4lab/.ipynb_checkpoints/week4_scikit_learn-checkpoint.ipynb

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{
"cells": [
{
"cell_type": "code",
"execution_count": 2,
"id": "ece59960-3ec4-4347-a445-fe84dd84a773",
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{
"name": "stdout",
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"text": [
" precision recall f1-score support\n",
"\n",
" 0 1.00 1.00 1.00 14\n",
" 1 1.00 0.62 0.76 13\n",
" 2 0.38 1.00 0.55 3\n",
"\n",
" accuracy 0.83 30\n",
" macro avg 0.79 0.87 0.77 30\n",
"weighted avg 0.94 0.83 0.85 30\n",
"\n"
]
},
{
"name": "stderr",
"output_type": "stream",
"text": [
"C:\\Users\\leafy\\3labPython\\.venv\\Lib\\site-packages\\sklearn\\neural_network\\_multilayer_perceptron.py:691: ConvergenceWarning: Stochastic Optimizer: Maximum iterations (500) reached and the optimization hasn't converged yet.\n",
" warnings.warn(\n"
]
}
],
"source": [
"from sklearn.datasets import load_iris\n",
"from sklearn.model_selection import train_test_split\n",
"from sklearn.neural_network import MLPClassifier\n",
"from sklearn.metrics import classification_report\n",
"\n",
"# Загрузка и разбиение данных\n",
"X, y = load_iris(return_X_y=True)\n",
"X_train, X_test, y_train, y_test = train_test_split(X, y, test_size=0.2)\n",
"\n",
"# Модель MLP — многослойный перцептрон\n",
"clf = MLPClassifier(hidden_layer_sizes=(10,), activation='relu', max_iter=2500)\n",
"clf.fit(X_train, y_train)\n",
"\n",
"# Отчёт о точности\n",
"print(classification_report(y_test, clf.predict(X_test)))"
]
},
{
"cell_type": "code",
"execution_count": null,
"id": "7e5b2022-40e1-42de-816a-dd04ace07431",
"metadata": {},
"outputs": [],
"source": []
}
],
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"display_name": "Python 3 (ipykernel)",
"language": "python",
"name": "python3"
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"version": 3
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"file_extension": ".py",
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