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bioimageio.core-0.5.8


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توضیحات

Python functionality for the bioimage model zoo
ویژگی مقدار
سیستم عامل -
نام فایل bioimageio.core-0.5.8
نام bioimageio.core
نسخه کتابخانه 0.5.8
نگهدارنده []
ایمیل نگهدارنده []
نویسنده Bioimage Team
ایمیل نویسنده -
آدرس صفحه اصلی https://github.com/bioimage-io/core-bioimage-io-python
آدرس اینترنتی https://pypi.org/project/bioimageio.core/
مجوز -
# core-bioimage-io-python Python specific core utilities for running models in the [BioImage Model Zoo](https://bioimage.io). ## Installation ### Via Conda The `bioimageio.core` package can be installed from conda-forge via ``` conda install -c conda-forge bioimageio.core ``` if you don't install any additional deep learning libraries, you will only be able to use general convenience functionality, but not any functionality for model prediction. To install additional deep learning libraries use: * Pytorch/Torchscript: ```bash # cpu installation (if you don't have an nvidia graphics card) conda install -c pytorch -c conda-forge bioimageio.core pytorch torchvision cpuonly # gpu installation (for cuda 11.6, please choose the appropriate cuda version for your system) conda install -c pytorch -c nvidia -c conda-forge bioimageio.core pytorch torchvision pytorch-cuda=11.6 ``` Note that the pytorch installation instructions may change in the future. For the latest instructions please refer to [pytorch.org](https://pytorch.org/). * Tensorflow ```bash # currently only cpu version supported conda install -c conda-forge bioimageio.core tensorflow ``` * ONNXRuntime ```bash # currently only cpu version supported conda install -c conda-forge bioimageio.core onnxruntime ``` ### Via pip The package is also available via pip: ``` pip install bioimageio.core ``` ### Set up Development Environment To set up a development conda environment run the following commands: ``` conda env create -f dev/environment-base.yaml conda activate bio-core-dev pip install -e . --no-deps ``` There are different environment files that only install tensorflow or pytorch as dependencies available. ## Command Line `bioimageio.core` installs a command line interface for testing models and other functionality. You can list all the available commands via: ``` bioimageio ``` Check that a model adheres to the model spec: ``` bioimageio validate <MODEL> ``` Test a model (including prediction for the test input): ``` bioimageio test-model <MODEL> ``` Run prediction for an image stored on disc: ``` bioimageio predict-image -m <MODEL> -i <INPUT> -o <OUTPUT> ``` Run prediction for multiple images stored on disc: ``` bioimagei predict-images -m <MODEL> -i <INPUT_PATTERN> - o <OUTPUT_FOLDER> ``` `<INPUT_PATTERN>` is a `glob` pattern to select the desired images, e.g. `/path/to/my/images/*.tif`. ## From python `bioimageio.core` is a python library that implements loading models, running prediction with them and more. To get an overview of this functionality, check out the example notebooks: - [example/model_usage](https://github.com/bioimage-io/core-bioimage-io-python/blob/main/example/model_usage.ipynb) for how to load models and run prediction with them - [example/model_creation](https://github.com/bioimage-io/core-bioimage-io-python/blob/main/example/model_creation.ipynb) for how to create bioimage.io compatible model packages - [example/dataset_statistics_demo](https://github.com/bioimage-io/core-bioimage-io-python/blob/main/example/dataset_statistics_demo.ipynb) for how to use the dataset statistics for advanced pre-and-postprocessing ## Model Specification The model specification and its validation tools can be found at https://github.com/bioimage-io/spec-bioimage-io.


نیازمندی

مقدار نام
==0.4.9.* bioimageio.spec
>=2.5 imageio
- numpy
- ruamel.yaml
- tqdm
- xarray
- tifffile
- pre-commit
- onnxruntime
>=1.6 torch
- torchvision
- tensorflow
- pytest
- black
- mypy


نحوه نصب


نصب پکیج whl bioimageio.core-0.5.8:

    pip install bioimageio.core-0.5.8.whl


نصب پکیج tar.gz bioimageio.core-0.5.8:

    pip install bioimageio.core-0.5.8.tar.gz