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sklearn-ci committed Jun 21, 2023
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# Sphinx build info version 1
# This file hashes the configuration used when building these files. When it is not found, a full rebuild will be done.
config: 215d9ab73d9cc6c557f5bb6da704a0d2
config: 558bebc8438f5d8451ce0b1ddbeb6e18
tags: 645f666f9bcd5a90fca523b33c5a78b7
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Expand Up @@ -2555,7 +2555,7 @@ instead of `RidgeCV`.

.. rst-class:: sphx-glr-timing

**Total running time of the script:** ( 0 minutes 14.377 seconds)
**Total running time of the script:** ( 0 minutes 14.417 seconds)


.. _sphx_glr_download_auto_examples_applications_plot_cyclical_feature_engineering.py:
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Expand Up @@ -312,7 +312,7 @@ will depend of the parameters `n_components`, `gamma`, and `alpha`.

.. rst-class:: sphx-glr-timing

**Total running time of the script:** ( 0 minutes 10.506 seconds)
**Total running time of the script:** ( 0 minutes 10.681 seconds)


.. _sphx_glr_download_auto_examples_applications_plot_digits_denoising.py:
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Expand Up @@ -159,9 +159,9 @@ dataset): unsupervised feature extraction / dimensionality reduction
.. code-block:: none
Extracting the top 150 eigenfaces from 966 faces
done in 0.078s
done in 0.072s
Projecting the input data on the eigenfaces orthonormal basis
done in 0.007s
done in 0.009s
Expand Down Expand Up @@ -199,7 +199,7 @@ Train a SVM classification model
.. code-block:: none
Fitting the classifier to the training set
done in 6.132s
done in 6.233s
Best estimator found by grid search:
SVC(C=76823.03433306453, class_weight='balanced', gamma=0.003418945823095797)
Expand Down Expand Up @@ -242,7 +242,7 @@ Quantitative evaluation of the model quality on the test set
.. code-block:: none
Predicting people's names on the test set
done in 0.045s
done in 0.049s
precision recall f1-score support
Ariel Sharon 0.75 0.69 0.72 13
Expand Down Expand Up @@ -359,7 +359,7 @@ tensorflow to implement such models.

.. rst-class:: sphx-glr-timing

**Total running time of the script:** ( 0 minutes 7.139 seconds)
**Total running time of the script:** ( 0 minutes 7.238 seconds)


