Mercurial > repos > jay > pdaug_peptide_data_plotting
annotate PDAUG_ML_Models/PDAUG_ML_Models.py @ 9:901f0650db35 draft default tip
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit d396d7ff89705cc0dd626ed32c45a9f4029b1b05"
author | jay |
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date | Wed, 12 Jan 2022 20:37:33 +0000 |
parents | 9e347250e3a1 |
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9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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1 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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2 import numpy as np |
9e347250e3a1
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3 import sys,os |
9e347250e3a1
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4 from scipy import interp |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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5 import pandas as pd |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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6 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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7 ############################################################### |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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8 from sklearn.metrics import * |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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9 from sklearn import preprocessing |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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10 from sklearn.metrics import accuracy_score |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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11 from sklearn.metrics import precision_recall_fscore_support |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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12 from sklearn.metrics import roc_curve, auc |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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13 from sklearn.model_selection import StratifiedKFold |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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14 from sklearn.preprocessing import StandardScaler |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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15 from sklearn.preprocessing import MinMaxScaler |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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16 ############################################################### |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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17 from sklearn.linear_model import LogisticRegression |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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18 from sklearn.naive_bayes import GaussianNB |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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19 from sklearn.neighbors import KNeighborsClassifier |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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20 from sklearn.tree import DecisionTreeClassifier |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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21 from sklearn.svm import SVC |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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22 from sklearn.ensemble import RandomForestClassifier |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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23 from sklearn.linear_model import SGDClassifier |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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24 from sklearn.ensemble import GradientBoostingClassifier |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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25 from sklearn.neural_network import MLPClassifier |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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26 ############################################################### |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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27 from itertools import cycle |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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28 ################################################################ |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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29 from sklearn.model_selection import train_test_split |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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30 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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31 |
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32 |
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"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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33 def ReturnData(TrainFile, TestMethod, TestFile=None): |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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34 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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35 if (TestFile == None) and (TestMethod == 'Internal' or 'CrossVal'): |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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36 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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37 df = pd.read_csv(TrainFile, sep='\t') |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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38 clm_list = df.columns.tolist() |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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39 X_train = df[clm_list[0:len(clm_list)-1]].values |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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40 y_train = df[clm_list[len(clm_list)-1]].values |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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41 X_test = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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42 y_test = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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43 return X_train, y_train, X_test, y_test |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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44 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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45 elif (TestFile is not None) and (TestMethod == 'External'): |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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46 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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47 df = pd.read_csv(TrainFile, sep='\t') |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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48 clm_list = df.columns.tolist() |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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49 X_train = df[clm_list[0:len(clm_list)-1]].values |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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50 y_train = df[clm_list[len(clm_list)-1]].values |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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51 df1 = pd.read_csv(TestFile, sep='\t') |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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52 clm_list = df1.columns.tolist() |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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53 X_test = df1[clm_list[0:len(clm_list)-1]].values |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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54 y_test = df1[clm_list[len(clm_list)-1]].values |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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55 return X_train, y_train, X_test, y_test |
9e347250e3a1
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56 |
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57 elif (TestFile is not None) and (TestMethod == 'Predict'): |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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58 |
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59 df = pd.read_csv(TrainFile, sep='\t') |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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60 clm_list = df.columns.tolist() |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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61 X_train = df[clm_list[0:len(clm_list)-1]].values |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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62 y_train = df[clm_list[len(clm_list)-1]].values |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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63 |
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64 df = pd.read_csv(TestFile, sep='\t') |
9e347250e3a1
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65 X_test = df |
9e347250e3a1
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66 y_test = None |
9e347250e3a1
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67 return X_train, y_train, X_train, y_train |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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68 |
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69 def Fit_Model(TrainData, Test_Method, Algo, Selected_Sclaer, Workdirpath, htmlOutDir, OutFile, htmlFname, NoOfFolds=None, TestSize=None, TestData=None ): |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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70 |
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71 if not os.path.exists(htmlOutDir): |
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72 os.makedirs(htmlOutDir) |
9e347250e3a1
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73 |
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74 if Test_Method == 'Internal': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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75 X,y,_,_ = ReturnData(TrainData, Test_Method) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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76 |
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77 mean_tpr = 0.0 |
9e347250e3a1
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78 mean_fpr = np.linspace(0, 1, 100) |
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79 |
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80 specificity_list = [] |
9e347250e3a1
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81 sensitivity_list = [] |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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82 precison_list = [] |
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83 mcc_list = [] |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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84 f1_list = [] |
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85 |
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86 folds = StratifiedKFold(n_splits=5) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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87 mean_tpr = 0.0 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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88 mean_fpr = np.linspace(0, 1, 100) |
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89 |
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90 ########################## |
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91 accuracy_score_l = [] |
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92 cohen_kappa_score_l = [] |
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93 matthews_corrcoef_l = [] |
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94 precision_l = [] |
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95 recall_l = [] |
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96 f_score_l = [] |
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97 ########################## |
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98 |
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99 folds = StratifiedKFold(n_splits=5) |
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100 |
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101 for i, (train, test) in enumerate(folds.split(X, y)): |
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102 |
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103 if Selected_Sclaer=='Min_Max': |
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104 scaler = MinMaxScaler().fit(X[train]) |
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105 x_train = scaler.transform(X[train]) |
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106 x_test = scaler.transform(X[test]) |
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107 |
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108 elif Selected_Sclaer=='Standard_Scaler': |
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109 scaler = preprocessing.StandardScaler().fit(X[train]) |
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110 x_train = scaler.transform(X[train]) |
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111 x_test = scaler.transform(X[test]) |
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112 |
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113 elif Selected_Sclaer == 'No_Scaler': |
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114 x_train = X[train] |
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115 x_test = X[test] |
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116 |
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117 else: |
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118 print('Scalling Method option was not correctly selected...!') |
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119 |
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120 prob = Algo.fit(x_train, y[train]).predict_proba(x_test) |
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121 predicted = Algo.fit(x_train, y[train]).predict(x_test) |
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122 |
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123 fpr, tpr, thresholds = roc_curve(y[test], prob[:, 1]) |
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124 mean_tpr += interp(mean_fpr, fpr, tpr) |
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125 mean_tpr[0] = 0.0 |
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126 |
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127 TN, FP, FN, TP = confusion_matrix(y[test], predicted).ravel() |
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128 |
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129 accuracy_score_l.append(round(accuracy_score(y[test], predicted),3)) |
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130 a = precision_recall_fscore_support(y[test], predicted, average='macro') |
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131 precision_l.append(round(a[0],3)) |
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132 recall_l.append(round(a[1],3)) |
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133 f_score_l .append(round(a[2],3)) |
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134 |
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135 accuracy_score_mean = round(float(sum(accuracy_score_l)/float(len(accuracy_score_l))),3) |
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136 precision_mean = round(float(sum(precision_l)/float(len(precision_l))),3) |
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137 recall_mean = round(float(sum(recall_l)/float(len(recall_l))),3) |
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138 f_score_mean = round(float(sum(f_score_l )/float(len(f_score_l ))),3) |
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139 |
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140 |
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141 mean_tpr /= folds.get_n_splits(X, y) |
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142 mean_tpr[-1] = 1.0 |
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143 mean_auc = auc(mean_fpr, mean_tpr) |
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144 |
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145 ######################################################################################################################################## |
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146 V_header = ["Algo","accuracy","precision","recall","f1","mean_auc"] # |
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147 v_values = [sys.argv[1], round(accuracy_score_mean, 3), round(precision_mean, 3), round(recall_mean, 3),round(f_score_mean, 3), round(mean_auc, 3)] # |
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148 ######################################################################################################################################## |
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149 |
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150 df = pd.DataFrame([v_values], columns=V_header) |
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151 df.to_csv(os.path.join(Workdirpath, OutFile), columns=V_header, sep='\t', index=None) |
