OpenML
Supervised Classification on sleuth_ex1714

Supervised Classification on sleuth_ex1714

Task 3643 Supervised Classification sleuth_ex1714 524 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: 0.8593, f_measure: 0.7447, kappa: 0.4778, kb_relative_information_score: 25.8438, mean_absolute_error: 0.2212, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.7447, predictive_accuracy: 0.7447, prior_entropy: 0.9852, recall: 0.7447, relative_absolute_error: 0.4519, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3662, root_relative_squared_error: 0.7407, scimark_benchmark: 1386.5717, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9398, f_measure: 0.9149, kappa: 0.8259, kb_relative_information_score: 36.1927, mean_absolute_error: 0.1161, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.9149, predictive_accuracy: 0.9149, prior_entropy: 0.9852, recall: 0.9149, relative_absolute_error: 0.2372, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.2909, root_relative_squared_error: 0.5884, scimark_benchmark: 860.584,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9148, f_measure: 0.8519, kappa: 0.7012, kb_relative_information_score: 22.9952, mean_absolute_error: 0.2679, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8596, predictive_accuracy: 0.8511, prior_entropy: 0.9852, recall: 0.8511, relative_absolute_error: 0.5475, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3433, root_relative_squared_error: 0.6943, scimark_benchmark: 1321.527, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9056, f_measure: 0.9153, kappa: 0.8282, kb_relative_information_score: 37.3145, mean_absolute_error: 0.1016, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.919, predictive_accuracy: 0.9149, prior_entropy: 0.9852, recall: 0.9149, relative_absolute_error: 0.2076, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3008, root_relative_squared_error: 0.6083, scimark_benchmark: 1325.2092,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9167, f_measure: 0.9153, kappa: 0.8282, kb_relative_information_score: 36.0798, mean_absolute_error: 0.117, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.919, predictive_accuracy: 0.9149, prior_entropy: 0.9852, recall: 0.9149, relative_absolute_error: 0.2391, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3019, root_relative_squared_error: 0.6105, scimark_benchmark: 925.4974,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9167, f_measure: 0.9153, kappa: 0.8282, kb_relative_information_score: 35.1106, mean_absolute_error: 0.1311, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.919, predictive_accuracy: 0.9149, prior_entropy: 0.9852, recall: 0.9149, relative_absolute_error: 0.268, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.2884, root_relative_squared_error: 0.5832, scimark_benchmark: 869.6028,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9315, f_measure: 0.8096, kappa: 0.6158, kb_relative_information_score: 25.4105, mean_absolute_error: 0.235, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8172, predictive_accuracy: 0.8085, prior_entropy: 0.9852, recall: 0.8085, relative_absolute_error: 0.4802, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3378, root_relative_squared_error: 0.6831, scimark_benchmark: 1404.1865, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9278, f_measure: 0.8298, kappa: 0.6519, kb_relative_information_score: 25.6004, mean_absolute_error: 0.2353, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8298, predictive_accuracy: 0.8298, prior_entropy: 0.9852, recall: 0.8298, relative_absolute_error: 0.4808, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3311, root_relative_squared_error: 0.6696, scimark_benchmark: 924.3698,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9296, f_measure: 0.8505, kappa: 0.6934, kb_relative_information_score: 25.916, mean_absolute_error: 0.2322, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8507, predictive_accuracy: 0.8511, prior_entropy: 0.9852, recall: 0.8511, relative_absolute_error: 0.4746, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3317, root_relative_squared_error: 0.6709, scimark_benchmark: 933.3136,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9259, f_measure: 0.8505, kappa: 0.6934, kb_relative_information_score: 26.1355, mean_absolute_error: 0.2311, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8507, predictive_accuracy: 0.8511, prior_entropy: 0.9852, recall: 0.8511, relative_absolute_error: 0.4723, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3312, root_relative_squared_error: 0.6698, scimark_benchmark: 1339.3974,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9176, f_measure: 0.9153, kappa: 0.8282, kb_relative_information_score: 36.117, mean_absolute_error: 