.. _sphx_glr_download_auto_examples_applications_plot_face_recognition.py:
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Expand Up @@ -388,49 +388,49 @@ ensemble is not as detrimental.
Benchmarking SGDClassifier(alpha=0.001, l1_ratio=0.25, loss='modified_huber',
n_iter_no_change=2, penalty='elasticnet', tol=0.1)
Complexity: 4948 | Hamming Loss (Misclassification Ratio): 0.2675 | Pred. Time: 0.062944s
Complexity: 4948 | Hamming Loss (Misclassification Ratio): 0.2675 | Pred. Time: 0.060775s
Benchmarking SGDClassifier(alpha=0.001, l1_ratio=0.5, loss='modified_huber',
n_iter_no_change=2, penalty='elasticnet', tol=0.1)
Complexity: 1847 | Hamming Loss (Misclassification Ratio): 0.3264 | Pred. Time: 0.046162s
Complexity: 1847 | Hamming Loss (Misclassification Ratio): 0.3264 | Pred. Time: 0.045887s
Benchmarking SGDClassifier(alpha=0.001, l1_ratio=0.75, loss='modified_huber',
n_iter_no_change=2, penalty='elasticnet', tol=0.1)
Complexity: 997 | Hamming Loss (Misclassification Ratio): 0.3383 | Pred. Time: 0.037201s
Complexity: 997 | Hamming Loss (Misclassification Ratio): 0.3383 | Pred. Time: 0.038082s
Benchmarking SGDClassifier(alpha=0.001, l1_ratio=0.9, loss='modified_huber',
n_iter_no_change=2, penalty='elasticnet', tol=0.1)
Complexity: 802 | Hamming Loss (Misclassification Ratio): 0.3582 | Pred. Time: 0.034179s
Complexity: 802 | Hamming Loss (Misclassification Ratio): 0.3582 | Pred. Time: 0.034990s
Benchmarking NuSVR(C=1000.0, gamma=3.0517578125e-05, nu=0.05)
Complexity: 18 | MSE: 5558.7313 | Pred. Time: 0.000186s
Complexity: 18 | MSE: 5558.7313 | Pred. Time: 0.000214s
Benchmarking NuSVR(C=1000.0, gamma=3.0517578125e-05, nu=0.1)
Complexity: 36 | MSE: 5289.8022 | Pred. Time: 0.000264s
Complexity: 36 | MSE: 5289.8022 | Pred. Time: 0.000319s
Benchmarking NuSVR(C=1000.0, gamma=3.0517578125e-05, nu=0.2)
Complexity: 72 | MSE: 5193.8353 | Pred. Time: 0.000422s
Complexity: 72 | MSE: 5193.8353 | Pred. Time: 0.000501s
Benchmarking NuSVR(C=1000.0, gamma=3.0517578125e-05, nu=0.35)
Complexity: 124 | MSE: 5131.3279 | Pred. Time: 0.000658s
Complexity: 124 | MSE: 5131.3279 | Pred. Time: 0.000717s
Benchmarking NuSVR(C=1000.0, gamma=3.0517578125e-05)
Complexity: 178 | MSE: 5149.0779 | Pred. Time: 0.000917s
Complexity: 178 | MSE: 5149.0779 | Pred. Time: 0.000992s
Benchmarking GradientBoostingRegressor(learning_rate=0.05, max_depth=2, n_estimators=10)
Complexity: 10 | MSE: 4066.4812 | Pred. Time: 0.000351s
Complexity: 10 | MSE: 4066.4812 | Pred. Time: 0.000193s
Benchmarking GradientBoostingRegressor(learning_rate=0.05, max_depth=2, n_estimators=25)
Complexity: 25 | MSE: 3551.1723 | Pred. Time: 0.000328s
Complexity: 25 | MSE: 3551.1723 | Pred. Time: 0.000226s
Benchmarking GradientBoostingRegressor(learning_rate=0.05, max_depth=2, n_estimators=50)
Complexity: 50 | MSE: 3445.2171 | Pred. Time: 0.000241s
Complexity: 50 | MSE: 3445.2171 | Pred. Time: 0.000262s
Benchmarking GradientBoostingRegressor(learning_rate=0.05, max_depth=2, n_estimators=75)
Complexity: 75 | MSE: 3433.0358 | Pred. Time: 0.000263s
Complexity: 75 | MSE: 3433.0358 | Pred. Time: 0.000319s
Benchmarking GradientBoostingRegressor(learning_rate=0.05, max_depth=2)
Complexity: 100 | MSE: 3456.0602 | Pred. Time: 0.000296s
Complexity: 100 | MSE: 3456.0602 | Pred. Time: 0.000331s
Expand All @@ -453,7 +453,7 @@ under-fitting or over-fitting.

.. rst-class:: sphx-glr-timing

**Total running time of the script:** ( 0 minutes 5.681 seconds)
**Total running time of the script:** ( 0 minutes 5.408 seconds)


