Task
Supervised Classification on diggle_table_a1

Supervised Classification on diggle_table_a1

Task 3682 Supervised Classification diggle_table_a1 526 runs submitted
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  • mythbusting_1 study_1 study_107 study_15 study_20 study_41 under100k under1m
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0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.4122, f_measure: 0.4453, kappa: -0.0267, kb_relative_information_score: -1.4799, mean_absolute_error: 0.5129, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.4801, predictive_accuracy: 0.5, prior_entropy: 0.9988, recall: 0.5, relative_absolute_error: 1.0276, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5205, root_relative_squared_error: 1.042, scimark_benchmark: 932.5646,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.5591, f_measure: 0.5596, kappa: 0.1189, kb_relative_information_score: 5.8983, mean_absolute_error: 0.4375, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.5612, predictive_accuracy: 0.5625, prior_entropy: 0.9988, recall: 0.5625, relative_absolute_error: 0.8765, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.6614, root_relative_squared_error: 1.324, scimark_benchmark: 1344.0499,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.4122, f_measure: 0.4453, kappa: -0.0267, kb_relative_information_score: -1.553, mean_absolute_error: 0.5139, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.4801, predictive_accuracy: 0.5, prior_entropy: 0.9988, recall: 0.5, relative_absolute_error: 1.0296, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5225, root_relative_squared_error: 1.0459, scimark_benchmark: 1349.9643,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.4122, f_measure: 0.4453, kappa: -0.0267, kb_relative_information_score: -1.4886, mean_absolute_error: 0.5131, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.4801, predictive_accuracy: 0.5, prior_entropy: 0.9988, recall: 0.5, relative_absolute_error: 1.0278, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5208, root_relative_squared_error: 1.0425, scimark_benchmark: 1314.1215,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.6878, f_measure: 0.646, kappa: 0.2917, kb_relative_information_score: 11.0381, mean_absolute_error: 0.3913, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.6467, predictive_accuracy: 0.6458, prior_entropy: 0.9988, recall: 0.6458, relative_absolute_error: 0.7838, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.491, root_relative_squared_error: 0.9828, scimark_benchmark: 1322.0065, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.5791, f_measure: 0.6037, kappa: 0.2111, kb_relative_information_score: 5.5485, mean_absolute_error: 0.4455, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.6079, predictive_accuracy: 0.6042, prior_entropy: 0.9988, recall: 0.6042, relative_absolute_error: 0.8924, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5161, root_relative_squared_error: 1.0332, scimark_benchmark: 1322.0065, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.7252, f_measure: 0.7083, kappa: 0.4177, kb_relative_information_score: 10.7354, mean_absolute_error: 0.4031, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.7108, predictive_accuracy: 0.7083, prior_entropy: 0.9988, recall: 0.7083, relative_absolute_error: 0.8076, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.4674, root_relative_squared_error: 0.9356, scimark_benchmark: 1341.5795, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.687, f_measure: 0.6036, kappa: 0.2056, kb_relative_information_score: 10.0502, mean_absolute_error: 0.3981, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.6037, predictive_accuracy: 0.6042, prior_entropy: 0.9988, recall: 0.6042, relative_absolute_error: 0.7976, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.4959, root_relative_squared_error: 0.9926, scimark_benchmark: 1348.2476,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.4122, f_measure: 0.4453, kappa: -0.0267, kb_relative_information_score: -1.4886, mean_absolute_error: 0.5131, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.4801, predictive_accuracy: 0.5, prior_entropy: 0.9988, recall: 0.5, relative_absolute_error: 1.0278, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5208, root_relative_squared_error: 1.0425, scimark_benchmark: 1347.993,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.4122, f_measure: 0.4453, kappa: -0.0267, kb_relative_information_score: -1.4886, mean_absolute_error: 0.5131, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.4801, predictive_accuracy: 0.5, prior_entropy: 0.9988, recall: 0.5, relative_absolute_error: 1.0278, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5208, root_relative_squared_error: 1.0425, scimark_benchmark: 1354.3488,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.4122, f_measure: 0.4453, kappa: -0.0267, kb_relative_information_score: -1.4799, mean_absolute_error: 0.5129, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.4801, predictive_accuracy: 0.5, prior_entropy: 0.9988, recall: 0.5, relative_absolute_error: 1.0276, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5205, root_relative_squared_error: 1.042, scimark_benchmark: 1354.3488,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.4122, f_measure: 0.4453, kappa: -0.0267, kb_relative_information_score: -1.4886, mean_absolute_error: 0.5131, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.4801, predictive_accuracy: 0.5, prior_entropy: 0.9988, recall: 0.5, relative_absolute_error: 1.0278, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5208, root_relative_squared_error: 1.0425, scimark_benchmark: 1325.5735,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.7252, f_measure: 0.7083, kappa: 0.4177, kb_relative_information_score: 10.7354, mean_absolute_error: 0.4031, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.7108, predictive_accuracy: 0.7083, prior_entropy: 0.9988, recall: 0.7083, relative_absolute_error: 0.8076, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.4674, root_relative_squared_error: 0.9356, scimark_benchmark: 1316.6741, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.4122, f_measure: 0.4453, kappa: -0.0267, kb_relative_information_score: -1.4886, mean_absolute_error: 0.5131, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.4801, predictive_accuracy: 0.5, prior_entropy: 0.9988, recall: 0.5, relative_absolute_error: 1.0278, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5208, root_relative_squared_error: 1.0425, scimark_benchmark: 1337.3324,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.4122, f_measure: 0.4453, kappa: -0.0267, kb_relative_information_score: -1.4886, mean_absolute_error: 0.5131, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.4801, predictive_accuracy: 0.5, prior_entropy: 0.9988, recall: 0.5, relative_absolute_error: 1.0278, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5208, root_relative_squared_error: 1.0425, scimark_benchmark: 1346.4374,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.4122, f_measure: 0.4453, kappa: -0.0267, kb_relative_information_score: -1.4799, mean_absolute_error: 0.5129, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.4801, predictive_accuracy: 0.5, prior_entropy: 0.9988, recall: 0.5, relative_absolute_error: 1.0276, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5205, root_relative_squared_error: 1.042, scimark_benchmark: 1338.5214,
