annotate generalized_linear.xml @ 2:3326dd4f1e8d draft

planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 641ac64ded23fbb6fe85d5f13926da12dcce4e76
author bgruening
date Tue, 13 Mar 2018 04:58:51 -0400
parents 32a88b3bea94
children fd6c50f21cd0
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1 <tool id="sklearn_generalized_linear" name="Generalized linear models" version="@VERSION@">
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2 <description>for classification and regression</description>
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3 <macros>
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4 <import>main_macros.xml</import>
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5 </macros>
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6 <expand macro="python_requirements"/>
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7 <expand macro="macro_stdio"/>
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8 <version_command>echo "@VERSION@"</version_command>
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9 <command><![CDATA[
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10 python "$glm_script" '$inputs'
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11 ]]>
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12 </command>
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13 <configfiles>
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14 <inputs name="inputs"/>
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15 <configfile name="glm_script">
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16 <![CDATA[
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17 import sys
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18 import json
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19 import numpy as np
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20 import sklearn.linear_model
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21 import pandas
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22 import pickle
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23 from scipy.io import mmread
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24
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25 @COLUMNS_FUNCTION@
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26
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27 input_json_path = sys.argv[1]
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28 params = json.load(open(input_json_path, "r"))
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29
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30 #if $selected_tasks.selected_task == "train":
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31
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32 algorithm = params["selected_tasks"]["selected_algorithms"]["selected_algorithm"]
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33 options = params["selected_tasks"]["selected_algorithms"]["options"]
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34
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35 #if $selected_tasks.selected_algorithms.input_options.selected_input=="tabular":
2
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36 X = read_columns(
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37 "$selected_tasks.selected_algorithms.input_options.infile1",
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38 "$selected_tasks.selected_algorithms.input_options.col1",
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39 sep='\t',
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40 header=None,
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41 parse_dates=True
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42 )
0
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43 #else:
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44 X = mmread(open("$selected_tasks.selected_algorithms.input_options.infile1", 'r'))
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45 #end if
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46
2
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47 y = read_columns(
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48 "$selected_tasks.selected_algorithms.input_options.infile2",
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49 "$selected_tasks.selected_algorithms.input_options.col2",
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50 sep='\t',
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51 header=None,
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52 parse_dates=True
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53 )
0
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54
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55 my_class = getattr(sklearn.linear_model, algorithm)
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56 estimator = my_class(**options)
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57 estimator.fit(X,y)
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58 pickle.dump(estimator,open("$outfile_fit", 'w+'), pickle.HIGHEST_PROTOCOL)
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59
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60 #else:
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61 classifier_object = pickle.load(open("$selected_tasks.infile_model", 'r'))
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62 data = pandas.read_csv("$selected_tasks.infile_data", sep='\t', header=None, index_col=None, parse_dates=True, encoding=None, tupleize_cols=False )
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63 prediction = classifier_object.predict(data)
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64 prediction_df = pandas.DataFrame(prediction)
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65 res = pandas.concat([data, prediction_df], axis=1)
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66 res.to_csv(path_or_buf = "$outfile_predict", sep="\t", index=False, header=None)
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67 #end if
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68
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69 ]]>
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70 </configfile>
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71 </configfiles>
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72 <inputs>
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73 <expand macro="sl_Conditional" model="zip">
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74 <param name="selected_algorithm" type="select" label="Select a linear model:">
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75 <option value="SGDClassifier" selected="true">Stochastic Gradient Descent (SGD) classifier</option>
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76 <option value="SGDRegressor">Stochastic Gradient Descent (SGD) regressor</option>
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77 <option value="LinearRegression">Linear Regression model</option>
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78 <option value="RidgeClassifier">Ridge classifier</option>
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79 <option value="Ridge">Ridge regressor</option>
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80 <option value="LogisticRegression">Logistic Regression</option>
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81 <option value="LogisticRegressionCV">Logitic Regression with Cross Validation</option>
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82 <option value="Perceptron">Perceptron</option>
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83 </param>
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84 <when value="SGDClassifier">
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85 <expand macro="sl_mixed_input"/>
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86 <section name="options" title="Advanced Options" expanded="False">
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87 <expand macro="loss">
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88 <option value="hinge" selected="true">hinge</option>
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89 <option value="log">log</option>
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90 <option value="modified_huber">modified huber</option>
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91 <option value="squared_hinge">squared hinge</option>
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92 <option value="perceptron">perceptron</option>
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93 </expand>
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diff changeset
94 <expand macro="penalty"/>
