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  1. linear_model.rst.txt

    | **'lbfgs'** | **'liblinear'** | **'newton-cg'** | **'newton-cholesky'**...**'newton-cholesky'** | **'sag'** | **'saga'** | +--------- | Multinomial...
    scikit-learn.org/stable/_sources/modules/linear_model.rst.txt
    Thu May 09 23:01:25 UTC 2024
      77.9K bytes
      7 views
     
  2. about.rst.txt

    core contributors to scikit-learn's development and maintenance:...issues. Instead, please see `What's the best way to ask questions...
    scikit-learn.org/stable/_sources/about.rst.txt
    Thu May 09 23:01:25 UTC 2024
      16.5K bytes
      3 views
     
  3. feature_selection.rst.txt

    : clf = Pipeline([ ('feature_selection', SelectFromModel(LinearSVC(dual="auto",...o", penalty="l1"))), ('classification', RandomForestClassifi())...
    scikit-learn.org/stable/_sources/modules/feature_selection.rst.txt
    Thu May 09 23:01:25 UTC 2024
      14.3K bytes
      1 views
     
  4. classes.rst.txt

    SGDRegressor` with ``loss='huber'``. .. autosummary:: :toctree:...
    scikit-learn.org/stable/_sources/modules/classes.rst.txt
    Thu May 09 23:01:25 UTC 2024
      41.8K bytes
     
  5. preprocessing.rst.txt

    ['female', 'Europe', 'Firefox'], ... ['female', 'Asia', 'Chrome']]...X = [['male', 'from US', 'uses Safari'], ['female', 'from Europe',...
    scikit-learn.org/stable/_sources/modules/preprocessing.rst.txt
    Thu May 09 23:01:25 UTC 2024
      52.7K bytes
     
  6. grid_search.rst.txt

    = [ {'C': [1, 10, 100, 1000], 'kernel': ['linear']}, {'C': [1,...e=.1), 'kernel': ['rbf'], 'class_weight':['balanced', None]}...
    scikit-learn.org/stable/_sources/modules/grid_search.rst.txt
    Thu May 09 23:01:25 UTC 2024
      33K bytes
      2 views
     
  7. glossary.rst.txt

    of ['no', 'yes'], 'yes' is the positive class; of ['no', 'YES'],...... param_grid={'loss': ['log_loss', 'hinge']}) This means that...
    scikit-learn.org/stable/_sources/glossary.rst.txt
    Thu May 09 23:01:25 UTC 2024
      88.1K bytes
      1 views
     
  8. getting_started.rst.txt

    param_distributions = {'n_estimators': randint(1, 5), ... 'max_depth': randint(5,...param_distributions={'max_depth': ..., 'n_estimators': ...}, random_state=0)...
    scikit-learn.org/stable/_sources/getting_started.rst.txt
    Thu May 09 23:01:24 UTC 2024
      10K bytes
     
  9. clustering.rst.txt

    Their 'sqrt' and 'sum' averages are the geometric...s(i, k) - max [ a(i, k') + s(i, k') \forall k' \neq k ] Where :math:`s(i,...
    scikit-learn.org/stable/_sources/modules/clustering.rst.txt
    Thu May 09 23:01:25 UTC 2024
      91.9K bytes
     
  10. faq.rst.txt

    need to specify algorithm='brute' as the default assumes >>>...eps=5, min_samples=2, algorithm='brute') # doctest: +SKIP (array([0,...
    scikit-learn.org/stable/_sources/faq.rst.txt
    Thu May 09 23:01:25 UTC 2024
      23.4K bytes
      2 views
     
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