (Optional)** Test dataset size, for example 0.2 means 20% for Test.
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**--test\_size (Optional)** Test dataset size, for example 0.1 means 10% for Test.
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**--json\_name (Optional)** Convert single LabelMe JSON file.
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@ -36,7 +34,25 @@ pip install labelme2yolo
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## How to Use
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### 1. Converting JSON files and splitting training, validation, and test datasets with --val\_size and --test\_size
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### 1. Converting JSON files and splitting training, validation datasets
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You may need to place all LabelMe JSON files under **labelme\_json\_dir** and then run the following command:
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```shell
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labelme2yolo --json_dir /path/to/labelme_json_dir/
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```
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This tool will generate dataset labels and images with YOLO format in different folders, such as
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```plaintext
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/path/to/labelme_json_dir/YOLODataset/labels/train/
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/path/to/labelme_json_dir/YOLODataset/labels/val/
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/path/to/labelme_json_dir/YOLODataset/images/train/
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/path/to/labelme_json_dir/YOLODataset/images/val/
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/path/to/labelme_json_dir/YOLODataset/dataset.yaml
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```
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### 2. Converting JSON files and splitting training, validation, and test datasets with --val\_size and --test\_size
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You may need to place all LabelMe JSON files under **labelme\_json\_dir** and then run the following command:
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@ -53,33 +69,6 @@ This tool will generate dataset labels and images with YOLO format in different
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/path/to/labelme_json_dir/YOLODataset/images/train/
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/path/to/labelme_json_dir/YOLODataset/images/test/
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/path/to/labelme_json_dir/YOLODataset/images/val/
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/path/to/labelme_json_dir/YOLODataset/dataset.yaml
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```
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### 2. Converting JSON files and splitting training and validation datasets by folders
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If you have split the LabelMe training dataset and validation dataset on your own, please put these folders under **labelme\_json\_dir** as shown below:
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```plaintext
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/path/to/labelme_json_dir/train/
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/path/to/labelme_json_dir/val/
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```
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This tool will read the training and validation datasets by folder. You may run the following command to do this:
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```shell
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labelme2yolo --json_dir /path/to/labelme_json_dir/
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```
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This tool will generate dataset labels and images with YOLO format in different folders, such as
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```plaintext
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/path/to/labelme_json_dir/YOLODataset/labels/train/
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/path/to/labelme_json_dir/YOLODataset/labels/val/
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/path/to/labelme_json_dir/YOLODataset/images/train/
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/path/to/labelme_json_dir/YOLODataset/images/val/
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/path/to/labelme_json_dir/YOLODataset/dataset.yaml
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```
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@ -94,4 +83,6 @@ hatch build
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## License
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**Forked from [rooneysh/Labelme2YOLO](https://github.com/rooneysh/Labelme2YOLO)**
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`labelme2yolo` is distributed under the terms of the [MIT](https://spdx.org/licenses/MIT.html) license.
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@ -13,18 +13,20 @@ authors = [
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{ name = "GreatV(Wang Xin)", email = "xinwang614@gmail.com" },
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]
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classifiers = [
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"Development Status :: 4 - Beta",
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"Development Status :: 5 - Production/Stable",
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"Programming Language :: Python",
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"Programming Language :: Python :: 3.8",
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"Programming Language :: Python :: 3.9",
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"Programming Language :: Python :: 3.10",
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"Programming Language :: Python :: Implementation :: CPython",
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"Programming Language :: Python :: Implementation :: PyPy",
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"Programming Language :: Python :: 3.11",
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"Programming Language :: Python :: 3.12",
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"License :: OSI Approved :: MIT License",
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]
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dependencies = [
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"opencv-python>=4.1.2",
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"Pillow>=9.2,<10.3",
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"numpy>=1.23.1,<1.27.0"
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"numpy>=1.23.1,<1.27.0",
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"tqdm"
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]
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dynamic = ["version"]
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@ -52,7 +54,7 @@ cov = "pytest --cov-report=term-missing --cov-config=pyproject.toml --cov=labelm
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no-cov = "cov --no-cov"
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[[tool.hatch.envs.test.matrix]]
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python = ["38", "39", "310"]
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python = ["38", "39", "310", "311", "312"]
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[tool.coverage.run]
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branch = true
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