{"id":1233,"date":"2023-07-27T04:52:33","date_gmt":"2023-07-27T04:52:33","guid":{"rendered":"https:\/\/statorials.org\/ar\/xgboost-%d9%81%d9%8a-%d8%b5\/"},"modified":"2023-07-27T04:52:33","modified_gmt":"2023-07-27T04:52:33","slug":"xgboost-%d9%81%d9%8a-%d8%b5","status":"publish","type":"post","link":"https:\/\/statorials.org\/ar\/xgboost-%d9%81%d9%8a-%d8%b5\/","title":{"rendered":"Xgboost \u0641\u064a r: \u0645\u062b\u0627\u0644 \u062e\u0637\u0648\u0629 \u0628\u062e\u0637\u0648\u0629"},"content":{"rendered":"<p><\/p>\n<hr>\n<p style=\";text-align:right;direction:rtl\"><span style=\"color: #000000;\"><a href=\"https:\/\/statorials.org\/ar\/\u062a\u0639\u0632\u064a\u0632-\u0627\u0644\u062a\u0639\u0644\u0645-\u0627\u0644\u0627\u0653\u0644\u064a\/\" target=\"_blank\" rel=\"noopener noreferrer\">\u0627\u0644\u062a\u0639\u0632\u064a\u0632<\/a> \u0647\u0648 \u0623\u0633\u0644\u0648\u0628 \u0644\u0644\u062a\u0639\u0644\u0645 \u0627\u0644\u0622\u0644\u064a \u0623\u062b\u0628\u062a \u0623\u0646\u0647 \u064a\u0646\u062a\u062c \u0646\u0645\u0627\u0630\u062c \u0630\u0627\u062a \u062f\u0642\u0629 \u062a\u0646\u0628\u0624\u064a\u0629 \u0639\u0627\u0644\u064a\u0629.<\/span><\/p>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0625\u062d\u062f\u0649 \u0627\u0644\u0637\u0631\u0642 \u0627\u0644\u0623\u0643\u062b\u0631 \u0634\u064a\u0648\u0639\u064b\u0627 \u0644\u062a\u0646\u0641\u064a\u0630 \u0627\u0644\u062a\u0639\u0632\u064a\u0632 \u0639\u0645\u0644\u064a\u064b\u0627 \u0647\u064a \u0627\u0633\u062a\u062e\u062f\u0627\u0645 <strong>XGBoost<\/strong> \u060c \u0648\u0647\u0648 \u0627\u062e\u062a\u0635\u0627\u0631 \u0644\u0640 &#8220;extreme gradient boosting&#8221;.<\/span><\/p>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u064a\u0642\u062f\u0645 \u0647\u0630\u0627 \u0627\u0644\u0628\u0631\u0646\u0627\u0645\u062c \u0627\u0644\u062a\u0639\u0644\u064a\u0645\u064a \u0645\u062b\u0627\u0644\u0627\u064b \u062e\u0637\u0648\u0629 \u0628\u062e\u0637\u0648\u0629 \u062d\u0648\u0644 \u0643\u064a\u0641\u064a\u0629 \u0627\u0633\u062a\u062e\u062f\u0627\u0645 XGBoost \u0644\u0645\u0644\u0627\u0621\u0645\u0629 \u0646\u0645\u0648\u0630\u062c \u0645\u062d\u0633\u0651\u0646 \u0641\u064a R.<\/span><\/p>\n<h3 style=\";text-align:right;direction:rtl\"> <strong><span style=\"color: #000000;\">\u0627\u0644\u062e\u0637\u0648\u0629 1: \u062a\u062d\u0645\u064a\u0644 \u0627\u0644\u062d\u0632\u0645 \u0627\u0644\u0644\u0627\u0632\u0645\u0629<\/span><\/strong><\/h3>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0623\u0648\u0644\u0627\u064b\u060c \u0633\u0646\u0642\u0648\u0645 \u0628\u062a\u062d\u0645\u064a\u0644 \u0627\u0644\u0645\u0643\u062a\u0628\u0627\u062a \u0627\u0644\u0644\u0627\u0632\u0645\u0629.<\/span><\/p>\n<pre style=\"background-color: #ececec; font-size: 15px;\"> <strong><span style=\"color: #993300;\">library<\/span> (xgboost) <span style=\"color: #008080;\">#for fitting the xgboost model<\/span>\n<span style=\"color: #993300;\">library<\/span> (caret) <span style=\"color: #008080;\">#for general data preparation and model fitting<\/span>\n<\/strong><\/pre>\n<h3 style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\"><strong>\u0627\u0644\u062e\u0637\u0648\u0629 2: \u062a\u062d\u0645\u064a\u0644 \u0627\u0644\u0628\u064a\u0627\u0646\u0627\u062a<\/strong><\/span><\/h3>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0641\u064a \u0647\u0630\u0627 \u0627\u0644\u0645\u062b\u0627\u0644\u060c \u0633\u0648\u0641 \u0646\u0644\u0627\u0626\u0645 \u0646\u0645\u0648\u0630\u062c \u0627\u0644\u0627\u0646\u062d\u062f\u0627\u0631 \u0627\u0644\u0645\u062d\u0633\u0646 \u0644\u0645\u062c\u0645\u0648\u0639\u0629 \u0628\u064a\u0627\u0646\u0627\u062a <strong>\u0628\u0648\u0633\u0637\u0646<\/strong> \u0645\u0646 \u062d\u0632\u0645\u0629 <strong>MASS<\/strong> .