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parents:
diff changeset
95 <expand macro="alpha"/>
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diff changeset
96 <expand macro="l1_ratio"/>
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diff changeset
97 <expand macro="fit_intercept"/>
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diff changeset
98 <expand macro="n_iter" />
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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parents:
diff changeset
99 <expand macro="shuffle"/>
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diff changeset
100 <expand macro="epsilon"/>
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diff changeset
101 <expand macro="learning_rate_s" selected1="true"/>
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diff changeset
102 <expand macro="eta0"/>
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diff changeset
103 <expand macro="power_t"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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104 <!--class_weight-->
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diff changeset
105 <expand macro="warm_start" checked="false"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
106 <expand macro="random_state"/>
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diff changeset
107 <!--average-->
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108 </section>
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109 </when>
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110 <when value="SGDRegressor">
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111 <expand macro="sl_mixed_input"/>
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112 <section name="options" title="Advanced Options" expanded="False">
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113 <expand macro="loss" select="true"/>
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114 <expand macro="penalty"/>
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diff changeset
115 <expand macro="alpha"/>
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116 <expand macro="l1_ratio"/>
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117 <expand macro="fit_intercept"/>
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diff changeset
118 <expand macro="n_iter" />
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diff changeset
119 <expand macro="shuffle"/>
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diff changeset
120 <expand macro="epsilon"/>
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diff changeset
121 <expand macro="learning_rate_s" selected2="true"/>
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diff changeset
122 <expand macro="eta0" default_value="0.01"/>
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123 <expand macro="power_t" default_value="0.25"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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124 <expand macro="warm_start" checked="false"/>
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diff changeset
125 <expand macro="random_state"/>
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diff changeset
126 <!--average-->
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127 </section>
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128 </when>
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129 <when value="LinearRegression">
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130 <expand macro="sl_mixed_input"/>
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131 <section name="options" title="Advanced Options" expanded="False">
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132 <expand macro="fit_intercept"/>
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diff changeset
133 <expand macro="normalize"/>
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diff changeset
134 <expand macro="copy_X"/>
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135 </section>
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136 </when>
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137 <when value="RidgeClassifier">
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
138 <expand macro="sl_mixed_input"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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139 <section name="options" title="Advanced Options" expanded="False">
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
140 <expand macro="ridge_params"/>
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141 </section>
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142 </when>
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parents:
diff changeset
143 <when value="Ridge">
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
144 <expand macro="sl_mixed_input"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
145 <section name="options" title="Advanced Options" expanded="False">
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
146 <expand macro="ridge_params"/>
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diff changeset
147 </section>
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148 </when>
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diff changeset
149 <when value="LogisticRegression">
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
150 <expand macro="sl_mixed_input"/>
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diff changeset
151 <section name="options" title="Advanced Options" expanded="False">
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diff changeset
152 <expand macro="penalty"/>
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diff changeset
153 <param argument="dual" type="boolean" truevalue="booltrue" falsevalue="boolfalse" checked="false" label="Use dual formulation" help=" "/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
154 <expand macro="tol" default_value="0.0001" help_text="Tolerance for stopping criteria. "/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
155 <expand macro="C"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
156 <expand macro="fit_intercept"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
157 <expand macro="max_iter" default_value="100"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
158 <expand macro="warm_start" checked="false"/>
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diff changeset
159 <param argument="solver" type="select" label="Optimization algorithm" help=" ">
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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160 <option value="liblinear" selected="true">liblinear</option>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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161 <option value="sag">sag</option>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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162 <option value="lbfgs">lbfgs</option>
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163 <option value="newton-cg">newton-cg</option>
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164 </param>
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165 <param argument="intercept_scaling" type="float" value="1" label="Intercept scaling factor" help="Useful only if solver is liblinear. "/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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166 <param argument="multi_class" type="select" label="Multiclass option" help="Works only for lbfgs solver. ">
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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167 <option value="ovr" selected="true">ovr</option>
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168 <option value="multinomial">multinomial</option>
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169 </param>
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170 <!--class_weight-->
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diff changeset
171 <expand macro="random_state"/>
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diff changeset
172 </section>
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173 </when>
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174 <when value="LogisticRegressionCV">
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
175 <expand macro="sl_mixed_input"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
176 <section name="options" title="Advanced Options" expanded="False">