0.1217, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.919, predictive_accuracy: 0.9149, prior_entropy: 0.9852, recall: 0.9149, relative_absolute_error: 0.2486, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.2816, root_relative_squared_error: 0.5696, scimark_benchmark: 869.6028,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9074, f_measure: 0.8942, kappa: 0.7866, kb_relative_information_score: 37.0027, mean_absolute_error: 0.1039, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.9021, predictive_accuracy: 0.8936, prior_entropy: 0.9852, recall: 0.8936, relative_absolute_error: 0.2123, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3037, root_relative_squared_error: 0.6142, scimark_benchmark: 1368.9272, usercpu_time_millis: 20, usercpu_time_millis_training: 20,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.8963, f_measure: 0.9153, kappa: 0.8282, kb_relative_information_score: 37.6479, mean_absolute_error: 0.099, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.919, predictive_accuracy: 0.9149, prior_entropy: 0.9852, recall: 0.9149, relative_absolute_error: 0.2022, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.2959, root_relative_squared_error: 0.5985, scimark_benchmark: 908.2231, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.8667, f_measure: 0.8942, kappa: 0.7866, kb_relative_information_score: 37.2105, mean_absolute_error: 0.1017, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.9021, predictive_accuracy: 0.8936, prior_entropy: 0.9852, recall: 0.8936, relative_absolute_error: 0.2077, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3019, root_relative_squared_error: 0.6106, scimark_benchmark: 935.5075,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.8713, f_measure: 0.8942, kappa: 0.7866, kb_relative_information_score: 36.4882, mean_absolute_error: 0.1096, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.9021, predictive_accuracy: 0.8936, prior_entropy: 0.9852, recall: 0.8936, relative_absolute_error: 0.2241, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3091, root_relative_squared_error: 0.6253, scimark_benchmark: 937.1527, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.8861, f_measure: 0.8942, kappa: 0.7866, kb_relative_information_score: 34.592, mean_absolute_error: 0.134, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.9021, predictive_accuracy: 0.8936, prior_entropy: 0.9852, recall: 0.8936, relative_absolute_error: 0.2739, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.323, root_relative_squared_error: 0.6533, scimark_benchmark: 1318.1432, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9083, f_measure: 0.8298, kappa: 0.6519, kb_relative_information_score: 24.996, mean_absolute_error: 0.2365, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8298, predictive_accuracy: 0.8298, prior_entropy: 0.9852, recall: 0.8298, relative_absolute_error: 0.4834, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3535, root_relative_squared_error: 0.715, scimark_benchmark: 916.6405,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.8796, f_measure: 0.7666, kappa: 0.5244, kb_relative_information_score: 23.9923, mean_absolute_error: 0.2382, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.7679, predictive_accuracy: 0.766, prior_entropy: 0.9852, recall: 0.766, relative_absolute_error: 0.4867, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3726, root_relative_squared_error: 0.7536, scimark_benchmark: 854.5188,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.7648, f_measure: 0.7438, kappa: 0.5035, kb_relative_information_score: 22.2177, mean_absolute_error: 0.2553, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.7876, predictive_accuracy: 0.7447, prior_entropy: 0.9852, recall: 0.7447, relative_absolute_error: 0.5217, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.5053, root_relative_squared_error: 1.022, scimark_benchmark: 889.3151, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.5, f_measure: 0.4192, kb_relative_information_score: 5.7362, mean_absolute_error: 0.4255, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.33, predictive_accuracy: 0.5745, prior_entropy: 0.9852, recall: 0.5745, relative_absolute_error: 0.8696, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.6523, root_relative_squared_error: 1.3193, scimark_benchmark: 887.6719, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.7759, f_measure: 0.7854, kappa: 0.5591, kb_relative_information_score: 26.338, mean_absolute_error: 0.2128, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.7866, predictive_accuracy: 0.7872, prior_entropy: 0.9852, recall: 0.7872, relative_absolute_error: 0.4348, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.4613, root_relative_squared_error: 