<\/span><\/p>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u062a\u062d\u062a\u0648\u064a \u0645\u062c\u0645\u0648\u0639\u0629 \u0627\u0644\u0628\u064a\u0627\u0646\u0627\u062a \u0647\u0630\u0647 \u0639\u0644\u0649 13 \u0645\u062a\u063a\u064a\u0631\u064b\u0627 \u0644\u0644\u062a\u0646\u0628\u0624 \u0633\u0646\u0633\u062a\u062e\u062f\u0645\u0647\u0627 \u0644\u0644\u062a\u0646\u0628\u0624 <a href=\"https:\/\/statorials.org\/ar\/\u0627\u0644\u0645\u062a\u063a\u064a\u0631\u0627\u062a-\u0627\u0644\u0627\u0633\u062a\u062c\u0627\u0628\u0627\u062a-\u0627\u0644\u062a\u0641\u0633\u064a\u0631\u064a\u0629\/\" target=\"_blank\" rel=\"noopener noreferrer\">\u0628\u0645\u062a\u063a\u064a\u0631 \u0627\u0633\u062a\u062c\u0627\u0628\u0629<\/a> \u064a\u0633\u0645\u0649 <strong>mdev<\/strong> \u060c \u0648\u0627\u0644\u0630\u064a \u064a\u0645\u062b\u0644 \u0627\u0644\u0642\u064a\u0645\u0629 \u0627\u0644\u0645\u062a\u0648\u0633\u0637\u0629 \u0644\u0644\u0645\u0646\u0627\u0632\u0644 \u0641\u064a \u0645\u0646\u0627\u0637\u0642 \u0627\u0644\u062a\u0639\u062f\u0627\u062f \u0627\u0644\u0645\u062e\u062a\u0644\u0641\u0629 \u062d\u0648\u0644 \u0628\u0648\u0633\u0637\u0646.<\/span><\/p>\n<pre style=\"background-color: #ececec; font-size: 15px;\"> <strong><span style=\"color: #993300;\"><span style=\"color: #000000;\"><span style=\"color: #008080;\">#load the data\n<\/span>data = MASS::Boston\n\n<span style=\"color: #008080;\">#view the structure of the data\n<\/span>str(data) \n\n'data.frame': 506 obs. of 14 variables:\n $ crim: num 0.00632 0.02731 0.02729 0.03237 0.06905 ...\n $ zn : num 18 0 0 0 0 0 12.5 12.5 12.5 12.5 ...\n $ indus: num 2.31 7.07 7.07 2.18 2.18 2.18 7.87 7.87 7.87 7.87 ...\n $chas: int 0 0 0 0 0 0 0 0 0 0 ...\n $ nox: num 0.538 0.469 0.469 0.458 0.458 0.458 0.524 0.524 0.524 0.524 ...\n $rm: num 6.58 6.42 7.18 7 7.15 ...\n $ age: num 65.2 78.9 61.1 45.8 54.2 58.7 66.6 96.1 100 85.9 ...\n $ dis: num 4.09 4.97 4.97 6.06 6.06 ...\n $rad: int 1 2 2 3 3 3 5 5 5 5 ...\n $ tax: num 296 242 242 222 222 222 311 311 311 311 ...\n $ptratio: num 15.3 17.8 17.8 18.7 18.7 18.7 15.2 15.2 15.2 15.2 ...\n $ black: num 397 397 393 395 397 ...\n $ lstat: num 4.98 9.14 4.03 2.94 5.33 ...\n $ medv: num 24 21.6 34.7 33.4 36.2 28.7 22.9 27.1 16.5 18.9 ...\n<\/span><\/span><\/strong><\/pre>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u064a\u0645\u0643\u0646\u0646\u0627 \u0623\u0646 \u0646\u0631\u0649 \u0623\u0646 \u0645\u062c\u0645\u0648\u0639\u0629 \u0627\u0644\u0628\u064a\u0627\u0646\u0627\u062a \u062a\u062d\u062a\u0648\u064a \u0639\u0644\u0649 506 <a href=\"https:\/\/statorials.org\/ar\/\u0627\u0644\u0645\u0644\u0627\u062d\u0638\u0629-\u0641\u064a-\u0627\u0644\u0627\u0655\u062d\u0635\u0627\u0621\/\" target=\"_blank\" rel=\"noopener noreferrer\">\u0645\u0644\u0627\u062d\u0638\u0629<\/a> \u064814 \u0645\u062a\u063a\u064a\u0631\u064b\u0627 \u0641\u064a \u0627\u0644\u0645\u062c\u0645\u0648\u0639.