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MLflow is a platform to streamline machine learning development, including tracking experiments, packaging code into reproducible runs, and sharing and deploying models. MLflow offers a set of lightweight APIs that can be used with any existing machine learning application or library (TensorFlow, PyTorch, XGBoost, etc), wherever you currently run ML code (e.g. in notebooks, standalone applications or the cloud).

Uploaded Mon Mar 31 00:04:03 2025
md5 checksum e6ce3550c9a74612db6e5f1df7fd2f9d
arch x86_64
build py311h0389eee_0
constrains onnx >=1.11.0, fastai >=2.4.1, mxnet !=1.8.0, pytorch_lightning >=1.5.10, shap >=0.40, torch >=1.11.0, xgboost >=0.82, torchvision >=0.12.0, spacy >=3.3.0, mlflow-skinny <0a0, tensorflow >=2.8.0
depends alembic <2,!=1.10, click >=7.0,<9.0, cloudpickle <3.0, databricks-cli >=0.8.7,<1, docker-py >=4.0.0,<7.0, entrypoints <1.0, flask <3.0, gitpython >=2.1.0,<4.0, gunicorn <21, importlib-metadata <7,>=3.7.0,!=4.7.0, jinja2 <4,>=2.11, markdown >=3.3,<4.0, matplotlib-base <4.0, numpy <2.0, packaging <24, pandas <3.0, protobuf >=3.12.0,<5.0, pyarrow <12,>=4.0.0, python >=3.11,<3.12.0a0, pytz <2024, pyyaml >=5.1,<7.0, querystring_parser <2.0, requests >=2.17.3,<3.0, scikit-learn <2.0, scipy <2.0, sqlalchemy >=1.4.0,<3, sqlparse >=0.4.0,<1.0
license Apache-2.0
license_family APACHE
md5 e6ce3550c9a74612db6e5f1df7fd2f9d
name mlflow
platform linux
sha1 6ee77f8212b835d04c67599abf8a5f71fa18363d
sha256 3ef78003ea6cdfb76ca24da94c74c93978ef7821acd087b3a00c6381bf34f1b6
size 15914313
subdir linux-64
timestamp 1683672071419
version 2.3.1