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152 |
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153 ############################################################ |
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154 from plotly.subplots import make_subplots |
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155 import plotly.graph_objects as go |
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156 |
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157 fig = make_subplots( |
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158 rows=1, cols=2, |
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159 specs=[[{"type": "xy"}, {"type": "scatter"}],], subplot_titles=("Algorithm performance", " ROC curve (AUC Score = %0.2f" % mean_auc+')'), |
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160 |
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161 ) |
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162 |
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163 fig.add_trace( go.Bar(x=V_header[1:], y=v_values[1:],marker_color=['#F58518','#109618','#E45756','#1F77B4','#19D3F3']), row=1, col=1) |
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164 |
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165 print (mean_fpr, mean_tpr) |
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166 |
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167 fig.add_trace(go.Scatter(x=mean_fpr, y=mean_tpr), row=1, col=2) |
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168 fig.update_yaxes(title_text="True Positive Rate", range=[0, 1], row=1, col=2) |
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169 fig.update_xaxes(title_text="False Positive Rate", range=[0, 1], row=1, col=2) |
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170 fig.update_yaxes(title_text="Score", range=[0, 1], row=1, col=1) |
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171 fig.update_xaxes(title_text="Performance measures",row=1, col=1) |
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172 fig.update_layout(height=700, showlegend=False, title="Machine ") |
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173 fig.write_html(os.path.join(Workdirpath, htmlOutDir, htmlFname)) |
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174 |
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175 ############################################################ |
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176 |
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177 elif Test_Method == 'External': |
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178 |
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179 X_train,y_train,X_test,y_test = ReturnData(TrainData, Test_Method, TestData) |
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180 |
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181 if Selected_Sclaer=='Min_Max': |
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182 scaler = MinMaxScaler().fit(X_train) |
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183 x_train = scaler.transform(X_train) |
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184 x_test = scaler.transform(X_test) |
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185 |
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186 elif Selected_Sclaer=='Standard_Scaler': |
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187 scaler = preprocessing.StandardScaler().fit(X_train) |
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188 x_train = scaler.transform(X_train) |
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189 x_test = scaler.transform(X_test) |
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190 |
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191 elif Selected_Sclaer == 'No_Scaler': |
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192 x_train = X_train |
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193 x_test = X_test |
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194 |
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195 else: |
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196 print('Scalling Method option was not correctly selected...!') |
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197 |
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198 prob = Algo.fit(x_train, y_train).predict_proba(x_test) |
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199 predicted = Algo.fit(x_train, y_train).predict(x_test) |
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200 |
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201 fpr, tpr, thresholds = roc_curve(y_test, prob[:, 1]) |
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202 TN, FP, FN, TP = confusion_matrix(y_test, predicted).ravel() |
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203 accu_score = accuracy_score(y_test, predicted) |
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204 |
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205 a = precision_recall_fscore_support(y_test, predicted, average='macro') |
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206 |
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207 pre_score = round(a[0],3) |
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208 recall_score= round(a[1],3) |
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209 f_score= round(a[2],3) |
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210 |
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211 pl.plot(fpr, tpr, '--', lw=2) |
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212 auc_score = auc(fpr, tpr) |
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213 |
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214 a = precision_recall_fscore_support(y_test, predicted, average='macro') |
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215 pre_score = round(a[0],3) |
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216 rec_score = round(a[1],3) |
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217 f_score = round(a[2],3) |
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218 |
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219 V_header = ["accuracy","presision","recall","f1","mean_auc"] |
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220 v_values = [accu_score, pre_score, rec_score, f_score, auc_score] |
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221 |
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222 pl.figure() |
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223 pl.plot(fpr, tpr, '-', color='red',label='AUC = %0.2f' % auc_score, lw=2) |
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224 pl.xlim([0.0, 1.0]) |
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225 pl.ylim([0.0, 1.05]) |
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226 pl.xlabel('False Positive Rate') |
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227 pl.ylabel('True Positive Rate') |
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228 pl.title('ROC Cureve') |
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229 pl.legend(loc="lower right") |
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230 |
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231 df = pd.DataFrame([v_values], columns=V_header) |
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232 pl.savefig(os.path.join(Workdirpath, htmlOutDir, "out.png")) |
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233 df.to_csv(os.path.join(Workdirpath, OutFile), columns=V_header, sep='\t') |
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234 pl.figure() |
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235 pl.bar(V_header, v_values, color=(0.2, 0.4, 0.6, 0.6)) |
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236 pl.xlabel('Accuracy Perameters', fontweight='bold', color = 'orange', fontsize='17', horizontalalignment='center') |
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237 pl.savefig(os.path.join(Workdirpath, htmlOutDir, "2.png")) |
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238 #pl.show() |
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239 HTML_Gen(os.path.join(Workdirpath, htmlOutDir, htmlFname)) |
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240 |
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241 elif Test_Method == "TestSplit": |
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242 |
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243 X_train,y_train,_,_ = ReturnData(TrainData, Test_Method) |
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244 X_train, X_test, y_train, y_test = train_test_split(X_train, y_train, test_size=float(TestSize), random_state=0) |
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245 |
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246 |
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247 if Selected_Sclaer=='Min_Max': |
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248 scaler = MinMaxScaler().fit(X_train) |
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249 x_train = scaler.transform(X_train) |
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250 x_test = scaler.transform(X_test) |
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251 |
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252 elif Selected_Sclaer=='Standard_Scaler': |
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253 scaler = preprocessing.StandardScaler().fit(X_train) |
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254 x_train = scaler.transform(X_train) |
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255 x_test = scaler.transform(X_test) |
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256 |
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257 elif Selected_Sclaer == 'No_Scaler': |
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258 x_train = X_train |
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259 x_test = X_test |
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260 |
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261 else: |
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262 print('Scalling Method option was not correctly selected...!') |
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263 |
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264 prob = Algo.fit(x_train, y_train).predict_proba(x_test) |
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265 predicted = Algo.fit(x_train, y_train).predict(x_test) |
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266 fpr, tpr, thresholds = roc_curve(y_test, prob[:, 1]) |
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267 accu_score = accuracy_score(y_test, predicted) |
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268 |
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269 a = precision_recall_fscore_support(y_test, predicted, average='macro') |
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270 |
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271 pre_score = round(a[0],3) |
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272 recall_score= round(a[1],3) |
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273 f_score= round(a[2],3) |
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274 |
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275 pl.plot(fpr, tpr, '-', color='red',label='AUC = %0.2f' % accu_score, lw=2) |
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276 |
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277 pl.xlim([0.0, 1.0]) |
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278 pl.ylim([0.0, 1.05]) |
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279 pl.xlabel('False Positive Rate') |
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280 pl.ylabel('True Positive Rate') |
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281 pl.title('ROC Cureve') |
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282 pl.legend(loc="lower right") |
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283 pl.savefig(os.path.join(Workdirpath, htmlOutDir, "out.png")) |
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284 pl.plot(fpr, tpr, '--', lw=2) |
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285 |
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286 auc_score = auc(fpr, tpr) |
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287 |
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288 a = precision_recall_fscore_support(y_test, predicted, average='macro') |
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289 pre_score = round(a[0],3) |
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290 rec_score = round(a[1],3) |
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291 f_score = round(a[2],3) |
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292 |
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293 V_header = ["accuracy","presision","recall","f1","mean_auc"] |
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294 v_values = [accu_score, pre_score, rec_score, f_score, auc_score] |
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295 df = pd.DataFrame([v_values], columns=V_header) |
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296 df.to_csv(os.path.join(Workdirpath, OutFile), columns=V_header, sep='\t') |
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297 pl.figure() |
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298 pl.bar(V_header, v_values, color=(0.2, 0.4, 0.6, 0.6)) |
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299 pl.xlabel('Accuracy Perameters', fontweight='bold', color = 'orange', fontsize='17', horizontalalignment='center') |
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300 pl.savefig(os.path.join(Workdirpath, htmlOutDir, "2.png")) |
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301 #pl.show() |
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302 HTML_Gen(os.path.join(Workdirpath, htmlOutDir, htmlFname)) |
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303 |
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304 elif Test_Method == "Predict": |
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305 |
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306 X_train, y_train, X_test, _ = ReturnData(TrainData, Test_Method,TestData) |
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307 |
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308 if Selected_Sclaer=='Min_Max': |
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309 scaler = MinMaxScaler().fit(X_train) |
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310 x_train = scaler.transform(X_train) |
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311 x_test = scaler.transform(X_test) |
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312 |
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313 elif Selected_Sclaer=='Standard_Scaler': |
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314 scaler = preprocessing.StandardScaler().fit(X_train) |
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315 x_train = scaler.transform(X_train) |
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316 x_test = scaler.transform(X_test) |
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317 |
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318 elif Selected_Sclaer == 'No_Scaler': |
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319 x_train = X_train |
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320 x_test = X_test |
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321 |
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322 else: |
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323 print('Scalling Method option was not correctly selected...!') |
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324 |
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325 predicted = model.fit(x_train, y_train).predict(x_test) |
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326 |
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327 |
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328 return predicted |
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329 |
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330 def SVM_Classifier(C, kernel, degree, gamma, coef0, shrinking, probability, tol, cache_size, verbose, max_iter, decision_function_shape, randomState, breakties, TrainFile, TestMethod, SelectedSclaer, NFolds, TestFile, OutFile, htmlOutDir, htmlFname, Workdirpath): |
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331 |
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332 if randomState == None: |
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333 randomState =None |
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334 else: |
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335 randomState = int(randomState) |
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336 |
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337 |
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338 if cache_size == None: |
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339 cache_size =None |
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340 else: |
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341 cache_size = float(cache_size) |
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342 |
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343 |
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344 if probability or shrinking == 'true': |
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345 probability, shrinking = True, True |
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346 else: |
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347 probability, shrinking = False, False |