<\/span><\/p>\n<h3 style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\"><strong>\u0627\u0644\u062e\u0637\u0648\u0629 3: \u062a\u062d\u0636\u064a\u0631 \u0627\u0644\u0628\u064a\u0627\u0646\u0627\u062a<\/strong><\/span><\/h3>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0628\u0639\u062f \u0630\u0644\u0643\u060c \u0633\u0648\u0641 \u0646\u0633\u062a\u062e\u062f\u0645 \u0648\u0638\u064a\u0641\u0629 <strong>createDataPartition()<\/strong> \u0645\u0646 \u062d\u0632\u0645\u0629 \u0639\u0644\u0627\u0645\u0629 \u0627\u0644\u0625\u0642\u062d\u0627\u0645 \u0644\u062a\u0642\u0633\u064a\u0645 \u0645\u062c\u0645\u0648\u0639\u0629 \u0627\u0644\u0628\u064a\u0627\u0646\u0627\u062a \u0627\u0644\u0623\u0635\u0644\u064a\u0629 \u0625\u0644\u0649 \u0645\u062c\u0645\u0648\u0639\u0629 \u062a\u062f\u0631\u064a\u0628 \u0648\u0627\u062e\u062a\u0628\u0627\u0631.<\/span><\/p>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0641\u064a \u0647\u0630\u0627 \u0627\u0644\u0645\u062b\u0627\u0644\u060c \u0633\u0646\u062e\u062a\u0627\u0631 \u0627\u0633\u062a\u062e\u062f\u0627\u0645 80% \u0645\u0646 \u0645\u062c\u0645\u0648\u0639\u0629 \u0627\u0644\u0628\u064a\u0627\u0646\u0627\u062a \u0627\u0644\u0623\u0635\u0644\u064a\u0629 \u0643\u062c\u0632\u0621 \u0645\u0646 \u0645\u062c\u0645\u0648\u0639\u0629 \u0627\u0644\u062a\u062f\u0631\u064a\u0628.<\/span><\/p>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0644\u0627\u062d\u0638 \u0623\u0646 \u062d\u0632\u0645\u0629 xgboost \u062a\u0633\u062a\u062e\u062f\u0645 \u0623\u064a\u0636\u064b\u0627 \u0628\u064a\u0627\u0646\u0627\u062a \u0627\u0644\u0645\u0635\u0641\u0648\u0641\u0629\u060c \u0644\u0630\u0644\u0643 \u0633\u0646\u0633\u062a\u062e\u062f\u0645 \u0627\u0644\u062f\u0627\u0644\u0629 <strong>data.matrix()<\/strong> \u0644\u0644\u0627\u062d\u062a\u0641\u0627\u0638 \u0628\u0645\u062a\u063a\u064a\u0631\u0627\u062a \u0627\u0644\u062a\u0648\u0642\u0639 \u0627\u0644\u062e\u0627\u0635\u0629 \u0628\u0646\u0627.<\/span><\/p>\n<pre style=\"background-color: #ececec; font-size: 15px;\"> <strong><span style=\"color: #993300;\"><span style=\"color: #000000;\"><span style=\"color: #008080;\">#make this example reproducible\n<\/span>set.seed(0)\n\n<span style=\"color: #008080;\">#split into training (80%) and testing set (20%)\n<\/span>parts = createDataPartition(data$medv, p = <span style=\"color: #008000;\">.8<\/span> , list = <span style=\"color: #008000;\">F<\/span> )\ntrain = data[parts, ]\ntest = data[-parts, ]\n\n<span style=\"color: #008080;\">#define predictor and response variables in training set\n<\/span>train_x = data. <span style=\"color: #3366ff;\">matrix<\/span> (train[, -13])\ntrain_y = train[,13]\n\n<span style=\"color: #008080;\">#define predictor and response variables in testing set\n<\/span>test_x = data. <span style=\"color: #3366ff;\">matrix<\/span> (test[, -13])\ntest_y = test[, 13]\n\n<span style=\"color: #008080;\">#define final training and testing sets\n<\/span>xgb_train = xgb. <span style=\"color: #3366ff;\">DMatrix<\/span> (data = train_x, label = train_y)\nxgb_test = xgb. <span style=\"color: #3366ff;\">DMatrix<\/span> (data = test_x, label = test_y)\n<\/span><\/span><\/strong><\/pre>\n<h3 style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\"><strong>\u0627\u0644\u062e\u0637\u0648\u0629 4: \u0636\u0628\u0637 \u0627\u0644\u0646\u0645\u0648\u0630\u062c<\/strong><\/span><\/h3>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0628\u0639\u062f \u0630\u0644\u0643\u060c \u0633\u0646\u0642\u0648\u0645 \u0628\u0636\u0628\u0637 \u0646\u0645\u0648\u0630\u062c XGBoost \u0628\u0627\u0633\u062a\u062e\u062f\u0627\u0645 \u0627\u0644\u062f\u0627\u0644\u0629 <strong>xgb.train()<\/strong> \u060c \u0627\u0644\u062a\u064a \u062a\u0639\u0631\u0636 \u062a\u062f\u0631\u064a\u0628 \u0648\u0627\u062e\u062a\u0628\u0627\u0631 RMSE (\u0645\u062a\u0648\u0633\u0637 \u0645\u0631\u0628\u0639 \u0627\u0644\u062e\u0637\u0623) \u0644\u0643\u0644 \u062f\u0648\u0631\u0629 \u062a\u0639\u0632\u064a\u0632.<\/span><\/p>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0644\u0627\u062d\u0638 \u0623\u0646\u0646\u0627 \u0627\u062e\u062a\u0631\u0646\u0627 \u0627\u0633\u062a\u062e\u062f\u0627\u0645 70 \u062c\u0648\u0644\u0629 \u0641\u064a \u0647\u0630\u0627 \u0627\u0644\u0645\u062b\u0627\u0644\u060c \u0648\u0644\u0643\u0646 \u0628\u0627\u0644\u0646\u0633\u0628\u0629 \u0644\u0645\u062c\u0645\u0648\u0639\u0627\u062a \u0627\u0644\u0628\u064a\u0627\u0646\u0627\u062a \u0627\u0644\u0623\u0643\u0628\u0631 \u062d\u062c\u0645\u064b\u0627\u060c \u0644\u064a\u0633 \u0645\u0646 \u063a\u064a\u0631 \u0627\u0644\u0645\u0623\u0644\u0648\u0641 \u0627\u0633\u062a\u062e\u062f\u0627\u0645 \u0645\u0626\u0627\u062a \u0623\u0648 \u062d\u062a\u0649 \u0622\u0644\u0627\u0641 \u0627\u0644\u062c\u0648\u0644\u0627\u062a. \u0641\u0642\u0637 \u0636\u0639 \u0641\u064a \u0627\u0639\u062a\u0628\u0627\u0631\u0643 \u0623\u0646 \u0627\u0644\u062c\u0648\u0644\u0627\u062a \u0627\u0644\u0623\u0643\u062b\u0631\u060c \u0643\u0644\u0645\u0627 \u0632\u0627\u062f \u0648\u0642\u062a \u0627\u0644\u062a\u0634\u063a\u064a\u0644.<\/span><\/p>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0644\u0627\u062d\u0638 \u0623\u064a\u0636\u064b\u0627 \u0623\u0646 \u0627\u0644\u0648\u0633\u064a\u0637\u0629 <strong>max.degree<\/strong> \u062a\u062d\u062f\u062f \u0639\u0645\u0642 \u062a\u0637\u0648\u0631 \u0623\u0634\u062c\u0627\u0631 \u0627\u0644\u0642\u0631\u0627\u0631 \u0627\u0644\u0641\u0631\u062f\u064a\u0629. \u0639\u0627\u062f\u0629\u064b \u0645\u0627 \u0646\u062e\u062a\u0627\u0631 \u0647\u0630\u0627 \u0627\u0644\u0631\u0642\u0645 \u0645\u0646\u062e\u0641\u0636\u064b\u0627 \u062c\u062f\u064b\u0627\u060c \u0645\u062b\u0644 2 \u0623\u0648 3\u060c \u0645\u0646 \u0623\u062c\u0644 \u0632\u0631\u0627\u0639\u0629 \u0623\u0634\u062c\u0627\u0631 \u0623\u0635\u063a\u0631. \u0648\u0642\u062f \u062a\u0628\u064a\u0646 \u0623\u0646 \u0647\u0630\u0627 \u0627\u0644\u0646\u0647\u062c \u064a\u0645\u064a\u0644 \u0625\u0644\u0649 \u0625\u0646\u062a\u0627\u062c \u0646\u0645\u0627\u0630\u062c \u0623\u0643\u062b\u0631 \u062f\u0642\u0629.<\/span><\/p>\n<pre style=\"background-color: #ececec; font-size: 15px;\"> <strong><span style=\"color: #993300;\"><span style=\"color: #000000;\"><span style=\"color: #008080;\">#define watchlist\n<\/span>watchlist = list(train=xgb_train, test=xgb_test)\n\n<span style=\"color: #008080;\">#fit XGBoost model and display training and testing data at each round\n<\/span>model = xgb.train(data = xgb_train, max.depth = <span style=\"color: #008000;\">3<\/span> , watchlist=watchlist, nrounds = <span style=\"color: #008000;\">70<\/span> )\n\n[1] train-rmse:10.167523 test-rmse:10.839775 \n[2] train-rmse:7.521903 test-rmse:8.329679 \n[3] train-rmse:5.702393 test-rmse:6.691415 \n[4] train-rmse:4.463687 test-rmse:5.631310 \n[5] train-rmse:3.666278 test-rmse:4.878750 \n[6] train-rmse:3.159799 test-rmse:4.485698 \n[7] train-rmse:2.855133 test-rmse:4.230533 \n[8] train-rmse:2.603367 test-rmse:4.099881 \n[9] train-rmse:2.445718 test-rmse:4.084360 \n[10] train-rmse:2.327318 test-rmse:3.993562 \n[11] train-rmse:2.267629 test-rmse:3.944454 \n[12] train-rmse:2.189527 test-rmse:3.930808 \n[13] train-rmse:2.119130 test-rmse:3.865036 \n[14] train-rmse:2.086450 test-rmse:3.875088 \n[15] train-rmse:2.038356 test-rmse:3.881442 \n[16] train-rmse:2.010995 test-rmse:3.883322 \n[17] train-rmse:1.949505 test-rmse:3.844382 \n[18] train-rmse:1.911711 test-rmse:3.809830 \n[19] train-rmse:1.888488 test-rmse:3.809830 \n[20] train-rmse:1.832443 test-rmse:3.758502 \n[21] train-rmse:1.816150 test-rmse:3.770216 \n[22] train-rmse:1.801369 test-rmse:3.770474 \n[23] train-rmse:1.788891 test-rmse:3.766608 \n[24] train-rmse:1.751795 test-rmse:3.749583 \n[25] train-rmse:1.713306 test-rmse:3.720173 \n[26] train-rmse:1.672227 test-rmse:3.675086 \n[27] train-rmse:1.648323 test-rmse:3.675977 \n[28] train-rmse:1.609927 test-rmse:3.745338 \n[29] train-rmse:1.594891 test-rmse:3.756049 \n[30] train-rmse:1.578573 test-rmse:3.760104 \n[31] train-rmse:1.559810 test-rmse:3.727940 \n[32] train-rmse:1.547852 test-rmse:3.731702 \n[33] train-rmse:1.534589 test-rmse:3.729761 \n[34] train-rmse:1.520566 test-rmse:3.742681 \n[35] train-rmse:1.495155 test-rmse:3.732993 \n[36] train-rmse:1.467939 test-rmse:3.738329 \n[37] train-rmse:1.446343 test-rmse:3.713748 \n[38] train-rmse:1.435368 test-rmse:3.709469 \n[39] train-rmse:1.401356 test-rmse:3.710637 \n[40] train-rmse:1.390318 test-rmse:3.709461 \n[41] train-rmse:1.372635 test-rmse:3.708049 \n[42] train-rmse:1.367977 test-rmse:3.707429 \n[43] train-rmse:1.359531 test-rmse:3.711663 \n[44] train-rmse:1.335347 test-rmse:3.709101 \n[45] train-rmse:1.331750 test-rmse:3.712490 \n[46] train-rmse:1.313087 test-rmse:3.722981 \n[47] train-rmse:1.284392 test-rmse:3.712840 \n[48] train-rmse:1.257714 test-rmse:3.697482 \n[49] train-rmse:1.248218 test-rmse:3.700167 \n[50] train-rmse:1.243377 test-rmse:3.697914 \n[51] train-rmse:1.231956 test-rmse:3.695797 \n[52] train-rmse:1.219341 test-rmse:3.696277 \n[53] train-rmse:1.207413 test-rmse:3.691465 \n[54] train-rmse:1.197197 test-rmse:3.692108 \n[55] train-rmse:1.171748 test-rmse:3.683577 \n[56] train-rmse:1.156332 test-rmse:3.674458 \n[57] train-rmse:1.147686 test-rmse:3.686367 \n[58] train-rmse:1.143572 test-rmse:3.686375 \n[59] train-rmse:1.129780 test-rmse:3.679791 \n[60] train-rmse:1.111257 test-rmse:3.679022 \n[61] train-rmse:1.093541 test-rmse:3.699670 \n[62] train-rmse:1.083934 test-rmse:3.708187 \n[63] train-rmse:1.067109 test-rmse:3.712538 \n[64] train-rmse:1.053887 test-rmse:3.722480 \n[65] train-rmse:1.042127 test-rmse:3.720720 \n[66] train-rmse:1.031617 test-rmse:3.721224 \n[67] train-rmse:1.016274 test-rmse:3.699549 \n[68] train-rmse:1.008184 test-rmse:3.709522 \n[69] train-rmse:0.999220 test-rmse:3.708000 \n[70] train-rmse:0.985907 test-rmse:3.705192 \n<\/span><\/span><\/strong><\/pre>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0645\u0646 \u0627\u0644\u0646\u062a\u064a\u062c\u0629\u060c \u064a\u0645\u0643\u0646\u0646\u0627 \u0623\u0646 \u0646\u0631\u0649 \u0623\u0646 \u0627\u0644\u062d\u062f \u0627\u0644\u0623\u062f\u0646\u0649 \u0644\u0627\u062e\u062a\u0628\u0627\u0631 RMSE \u062a\u0645 \u062a\u062d\u0642\u064a\u0642\u0647 \u0639\u0646\u062f <strong>56<\/strong> \u0637\u0644\u0642\u0629. \u0628\u0639\u062f \u0647\u0630\u0647 \u0627\u0644\u0646\u0642\u0637\u0629\u060c \u064a\u0628\u062f\u0623 \u0627\u062e\u062a\u0628\u0627\u0631 RMSE \u0641\u064a \u0627\u0644\u0632\u064a\u0627\u062f\u0629\u060c \u0645\u0645\u0627 \u064a\u0634\u064a\u0631 \u0625\u0644\u0649 \u0623\u0646\u0646\u0627 <a href=\"https:\/\/statorials.org\/ar\/\u0627\u0644\u0627\u0655\u0641\u0631\u0627\u0637-\u0641\u064a-\u062a\u0639\u0644\u0645-\u0627\u0644\u0627\u0653\u0644\u0629\/\" target=\"_blank\" rel=\"noopener noreferrer\">\u0646\u0628\u0627\u0644\u063a \u0641\u064a \u062a\u062c\u0647\u064a\u0632 \u0628\u064a\u0627\u0646\u0627\u062a \u0627\u0644\u062a\u062f\u0631\u064a\u0628<\/a> .<\/span><\/p>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0644\u0630\u0644\u0643\u060c \u0633\u0646\u0642\u0648\u0645 \u0628\u062a\u0639\u064a\u064a\u0646 \u0646\u0645\u0648\u0630\u062c XGBoost \u0627\u0644\u0646\u0647\u0627\u0626\u064a \u0627\u0644\u062e\u0627\u0635 \u0628\u0646\u0627 \u0644\u0627\u0633\u062a\u062e\u062f\u0627\u0645 56 \u062c\u0648\u0644\u0629:<\/span><\/p>\n<pre style=\"background-color: #ececec; font-size: 15px;\"> <strong><span style=\"color: #993300;\"><span style=\"color: #000000;\"><span style=\"color: #008080;\">#define final model\n<\/span>final = xgboost(data = xgb_train, max.depth = <span style=\"color: #008000;\">3<\/span> , nrounds = <span style=\"color: #008000;\">56<\/span> , verbose = <span style=\"color: #008000;\">0<\/span> )<\/span><\/span><\/strong><\/pre>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0645\u0644\u0627\u062d\u0638\u0629: \u062a\u062e\u0628\u0631 \u0627\u0644\u0648\u0633\u064a\u0637\u0629 <strong>Verbose=0<\/strong> R \u0628\u0639\u062f\u0645 \u0639\u0631\u0636 \u062e\u0637\u0623 \u0627\u0644\u062a\u062f\u0631\u064a\u0628 \u0648\u0627\u0644\u0627\u062e\u062a\u0628\u0627\u0631 \u0644\u0643\u0644 \u062c\u0648\u0644\u0629.<\/span><\/p>\n<h3 style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\"><strong>\u0627\u0644\u062e\u0637\u0648\u0629 5: \u0627\u0633\u062a\u062e\u062f\u0645 \u0627\u0644\u0646\u0645\u0648\u0630\u062c \u0644\u0639\u0645\u0644 \u062a\u0646\u0628\u0624\u0627\u062a<\/strong><\/span><\/h3>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0648\u0623\u062e\u064a\u0631\u064b\u0627\u060c \u064a\u0645\u0643\u0646\u0646\u0627 \u0627\u0633\u062a\u062e\u062f\u0627\u0645 \u0627\u0644\u0646\u0645\u0648\u0630\u062c \u0627\u0644\u0646\u0647\u0627\u0626\u064a \u0627\u0644\u0645\u062d\u0633\u0646 \u0644\u0639\u0645\u0644 \u062a\u0646\u0628\u0624\u0627\u062a \u062d\u0648\u0644 \u0627\u0644\u0642\u064a\u0645\u0629 \u0627\u0644\u0645\u062a\u0648\u0633\u0637\u0629 \u0644\u0645\u0646\u0627\u0632\u0644 \u0628\u0648\u0633\u0637\u0646 \u0641\u064a \u0645\u062c\u0645\u0648\u0639\u0629 \u0627\u0644\u0627\u062e\u062a\u0628\u0627\u0631.