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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177 <param argument="Cs" type="integer" value="10" label="Inverse of regularization strength" help="A grid of Cs values are chosen in a logarithmic scale between 1e-4 and 1e4. Like in support vector machines, smaller values specify stronger regularization. "/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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178 <param argument="dual" type="boolean" truevalue="booltrue" falsevalue="boolfalse" checked="false" label="Use dual formulation" help=" "/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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179 <param argument="cv" type="integer" optional="true" value="" label="Number of folds used in cross validation" help="If not set, the default cross-validation generator (Stratified K-Folds) is used. "/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
180 <expand macro="penalty"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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181 <expand macro="tol" default_value="0.0001" help_text="Tolerance for stopping criteria. "/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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diff changeset
182 <expand macro="fit_intercept"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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183 <expand macro="max_iter" default_value="100"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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184 <param argument="solver" type="select" label="Optimization algorithm" help=" ">
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185 <option value="liblinear" selected="true">liblinear</option>
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186 <option value="sag">sag</option>
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187 <option value="lbfgs">lbfgs</option>
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188 <option value="newton-cg">newton-cg</option>
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189 </param>
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190 <param argument="intercept_scaling" type="float" value="1" label="Intercept scaling factor" help="Useful only if solver is liblinear. "/>
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191 <param argument="multi_class" type="select" label="Multiclass option" help="Works only for lbfgs solver. ">
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192 <option value="ovr" selected="true">ovr</option>
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193 <option value="multinomial">multinomial</option>
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194 </param>
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195 <param argument="refit" type="boolean" truevalue="booltrue" falsevalue="boolfalse" checked="true" label="Average scores across all folds" help=" "/>
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196 <expand macro="random_state"/>
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197 <!--scoring=None>
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198 <class_weight=None-->
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199 </section>
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200 </when>
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201 <when value="Perceptron">
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202 <expand macro="sl_mixed_input"/>
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203 <section name="options" title="Advanced Options" expanded="False">
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204 <expand macro="penalty" default_value="none"/>
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205 <expand macro="alpha"/>
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206 <expand macro="fit_intercept"/>
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207 <expand macro="n_iter" />
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208 <expand macro="shuffle"/>
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209 <expand macro="eta0" default_value="1"/>
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210 <expand macro="warm_start" checked="false"/>
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211 <expand macro="random_state" default_value="0"/>
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212 <!--class_weight=None-->
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213 </section>
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214 </when>
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215 </expand>
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216 </inputs>
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217 <outputs>
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218 <data format="tabular" name="outfile_predict">
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219 <filter>selected_tasks['selected_task'] == 'load'</filter>
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220 </data>
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221 <data format="zip" name="outfile_fit">
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222 <filter>selected_tasks['selected_task'] == 'train'</filter>
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223 </data>
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224 </outputs>
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225 <tests>
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226 <test>
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227 <param name="infile1" value="regression_train.tabular" ftype="tabular"/>
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228 <param name="infile2" value="regression_train.tabular" ftype="tabular"/>
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229 <param name="col1" value="1,2,3,4,5"/>
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230 <param name="col2" value="6"/>
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231 <param name="selected_task" value="train"/>
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232 <param name="selected_algorithm" value="SGDRegressor"/>
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233 <param name="random_state" value="10"/>
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234 <output name="outfile_fit" file="glm_model01" compare="sim_size" delta="500"/>
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235 </test>
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236 <test>
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237 <param name="infile_model" value="glm_model01" ftype="zip"/>
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238 <param name="infile_data" value="regression_test.tabular" ftype="tabular"/>
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239 <param name="selected_task" value="load"/>
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240 <output name="outfile_predict" file="glm_result01" compare="sim_size" delta="500"/>
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241 </test>
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242 <test>
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243 <param name="infile1" value="train.tabular" ftype="tabular"/>
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244 <param name="infile2" value="train.tabular" ftype="tabular"/>
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245 <param name="col1" value="1,2,3,4"/>
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246 <param name="col2" value="5"/>
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247 <param name="selected_task" value="train"/>
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248 <param name="selected_algorithm" value="SGDClassifier"/>
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249 <param name="random_state" value="10"/>
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250 <output name="outfile_fit" file="glm_model02" compare="sim_size" delta="500"/>
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251 </test>
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252 <test>
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253 <param name="infile_model" value="glm_model02" ftype="zip"/>
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254 <param name="infile_data" value="test.tabular" ftype="tabular"/>
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255 <param name="selected_task" value="load"/>
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256 <output name="outfile_predict" file="glm_result02"/>
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257 </test>
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258 <test>
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259 <param name="infile1" value="train.tabular" ftype="tabular"/>