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348 |
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349 |
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350 if verbose == 'true': |
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351 verbose = True |
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352 else: |
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"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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353 verbose = False |
9e347250e3a1
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354 |
9e347250e3a1
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355 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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356 if breakties == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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357 breakties = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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358 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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359 breakties = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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360 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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361 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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362 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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363 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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364 pera={ |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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365 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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366 'C':float(C), |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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367 'kernel':kernel, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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368 'degree':int(degree), #3 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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369 'gamma':gamma, #default=scale |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
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370 'coef0':float(coef0), #default=0.0 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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371 'shrinking':shrinking, #P |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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372 'probability':probability, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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373 'tol':float(tol), #default=1e-3 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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374 'cache_size':cache_size, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
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375 'verbose':verbose, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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376 'max_iter':int(max_iter),#default=-1 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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377 'decision_function_shape':decision_function_shape, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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378 'random_state':randomState, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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379 'break_ties':breakties |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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parents:
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380 } |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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381 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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382 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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383 model = SVC(**pera ) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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parents:
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384 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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385 Fit_Model(TrainData=TrainFile, Test_Method=TestMethod, Algo=model, Selected_Sclaer=SelectedSclaer, Workdirpath=Workdirpath, htmlOutDir=htmlOutDir, OutFile=OutFile, htmlFname=htmlFname, NoOfFolds=int(NFolds), TestData=TestFile) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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parents:
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|
386 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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parents:
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387 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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388 def SGD_Classifier( loss, penalty, alpha, l1_ratio, fit_intercept, max_iter, tol, shuffle, verbose, epsilon, n_jobs, random_state, learning_rate, eta0, power_t, early_stopping, validation_fraction, n_iter_no_change, warm_start, average, TrainFile, TestMethod, SelectedSclaer, NFolds, TestFile, OutFile, htmlOutDir, htmlFname, Workdirpath): |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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389 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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390 if n_jobs == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
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391 n_jobs =None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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392 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
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393 n_jobs = int(n_jobs) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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394 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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|
395 if random_state == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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|
396 random_state =None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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parents:
diff
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|
397 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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|
398 random_state = int(random_state) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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|
399 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
400 if fit_intercept == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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|
401 fit_intercept = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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|
402 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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|
403 fit_intercept = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
404 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
405 if shuffle == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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|
406 shuffle = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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407 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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408 shuffle = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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parents:
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409 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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|
410 if early_stopping == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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|
411 early_stopping = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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|
412 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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|
413 early_stopping = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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|
414 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
415 if warm_start == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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|
416 warm_start = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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417 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
418 warm_start = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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|
419 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
420 if average == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
421 average = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
422 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
423 average = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
424 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
425 pera = {"loss":loss, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
426 "penalty":penalty, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
427 "alpha":float(alpha),#0.0001 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
428 "l1_ratio":float(l1_ratio),#0.15 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
429 "fit_intercept":fit_intercept,#true |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
430 "max_iter":int(max_iter),#default=1000 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
431 "tol":float(tol),#default=1e-3 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
432 "shuffle":shuffle, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
433 "verbose":int(verbose), #default=0 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
434 "epsilon":float(epsilon), #default=0.1 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
435 "n_jobs":n_jobs, #default=None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
436 "random_state":random_state, #default=None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
437 "learning_rate":learning_rate, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
438 "eta0":float(eta0), #default=0.0 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
439 "power_t":float(power_t), #default=0.5 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
440 "early_stopping":early_stopping, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
441 "validation_fraction":float(validation_fraction), #default=0.1 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
442 "n_iter_no_change":int(n_iter_no_change), #default=5 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
443 "warm_start":warm_start, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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changeset
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444 "average":average} |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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445 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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446 model = SGDClassifier(**pera) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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447 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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448 Fit_Model(TrainData=TrainFile, Test_Method=TestMethod, Algo=model, Selected_Sclaer=SelectedSclaer, Workdirpath=Workdirpath, htmlOutDir=htmlOutDir, OutFile=OutFile, htmlFname=htmlFname, NoOfFolds=int(NFolds), TestData=TestFile) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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parents:
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449 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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450 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
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parents:
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451 def DT_Classifier(criterion, splitter, max_depth, min_samples_split, min_samples_leaf, min_weight_fraction_leaf, random_state, max_leaf_nodes, min_impurity_decrease, min_impurity_split, presort, ccpalpha, max_features, TrainFile, TestMethod, SelectedSclaer, NFolds, TestFile, OutFile, htmlOutDir, htmlFname, Workdirpath): |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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452 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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453 if max_depth == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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454 max_depth =None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
455 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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456 max_depth = int(max_depth) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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|
457 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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458 if '.' in min_samples_split: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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459 min_samples_split = float(min_samples_split) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
460 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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|
461 min_samples_split = int(min_samples_split) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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|
462 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
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463 if '.' in min_samples_leaf: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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464 min_samples_split = float(min_samples_leaf) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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465 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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466 min_samples_leaf = int(min_samples_leaf) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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|
467 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
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468 if max_features == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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469 max_features = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
470 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
471 if '.' in max_features: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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472 max_features = float(max_features) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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473 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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474 max_features = int(max_features) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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475 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
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476 if random_state == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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477 random_state = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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478 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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479 random_state = int(random_state) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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|
480 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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481 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
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482 if max_leaf_nodes == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
483 max_leaf_nodes = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
484 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
485 max_leaf_nodes = int(max_leaf_nodes) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
486 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
487 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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488 pera = {"criterion":criterion, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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|
489 "splitter":splitter, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
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490 "max_depth":max_depth,#int, default=None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
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491 "min_samples_split":int(min_samples_split),#default=2 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
492 "min_samples_leaf":int(min_samples_leaf), #default=1 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
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493 "min_weight_fraction_leaf":float(min_weight_fraction_leaf),#default=0.0 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
