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Dataset type
        Use case
        ML algorithm
  
             Library used to train models
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                        from sklearn.preprocessing import LabelEncoder
                        from scipy.sparse import issparse
                        from scipy import sparse
                        def sensitivity_logit(X, y, w=None, *, sketch_size=None, use_y=True, class_weight: Dict[Any, float] = None):
                            """
                            Logit sampling from 2018 Paper On Coresets for Logistic Regression.
                            """
                            X = np.concatenate([X, np.ones([X.shape[0], 1])], axis=1)
                            if w is not None:
                                w = _check_sample_weight(w, X, dtype=X.dtype)
                                X, y = w_dot_X(X, y=y, w=w)
                            else:
                                w = _check_sample_weight(w, X, dtype=X.dtype)