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260 <param name="infile2" value="train.tabular" ftype="tabular"/>
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261 <param name="col1" value="1,2,3,4"/>
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262 <param name="col2" value="5"/>
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263 <param name="selected_task" value="train"/>
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264 <param name="selected_algorithm" value="RidgeClassifier"/>
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265 <param name="random_state" value="10"/>
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266 <output name="outfile_fit" file="glm_model03" compare="sim_size" delta="500"/>
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267 </test>
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268 <test>
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269 <param name="infile_model" value="glm_model03" ftype="zip"/>
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270 <param name="infile_data" value="test.tabular" ftype="tabular"/>
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271 <param name="selected_task" value="load"/>
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272 <output name="outfile_predict" file="glm_result03"/>
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273 </test>
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274 <test>
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275 <param name="infile1" value="regression_train.tabular" ftype="tabular"/>
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276 <param name="infile2" value="regression_train.tabular" ftype="tabular"/>
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277 <param name="col1" value="1,2,3,4,5"/>
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278 <param name="col2" value="6"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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279 <param name="selected_task" value="train"/>
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280 <param name="selected_algorithm" value="LinearRegression"/>
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281 <param name="random_state" value="10"/>
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282 <output name="outfile_fit" file="glm_model04" compare="sim_size" delta="500"/>
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283 </test>
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284 <test>
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285 <param name="infile_model" value="glm_model04" ftype="zip"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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286 <param name="infile_data" value="regression_test.tabular" ftype="tabular"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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287 <param name="selected_task" value="load"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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288 <output name="outfile_predict" file="glm_result04" compare="sim_size"/>
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289 </test>
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290 <test>
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291 <param name="infile1" value="train.tabular" ftype="tabular"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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292 <param name="infile2" value="train.tabular" ftype="tabular"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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293 <param name="col1" value="1,2,3,4"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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294 <param name="col2" value="5"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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295 <param name="selected_task" value="train"/>
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296 <param name="selected_algorithm" value="LogisticRegression"/>
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297 <param name="random_state" value="10"/>
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298 <output name="outfile_fit" file="glm_model05" compare="sim_size" delta="500"/>
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299 </test>
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300 <test>
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301 <param name="infile_model" value="glm_model05" ftype="zip"/>
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302 <param name="infile_data" value="test.tabular" ftype="tabular"/>
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303 <param name="selected_task" value="load"/>
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304 <output name="outfile_predict" file="glm_result05"/>
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305 </test>
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306 <test>
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307 <param name="infile1" value="train.tabular" ftype="tabular"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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308 <param name="infile2" value="train.tabular" ftype="tabular"/>
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309 <param name="col1" value="1,2,3,4"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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310 <param name="col2" value="5"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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311 <param name="selected_task" value="train"/>
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312 <param name="selected_algorithm" value="LogisticRegressionCV"/>
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313 <param name="random_state" value="10"/>
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314 <output name="outfile_fit" file="glm_model06" compare="sim_size" delta="500"/>
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315 </test>
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316 <test>
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317 <param name="infile_model" value="glm_model06" ftype="zip"/>
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318 <param name="infile_data" value="test.tabular" ftype="tabular"/>
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319 <param name="selected_task" value="load"/>
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320 <output name="outfile_predict" file="glm_result06"/>
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321 </test>
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322 <test>
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323 <param name="infile1" value="regression_train.tabular" ftype="tabular"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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324 <param name="infile2" value="regression_train.tabular" ftype="tabular"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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325 <param name="col1" value="1,2,3,4,5"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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326 <param name="col2" value="6"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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327 <param name="selected_task" value="train"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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328 <param name="selected_algorithm" value="Ridge"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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329 <param name="random_state" value="10"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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330 <output name="outfile_fit" file="glm_model07" compare="sim_size" delta="500"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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331 </test>
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332 <test>
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333 <param name="infile_model" value="glm_model07" ftype="zip"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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334 <param name="infile_data" value="regression_test.tabular" ftype="tabular"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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335 <param name="selected_task" value="load"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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336 <output name="outfile_predict" file="glm_result07" compare="sim_size"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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337 </test>