494 "random_state":random_state, #default=None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
495 "max_leaf_nodes":max_leaf_nodes, #default=None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
496 "min_impurity_decrease":float(min_impurity_decrease),#float, default=0.0 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
497 "min_impurity_split":float(min_impurity_split), #float, default=1e-7 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
498 "presort":presort,#default=deprecated |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
499 'ccp_alpha':float(ccpalpha),#non-negative float, default=0.0 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
500 'max_features': max_features}#int, float or {"auto", "sqrt", "log2"}, default=None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
501 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
502 model = DecisionTreeClassifier(**pera) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
503 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
504 #Fit_Model('GBC.tsv', 'Internal', model, 'Min_Max', os.getcwd(), os.path.join(os.getcwd(),'report_dir'), 'out.tsv', 'out.html', NoOfFolds=3) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
505 Fit_Model(TrainData=TrainFile, Test_Method=TestMethod, Algo=model, Selected_Sclaer=SelectedSclaer, Workdirpath=Workdirpath, htmlOutDir=htmlOutDir, OutFile=OutFile, htmlFname=htmlFname, NoOfFolds=int(NFolds), TestData=TestFile) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
506 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
507 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
508 def GB_Classifier(loss, learning_rate, n_estimators, subsample, criterion, min_samples_split, min_samples_leaf, min_weight_fraction_leaf, max_depth, min_impurity_decrease,min_impurity_split, init, random_state, verbose, max_leaf_nodes, warm_start, presort, validation_fraction, n_iter_no_change, tol, ccpalpha, max_features, TrainFile, TestMethod, SelectedSclaer, NFolds, TestFile, OutFile, htmlOutDir, htmlFname, Workdirpath): |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
509 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
510 if '.' in min_samples_split: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
511 min_samples_split = float(min_samples_split) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
512 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
513 min_samples_split = int(min_samples_split) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
514 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
515 if '.' in min_samples_leaf: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
516 min_samples_split = float(min_samples_leaf) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
517 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
518 min_samples_leaf = int(min_samples_leaf) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
519 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
520 if max_features == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
521 max_features = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
522 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
523 if '.' in max_features: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
524 max_features = float(max_features) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
525 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
526 max_features = int(max_features) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
527 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
528 if random_state == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
529 random_state = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
530 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
531 random_state = int(random_state) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
532 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
533 if max_leaf_nodes == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
534 max_leaf_nodes = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
535 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
536 max_leaf_nodes = int(max_leaf_nodes) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
537 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
538 if warm_start == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
539 warm_start = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
540 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
541 warm_start = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
542 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
543 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
544 if n_iter_no_change == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
545 n_iter_no_change = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
546 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
547 n_iter_no_change = int(n_iter_no_change) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
548 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
549 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
550 if init == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
551 init = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
552 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
553 init = init |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
554 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
555 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
556 pera = {"loss":loss, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
557 "learning_rate":float(learning_rate), |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
558 "n_estimators":int(n_estimators), #int (default=100) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
559 "subsample":float(subsample), #float, optional (default=1.0) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
560 "criterion":criterion, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
561 "min_samples_split":min_samples_split, #int, float, optional (default=2) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
562 "min_samples_leaf":min_samples_leaf, #int, float, optional (default=1) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
563 "min_weight_fraction_leaf":float(min_weight_fraction_leaf), #float, optional (default=0.) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
564 "max_depth":int(max_depth), #integer, optional (default=3) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
565 "min_impurity_decrease":float(min_impurity_decrease),#float, optional (default=0.) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
566 "min_impurity_split":float(min_impurity_split), #float, (default=1e-7) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
567 "init":init, #estimator or zero, optional (default=None) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
568 "random_state":random_state, #int, RandomState instance or None, optional (default=None) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
569 "verbose":int(verbose), #int, default: 0 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
570 "max_features": max_features,#int, float, string or None, optional (default=None) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
571 "max_leaf_nodes":max_leaf_nodes, #int or None, optional (default=None) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
572 "warm_start":warm_start, #bool, default: False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
573 "presort":presort, #deprecated, default=deprecated |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
574 "validation_fraction":float(validation_fraction), #float, optional, default 0.1 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
575 "n_iter_no_change":n_iter_no_change, #int, default None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
576 "tol":float(tol),#default 1e-4 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
577 "ccp_alpha":float(ccpalpha)} #non-negative float, optional (default=0.0) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
578 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
579 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
580 model = GradientBoostingClassifier(**pera) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
581 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
582 #Fit_Model('GBC.tsv', 'Internal', model, 'Min_Max', os.getcwd(), os.path.join(os.getcwd(),'report_dir'), 'out.tsv', 'out.html', NoOfFolds=3) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
583 Fit_Model(TrainData=TrainFile, Test_Method=TestMethod, Algo=model, Selected_Sclaer=SelectedSclaer, Workdirpath=Workdirpath, htmlOutDir=htmlOutDir, OutFile=OutFile, htmlFname=htmlFname, NoOfFolds=int(NFolds), TestData=TestFile) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
584 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
585 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
586 def RF_Classifier( n_estimators, criterion, max_depth, min_samples_split, min_samples_leaf, min_weight_fraction_leaf, max_features, max_leaf_nodes, min_impurity_decrease, min_impurity_split, bootstrap, oob_score, n_jobs, random_state, verbose, warm_start, ccp_alpha, max_samples, TrainFile, TestMethod, SelectedSclaer, NFolds, TestFile, OutFile, htmlOutDir, htmlFname, Workdirpath): |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
587 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
588 if max_depth == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
589 max_depth = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
590 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
591 max_depth = int(max_depth) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
592 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
593 if '.' in min_samples_split: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
594 min_samples_split = float(min_samples_split) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
595 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
596 min_samples_split = int(min_samples_split) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
597 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
598 if '.' in min_samples_leaf: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
599 min_samples_split = float(min_samples_leaf) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
600 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
601 min_samples_leaf = int(min_samples_leaf) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
602 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
603 if max_features == 'auto': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
604 max_features = 'auto' |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
605 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
606 if '.' in max_features: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
607 max_features = float(max_features) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
608 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
609 max_features = int(max_features) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
610 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
611 if max_leaf_nodes == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
612 max_leaf_nodes = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
613 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
614 max_leaf_nodes = int(max_leaf_nodes) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
615 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
616 if bootstrap == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
617 bootstrap = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
618 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
619 bootstrap = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
620 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
621 if oob_score == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
622 oob_score = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
623 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
624 oob_score = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
625 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
626 if n_jobs == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
627 n_jobs = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
628 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
629 n_jobs = int(n_jobs) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
630 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
631 if random_state == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
632 random_state = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
633 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
634 random_state = int(random_state) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
635 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
636 if warm_start == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
637 warm_start = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
638 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
639 warm_start = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
640 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
641 if max_samples == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
642 max_samples = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
643 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
644 if '.' in max_samples: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
645 max_samples = float(max_samples) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
646 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
647 max_samples = int(max_samples) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
648 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
649 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
650 pera = { |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
651 "n_estimators":int(n_estimators), #integer, optional (default=100) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
652 "criterion":criterion, #string, optional (default='gini') |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
653 "max_depth":max_depth, #integer #or None, optional (default=None) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
654 "min_samples_split":min_samples_split,# int, float, optional (default=2) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
655 "min_samples_leaf":min_samples_leaf, #int, float, optional (default=1) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
656 "min_weight_fraction_leaf":float(min_weight_fraction_leaf),#float, optional (default=0.) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
657 "max_features":max_features, #int, float, string or None, optional (default='auto') |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
658 "max_leaf_nodes":max_leaf_nodes, #int or None, optional (default=None) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
659 "min_impurity_decrease":float(min_impurity_decrease), #float, optional (default=0.) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
660 "min_impurity_split":float(min_samples_split), #float, (default=1e-7) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
661 "bootstrap":bootstrap, #boolean, optional (default=True) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
662 "oob_score":oob_score, #bool (default=False) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
663 "n_jobs":n_jobs, #int or None, optional (default=None) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
664 "random_state":random_state, #int, RandomState instance or None, optional (default=None) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
665 "verbose":int(verbose), #int, optional (default=0) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
666 "warm_start":warm_start,#bool, optional (default=False) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
667 "ccp_alpha":float(ccp_alpha),#non-negative float, optional (default=0.0) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
668 "max_samples": max_samples #int or float, default=None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
669 } |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
670 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
671 model = RandomForestClassifier(**pera) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
672 #Fit_Model('GBC.tsv', 'Internal', model, 'Min_Max', os.getcwd(), os.path.join(os.getcwd(),'report_dir'), 'out.tsv', 'out.html', NoOfFolds=3) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
673 Fit_Model(TrainData=TrainFile, Test_Method=TestMethod, Algo=model, Selected_Sclaer=SelectedSclaer, Workdirpath=Workdirpath, htmlOutDir=htmlOutDir, OutFile=OutFile, htmlFname=htmlFname, NoOfFolds=int(NFolds), TestData=TestFile) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
674 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
675 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
676 def LR_Classifier(penalty, dual, tol, C, fit_intercept, intercept_scaling, random_state, solver, max_iter, multi_class, verbose, warm_start, n_jobs, l1_ratio, TrainFile, TestMethod, SelectedSclaer, NFolds, TestFile, OutFile, htmlOutDir, htmlFname, Workdirpath): |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
677 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
678 if dual == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
679 dual = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
680 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
681 dual = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
682 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
683 if fit_intercept == "true": |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
684 fit_intercept = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
685 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