<\/span><\/p>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0633\u0646\u0642\u0648\u0645 \u0628\u0639\u062f \u0630\u0644\u0643 \u0628\u062d\u0633\u0627\u0628 \u0645\u0642\u0627\u064a\u064a\u0633 \u0627\u0644\u062f\u0642\u0629 \u0627\u0644\u062a\u0627\u0644\u064a\u0629 \u0644\u0644\u0646\u0645\u0648\u0630\u062c:<\/span><\/p>\n<ul style=\";text-align:right;direction:rtl\">\n<li style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\"><strong>MSE:<\/strong> \u064a\u0639\u0646\u064a \u062e\u0637\u0623 \u0645\u0631\u0628\u0639<\/span><\/li>\n<li style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\"><strong>MAE:<\/strong> \u064a\u0639\u0646\u064a \u0627\u0644\u062e\u0637\u0623 \u0627\u0644\u0645\u0637\u0644\u0642<\/span><\/li>\n<li style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\"><strong>RMSE:<\/strong> \u062c\u0630\u0631 \u0645\u062a\u0648\u0633\u0637 \u0645\u0631\u0628\u0639 \u0627\u0644\u062e\u0637\u0623<\/span><\/li>\n<\/ul>\n<pre style=\"background-color: #ececec; font-size: 15px;\"> <strong><span style=\"color: #993300;\"><span style=\"color: #000000;\"><span style=\"color: #008080;\"><span style=\"color: #000000;\">mean((test_y - pred_y)^2)<\/span> #mse\n<span style=\"color: #000000;\">caret::MAE(test_y, pred_y)<\/span> #mae\n<span style=\"color: #000000;\">caret::RMSE(test_y, pred_y)<\/span> #rmse\n\n<\/span>[1] 13.50164\n[1] 2.409426\n[1] 3.674457<\/span><\/span><\/strong><\/pre>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u062a\u0628\u064a\u0646 \u0623\u0646 \u0645\u062a\u0648\u0633\u0637 \u062e\u0637\u0623 \u0627\u0644\u0645\u0631\u0628\u0639 \u0647\u0648 <strong>3.674457<\/strong> . \u064a\u0645\u062b\u0644 \u0647\u0630\u0627 \u0645\u062a\u0648\u0633\u0637 \u0627\u0644\u0641\u0631\u0642 \u0628\u064a\u0646 \u0627\u0644\u062a\u0646\u0628\u0624 \u0627\u0644\u0630\u064a \u062a\u0645 \u0625\u062c\u0631\u0627\u0624\u0647 \u0644\u0642\u064a\u0645 \u0627\u0644\u0645\u0646\u0632\u0644 \u0627\u0644\u0645\u062a\u0648\u0633\u0637\u0629 \u0648\u0642\u064a\u0645 \u0627\u0644\u0645\u0646\u0632\u0644 \u0627\u0644\u0641\u0639\u0644\u064a\u0629 \u0627\u0644\u062a\u064a \u062a\u0645\u062a \u0645\u0644\u0627\u062d\u0638\u062a\u0647\u0627 \u0641\u064a \u0645\u062c\u0645\u0648\u0639\u0629 \u0627\u0644\u0627\u062e\u062a\u0628\u0627\u0631.<\/span><\/p>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u0625\u0630\u0627 \u0623\u0631\u062f\u0646\u0627\u060c \u064a\u0645\u0643\u0646\u0646\u0627 \u0645\u0642\u0627\u0631\u0646\u0629 RMSE \u0647\u0630\u0627 \u0628\u0646\u0645\u0627\u0630\u062c \u0623\u062e\u0631\u0649 \u0645\u062b\u0644 <a href=\"https:\/\/statorials.org\/ar\/\u0627\u0644\u0627\u0646\u062d\u062f\u0627\u0631-\u0627\u0644\u062e\u0637\u064a-\u0627\u0644\u0645\u062a\u0639\u062f\u062f-\u0635\/\" target=\"_blank\" rel=\"noopener noreferrer\">\u0627\u0644\u0627\u0646\u062d\u062f\u0627\u0631 \u0627\u0644\u062e\u0637\u064a \u0627\u0644\u0645\u062a\u0639\u062f\u062f<\/a> \u060c <a href=\"https:\/\/statorials.org\/ar\/\u0642\u0645\u0629-\u0627\u0644\u0627\u0646\u062d\u062f\u0627\u0631-\u0641\u064a-\u0635\/\" target=\"_blank\" rel=\"noopener noreferrer\">\u0648\u0627\u0646\u062d\u062f\u0627\u0631 \u0627\u0644\u062a\u0644\u0627\u0644<\/a> \u060c <a href=\"https:\/\/statorials.org\/ar\/\u0627\u0644\u0645\u0643\u0648\u0646\u0627\u062a-\u0627\u0644\u0631\u064a\u0654\u064a\u0633\u064a\u0629-\u0627\u0644\u0627\u0646\u062d\u062f\u0627\u0631-\u0641\u064a-\u0635\/\" target=\"_blank\" rel=\"noopener noreferrer\">\u0648\u0627\u0646\u062d\u062f\u0627\u0631 \u0627\u0644\u0645\u0643\u0648\u0646 \u0627\u0644\u0631\u0626\u064a\u0633\u064a<\/a> \u060c \u0648\u0645\u0627 \u0625\u0644\u0649 \u0630\u0644\u0643. \u0644\u0645\u0639\u0631\u0641\u0629 \u0627\u0644\u0646\u0645\u0648\u0630\u062c \u0627\u0644\u0630\u064a \u064a\u0646\u062a\u062c \u0627\u0644\u062a\u0646\u0628\u0624\u0627\u062a \u0627\u0644\u0623\u0643\u062b\u0631 \u062f\u0642\u0629.