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                import GPy  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                from sklearn.model_selection import cross_val_score  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                from sklearn.ensemble import GradientBoostingClassifier  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                from sklearn.datasets import load_breast_cancer  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                from hyperactive import Hyperactive  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                data = load_breast_cancer()  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                X, y = data.data, data.target  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                def model(para, X, y):  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    gbc = GradientBoostingClassifier(  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        n_estimators=para["n_estimators"],  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        max_depth=para["max_depth"],  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        min_samples_split=para["min_samples_split"],  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    )  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    scores = cross_val_score(gbc, X, y, cv=3)  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    return scores.mean()  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                search_config = { | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    model: { | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        "n_estimators": range(10, 100, 10),  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        "max_depth": range(2, 12),  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        "min_samples_split": range(2, 12),  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    }  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                }  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                class GPR:  | 
            
            
                                                                        
                            
            
                                    
            
            
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                    def __init__(self):  | 
            
            
                                                                        
                            
            
                                    
            
            
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                        kernel = GPy.kern.RBF(input_dim=1, variance=1., lengthscale=1.)  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    def fit(self, X, y):  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        m = GPy.models.GPRegression(X, y, kernel)  | 
            
                            
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                        m.optimize(messages=True)  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                    def predict(self, X):  | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                        return m.predict(X)  | 
            
                            
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                bayes_opt = {"Bayesian": {"gpr": GPR()}} | 
            
            
                                                                                                            
                            
            
                                    
            
            
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                opt = Hyperactive(X, y)  | 
            
            
                                                                                                            
                                                                
            
                                    
            
            
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                opt.search(search_config, n_iter=30, optimizer=bayes_opt)  | 
            
            
                                                        
            
                                    
            
            
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