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Neighborhood Component Analysis Feature Selection

Project description

NCAFS

Neighborhood Component Analysis Feature Selection

NCAFS is a non-parametric algorithm based on k-nearest neighbors (kNN), which learns a feature weighting vector by minimizing the expected leave-one-out error with a regularization term. NCA was originally proposed in [1], which inspired the feature selection method for classification presented in [2]. It was then extended to regression problems as well [3].

NCAFS is a Python package that implements the NCA feature selection method, for both classification and regression problems.

Instalation

pip install ncafs

Getting started

Classification

from ncafs import NCAFSC
from sklearn import datasets

X, y = datasets.make_classification(
    n_samples=1000,
    n_classes=5,
    n_features=20,
    n_informative=100,
    n_redundant=0,
    n_repeated=0,
    flip_y=0.1,
    class_sep=0.5,
    shuffle=False,
    random_state=0
)

fs_clf = NCAFSC()
fs_clf.fit(X, y)
w = fs_clf.weights_

Regression

from ncafs import NCAFSR
from sklearn import datasets

X, y, coef = datasets.make_regression(
    n_samples=1000,
    n_features=100,
    n_informative=20,
    bias=0,
    noise=1e-3,
    coef=True,
    shuffle=False,
    random_state=0
)

fs_reg = NCAFSR()
fs_reg.fit(X, y)
w = fs_reg.weights_

References

  1. Goldberger, J., Hinton, G., Roweis, S., Salakhutdinov, R. (2005). Neighbourhood Components Analysis. Advances in Neural Information Processing Systems. 17, 513-520.
  2. Yang, W., Wang, K., & Zuo, W. (2012). Neighborhood component feature selection for high-dimensional data. J. Comput., 7(1), 161-168.
  3. Amankwaa-Kyeremeh, B., Greet, C., Zanin, M., Skinner, W. and Asamoah, R. K., (2020), Selecting key predictor parameters for regression analysis using modified Neighbourhood Component Analysis (NCA) Algorithm. Proceedings of 6th UMaT Biennial International Mining and Mineral Conference, Tarkwa, Ghana, pp. 320-325.

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