686 fit_intercept = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
687 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
688 if random_state == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
689 random_state = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
690 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
691 random_state = int(random_state) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
692 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
693 if warm_start == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
694 warm_start = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
695 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
696 warm_start = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
697 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
698 if n_jobs == "none": |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
699 n_jobs = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
700 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
701 n_jobs = int(n_jobs) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
702 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
703 if l1_ratio == "none": |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
704 l1_ratio = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
705 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
706 l1_ratio =float(l1_ratio) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
707 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
708 pera = { |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
709 "penalty":penalty, #l2 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
710 "dual":dual, #false |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
711 "tol":float(tol), #1e-4 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
712 "C":float(C), #1.0 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
713 "fit_intercept":fit_intercept, #True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
714 "intercept_scaling":float(intercept_scaling), #1 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
715 "random_state":random_state, #None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
716 "solver":solver, #lbfgs |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
717 "max_iter":int(max_iter), #100 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
718 "multi_class":multi_class, #auto |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
719 "verbose":int(verbose), #0 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
720 "warm_start":warm_start,#False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
721 "n_jobs":n_jobs, #None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
722 "l1_ratio":l1_ratio} #None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
723 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
724 model = LogisticRegression(**pera) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
725 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
726 Fit_Model(TrainData=TrainFile, Test_Method=TestMethod, Algo=model, Selected_Sclaer=SelectedSclaer, Workdirpath=Workdirpath, htmlOutDir=htmlOutDir, OutFile=OutFile, htmlFname=htmlFname, NoOfFolds=int(NFolds), TestData=TestFile) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
727 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
728 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
729 def KN_Classifier(n_neighbors, weights, algorithm, leaf_size, p, metric, metric_params, n_jobs, TrainFile, TestMethod, SelectedSclaer, NFolds, TestFile, OutFile, htmlOutDir, htmlFname, Workdirpath): |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
730 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
731 if n_jobs == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
732 n_jobs = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
733 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
734 n_jobs = int(n_jobs) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
735 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
736 pera = { |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
737 "n_neighbors":int(n_neighbors),#int5 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
738 "weights":weights, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
739 "algorithm":algorithm, |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
740 "leaf_size":int(leaf_size), #int30 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
741 "p":int(p), #int2 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
742 "metric":metric, #minkowski |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
743 "n_jobs":n_jobs} #none |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
744 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
745 model = KNeighborsClassifier(**pera) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
746 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
747 #Fit_Model('GBC.tsv', 'Internal', model, 'Min_Max', os.getcwd(), os.path.join(os.getcwd(),'report_dir'), 'out.tsv', 'out.html', NoOfFolds=3) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
748 Fit_Model(TrainData=TrainFile, Test_Method=TestMethod, Algo=model, Selected_Sclaer=SelectedSclaer, Workdirpath=Workdirpath, htmlOutDir=htmlOutDir, OutFile=OutFile, htmlFname=htmlFname, NoOfFolds=int(NFolds), TestData=TestFile) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
749 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
750 def GNB_Classifier( var_smoothing, TrainFile, TestMethod, SelectedSclaer, NFolds, TestFile, OutFile, htmlOutDir, htmlFname, Workdirpath): |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
751 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
752 pera = { |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
753 "var_smoothing":float(var_smoothing)} # |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
754 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
755 model = GaussianNB(**pera) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
756 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
757 #Fit_Model('GBC.tsv', 'Internal', model, 'Min_Max', os.getcwd(), os.path.join(os.getcwd(),'report_dir'), 'out.tsv', 'out.html', NoOfFolds=3) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
758 Fit_Model(TrainData=TrainFile, Test_Method=TestMethod, Algo=model, Selected_Sclaer=SelectedSclaer, Workdirpath=Workdirpath, htmlOutDir=htmlOutDir, OutFile=OutFile, htmlFname=htmlFname, NoOfFolds=int(NFolds), TestData=TestFile) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
759 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
760 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
761 def MLP_Classifier(hidden_layer_sizes, activation,solver,alpha,batch_size,learning_rate,learning_rate_init,power_t,max_iter,shuffle,random_state,tol,verbose,warm_start,momentum,nesterovs_momentum,early_stopping,validation_fraction,beta_1,beta_2,epsilon,n_iter_no_change,max_fun,TrainFile, TestMethod, SelectedSclaer, NFolds, Testspt, TestFile, OutFile, htmlOutDir, htmlFname, Workdirpath): |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
762 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
763 if shuffle == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
764 shuffle = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
765 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
766 shuffle = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
767 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
768 if nesterovs_momentum == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
769 nesterovs_momentum = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
770 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
771 nesterovs_momentum = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
772 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
773 if early_stopping == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
774 early_stopping = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
775 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
776 early_stopping = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
777 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
778 if random_state == 'none': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
779 random_state = None |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
780 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
781 random_state = int(random_state) |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
782 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
783 if verbose == 'false': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
784 verbose = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
785 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
786 verbose = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
787 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
788 if warm_start == 'true': |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
789 warm_start = True |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
790 else: |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
791 warm_start = False |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
792 |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
793 pera ={ |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
794 'hidden_layer_sizes':hidden_layer_sizes, #=(100,), |
9e347250e3a1
"planemo upload for repository https://github.com/jaidevjoshi83/pdaug commit a9bd83f6a1afa6338cb6e4358b63ebff5bed155e"
jay
parents:
diff
changeset
|
795 'activation':activation, #='relu', |
9e347250e3a1
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796 'solver':solver, #='adam', |
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797 'alpha':alpha, #=0.0001, |
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798 'batch_size':batch_size, #='auto', |
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799 'learning_rate':learning_rate, #='constant', |
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800 'learning_rate_init':learning_rate_init, #=0.001, |
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801 'power_t':power_t, #=0.5, |
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802 'max_iter':max_iter, #=200, |
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803 'shuffle':shuffle, #=True, |
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804 'random_state':random_state, #=None, |
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805 'tol':tol, #=0.0001, |
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806 'verbose':verbose, #=False, |
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807 'warm_start':warm_start, #=False, |
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808 'momentum':momentum, #=0.9, |
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809 'nesterovs_momentum':nesterovs_momentum, #=True, |
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810 'early_stopping':early_stopping, #=False, |
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811 'validation_fraction':validation_fraction, #=0.1, |
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812 'beta_1':beta_1, #=0.9, |
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813 'beta_2':beta_2, #=0.999, |
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814 'epsilon':epsilon, #=1e-08, |
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815 'n_iter_no_change':n_iter_no_change, #=10, |
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816 'max_fun':max_fun #=15000 |
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817 } |
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818 |
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819 model = MLPClassifier(**pera) |
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820 |
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821 Fit_Model(TrainData=TrainFile, Test_Method=TestMethod, Algo=model, Selected_Sclaer=SelectedSclaer, Workdirpath=Workdirpath, htmlOutDir=htmlOutDir, OutFile=OutFile, htmlFname=htmlFname, NoOfFolds=NFolds, TestSize=Testspt, TestData=TestFile) |
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822 |
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823 |
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824 if __name__=="__main__": |
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825 |
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826 import argparse |
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827 |
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828 parser = argparse.ArgumentParser(description='Deployment tool') |
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829 subparsers = parser.add_subparsers() |
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830 |
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831 svmc = subparsers.add_parser('SVMC') |
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832 svmc.add_argument("--C", required=False, default=1.0, help="Regularization parameter. The strength of the regularization is inversely proportional to C. Must be strictly positive. The penalty is a squared l2 penalty.") |
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833 svmc.add_argument("--kernel", required=False, default='rbf', help="Specifies the kernel type to be used in the algorithm. It must be one of 'linear', 'poly', 'rbf', 'sigmoid', 'precomputed' or a callable. If none is given, 'rbf' will be used. If a callable is given it is used to pre-compute the kernel matrix from data matrices; that matrix should be an array of shape (n_samples, n_samples).") |
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834 svmc.add_argument("--degree", required=False, default=3, help="Degree of the polynomial kernel function ('poly'). Ignored by all other kernels.") |
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835 svmc.add_argument("--gamma", required=False, default='scale', help="Kernel coefficient for 'rbf', 'poly' and 'sigmoid'. if gamma='scale' (default) is passed then it uses 1 / (n_features * X.var()) as value of gamma, if 'auto', uses 1 / n_features.") |
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836 svmc.add_argument("--coef0", required=False, default=0.0, help="Independent term in kernel function. It is only significant in 'poly' and 'sigmoid'.") |
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837 svmc.add_argument("--shrinking", required=False, default=True, help="Whether to use the shrinking heuristic.") |
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838 svmc.add_argument("--probability", required=False, default=True, help="Whether to enable probability estimates. This must be enabled prior to calling fit, will slow down that method as it internally uses 5-fold cross-validation, and predict_proba may be inconsistent with predict") |
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839 svmc.add_argument("--tol", required=False, default=0.001, help="Tolerance for stopping criterion.") |
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840 svmc.add_argument("--cache_size", required=False, default=200, help="Specify the size of the kernel cache (in MB).") |
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841 svmc.add_argument("--verbose", required=False, default=False, help="Enable verbose output. Note that this setting takes advantage of a per-process runtime setting in libsvm that, if enabled, may not work properly in a multithreaded context.") |
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842 svmc.add_argument("--max_iter", required=False, default=-1, help="Hard limit on iterations within solver, or -1 for no limit.") |
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843 svmc.add_argument("--decision_function_shape", required=False, default='ovr', help="Whether to return a one-vs-rest ('ovr') decision function of shape (n_samples, n_classes) as all other classifiers, or the original one-vs-one ('ovo') decision function of libsvm which has shape (n_samples, n_classes * (n_classes - 1) / 2). However, one-vs-one ('ovo') is always used as multi-class strategy.") |
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844 svmc.add_argument("--randomState", required=False, default=None, help="The seed of the pseudo random number generator used when shuffling the data for probability estimates. If int, random_state is the seed used by the random number generator; If RandomState instance, random_state is the random number generator; If None, the random number generator is the RandomState instance used by np.random.") |
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845 svmc.add_argument("--breakties", required=False, default=False, help="If true, decision_function_shape='ovr', and number of classes > 2, predict will break ties according to the confidence values of decision_function; otherwise the first class among the tied classes is returned. Please note that breaking ties comes at a relatively high computational cost compared to a simple predict." ) |
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846 svmc.add_argument("--TrainFile", required=True, default=None, help="Positive negative dataset Ex. 'Train.csv'") |
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847 svmc.add_argument("--TestMethod", required=True, default=None, help="Internal','CrossVal', 'External', 'Predict'") |
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848 svmc.add_argument("--SelectedSclaer", required=True, help="'Min_Max','Standard_Scaler','No_Scaler'") |
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849 svmc.add_argument("--NFolds", required=False, default=5, help="int, Max=10") |
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850 svmc.add_argument("--TestFile", required=False, default=None, help="Test data, 'Test.csv'") |