0.9329, scimark_benchmark: 1386.5717,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.8667, f_measure: 0.7224, kappa: 0.4306, kb_relative_information_score: 23.03, mean_absolute_error: 0.253, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.722, predictive_accuracy: 0.7234, prior_entropy: 0.9852, recall: 0.7234, relative_absolute_error: 0.5171, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3799, root_relative_squared_error: 0.7684, scimark_benchmark: 1335.643,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.5, f_measure: 0.254, kb_relative_information_score: -8.685, mean_absolute_error: 0.5745, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.1811, predictive_accuracy: 0.4255, prior_entropy: 0.9852, recall: 0.4255, relative_absolute_error: 1.1739, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.7579, root_relative_squared_error: 1.5329, scimark_benchmark: 942.9518, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9019, f_measure: 0.7854, kappa: 0.5591, kb_relative_information_score: 24.3288, mean_absolute_error: 0.2436, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.7866, predictive_accuracy: 0.7872, prior_entropy: 0.9852, recall: 0.7872, relative_absolute_error: 0.4978, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3579, root_relative_squared_error: 0.7239, scimark_benchmark: 882.7843, usercpu_time_millis: 20, usercpu_time_millis_testing: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.5, f_measure: 0.4192, kb_relative_information_score: 5.7362, mean_absolute_error: 0.4255, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.33, predictive_accuracy: 0.5745, prior_entropy: 0.9852, recall: 0.5745, relative_absolute_error: 0.8696, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.6523, root_relative_squared_error: 1.3193, scimark_benchmark: 1306.6379,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.8759, f_measure: 0.8729, kappa: 0.7422, kb_relative_information_score: 30.9538, mean_absolute_error: 0.1774, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8767, predictive_accuracy: 0.8723, prior_entropy: 0.9852, recall: 0.8723, relative_absolute_error: 0.3626, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3354, root_relative_squared_error: 0.6784, scimark_benchmark: 1250.8301, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9315, f_measure: 0.8515, kappa: 0.6973, kb_relative_information_score: 28.5565, mean_absolute_error: 0.2006, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8527, predictive_accuracy: 0.8511, prior_entropy: 0.9852, recall: 0.8511, relative_absolute_error: 0.41, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3183, root_relative_squared_error: 0.6438, scimark_benchmark: 1318.1432, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.8444, f_measure: 0.8505, kappa: 0.6934, kb_relative_information_score: 32.5186, mean_absolute_error: 0.1489, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8507, predictive_accuracy: 0.8511, prior_entropy: 0.9852, recall: 0.8511, relative_absolute_error: 0.3043, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3859, root_relative_squared_error: 0.7805, scimark_benchmark: 1361.1055,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9074, f_measure: 0.8298, kappa: 0.6519, kb_relative_information_score: 27.7419, mean_absolute_error: 0.2066, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8298, predictive_accuracy: 0.8298, prior_entropy: 0.9852, recall: 0.8298, relative_absolute_error: 0.4223, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3586, root_relative_squared_error: 0.7253, scimark_benchmark: 1318.5526,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9083, f_measure: 0.8519, kappa: 0.7012, kb_relative_information_score: 30.273, mean_absolute_error: 0.1807, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8596, predictive_accuracy: 0.8511, prior_entropy: 0.9852, recall: 0.8511, relative_absolute_error: 0.3693, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3416, root_relative_squared_error: 0.6909, scimark_benchmark: 1354.2491,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.8694, f_measure: 0.8723, kappa: 0.7389, kb_relative_information_score: 34.5787, mean_absolute_error: 0.1277, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8723, predictive_accuracy: 0.8723, prior_entropy: 0.9852, recall: 0.8723, relative_absolute_error: 0.2609, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3573, root_relative_squared_error: 0.7226, scimark_benchmark: 1359.379,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.525, f_measure: 0.4655, kappa: 0.057, kb_relative_information_score: 7.7964, mean_absolute_error: 0.4043, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.7627, predictive_accuracy: 