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Model description

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Intended uses & limitations

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Training Procedure

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Hyperparameters

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Hyperparameter Value
memory
steps [('scaler', MinMaxScaler()), ('mlp', MLPClassifier(verbose=True))]
verbose False
scaler MinMaxScaler()
mlp MLPClassifier(verbose=True)
scaler__clip False
scaler__copy True
scaler__feature_range (0, 1)
mlp__activation relu
mlp__alpha 0.0001
mlp__batch_size auto
mlp__beta_1 0.9
mlp__beta_2 0.999
mlp__early_stopping False
mlp__epsilon 1e-08
mlp__hidden_layer_sizes (100,)
mlp__learning_rate constant
mlp__learning_rate_init 0.001
mlp__max_fun 15000
mlp__max_iter 200
mlp__momentum 0.9
mlp__n_iter_no_change 10
mlp__nesterovs_momentum True
mlp__power_t 0.5
mlp__random_state
mlp__shuffle True
mlp__solver adam
mlp__tol 0.0001
mlp__validation_fraction 0.1
mlp__verbose True
mlp__warm_start False

Model Plot

Pipeline(steps=[('scaler', MinMaxScaler()),('mlp', MLPClassifier(verbose=True))])
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Evaluation Results

Metric Value
accuracy 0.863536
f1 score 0.77677
precision 0.818878
recall 0.73878

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eval_method

The model is evaluated using test split, on accuracy, precision, recall and f1.

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