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851 svmc.add_argument("--OutFile", required=False, default='Out.csv', help="Out.csv") |
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852 svmc.add_argument("--htmlOutDir", required=False, default=os.path.join(os.getcwd(),'report_dir'), help="HTML Out Dir") |
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853 svmc.add_argument("--htmlFname", required=False, default='Out.html', help="HTML out file") |
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854 svmc.add_argument("--Workdirpath", required=False, default=os.getcwd(), help="Working Directory Path") |
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855 |
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856 sgdc = subparsers.add_parser('SGDC') |
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857 sgdc.add_argument("--loss", required=False, default='log', help="The loss function to be used. Defaults to 'hinge', which gives a linear SVM. The possible options are 'hinge', 'log', 'modified_huber', 'squared_hinge', 'perceptron', or a regression loss: 'squared_loss', 'huber', 'epsilon_insensitive', or squared_epsilon_insensitive'.") |
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858 sgdc.add_argument("--penalty", required=False, default='l2', help="The penalty (aka regularization term) to be used. Defaults to 'l2' which is the standard regularizer for linear SVM models. 'l1' and 'elasticnet' might bring sparsity to the model (feature selection) not achievable with 'l2'.") |
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859 sgdc.add_argument("--alpha", required=False, default=0.0001, help="Constant that multiplies the regularization term. Defaults to 0.0001. Also used to compute learning_rate when set to 'optimal'.") |
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860 sgdc.add_argument("--l1_ratio", required=False, default=0.15, help="The Elastic Net mixing parameter, with 0 <= l1_ratio <= 1. l1_ratio=0 corresponds to L2 penalty, l1_ratio=1 to L1. Defaults to 0.15.") |
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861 sgdc.add_argument("--fit_intercept", required=False, default=True, help="Whether the intercept should be estimated or not. If False, the data is assumed to be already centered. Defaults to True.") |
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862 sgdc.add_argument("--max_iter", required=False, default=1000, help="The maximum number of passes over the training data (aka epochs). It only impacts the behavior in the fit method, and not the partial_fit method.") |
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863 sgdc.add_argument("--tol", required=False, default=0.001, help="The stopping criterion. If it is not None, the iterations will stop when (loss > best_loss - tol) for n_iter_no_change consecutive epochs.") |
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864 sgdc.add_argument("--shuffle", required=False, default=True, help="Whether or not the training data should be shuffled after each epoch. Defaults to True.") |
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865 sgdc.add_argument("--verbose", required=False, default=0, help="The verbosity level.") |
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866 sgdc.add_argument("--epsilon", required=False, default=0.1, help="Epsilon in the epsilon-insensitive loss functions; only if loss is 'huber', 'epsilon_insensitive', or 'squared_epsilon_insensitive'. For 'huber', determines the threshold at which it becomes less important to get the prediction exactly right. For epsilon-insensitive, any differences between the current prediction and the correct label are ignored if they are less than this threshold.") |
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867 sgdc.add_argument("--n_jobs", required=False, default='none', help="The number of CPUs to use to do the OVA (One Versus All, for multi-class problems) computation. None means 1 unless in a joblib.parallel_backend context. -1 means using all processors. See Glossary for more details.") |
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868 sgdc.add_argument("--random_state", required=False, default='none', help="The seed of the pseudo random number generator to use when shuffling the data. If int, random_state is the seed used by the random number generator; If RandomState instance, random_state is the random number generator; If None, the random number generator is the RandomState instance used by np.random.") |
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869 sgdc.add_argument("--learning_rate", required=False, default='optimal', help="The learning rate schedule:") |
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870 sgdc.add_argument("--eta0", required=False, default=0.0, help="eta = eta0") |
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871 sgdc.add_argument("--power_t", required=False, default=0.5, help="eta = 1.0 / (alpha * (t + t0)) where t0 is chosen by a heuristic proposed by Leon Bottou.") |
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872 sgdc.add_argument("--early_stopping", required=False, default=False, help="MinMaxScaler") |
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873 sgdc.add_argument("--validation_fraction", required=False, default=0.1, help="The proportion of training data to set aside as validation set for early stopping. Must be between 0 and 1. Only used if early_stopping is True.") |
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874 sgdc.add_argument("--n_iter_no_change", required=False, default=5, help="Number of iterations with no improvement to wait before early stopping.") |
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875 sgdc.add_argument("--warm_start", required=False, default=False, help="When set to True, reuse the solution of the previous call to fit as initialization, otherwise, just erase the previous solution.") |
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876 sgdc.add_argument("--average", required=False, default=False, help="MinMaxScaler") |
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877 sgdc.add_argument("--TrainFile", required=True, default=None, help="Positive negative dataset Ex. 'Train.csv'") |
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878 sgdc.add_argument("--TestMethod", required=True, default=None, help="Internal','CrossVal', 'External', 'Predict'") |
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879 sgdc.add_argument("--SelectedSclaer", required=True, help="'Min_Max','Standard_Scaler','No_Scaler'") |
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880 sgdc.add_argument("--NFolds", required=False, default=5, help="int, Max=10") |
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881 sgdc.add_argument("--TestFile", required=False, default=None, help="Test data, 'Test.csv'") |
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882 sgdc.add_argument("--OutFile", required=False, default='Out.csv', help="float, Max=1.0") |
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883 sgdc.add_argument("--htmlOutDir", required=False, default=os.path.join(os.getcwd(),'report_dir'), help="HTML Out Dir") |
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884 sgdc.add_argument("--htmlFname", required=False, default='Out.html', help="") |
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885 sgdc.add_argument("--Workdirpath", required=False, default=os.getcwd(), help="Working Directory Path") |
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886 |
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887 dtc = subparsers.add_parser('DTC') |
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888 dtc.add_argument("--criterion", required=False, default='gini', help="The function to measure the quality of a split. Supported criteria are 'gini' for the Gini impurity and 'entropy' for the information gain.") |
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889 dtc.add_argument("--splitter", required=False, default='best', help="The strategy used to choose the split at each node. Supported strategies are 'best' to choose the best split and 'random' to choose the best random split." ) |
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890 dtc.add_argument("--max_depth", required=False, default='none', help="The maximum depth of the tree. If None, then nodes are expanded until all leaves are pure or until all leaves contain less than min_samples_split samples.") |
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891 dtc.add_argument("--min_samples_split", required=False, default='2', help="The minimum number of samples required to split an internal node: If int, then consider min_samples_split as the minimum number. If float, then min_samples_split is a fraction and ceil(min_samples_split * n_samples) are the minimum number of samples for each split.") |
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892 dtc.add_argument("--min_samples_leaf", required=False, default='1', help="The minimum number of samples required to be at a leaf node. A split point at any depth will only be considered if it leaves at least min_samples_leaf training samples in each of the left and right branches. This may have the effect of smoothing the model, especially in regression.") |
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893 dtc.add_argument("--min_weight_fraction_leaf", required=False, default=0.0, help="The minimum weighted fraction of the sum total of weights (of all the input samples) required to be at a leaf node. Samples have equal weight when sample_weight is not provided.") |
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894 dtc.add_argument("--random_state", required=False, default='none', help="If int, random_state is the seed used by the random number generator; If RandomState instance, random_state is the random number generator; If None, the random number generator is the RandomState instance used by np.random.") |
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895 dtc.add_argument("--max_leaf_nodes", required=False, default='none', help="A node will be split if this split induces a decrease of the impurity greater than or equal to this value. The weighted impurity decrease equation is the following") |
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896 dtc.add_argument("--min_impurity_decrease", required=False, default=0.0, help="") |
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897 dtc.add_argument("--min_impurity_split", required=False, default=1e-09, help="Threshold for early stopping in tree growth. A node will split if its impurity is above the threshold, otherwise it is a leaf.") |
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898 dtc.add_argument("--presort", required=False, default='deprecate', help="This parameter is deprecated and will be removed in v0.24.") |
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899 dtc.add_argument("--ccpalpha", required=False, default=0.0, help="Complexity parameter used for Minimal Cost-Complexity Pruning. The subtree with the largest cost complexity that is smaller than ccp_alpha will be chosen. By default, no pruning is performed. See Minimal Cost-Complexity Pruning for details.") |
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900 dtc.add_argument("--TrainFile", required=True, default=None, help="Positive negative dataset Ex. 'Train.csv'") |
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901 dtc.add_argument("--TestMethod", required=True, default=None, help="Internal','CrossVal', 'External', 'Predict'") |
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902 dtc.add_argument("--max_features", required=False, default='none') |
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903 dtc.add_argument("--SelectedSclaer", required=True, help="'Min_Max',Standard_Scaler','No_Scaler'") |
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904 dtc.add_argument("--NFolds", required=False, default=5, help="int, Max=10") |
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905 dtc.add_argument("--TestFile", required=False, default=None, help="Test data, 'Test.csv'") |
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906 dtc.add_argument("--OutFile", required=False, default='Out.csv', help="Out.tsv") |
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907 dtc.add_argument("--htmlOutDir", required=False, default=os.path.join(os.getcwd(),'report_dir'), help="HTML Out Dir") |
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908 dtc.add_argument("--htmlFname", required=False, default='Out.html', help="") |
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909 dtc.add_argument("--Workdirpath", required=False, default=os.getcwd(), help="Working Directory Path") |
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910 |
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911 gbc = subparsers.add_parser('GBC') |
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912 gbc.add_argument("--loss", required=False, default='deviance', help="loss function to be optimized. 'deviance' refers to deviance (= logistic regression) for classification with probabilistic outputs. For loss 'exponential' gradient boosting recovers the AdaBoost algorithm.") |
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913 gbc.add_argument("--learning_rate", required=False, default=0.1, help="learning rate shrinks the contribution of each tree by learning_rate. There is a trade-off between learning_rate and n_estimators.") |
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914 gbc.add_argument("--n_estimators", required=False, default=100, help="The number of boosting stages to perform. Gradient boosting is fairly robust to over-fitting so a large number usually results in better performance.") |
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915 gbc.add_argument("--subsample", required=False, default=1.0, help="The fraction of samples to be used for fitting the individual base learners. If smaller than 1.0 this results in Stochastic Gradient Boosting. subsample interacts with the parameter n_estimators. Choosing subsample < 1.0 leads to a reduction of variance and an increase in bias.") |
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916 gbc.add_argument("--criterion", required=False,default='friedman_mse', help="The function to measure the quality of a split. Supported criteria are 'friedman_mse' for the mean squared error with improvement score by Friedman, 'mse' for mean squared error, and 'mae' for the mean absolute error. The default value of 'friedman_mse' is generally the best as it can provide a better approximation in some cases.") |
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917 gbc.add_argument("--min_samples_split", required=False, default='2', help="The minimum number of samples required to split an internal node: If int, then consider min_samples_split as the minimum number. If float, then min_samples_split is a fraction and ceil(min_samples_split * n_samples) are the minimum number of samples for each split.") |
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918 gbc.add_argument("--min_samples_leaf", required=False, default='1', help="The minimum number of samples required to be at a leaf node. A split point at any depth will only be considered if it leaves at least min_samples_leaf training samples in each of the left and right branches. This may have the effect of smoothing the model, especially in regression.If int, then consider min_samples_leaf as the minimum number. If float, then min_samples_leaf is a fraction and ceil(min_samples_leaf * n_samples) are the minimum number of samples for each node.") |
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919 gbc.add_argument("--min_weight_fraction_leaf", required=False, default=0, help="The minimum weighted fraction of the sum total of weights (of all the input samples) required to be at a leaf node. Samples have equal weight when sample_weight is not provided.") |
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920 gbc.add_argument("--max_depth", required=False, default=3, help="maximum depth of the individual regression estimators. The maximum depth limits the number of nodes in the tree. Tune this parameter for best performance; the best value depends on the interaction of the input variables.") |
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921 gbc.add_argument("--min_impurity_decrease", required=False, default=0.0, help="A node will be split if this split induces a decrease of the impurity greater than or equal to this value. The weighted impurity decrease equation is the following: 'N_t / N * (impurity - N_t_R / N_t * right_impurity - N_t_L / N_t * left_impurity'), where N is the total number of samples, N_t is the number of samples at the current node, N_t_L is the number of samples in the left child, and N_t_R is the number of samples in the right child. N, N_t, N_t_R and N_t_L all refer to the weighted sum, if sample_weight is passed. New in version 0.19.") |
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922 gbc.add_argument("--min_impurity_split", required=False, default=0.00000007, help="Threshold for early stopping in tree growth. A node will split if its impurity is above the threshold, otherwise it is a leaf.") |
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923 gbc.add_argument("--init", required=False,default='none', help="An estimator object that is used to compute the initial predictions. init has to provide fit and predict_proba. If 'zero', the initial raw predictions are set to zero. By default, a DummyEstimator predicting the classes priors is used.") |