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338 <test>
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339 <param name="infile1" value="train.tabular" ftype="tabular"/>
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340 <param name="infile2" value="train.tabular" ftype="tabular"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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341 <param name="col1" value="1,2,3,4"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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342 <param name="col2" value="5"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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343 <param name="selected_task" value="train"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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344 <param name="selected_algorithm" value="LogisticRegressionCV"/>
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345 <param name="random_state" value="10"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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346 <output name="outfile_fit" file="glm_model08" compare="sim_size" delta="500"/>
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347 </test>
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348 <test>
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349 <param name="infile_model" value="glm_model08" ftype="zip"/>
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350 <param name="infile_data" value="test.tabular" ftype="tabular"/>
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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351 <param name="selected_task" value="load"/>
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352 <output name="outfile_predict" file="glm_result08"/>
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353 </test>
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354 </tests>
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355 <help><![CDATA[
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356 ***What it does***
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357 This module implements a set of linear models for classification and regression such as: SGD classification and regression, Linear and Ridge regression and classification. This wrapper is using sklearn.linear_model module at its core. For information about linear models and their parameter settings please refer to `Scikit-learn generalized linear models`_.
32a88b3bea94 planemo upload for repository https://github.com/bgruening/galaxytools/tools/sklearn commit 0e582cf1f3134c777cce3aa57d71b80ed95e6ba9
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358
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359 .. _`Scikit-learn generalized linear models`: http://scikit-learn.org/stable/modules/linear_model.html
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360
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361 **1 - Methods**
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362 There are two groups of operations available:
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363
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364 1 - Train a model : A training set containing samples and their respective labels (or predicted values) are input. Based on the selected algorithm and options, an estimator object is fit to the data and is returned.
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365
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366 2 - Load a model and predict : An existing model predicts the class labels (or regression values) for a new dataset.
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367
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368 **2 - Trainig input**
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369 When you choose to train a model, you need a features dataset X and a labels set y. This tool expects tabular or sparse data for X and a single column for y (tabular). You can select a subset of columns in a tabular dataset as your features dataset or labels column. Below you find some examples:
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370
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371 **Sample tabular features dataset**
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372 The following training dataset contains 3 feature columns and a column containing class labels. You can simply select the first 3 columns as features and the last column as labels:
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373
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374 ::
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375
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376 4.01163365529 -6.10797684314 8.29829894763 1
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377 10.0788438916 1.59539821454 10.0684278289 0
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378 -5.17607775503 -0.878286135332 6.92941850665 2
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379 4.00975406235 -7.11847496542 9.3802423585 1
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380 4.61204065139 -5.71217537352 9.12509610964 1
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381
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382
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383 **Sample sparse features dataset**
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384 In this case you cannot specifiy a column range.
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385
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386 ::
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387
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388 4 1048577 8738
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389 1 271 0.020833
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390 1 1038 0.02461
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391 2 829017 0.016
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392 2 829437 0.012
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393 2 830752 0.025
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394 3 1047487 0.01
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395 3 1047980 0.02
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396 3 1048475 0.01
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397 4 608 0.016629
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398 4 1651 0.02519
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399 4 4053 0.04223
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400
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401
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402 **2 - Trainig output**
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403 The trained model is generated and output in the form of a binary file.
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404
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405
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406 **3 - Prediction input**
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407
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408 When you choose to load a model and do prediction, the tool expects an already trained estimator and a tabular dataset as input. The dataset contains new samples which you want to classify or predict regression values for.
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409
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410
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411 .. class:: warningmark
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412
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413 The number of feature columns must be the same in training and prediction datasets!
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414
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415
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416 **3 - Prediction output**
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417 The tool predicts the class labels for new samples and adds them as the last column to the prediction dataset. The new dataset then is output as a tabular file. The prediction output format should look like the training dataset.
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418
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419 ]]></help>
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420 <expand macro="sklearn_citation"/>
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421 </tool>