<\/span><\/p>\n<p style=\";text-align:right;direction:rtl\"> <span style=\"color: #000000;\">\u064a\u0645\u0643\u0646\u0643 \u0627\u0644\u0639\u062b\u0648\u0631 \u0639\u0644\u0649 \u0631\u0645\u0632 R \u0627\u0644\u0643\u0627\u0645\u0644 \u0627\u0644\u0645\u0633\u062a\u062e\u062f\u0645 \u0641\u064a \u0647\u0630\u0627 \u0627\u0644\u0645\u062b\u0627\u0644 <a href=\"https:\/\/github.com\/- Statorials\/R-Guides\/blob\/main\/xgboost.R\" target=\"_blank\" rel=\"noopener noreferrer\">\u0647\u0646\u0627<\/a> .<\/span><\/p>\n","protected":false},"excerpt":{"rendered":"<p>\u0627\u0644\u062a\u0639\u0632\u064a\u0632 \u0647\u0648 \u0623\u0633\u0644\u0648\u0628 \u0644\u0644\u062a\u0639\u0644\u0645 \u0627\u0644\u0622\u0644\u064a \u0623\u062b\u0628\u062a \u0623\u0646\u0647 \u064a\u0646\u062a\u062c \u0646\u0645\u0627\u0630\u062c \u0630\u0627\u062a \u062f\u0642\u0629 \u062a\u0646\u0628\u0624\u064a\u0629 \u0639\u0627\u0644\u064a\u0629. \u0625\u062d\u062f\u0649 \u0627\u0644\u0637\u0631\u0642 \u0627\u0644\u0623\u0643\u062b\u0631 \u0634\u064a\u0648\u0639\u064b\u0627 \u0644\u062a\u0646\u0641\u064a\u0630 \u0627\u0644\u062a\u0639\u0632\u064a\u0632 \u0639\u0645\u0644\u064a\u064b\u0627 \u0647\u064a \u0627\u0633\u062a\u062e\u062f\u0627\u0645 XGBoost \u060c \u0648\u0647\u0648 \u0627\u062e\u062a\u0635\u0627\u0631 \u0644\u0640 &#8220;extreme gradient boosting&#8221;. \u064a\u0642\u062f\u0645 \u0647\u0630\u0627 \u0627\u0644\u0628\u0631\u0646\u0627\u0645\u062c \u0627\u0644\u062a\u0639\u0644\u064a\u0645\u064a \u0645\u062b\u0627\u0644\u0627\u064b \u062e\u0637\u0648\u0629 \u0628\u062e\u0637\u0648\u0629 \u062d\u0648\u0644 \u0643\u064a\u0641\u064a\u0629 \u0627\u0633\u062a\u062e\u062f\u0627\u0645 XGBoost \u0644\u0645\u0644\u0627\u0621\u0645\u0629 \u0646\u0645\u0648\u0630\u062c \u0645\u062d\u0633\u0651\u0646 \u0641\u064a R. \u0627\u0644\u062e\u0637\u0648\u0629 1: \u062a\u062d\u0645\u064a\u0644 \u0627\u0644\u062d\u0632\u0645 \u0627\u0644\u0644\u0627\u0632\u0645\u0629 \u0623\u0648\u0644\u0627\u064b\u060c \u0633\u0646\u0642\u0648\u0645 \u0628\u062a\u062d\u0645\u064a\u0644 \u0627\u0644\u0645\u0643\u062a\u0628\u0627\u062a [&hellip;]<\/p>\n","protected":false},"author":1,"featured_media":0,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[11],"tags":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v21.5 - https:\/\/yoast.com\/wordpress\/plugins\/seo\/ -->\n<title>XGBoost \u0641\u064a R: \u0645\u062b\u0627\u0644 \u062e\u0637\u0648\u0629 \u0628\u062e\u0637\u0648\u0629<\/title>\n<meta name=\"description\" content=\"\u064a\u0642\u062f\u0645 \u0647\u0630\u0627 \u0627\u0644\u0628\u0631\u0646\u0627\u0645\u062c \u0627\u0644\u062a\u0639\u0644\u064a\u0645\u064a \u0645\u062b\u0627\u0644\u0627\u064b \u062e\u0637\u0648\u0629 \u0628\u062e\u0637\u0648\u0629 \u062d\u0648\u0644 \u0643\u064a\u0641\u064a\u0629 \u062a\u0634\u063a\u064a\u0644 XGBoost \u0641\u064a R\u060c \u0648\u0647\u064a \u062a\u0642\u0646\u064a\u0629 \u0634\u0627\u0626\u0639\u0629 \u0644\u0644\u062a\u0639\u0644\u0645 \u0627\u0644\u0622\u0644\u064a.\" 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