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924 gbc.add_argument("--random_state", required=False, default='none', help="If int, random_state is the seed used by the random number generator; If RandomState instance, random_state is the random number generator; If None, the random number generator is the RandomState instance used by np.random.") |
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925 gbc.add_argument("--max_features", required=False, default='none', help="The number of features to consider when looking for the best split: If int, then consider max_features features at each split. If float, then max_features is a fraction and int(max_features * n_features) features are considered at each split.If 'auto', then max_features=sqrt(n_features). If 'sqrt', then max_features=sqrt(n_features). If 'log2', then max_features=log2(n_features). If None, then max_features=n_features. Choosing max_features < n_features leads to a reduction of variance and an increase in bias. Note: the search for a split does not stop until at least one valid partition of the node samples is found, even if it requires to effectively inspect more than max_features features.") |
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926 gbc.add_argument("--verbose",required=False, default=0, help="Enable verbose output. If 1 then it prints progress and performance once in a while (the more trees the lower the frequency). If greater than 1 then it prints progress and performance for every tree.") |
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927 gbc.add_argument("--max_leaf_nodes", required=False, default=4, help="Grow trees with max_leaf_nodes in best-first fashion. Best nodes are defined as relative reduction in impurity. If None then unlimited number of leaf nodes.") |
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928 gbc.add_argument("--warm_start", required=False, default='false', help="When set to True, reuse the solution of the previous call to fit and add more estimators to the ensemble, otherwise, just erase the previous solution." ) |
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929 gbc.add_argument("--presort", required=False,default='auto', help="This parameter is deprecated and will be removed in v0.24.") |
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930 gbc.add_argument("--validation_fraction", required=False, default=0.1, help="The proportion of training data to set aside as validation set for early stopping. Must be between 0 and 1. Only used if n_iter_no_change is set to an integer.") |
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931 gbc.add_argument("--n_iter_no_change", required=False, default=10, help="n_iter_no_change is used to decide if early stopping will be used to terminate training when validation score is not improving. By default it is set to None to disable early stopping. If set to a number, it will set aside validation_fraction size of the training data as validation and terminate training when validation score is not improving in all of the previous n_iter_no_change numbers of iterations. The split is stratified.") |
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932 gbc.add_argument("--tol", required=False, default=0.0001, help="Tolerance for the early stopping. When the loss is not improving by at least tol for n_iter_no_change iterations (if set to a number), the training stops.") |
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933 gbc.add_argument("--ccpalpha", required=False, default=0.0, help="Complexity parameter used for Minimal Cost-Complexity Pruning. The subtree with the largest cost complexity that is smaller than ccp_alpha will be chosen. By default, no pruning is performed. See Minimal Cost-Complexity Pruning for details.") |
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934 gbc.add_argument("--TrainFile", required=True, default=None, help="Positive negative dataset Ex. 'Train.csv'") |
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935 gbc.add_argument("--TestMethod", required=True, default=None, help="Internal','CrossVal', 'External', 'Predict'") |
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936 gbc.add_argument("--SelectedSclaer", required=True, help="'Min_Max',Standard_Scaler','No_Scaler'") |
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937 gbc.add_argument("--NFolds", required=False, default=5, help="int, Max=10") |
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938 gbc.add_argument("--TestFile", required=False, default=None, help="Test data, 'Test.csv'") |
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939 gbc.add_argument("--OutFile", required=False, default='Out.csv', help="Out.tsv") |
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940 gbc.add_argument("--htmlOutDir", required=False, default=os.path.join(os.getcwd(),'report_dir'), help="HTML Out Dir") |
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941 gbc.add_argument("--htmlFname", required=False, default='Out.html', help="") |
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942 gbc.add_argument("--Workdirpath", required=False, default=os.getcwd(), help="Working Directory Path") |
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943 |
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944 rfc = subparsers.add_parser('RFC') |
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945 rfc.add_argument("--n_estimators", required=False, default=100, help="The number of trees in the forest.") |
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946 rfc.add_argument("--criterion", required=False, default='gini', help="The function to measure the quality of a split. Supported criteria are 'gini' for the Gini impurity and 'entropy' for the information gain. Note: this parameter is tree-specific." ) |
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947 rfc.add_argument("--max_depth", required=False, default='none', help="The maximum depth of the tree. If None, then nodes are expanded until all leaves are pure or until all leaves contain less than min_samples_split samples.") |
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948 rfc.add_argument("--min_samples_split", required=False, default='2', help="The minimum number of samples required to split an internal node: If int, then consider min_samples_split as the minimum number. If float, then min_samples_split is a fraction and ceil(min_samples_split * n_samples) are the minimum number of samples for each split.") |
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949 rfc.add_argument("--min_samples_leaf", required=False, default='1', help="The minimum number of samples required to be at a leaf node. A split point at any depth will only be considered if it leaves at least min_samples_leaf training samples in each of the left and right branches. This may have the effect of smoothing the model, especially in regression.") |
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950 rfc.add_argument("--min_weight_fraction_leaf", required=False, default=0.0, help="The minimum weighted fraction of the sum total of weights (of all the input samples) required to be at a leaf node. Samples have equal weight when sample_weight is not provided.") |
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951 rfc.add_argument("--max_features", required=False, default='auto', help="The number of features to consider when looking for the best split:") |
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952 rfc.add_argument("--max_leaf_nodes", required=False, default='none', help="Grow trees with max_leaf_nodes in best-first fashion. Best nodes are defined as relative reduction in impurity. If None then unlimited number of leaf nodes.") |
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953 rfc.add_argument("--min_impurity_decrease", required=False, default=0.0, help="A node will be split if this split induces a decrease of the impurity greater than or equal to this value. The weighted impurity decrease equation is the following: N_t / N * (impurity - N_t_R / N_t * right_impurity - N_t_L / N_t * left_impurity) where N is the total number of samples, N_t is the number of samples at the current node, N_t_L is the number of samples in the left child, and N_t_R is the number of samples in the right child. N, N_t, N_t_R and N_t_L all refer to the weighted sum, if sample_weight is passed. New in version 0.19.") |
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954 rfc.add_argument("--min_impurity_split", required=False, default=1e-7, help="Threshold for early stopping in tree growth. A node will split if its impurity is above the threshold, otherwise it is a leaf.") |
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955 rfc.add_argument("--bootstrap", required=False, default='true', help="Whether bootstrap samples are used when building trees. If False, the whole datset is used to build each tree.") |
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956 rfc.add_argument("--oob_score", required=False, default='false', help="Whether to use out-of-bag samples to estimate the generalization accuracy.") |
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957 rfc.add_argument("--n_jobs", required=False, default=-1, help="The number of jobs to run in parallel. fit, predict, decision_path and apply are all parallelized over the trees. None means 1 unless in a joblib.parallel_backend context. -1 means using all processors. See Glossary for more details." ) |
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958 rfc.add_argument("--random_state", required=False, default='none', help="Controls both the randomness of the bootstrapping of the samples used when building trees (if bootstrap=True) and the sampling of the features to consider when looking for the best split at each node (if max_features < n_features). See Glossary for details.") |
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959 rfc.add_argument("--verbose", required=False, default=0, help="Controls the verbosity when fitting and predicting." ) |
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960 rfc.add_argument("--max_samples", required=False, default='none', help="") |
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961 rfc.add_argument("--ccp_alpha", required=False, default=0.0, help="") |
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962 rfc.add_argument("--warm_start", required=False, default='false', help="When set to True, reuse the solution of the previous call to fit and add more estimators to the ensemble, otherwise, just fit a whole new forest. See the Glossary.") |
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963 rfc.add_argument("--TrainFile", required=True, default=None, help="Positive negative dataset Ex. 'Train.csv'") |
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964 rfc.add_argument("--TestMethod", required=True, default=None, help="Internal','CrossVal', 'External', 'Predict'") |
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965 rfc.add_argument("--SelectedSclaer", required=True, help="'Min_Max',Standard_Scaler','No_Scaler'") |
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966 rfc.add_argument("--NFolds", required=False, default=5, help="int, Max=10") |
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967 rfc.add_argument("--TestFile", required=False, default=None, help="Test data, 'Test.csv'") |
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968 rfc.add_argument("--OutFile", required=False, default='Out.csv', help="Out.tsv") |
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969 rfc.add_argument("--htmlOutDir", required=False, default=os.path.join(os.getcwd(),'report_dir'), help="HTML Out Dir") |
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970 rfc.add_argument("--htmlFname", required=False, default='Out.html', help="") |
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971 rfc.add_argument("--Workdirpath", required=False, default=os.getcwd(), help="Working Directory Path") |
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972 |
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973 lrc = subparsers.add_parser('LRC') |
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974 lrc.add_argument("--penalty", required=False, default='l2', help="Used to specify the norm used in the penalization. The 'newton-cg', 'sag' and 'lbfgs' solvers support only l2 penalties. 'elasticnet' is only supported by the 'saga' solver. If 'none' (not supported by the liblinear solver), no regularization is applied." ) |
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975 lrc.add_argument("--dual", required=False, default='false', help="Dual or primal formulation. Dual formulation is only implemented for l2 penalty with liblinear solver. Prefer dual=False when n_samples > n_features.") |
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976 lrc.add_argument("--tol", required=False, default=0.0001, help="Tolerance for stopping criteria.") |
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977 lrc.add_argument("--C", required=False, default=1.0, help="Inverse of regularization strength; must be a positive float. Like in support vector machines, smaller values specify stronger regularization." ) |
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978 lrc.add_argument("--fit_intercept", required=False, default='true', help="Specifies if a constant (a.k.a. bias or intercept) should be added to the decision function." ) |
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979 lrc.add_argument("--intercept_scaling", required=False, default=1, help="Useful only when the solver 'liblinear' is used and self.fit_intercept is set to True. In this case, x becomes [x, self.intercept_scaling], i.e. a 'synthetic' feature with constant value equal to intercept_scaling is appended to the instance vector. The intercept becomes intercept_scaling * synthetic_feature_weight." ) |
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980 lrc.add_argument("--random_state", required=False, default=10, help="The seed of the pseudo random number generator to use when shuffling the data. If int, random_state is the seed used by the random number generator; If RandomState instance, random_state is the random number generator; If None, the random number generator is the RandomState instance used by np.random. Used when solver == 'sag' or 'liblinear'.") |
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981 lrc.add_argument("--solver", required=False, default='lbfgs', help="Algorithm to use in the optimization problem. For small datasets, 'liblinear' is a good choice, whereas 'sag' and 'saga' are faster for large ones. For multiclass problems, only 'newton-cg', 'sag', 'saga' and 'lbfgs' handle multinomial loss; 'liblinear' is limited to one-versus-rest schemes. 'newton-cg', 'lbfgs', 'sag' and 'saga' handle L2 or no penalty 'liblinear' and 'saga' also handle L1 penalty 'saga' also supports 'elasticnet' penalty 'liblinear' does not support setting penalty='none' Note that 'sag' and 'saga' fast convergence is only guaranteed on features with approximately the same scale. You can preprocess the data with a scaler from sklearn.preprocessing. New in version 0.17: Stochastic Average Gradient descent solver.") |
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982 lrc.add_argument("--max_iter", required=False, default=100, help="Maximum number of iterations taken for the solvers to converge."), |
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983 lrc.add_argument("--multi_class", required=False, default='auto', help="If the option chosen is 'ovr', then a binary problem is fit for each label. For 'multinomial' the loss minimised is the multinomial loss fit across the entire probability distribution, even when the data is binary. 'multinomial' is unavailable when solver='liblinear'. 'auto' selects 'ovr' if the data is binary, or if solver='liblinear', and otherwise selects 'multinomial'. New in version 0.18: Stochastic Average Gradient descent solver for 'multinomial' case.") |
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984 lrc.add_argument("--verbose", required=False, default=0, help="For the liblinear and lbfgs solvers set verbose to any positive number for verbosity.") |
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985 lrc.add_argument("--warm_start", required=False, default='false', help="When set to True, reuse the solution of the previous call to fit as initialization, otherwise, just erase the previous solution. Useless for liblinear solver. See the Glossary. New in version 0.17: warm_start to support lbfgs, newton-cg, sag, saga solvers.") |
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986 lrc.add_argument("--n_jobs", required=False, default='none', help="Number of CPU cores used when parallelizing over classes if multi_class='ovr'. This parameter is ignored when the solver is set to 'liblinear' regardless of whether 'multi_class' is specified or not. None means 1 unless in a joblib.parallel_backend context. -1 means using all processors. See Glossary for more details." ) |
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987 lrc.add_argument("--l1_ratio", required=False, default='none', help="The Elastic-Net mixing parameter, with 0 <= l1_ratio <= 1. Only used if penalty='elasticnet'. Setting 'l1_ratio=0 is equivalent to using penalty='l2', while setting l1_ratio=1 is equivalent to using penalty='l1'. For 0 < l1_ratio <1, the penalty is a combination of L1 and L2.") |
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988 lrc.add_argument("--TrainFile", required=True, default=None, help="Positive negative dataset Ex. 'Train.csv'") |
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989 lrc.add_argument("--TestMethod", required=True, default=None, help="Internal','CrossVal', 'External', 'Predict'") |
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990 lrc.add_argument("--SelectedSclaer", required=True, help="'Min_Max',Standard_Scaler','No_Scaler'") |