.. _sphx_glr_download_auto_examples_applications_plot_model_complexity_influence.py:
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Expand Up @@ -383,46 +383,46 @@ maximum
.. code-block:: none
Test set is 878 documents (108 positive)
SGD classifier : 962 train docs ( 132 positive) 878 test docs ( 108 positive) accuracy: 0.915 in 0.68s ( 1422 docs/s)
Perceptron classifier : 962 train docs ( 132 positive) 878 test docs ( 108 positive) accuracy: 0.855 in 0.68s ( 1410 docs/s)
NB Multinomial classifier : 962 train docs ( 132 positive) 878 test docs ( 108 positive) accuracy: 0.877 in 0.70s ( 1365 docs/s)
Passive-Aggressive classifier : 962 train docs ( 132 positive) 878 test docs ( 108 positive) accuracy: 0.933 in 0.71s ( 1359 docs/s)
SGD classifier : 962 train docs ( 132 positive) 878 test docs ( 108 positive) accuracy: 0.915 in 0.74s ( 1295 docs/s)
Perceptron classifier : 962 train docs ( 132 positive) 878 test docs ( 108 positive) accuracy: 0.855 in 0.75s ( 1284 docs/s)
NB Multinomial classifier : 962 train docs ( 132 positive) 878 test docs ( 108 positive) accuracy: 0.877 in 0.77s ( 1244 docs/s)
Passive-Aggressive classifier : 962 train docs ( 132 positive) 878 test docs ( 108 positive) accuracy: 0.933 in 0.78s ( 1239 docs/s)
SGD classifier : 3911 train docs ( 517 positive) 878 test docs ( 108 positive) accuracy: 0.938 in 1.86s ( 2100 docs/s)
Perceptron classifier : 3911 train docs ( 517 positive) 878 test docs ( 108 positive) accuracy: 0.936 in 1.86s ( 2097 docs/s)
NB Multinomial classifier : 3911 train docs ( 517 positive) 878 test docs ( 108 positive) accuracy: 0.885 in 1.87s ( 2087 docs/s)
Passive-Aggressive classifier : 3911 train docs ( 517 positive) 878 test docs ( 108 positive) accuracy: 0.941 in 1.88s ( 2084 docs/s)
SGD classifier : 3911 train docs ( 517 positive) 878 test docs ( 108 positive) accuracy: 0.938 in 1.95s ( 2008 docs/s)
Perceptron classifier : 3911 train docs ( 517 positive) 878 test docs ( 108 positive) accuracy: 0.936 in 1.95s ( 2005 docs/s)
NB Multinomial classifier : 3911 train docs ( 517 positive) 878 test docs ( 108 positive) accuracy: 0.885 in 1.96s ( 1995 docs/s)
Passive-Aggressive classifier : 3911 train docs ( 517 positive) 878 test docs ( 108 positive) accuracy: 0.941 in 1.96s ( 1992 docs/s)
SGD classifier : 6821 train docs ( 891 positive) 878 test docs ( 108 positive) accuracy: 0.952 in 3.03s ( 2251 docs/s)
Perceptron classifier : 6821 train docs ( 891 positive) 878 test docs ( 108 positive) accuracy: 0.952 in 3.03s ( 2249 docs/s)
NB Multinomial classifier : 6821 train docs ( 891 positive) 878 test docs ( 108 positive) accuracy: 0.900 in 3.04s ( 2242 docs/s)
Passive-Aggressive classifier : 6821 train docs ( 891 positive) 878 test docs ( 108 positive) accuracy: 0.953 in 3.04s ( 2240 docs/s)
SGD classifier : 6821 train docs ( 891 positive) 878 test docs ( 108 positive) accuracy: 0.952 in 3.11s ( 2195 docs/s)
Perceptron classifier : 6821 train docs ( 891 positive) 878 test docs ( 108 positive) accuracy: 0.952 in 3.11s ( 2193 docs/s)
NB Multinomial classifier : 6821 train docs ( 891 positive) 878 test docs ( 108 positive) accuracy: 0.900 in 3.12s ( 2187 docs/s)
Passive-Aggressive classifier : 6821 train docs ( 891 positive) 878 test docs ( 108 positive) accuracy: 0.953 in 3.12s ( 2184 docs/s)
SGD classifier : 9759 train docs ( 1276 positive) 878 test docs ( 108 positive) accuracy: 0.949 in 4.31s ( 2265 docs/s)
Perceptron classifier : 9759 train docs ( 1276 positive) 878 test docs ( 108 positive) accuracy: 0.953 in 4.31s ( 2262 docs/s)
NB Multinomial classifier : 9759 train docs ( 1276 positive) 878 test docs ( 108 positive) accuracy: 0.909 in 4.32s ( 2256 docs/s)
Passive-Aggressive classifier : 9759 train docs ( 1276 positive) 878 test docs ( 108 positive) accuracy: 0.958 in 4.33s ( 2254 docs/s)
SGD classifier : 9759 train docs ( 1276 positive) 878 test docs ( 108 positive) accuracy: 0.949 in 4.29s ( 2273 docs/s)
Perceptron classifier : 9759 train docs ( 1276 positive) 878 test docs ( 108 positive) accuracy: 0.953 in 4.29s ( 2272 docs/s)
NB Multinomial classifier : 9759 train docs ( 1276 positive) 878 test docs ( 108 positive) accuracy: 0.909 in 4.30s ( 2267 docs/s)
Passive-Aggressive classifier : 9759 train docs ( 1276 positive) 878 test docs ( 108 positive) accuracy: 0.958 in 4.31s ( 2266 docs/s)
SGD classifier : 11680 train docs ( 1499 positive) 878 test docs ( 108 positive) accuracy: 0.944 in 5.40s ( 2163 docs/s)
Perceptron classifier : 11680 train docs ( 1499 positive) 878 test docs ( 108 positive) accuracy: 0.956 in 5.40s ( 2162 docs/s)
NB Multinomial classifier : 11680 train docs ( 1499 positive) 878 test docs ( 108 positive) accuracy: 0.915 in 5.41s ( 2158 docs/s)
Passive-Aggressive classifier : 11680 train docs ( 1499 positive) 878 test docs ( 108 positive) accuracy: 0.950 in 5.41s ( 2157 docs/s)
SGD classifier : 11680 train docs ( 1499 positive) 878 test docs ( 108 positive) accuracy: 0.944 in 5.33s ( 2192 docs/s)
Perceptron classifier : 11680 train docs ( 1499 positive) 878 test docs ( 108 positive) accuracy: 0.956 in 5.33s ( 2191 docs/s)
NB Multinomial classifier : 11680 train docs ( 1499 positive) 878 test docs ( 108 positive) accuracy: 0.915 in 5.34s ( 2187 docs/s)
Passive-Aggressive classifier : 11680 train docs ( 1499 positive) 878 test docs ( 108 positive) accuracy: 0.950 in 5.34s ( 2186 docs/s)
SGD classifier : 14625 train docs ( 1865 positive) 878 test docs ( 108 positive) accuracy: 0.965 in 6.56s ( 2227 docs/s)
Perceptron classifier : 14625 train docs ( 1865 positive) 878 test docs ( 108 positive) accuracy: 0.903 in 6.57s ( 2226 docs/s)
NB Multinomial classifier : 14625 train docs ( 1865 positive) 878 test docs ( 108 positive) accuracy: 0.924 in 6.58s ( 2223 docs/s)
Passive-Aggressive classifier : 14625 train docs ( 1865 positive) 878 test docs ( 108 positive) accuracy: 0.957 in 6.58s ( 2222 docs/s)
SGD classifier : 14625 train docs ( 1865 positive) 878 test docs ( 108 positive) accuracy: 0.965 in 6.58s ( 2222 docs/s)
Perceptron classifier : 14625 train docs ( 1865 positive) 878 test docs ( 108 positive) accuracy: 0.903 in 6.58s ( 2221 docs/s)
NB Multinomial classifier : 14625 train docs ( 1865 positive) 878 test docs ( 108 positive) accuracy: 0.924 in 6.59s ( 2218 docs/s)
Passive-Aggressive classifier : 14625 train docs ( 1865 positive) 878 test docs ( 108 positive) accuracy: 0.957 in 6.60s ( 2217 docs/s)
SGD classifier : 17360 train docs ( 2179 positive) 878 test docs ( 108 positive) accuracy: 0.957 in 7.61s ( 2281 docs/s)
Perceptron classifier : 17360 train docs ( 2179 positive) 878 test docs ( 108 positive) accuracy: 0.933 in 7.61s ( 2280 docs/s)
NB Multinomial classifier : 17360 train docs ( 2179 positive) 878 test docs ( 108 positive) accuracy: 0.932 in 7.62s ( 2278 docs/s)
Passive-Aggressive classifier : 17360 train docs ( 2179 positive) 878 test docs ( 108 positive) accuracy: 0.952 in 7.62s ( 2277 docs/s)
SGD classifier : 17360 train docs ( 2179 positive) 878 test docs ( 108 positive) accuracy: 0.957 in 7.88s ( 2202 docs/s)
Perceptron classifier : 17360 train docs ( 2179 positive) 878 test docs ( 108 positive) accuracy: 0.933 in 7.89s ( 2201 docs/s)
NB Multinomial classifier : 17360 train docs ( 2179 positive) 878 test docs ( 108 positive) accuracy: 0.932 in 7.90s ( 2198 docs/s)
Passive-Aggressive classifier : 17360 train docs ( 2179 positive) 878 test docs ( 108 positive) accuracy: 0.952 in 7.90s ( 2197 docs/s)
Expand Down Expand Up @@ -583,7 +583,7 @@ before feeding them to the learner.

