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A package for distributed scikit-learn tasks.

Project description

distributed-ml

distributed-ml is a Python-based machine learning package that facilitates model training, hyperparameter tuning, and data handling through a structured API. It supports various scikit-learn estimators, including classifiers, regressors, and hyperparameter search classes like GridSearchCV and RandomizedSearchCV.

This package allows users to:

  • Create and manage API sessions
  • Check and download datasets
  • Train models with various configurations
  • Monitor job status with progress bars
  • Handle hyperparameter tuning efficiently

API Reference

MLTaskManager()

  • Instantiates class.
  • Returns session id.

check_data(data_name)

  • Checks if a dataset is available.
  • Arguments:
    • data_name (str): Name of the dataset.
  • Returns path where data was downloaded, otherwise 404 Error.

download_data(data_link, data_name, data_type)

  • Downloads data from a specified source.
  • Arguments:
    • data_link (str): URL or dataset identifier.
    • data_name (str): Name to save dataset as.
    • data_type (str): Source type (e.g., “kaggle”).
  • Returns path where data was downloaded.

train(estimator, dataset_name, train_params=None, wait_for_completion=False)

  • Submits a training job to the API.
  • Arguments:
    • estimator: A scikit-learn model.
    • dataset_name (str): Name of dataset.
    • train_params (dict, optional): Training configurations.
    • wait_for_completion (bool, optional): Whether to wait for the job to complete.
  • Returns training progress and job results (i.e. best results, best parameters)

check_job_status(job_id)

  • Retrieves the status of a training job.
  • Arguments:
    • job_id (str): Unique job identifier.
  • Returns training progress and job results (i.e. best results, best parameters)

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