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0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.5591, f_measure: 0.5596, kappa: 0.1189, kb_relative_information_score: 5.8983, mean_absolute_error: 0.4375, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.5612, predictive_accuracy: 0.5625, prior_entropy: 0.9988, recall: 0.5625, relative_absolute_error: 0.8765, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.6614, root_relative_squared_error: 1.324, scimark_benchmark: 1340.5125,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.7052, f_measure: 0.625, kappa: 0.2487, kb_relative_information_score: 8.8122, mean_absolute_error: 0.4171, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.625, predictive_accuracy: 0.625, prior_entropy: 0.9988, recall: 0.625, relative_absolute_error: 0.8357, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.4688, root_relative_squared_error: 0.9384, scimark_benchmark: 1303.5632,
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0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.7122, f_measure: 0.7022, kappa: 0.4237, kb_relative_information_score: 10.2068, mean_absolute_error: 0.4046, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.7381, predictive_accuracy: 0.7083, prior_entropy: 0.9988, recall: 0.7083, relative_absolute_error: 0.8106, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.4653, root_relative_squared_error: 0.9315, scimark_benchmark: 1873.1108,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.667, f_measure: 0.7083, kappa: 0.4177, kb_relative_information_score: 12.7484, mean_absolute_error: 0.3758, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.7108, predictive_accuracy: 0.7083, prior_entropy: 0.9988, recall: 0.7083, relative_absolute_error: 0.7529, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5051, root_relative_squared_error: 1.0112,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.753, f_measure: 0.7293, kappa: 0.4583, kb_relative_information_score: 13.9587, mean_absolute_error: 0.3703, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.73, predictive_accuracy: 0.7292, prior_entropy: 0.9988, recall: 0.7292, relative_absolute_error: 0.7418, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.4542, root_relative_squared_error: 0.9091,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.5809, f_measure: 0.4611, kappa: 0.0221, kb_relative_information_score: 5.541, mean_absolute_error: 0.4391, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.5172, predictive_accuracy: 0.5, prior_entropy: 0.9988, recall: 0.5, relative_absolute_error: 0.8796, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5362, root_relative_squared_error: 1.0733, scimark_benchmark: 1840.6094,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.6122, f_measure: 0.6596, kappa: 0.3413, kb_relative_information_score: 6.1425, mean_absolute_error: 0.4455, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.692, predictive_accuracy: 0.6667, prior_entropy: 0.9988, recall: 0.6667, relative_absolute_error: 0.8924, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.4777, root_relative_squared_error: 0.9562,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.7304, f_measure: 0.5685, kappa: 0.1795, kb_relative_information_score: 16.6334, mean_absolute_error: 0.3269, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.6086, predictive_accuracy: 0.5833, prior_entropy: 0.9988, recall: 0.5833, relative_absolute_error: 0.655, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.491, root_relative_squared_error: 0.9829, scimark_benchmark: 1840.6094,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.7165, f_measure: 0.6871, kappa: 0.3772, kb_relative_information_score: 16.0313, mean_absolute_error: 0.3361, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.6921, predictive_accuracy: 0.6875, prior_entropy: 0.9988, recall: 0.6875, relative_absolute_error: 0.6733, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5009, root_relative_squared_error: 1.0027,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.4122, f_measure: 0.4453, kappa: -0.0267, kb_relative_information_score: -1.4799, mean_absolute_error: 0.5129, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.4801, predictive_accuracy: 0.5, prior_entropy: 0.9988, recall: 0.5, relative_absolute_error: 1.0276, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5205, root_relative_squared_error: 1.042, scimark_benchmark: 974.2014,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.4122, f_measure: 0.4453, kappa: -0.0267, kb_relative_information_score: -1.4886, mean_absolute_error: 0.5131, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.4801, predictive_accuracy: 0.5, prior_entropy: 0.9988, recall: 0.5, relative_absolute_error: 1.0278, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5208, root_relative_squared_error: 1.0425, scimark_benchmark: 974.2014,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.5591, f_measure: 0.5596, kappa: 0.1189, kb_relative_information_score: 5.8983, mean_absolute_error: 0.4375, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.5612, predictive_accuracy: 0.5625, prior_entropy: 0.9988, recall: 0.5625, relative_absolute_error: 0.8765, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.6614, root_relative_squared_error: 1.324, scimark_benchmark: 932.438,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.647, f_measure: 0.6036, kappa: 0.2056, kb_relative_information_score: 10.2879, mean_absolute_error: 0.3953, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.6037, predictive_accuracy: 0.6042, prior_entropy: 0.9988, recall: 0.6042, relative_absolute_error: 0.7918, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5548, root_relative_squared_error: 1.1106,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.5617, f_measure: 0.6016, kappa: 0.2138, kb_relative_information_score: 1.8149, mean_absolute_error: 0.4854, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.6124, predictive_accuracy: 0.6042, prior_entropy: 0.9988, recall: 0.6042, relative_absolute_error: 0.9723, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5176, root_relative_squared_error: 1.036, scimark_benchmark: 1447.2612,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.4739, f_measure: 0.4794, kappa: -0.0417, kb_relative_information_score: -0.7372, mean_absolute_error: 0.5033, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.48, predictive_accuracy: 0.4792, prior_entropy: 0.9988, recall: 0.4792, relative_absolute_error: 1.0082, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.5874, root_relative_squared_error: 1.1758, scimark_benchmark: 905.4305,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.6678, f_measure: 0.6876, kappa: 0.375, kb_relative_information_score: 11.5175, mean_absolute_error: 0.3925, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.6884, predictive_accuracy: 0.6875, prior_entropy: 0.9988, recall: 0.6875, relative_absolute_error: 0.7862, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.4957, root_relative_squared_error: 0.9922,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.6913, f_measure: 0.6855, kappa: 0.3793, kb_relative_information_score: 17.926, mean_absolute_error: 0.3125, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.6987, predictive_accuracy: 0.6875, prior_entropy: 0.9988, recall: 0.6875, relative_absolute_error: 0.626, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.559, root_relative_squared_error: 1.119, scimark_benchmark: 1523.5339,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.6878, f_measure: 0.646, kappa: 0.2917, kb_relative_information_score: 11.0381, mean_absolute_error: 0.3913, mean_prior_absolute_error: 0.4992, number_of_instances: 48, precision: 0.6467, predictive_accuracy: 0.6458, prior_entropy: 0.9988, recall: 0.6458, relative_absolute_error: 0.7838, root_mean_prior_squared_error: 0.4996, root_mean_squared_error: 0.491, root_relative_squared_error: 0.9828, scimark_benchmark: 936.3213, usercpu_time_millis: 10, usercpu_time_millis_training: 10,

