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hyperopt/hyperopt-sklearn

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1,647 نجوم·274 تفرعات·Python·6 مشاهداتhyperopt.github.io/hyperopt-sklearn↗

Hyperopt Sklearn

Hyper-parameter optimization for sklearn

Features

  • Automated Machine Learning - Hyperopt-based automated machine learning for scikit-learn.
  • Hyperparameter Tuning - Hyperopt integration with sklearn.
  • Optimization - Hyperparameter optimization specifically for scikit-learn.
  • أدوات المطور - Hyperparameter optimization for scikit-learn.

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الأسئلة الشائعة

ما هي وظيفة hyperopt/hyperopt-sklearn؟

Hyper-parameter optimization for sklearn

ما هي الميزات الرئيسية لـ hyperopt/hyperopt-sklearn؟

الميزات الرئيسية لـ hyperopt/hyperopt-sklearn هي: Automated Machine Learning, Hyperparameter Tuning, Optimization, أدوات المطور.

ما هي البدائل مفتوحة المصدر لـ hyperopt/hyperopt-sklearn؟

تشمل البدائل مفتوحة المصدر لـ hyperopt/hyperopt-sklearn: optuna/optuna — Optuna is a Python-based hyperparameter optimization framework designed to automate the search for optimal machine… scikit-optimize/scikit-optimize — Sequential model-based optimization with a `scipy.optimize` interface. fmfn/bayesianoptimization — This is a Python scientific computing library for finding the global maximum of expensive black-box functions. It… hyperopt/hyperopt — Hyperopt is a Python library for hyperparameter optimization designed to minimize scalar-valued objective functions.… determined-ai/determined — Determined is an open-source machine learning platform that simplifies distributed training, hyperparameter tuning,… claesenm/optunity — optimization routines for hyperparameter tuning.

بدائل مفتوحة المصدر لـ Hyperopt Sklearn

مشاريع مفتوحة المصدر مشابهة، مرتبة حسب عدد الميزات المشتركة مع Hyperopt Sklearn.
  • fmfn/bayesianoptimizationالصورة الرمزية لـ fmfn

    fmfn/BayesianOptimization

    8,650عرض على GitHub↗

    This is a Python scientific computing library for finding the global maximum of expensive black-box functions. It operates as a global optimization framework that identifies optimal input parameters within defined bounds to maximize a target output. The library utilizes Gaussian process regression to predict function values and uncertainty, guiding the search for optimal parameters. It employs a surrogate-model optimization approach to approximate high-cost objective functions, reducing the total number of required evaluations. The system manages the trade-off between exploration and exploit

    Python
    عرض على GitHub↗8,650
  • hyperopt/hyperoptالصورة الرمزية لـ hyperopt

    hyperopt/hyperopt

    7,582عرض على GitHub↗

    Hyperopt is a Python library for hyperparameter optimization designed to minimize scalar-valued objective functions. It operates as a stochastic search space engine that finds optimal input parameters by searching through real-valued, discrete, and conditional spaces. The framework distinguishes itself through its support for complex search space configurations, allowing for conditional parameter hierarchies where specific hyperparameters are sampled only if their parent parameters meet certain criteria. It is built as an asynchronous optimization framework, decoupling the generation of searc

    Python
    عرض على GitHub↗7,582
  • determined-ai/determinedالصورة الرمزية لـ determined-ai

    determined-ai/determined

    3,224عرض على GitHub↗

    Determined is an open-source machine learning platform that simplifies distributed training, hyperparameter tuning, experiment tracking, and resource management. Works with PyTorch and TensorFlow.

    Go
    عرض على GitHub↗3,224
  • optuna/optunaالصورة الرمزية لـ optuna

    optuna/optuna

    14,388عرض على GitHub↗

    Optuna is a Python-based hyperparameter optimization framework designed to automate the search for optimal machine learning model configurations. It functions as a Bayesian optimization library that systematically tests parameter combinations to maximize or minimize objective functions, streamlining the model development process through iterative evaluation. The project distinguishes itself through a define-by-run dynamic construction model, which allows users to build complex, conditional search spaces using standard programming logic. Its architecture is highly modular, featuring a pluggabl

    Pythondistributedhyperparameter-optimizationmachine-learning
    عرض على GitHub↗14,388
  • عرض جميع البدائل الـ 30 لـ Hyperopt Sklearn→