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991 lrc.add_argument("--NFolds", required=False, default=5, help="int, Max=10") |
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992 lrc.add_argument("--TestFile", required=False, default=None, help="Test data, 'Test.csv'") |
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993 lrc.add_argument("--OutFile", required=False, default='Out.csv', help="Out.tsv") |
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994 lrc.add_argument("--htmlOutDir", required=False, default=os.path.join(os.getcwd(),'report_dir'), help="HTML Out Dir") |
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995 lrc.add_argument("--htmlFname", required=False, default='Out.html', help="") |
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996 lrc.add_argument("--Workdirpath", required=False, default=os.getcwd(), help="Working Directory Path") |
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997 |
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998 knc = subparsers.add_parser('KNC') |
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999 knc.add_argument("--n_neighbors", required=False, default=5, help="Number of neighbors to use by default for kneighbors queries.") |
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1000 knc.add_argument("--weights",required=False, default='uniform', help="weight function used in prediction. Possible values: 'uniform' : uniform weights. All points in each neighborhood are weighted equally. 'distance' : weight points by the inverse of their distance. in this case, closer neighbors of a query point will have a greater influence than neighbors which are further away. [callable] : a user-defined function which accepts an array of distances, and returns an array of the same shape containing the weights.") |
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1001 knc.add_argument("--algorithm", required=False, default='auto', help="Algorithm used to compute the nearest neighbors:'ball_tree' will use BallTree 'kd_tree' will use KDTree 'brute' will use a brute-force search. 'auto' will attempt to decide the most appropriate algorithm based on the values passed to fit method. Note: fitting on sparse input will override the setting of this parameter, using brute force." ) |
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1002 knc.add_argument("--leaf_size", required=False, default=30, help="Leaf size passed to BallTree or KDTree. This can affect the speed of the construction and query, as well as the memory required to store the tree. The optimal value depends on the nature of the problem.") |
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1003 knc.add_argument("--p", required=False, default=2, help="Power parameter for the Minkowski metric. When p = 1, this is equivalent to using manhattan_distance (l1), and euclidean_distance (l2) for p = 2. For arbitrary p, minkowski_distance (l_p) is used." ) |
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1004 knc.add_argument("--metric", required=False, default='minkowski', help="the distance metric to use for the tree. The default metric is minkowski, and with p=2 is equivalent to the standard Euclidean metric. See the documentation of the DistanceMetric class for a list of available metrics. If metric is 'precomputed', X is assumed to be a distance matrix and must be square during fit. X may be a Glossary, in which case only 'nonzero' elements may be considered neighbors.") |
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1005 knc.add_argument("--metric_params", required=False, default=None, help="Additional keyword arguments for the metric function." ) |
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1006 knc.add_argument("--n_jobs", required=False, default='none', help="The number of parallel jobs to run for neighbors search. None means 1 unless in a joblib.parallel_backend context. -1 means using all processors. See Glossary for more details. Doesn't affect fit method.") |
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1007 knc.add_argument("--TrainFile", required=True, default=None, help="Positive negative dataset Ex. 'Train.csv'") |
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1008 knc.add_argument("--TestMethod", required=True, default=None, help="Internal','CrossVal', 'External', 'Predict'") |
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1009 knc.add_argument("--SelectedSclaer", required=True, help="'Min_Max',Standard_Scaler','No_Scaler'") |
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1010 knc.add_argument("--NFolds", required=False, default=5, help="int, Max=10") |
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1011 knc.add_argument("--TestFile", required=False, default=None, help="Test data, 'Test.csv'") |
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1012 knc.add_argument("--OutFile", required=False, default='Out.csv', help="Out.tsv") |
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1013 knc.add_argument("--htmlOutDir", required=False, default=os.path.join(os.getcwd(),'report_dir'), help="HTML Out Dir") |
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1014 knc.add_argument("--htmlFname", required=False, default='Out.html', help="") |
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1015 knc.add_argument("--Workdirpath", required=False, default=os.getcwd(), help="Working Directory Path") |
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1016 |
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1017 gnbc = subparsers.add_parser('GNBC') |
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1018 #gnbc.add_argument("--priors", required=False, default=None, help="Prior probabilities of the classes. If specified the priors are not adjusted according to the data.") |
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1019 gnbc.add_argument("--var_smoothing", required=False, default=1e-09, help="Portion of the largest variance of all features that is added to variances for calculation stability.") |
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1020 gnbc.add_argument("--TrainFile", required=True, default=None, help="Positive negative dataset Ex. 'Train.csv'") |
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1021 gnbc.add_argument("--TestMethod", required=True, default=None, help="Internal','CrossVal', 'External', 'Predict'") |
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1022 gnbc.add_argument("--SelectedSclaer", required=True, help="'Min_Max',Standard_Scaler','No_Scaler'") |
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1023 gnbc.add_argument("--NFolds", required=False, default=5, help="int, Max=10") |
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1024 gnbc.add_argument("--TestFile", required=False, default=None, help="Test data, 'Test.csv'") |
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1025 gnbc.add_argument("--OutFile", required=False, default='Out.csv', help="Out.tsv") |
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1026 gnbc.add_argument("--htmlOutDir", required=False, default=os.path.join(os.getcwd(),'report_dir'), help="HTML Out Dir") |
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1027 gnbc.add_argument("--htmlFname", required=False, default='Out.html', help="") |
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1028 gnbc.add_argument("--Workdirpath", required=False, default=os.getcwd(), help="Working Directory Path") |
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1029 |
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1030 MLP = subparsers.add_parser('MLP') |
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1031 MLP.add_argument("--hidden_layer_sizes", required=False, default=(100,), help="") |
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1032 MLP.add_argument("--activation", required=False, default='relu', help="") |
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1033 MLP.add_argument("--solver", required=False, default='adam', help="") |
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1034 MLP.add_argument("--alpha", required=False, default=0.0001 , help="") |
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1035 MLP.add_argument("--batch_size", required=False, default='auto', help="") |
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1036 MLP.add_argument("--learning_rate", required=False, default='constant', help="") |
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1037 MLP.add_argument("--learning_rate_init", required=False, default=0.001, help="") |
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1038 MLP.add_argument("--power_t", required=False, default=0.5, help="") |
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1039 MLP.add_argument("--max_iter", required=False, default=200, help="") |
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1040 MLP.add_argument("--shuffle", required=False, default='true', help="") |
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1041 MLP.add_argument("--random_state", required=False, default='none', help="") |
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1042 MLP.add_argument("--tol", required=False, default=0.0001, help="") |
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1043 MLP.add_argument("--verbose", required=False, default='false', help="") |
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1044 MLP.add_argument("--warm_start", required=False, default='false', help="") |
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1045 MLP.add_argument("--momentum", required=False, default=0.9, help="") |
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1046 MLP.add_argument("--nesterovs_momentum", required=False, default='true' ,help="") |
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1047 MLP.add_argument("--early_stopping", required=False, default='false' ,help="") |
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1048 MLP.add_argument("--validation_fraction", required=False, default=0.1 ,help="") |
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1049 MLP.add_argument("--beta_1", required=False, default=0.9, help="") |
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1050 MLP.add_argument("--beta_2", required=False , default=0.999, help="") |
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1051 MLP.add_argument("--epsilon", required=False, default=1e-08, help="") |
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1052 MLP.add_argument("--n_iter_no_change", required=False, default=10, help="") |
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1053 MLP.add_argument("--max_fun", required=False, default=15000, help="") |
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1054 MLP.add_argument("--TrainFile", required=True, default=None, help="Positive negative dataset Ex. 'Train.csv'") |
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1055 MLP.add_argument("--TestMethod", required=True, default=None, help="Internal','CrossVal', 'External', 'Predict'") |
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1056 MLP.add_argument("--SelectedSclaer", required=True, help="'Min_Max',Standard_Scaler','No_Scaler'") |
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1057 MLP.add_argument("--NFolds", required=False, default=5, help="int, Max=10") |
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1058 MLP.add_argument("--Testspt", required=False, default=0.2, help="float, Max=1.0") |
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1059 MLP.add_argument("--TestFile", required=False, default=None, help="Test data, 'Test.csv'") |
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1060 MLP.add_argument("--OutFile", required=False, default='Out.csv', help="Out.tsv") |
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1061 MLP.add_argument("--htmlOutDir", required=False, default=os.path.join(os.getcwd(),'report_dir'), help="HTML Out Dir") |
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1062 MLP.add_argument("--htmlFname", required=False, help="HTML out file", default="jai.html") |
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1063 MLP.add_argument("--Workdirpath", required=False, default=os.getcwd(), help="Working Directory Path") |
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1064 |
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1065 args = parser.parse_args() |
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1066 |
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1067 if sys.argv[1] == 'SVMC': |
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1068 SVM_Classifier(args.C, args.kernel, args.degree, args.gamma, args.coef0, args.shrinking, args.probability, args.tol, args.cache_size, args.verbose, args.max_iter, args.decision_function_shape, args.randomState, args.breakties, args.TrainFile, args.TestMethod, args.SelectedSclaer, args.NFolds, args.TestFile, args.OutFile, args.htmlOutDir, args.htmlFname, args.Workdirpath) |
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1069 elif sys.argv[1] == 'SGDC': |
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1070 SGD_Classifier( args.loss, args.penalty, args.alpha, args.l1_ratio, args.fit_intercept, args.max_iter, args.tol, args.shuffle, args.verbose, args.epsilon, args.n_jobs, args.random_state, args.learning_rate, args.eta0, args.power_t, args.early_stopping, args.validation_fraction, args.n_iter_no_change, args.warm_start, args.average, args.TrainFile, args.TestMethod, args.SelectedSclaer, args.NFolds, args.TestFile, args.OutFile, args.htmlOutDir, args.htmlFname, args.Workdirpath) |
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1071 elif sys.argv[1] == 'DTC': |
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1072 DT_Classifier(args.criterion, args.splitter, args.max_depth, args.min_samples_split, args.min_samples_leaf, args.min_weight_fraction_leaf, args.random_state, args.max_leaf_nodes, args.min_impurity_decrease, args.min_impurity_split, args.presort, args.ccpalpha, args.max_features, args.TrainFile, args.TestMethod, args.SelectedSclaer, args.NFolds, args.TestFile, args.OutFile, args.htmlOutDir, args.htmlFname, args.Workdirpath) |
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1073 elif sys.argv[1] == 'GBC': |
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1074 GB_Classifier(args.loss, args.learning_rate, args.n_estimators, args.subsample, args.criterion, args.min_samples_split, args.min_samples_leaf, args.min_weight_fraction_leaf, args.max_depth, args.min_impurity_decrease, args.min_impurity_split, args.init, args.random_state, args.verbose, args.max_leaf_nodes, args.warm_start, args.presort, args.validation_fraction, args.n_iter_no_change, args.tol, args.ccpalpha, args.max_features, args.TrainFile, args.TestMethod, args.SelectedSclaer, args.NFolds, args.TestFile, args.OutFile, args.htmlOutDir, args.htmlFname, args.Workdirpath) |
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1075 elif sys.argv[1] == 'RFC': |
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1076 RF_Classifier( args.n_estimators, args.criterion, args.max_depth, args.min_samples_split, args.min_samples_leaf, args.min_weight_fraction_leaf, args.max_features, args.max_leaf_nodes, args.min_impurity_decrease, args.min_impurity_split, args.bootstrap, args.oob_score, args.n_jobs, args.random_state, args.verbose, args.warm_start, args.ccp_alpha, args.max_samples, args.TrainFile, args.TestMethod, args.SelectedSclaer, args.NFolds, args.TestFile, args.OutFile, args.htmlOutDir, args.htmlFname, args.Workdirpath) |
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1077 elif sys.argv[1] == 'LRC': |
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1078 LR_Classifier(args.penalty, args.dual, args.tol, args.C, args.fit_intercept, args.intercept_scaling, args.random_state, args.solver, args.max_iter, args.multi_class, args.verbose, args.warm_start, args.n_jobs, args.l1_ratio, args.TrainFile, args.TestMethod, args.SelectedSclaer, args.NFolds, args.TestFile, args.OutFile, args.htmlOutDir, args.htmlFname, args.Workdirpath) |
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1079 elif sys.argv[1] == 'KNC': |
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1080 KN_Classifier(args.n_neighbors, args.weights, args.algorithm, args.leaf_size, args.p, args.metric, args.metric_params, args.n_jobs, args.TrainFile, args.TestMethod, args.SelectedSclaer, args.NFolds, args.TestFile, args.OutFile, args.htmlOutDir, args.htmlFname, args.Workdirpath) |
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1081 elif sys.argv[1] == 'GNBC': |
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1082 GNB_Classifier( args.var_smoothing, args.TrainFile, args.TestMethod, args.SelectedSclaer, args.NFolds, args.TestFile, args.OutFile, args.htmlOutDir, args.htmlFname, args.Workdirpath) |
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1083 elif sys.argv[1] == 'MLP' : |
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1084 MLP_Classifier(args.hidden_layer_sizes, args.activation, args.solver, args.alpha, args.batch_size, args.learning_rate, args.learning_rate_init, args.power_t, args.max_iter, args.shuffle, args.random_state, args.tol, args.verbose, args.warm_start, args.momentum, args.nesterovs_momentum, args.early_stopping, args.validation_fraction, args.beta_1, args.beta_2, args.epsilon, args.n_iter_no_change, args.max_fun, args.TrainFile, args.TestMethod, args.SelectedSclaer, args.NFolds, args.Testspt, args.TestFile, args.OutFile, args.htmlOutDir, args.htmlFname, args.Workdirpath) |
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1085 else: |
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1086 print ("option not correct") |
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1087 exit() |
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1088 |