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Hyperopt

Distributed Asynchronous Hyperparameter Optimization in Python observed · 2026-08-28

github.com/hyperopt/hyperopt · homepage · Python · NOASSERTION (other) observed · 2026-08-28

Health v2 · maintenance only

86/100

  • Activity 99
  • Release rhythm 62
  • Longevity 100

Flags: no_license

How is this computed?

round(0.45*activity + 0.35*rhythm + 0.20*longevity); archived -> min(score, 10) — computed 2026-09-03. Adoption (stars, forks) is never an input.

  • gap_med: n/a
  • age_days: 5475
  • days_rel: 40
  • days_push: 9
  • n_releases_24m: 1

Full methodology

Adoption not part of the score

7592 stars · 1075 forks observed · 2026-08-28

What it is AI-extracted, prompt v1, taxonomy v1, 2026-08-29, confidence not recorded

Hyperopt is a Python library for distributed asynchronous hyperparameter optimization over search spaces with real-valued, discrete, and conditional dimensions, using algorithms like TPE. It supports parallel trials via MongoDB or Spark and includes hyperopt-sklearn for tuning scikit-learn estimators.

Use cases

  • tune hyperparameters of a machine learning model
  • optimize sklearn estimator parameters automatically
  • run distributed hyperparameter search with Spark or MongoDB
  • minimize an objective function over a conditional search space
  • bayesian optimization of black-box functions
  • find best model parameters via TPE

When to choose

  • you need flexible search spaces with conditional and discrete dimensions
  • you want to parallelize hyperparameter search across Spark or MongoDB workers
  • you prefer a lightweight, mature Python optimization library with TPE

When to avoid

  • you need cutting-edge optimizers like Optuna's samplers or advanced pruning
  • you want first-class integration with modern deep learning frameworks
  • you need active development and frequent releases

Facets

library · maturity maintenance

machine-learning benchmarking data-science machine-learning data-science developer-tools python cross-platform cloud hyperparameter-optimization bayesian-optimization tpe distributed-optimization model-selection scikit-learn docker

4 sources

Member repositories

RepositoryRoleHealth v2
hyperopt/hyperoptmain86
hyperopt/hyperopt-sklearnplugin30

For agents

markdown · JSON · MCP: product_card(name="hyperopt/hyperopt")

Data as of 2026-08-30T08:39:29.467469+00:00 · Report a problem