.. rst-class:: sphx-glr-timing

**Total running time of the script:** ( 0 minutes 8.626 seconds)
**Total running time of the script:** ( 0 minutes 9.200 seconds)


.. _sphx_glr_download_auto_examples_applications_plot_out_of_core_classification.py:
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.. _sphx_glr_download_auto_examples_applications_plot_outlier_detection_wine.py:
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.. _sphx_glr_download_auto_examples_applications_plot_prediction_latency.py:
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Area under the ROC curve : 0.993919
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.. _sphx_glr_download_auto_examples_applications_plot_species_distribution_modeling.py:
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.. _sphx_glr_download_auto_examples_applications_plot_stock_market.py:
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.. _sphx_glr_download_auto_examples_applications_plot_tomography_l1_reconstruction.py:
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Loading dataset...
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Extracting tf-idf features for NMF...
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Extracting tf features for LDA...
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Fitting the NMF model (Frobenius norm) with tf-idf features, n_samples=2000 and n_features=1000...
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Fitting the NMF model (generalized Kullback-Leibler divergence) with tf-idf features, n_samples=2000 and n_features=1000...
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Fitting LDA models with tf features, n_samples=2000 and n_features=1000...
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.. _sphx_glr_download_auto_examples_applications_plot_topics_extraction_with_nmf_lda.py:
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