0.5957, prior_entropy: 0.9852, recall: 0.5957, relative_absolute_error: 0.8261, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.6358, root_relative_squared_error: 1.2859, scimark_benchmark: 1308.9788,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.8509, f_measure: 0.8519, kappa: 0.7012, kb_relative_information_score: 30.8413, mean_absolute_error: 0.1718, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8596, predictive_accuracy: 0.8511, prior_entropy: 0.9852, recall: 0.8511, relative_absolute_error: 0.351, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3802, root_relative_squared_error: 0.769, scimark_benchmark: 1465.2979,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.6889, f_measure: 0.6996, kappa: 0.3827, kb_relative_information_score: 18.0973, mean_absolute_error: 0.2979, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.6997, predictive_accuracy: 0.7021, prior_entropy: 0.9852, recall: 0.7021, relative_absolute_error: 0.6087, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.5458, root_relative_squared_error: 1.1038, scimark_benchmark: 1465.2979,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.888, f_measure: 0.8932, kappa: 0.781, kb_relative_information_score: 36.6389, mean_absolute_error: 0.1064, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8937, predictive_accuracy: 0.8936, prior_entropy: 0.9852, recall: 0.8936, relative_absolute_error: 0.2174, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3262, root_relative_squared_error: 0.6597, scimark_benchmark: 1353.5686, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.4611, f_measure: 0.4192, kb_relative_information_score: -0.0774, mean_absolute_error: 0.4898, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.33, predictive_accuracy: 0.5745, prior_entropy: 0.9852, recall: 0.5745, relative_absolute_error: 1.001, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.4948, root_relative_squared_error: 1.0008, scimark_benchmark: 1503.3362,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.8509, f_measure: 0.8519, kappa: 0.7012, kb_relative_information_score: 30.8413, mean_absolute_error: 0.1718, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8596, predictive_accuracy: 0.8511, prior_entropy: 0.9852, recall: 0.8511, relative_absolute_error: 0.351, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3802, root_relative_squared_error: 0.769, scimark_benchmark: 1384.4418,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.8407, f_measure: 0.8298, kappa: 0.6519, kb_relative_information_score: 30.2285, mean_absolute_error: 0.1732, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8298, predictive_accuracy: 0.8298, prior_entropy: 0.9852, recall: 0.8298, relative_absolute_error: 0.3538, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3959, root_relative_squared_error: 0.8007, scimark_benchmark: 931.2336, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.8741, f_measure: 0.8078, kappa: 0.6058, kb_relative_information_score: 28.4632, mean_absolute_error: 0.1907, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8078, predictive_accuracy: 0.8085, prior_entropy: 0.9852, recall: 0.8085, relative_absolute_error: 0.3897, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.4251, root_relative_squared_error: 0.8599, scimark_benchmark: 945.6434, usercpu_time_millis: 10, usercpu_time_millis_training: 10,
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0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.8481, f_measure: 0.7651, kappa: 0.5182, kb_relative_information_score: 27.1475, mean_absolute_error: 0.2023, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.7649, predictive_accuracy: 0.766, prior_entropy: 0.9852, recall: 0.766, relative_absolute_error: 0.4134, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3999, root_relative_squared_error: 0.8088, scimark_benchmark: 923.7642, usercpu_time_millis: 10, usercpu_time_millis_testing: 10,
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0 likes - 0 downloads - 0 reach - area_under_roc_curve: 0.9463, build_cpu_time: 0.008, build_memory: 144544451.234, f_measure: 0.8306, kappa: 0.6563, kb_relative_information_score: 31.1552, mean_absolute_error: 0.1613, mean_prior_absolute_error: 0.4894, number_of_instances: 47, precision: 0.8344, predictive_accuracy: 0.8298, prior_entropy: 0.9852, recall: 0.8298, relative_absolute_error: 0.3297, root_mean_prior_squared_error: 0.4944, root_mean_squared_error: 0.3925, root_relative_squared_error: 0.7938, scimark_benchmark: 916.8903,
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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

OpenML bootcamp

From your own software

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

OpenML APIs