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                import json  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                import numpy as np  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                import pandas as pd  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                from pkg_resources import resource_filename, resource_stream  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                from responsibly.dataset.core import Dataset  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                __all__ = ['GermanDataset']  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                GERMAN_PATH = resource_filename(__name__,  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                                'german.data')  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                VALUES_MAPS = json.loads(resource_stream(__name__,  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                                         'values_maps.json')  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                         .read()  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                         .decode())  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                COLUMN_NAMES = ['status', 'duration', 'credit_history', 'purpose',  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                'credit_amount', 'savings', 'present_employment',  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                'installment_rate', 'status_sex', 'other_debtors',  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                'present_residence_since', 'property', 'age',  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                'installment_plans', 'housing',  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                'number_of_existing_credits', 'job',  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                'number_of_people_liable_for', 'telephone',  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                'foreign_worker', 'credit']  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                class GermanDataset(Dataset):  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    """German Credit Dataset.  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    See :class:`~responsibly.dataset.Dataset` for a description of  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    the arguments and attributes.  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    References:  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        - https://archive.ics.uci.edu/ml/datasets/statlog+(german+credit+data)  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        - Kamiran, F., & Calders, T. (2009, February).  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                          Classifying without discriminating.  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                          In 2009 2nd International Conference on Computer, Control  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                          and Communication (pp. 1-6). IEEE.  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                          http://citeseerx.ist.psu.edu/viewdoc/download?doi=10.1.1.182.6067&rep=rep1&type=pdf  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    Extra  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        This dataset requires use of a cost matrix (see below)  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        ::  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                               1 2  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                               ----  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                            1 | 0 1  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                              |----  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                            2 | 5 0  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        (1 = Good, 2 = Bad)  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        The rows represent the actual classification  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        and the columns the predicted classification.  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        It is worse to class a customer as good when they are bad (5),  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        than it is to class a customer as bad when they are good (1).  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    """  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    def __init__(self):  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        super().__init__(target='credit',  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                         sensitive_attributes=['age_factor'])  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        self.cost_matrix = [[0, 1], [5, 0]]  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    def _load_data(self):  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        return pd.read_csv(GERMAN_PATH, sep=' ', names=COLUMN_NAMES,  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                           header=None, index_col=False)  | 
            
            
                                                                                                            
                                                                
            
                                    
            
            
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                    def _preprocess(self):  | 
            
            
                                                                        
                            
            
                                    
            
            
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                        """Perform the same preprocessing as the dataset doc file."""  | 
            
            
                                                                        
                            
            
                                    
            
            
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                        self.df['credit'] = self.df['credit'].astype(str)  | 
            
            
                                                                        
                            
            
                                    
            
            
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                        for col, translation in VALUES_MAPS.items():  | 
            
            
                                                                        
                            
            
                                    
            
            
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                            self.df[col] = self.df[col].map(translation)  | 
            
            
                                                                        
                            
            
                                    
            
            
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                        new_column_names = COLUMN_NAMES[:]  | 
            
            
                                                                        
                            
            
                                    
            
            
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                        self.df['status'], self.df['sex'] = (self.df['status_sex']  | 
            
            
                                                                        
                            
            
                                    
            
            
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                                                             .str  | 
            
            
                                                                        
                            
            
                                    
            
            
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                                                             .split(' : ') | 
            
            
                                                                        
                            
            
                                    
            
            
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                                                             .str)  | 
            
            
                                                                        
                            
            
                                    
            
            
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                        self.df = self.df.drop('status_sex', axis=1) | 
            
            
                                                                        
                            
            
                                    
            
            
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                        status_sex_index = new_column_names.index('status_sex') | 
            
            
                                                                        
                            
            
                                    
            
            
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                        new_column_names[status_sex_index:status_sex_index + 1] = \  | 
            
            
                                                                        
                            
            
                                    
            
            
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                            ['status', 'sex']  | 
            
            
                                                                        
                            
            
                                    
            
            
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                        self.df['age_factor'] = pd.cut(self.df['age'],  | 
            
            
                                                                        
                            
            
                                    
            
            
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                                                       [19, 25, 76],  | 
            
            
                                                                        
                            
            
                                    
            
            
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                                                       right=False)  | 
            
            
                                                                        
                            
            
                                    
            
            
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                        age_factor_index = new_column_names.index('age') + 1 | 
            
            
                                                                        
                            
            
                                    
            
            
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                        new_column_names.insert(age_factor_index, 'age_factor')  | 
            
            
                                                                        
                            
            
                                    
            
            
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                        self.df = self.df[new_column_names]  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    def _validate(self):  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        # pylint: disable=line-too-long  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        super()._validate()  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        assert len(self.df) == 1000, 'the number of rows should be 1000,'\  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                                     ' but it is {}.'.format(len(self.df)) | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        assert len(self.df.columns) == 23, 'the number of columns should be 23,'\  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                                                           ' but it is {}.'.format(len(self.df.columns)) | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        assert not self.df.isnull().any().any(), 'there are null values.'  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        assert self.df['age_factor'].nunique() == 2,\  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                            'age_factor should have only 2 unique values,'\  | 
            
            
                                                                                                            
                                                                
            
                                    
            
            
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                            ' but it is{}'.format(self.df['age_factor'].nunique()) | 
            
            
                                                        
            
                                    
            
            
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