Metric:

Timeline

Plotting contribution timeline

Leaderboard

Rank Name Top Score Entries Highest rank

Note: The leaderboard ignores resubmissions of previous solutions, as well as parameter variations that do not improve performance.

Challenge

In supervised classification, you are given an input dataset in which instances are labeled with a certain class. The goal is to build a model that predicts the class for future unlabeled instances. The model is evaluated using a train-test procedure, e.g. cross-validation.

To make results by different users comparable, you are given the exact train-test folds to be used, and you need to return at least the predictions generated by your model for each of the test instances. OpenML will use these predictions to calculate a range of evaluation measures on the server.

You can also upload your own evaluation measures, provided that the code for doing so is available from the implementation used. For extremely large datasets, it may be infeasible to upload all predictions. In those cases, you need to compute and provide the evaluations yourself.

Optionally, you can upload the model trained on all the input data. There is no restriction on the file format, but please use a well-known format or PMML.

Given inputs

Expected outputs

evaluations A list of user-defined evaluations of the task as key-value pairs. KeyValue (optional)
model A file containing the model built on all the input data. File (optional)
predictions The desired output format Predictions (optional)

How to submit runs

Using your favorite machine learning environment

Download this task directly in your environment and automatically upload your results

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From your own software

Use one of our APIs to download data from OpenML and upload your results

OpenML APIs