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- W2951616521 abstract "In the k-nearest neighbor algorithm (k-NN), the determination of classes for test instances is usually performed via a majority vote system, which may ignore the similarities among data. In this research, the researcher proposes an approach to fine-tune the selection of neighbors to be passed to the majority vote system through the construction of a random n-dimensional hyperstructure around the test instance by introducing a new threshold parameter. The accuracy of the proposed k-NN algorithm is 85.71%, while the accuracy of the conventional k-NN algorithm is 80.95% when performed on the Haberman's Cancer Survival dataset, and 94.44% for the proposed k-NN algorithm, compared to the conventional's 88.89% accuracy score on the Seeds dataset. The proposed k-NN algorithm is also on par with the conventional support vector machine algorithm accuracy, even on the Banknote Authentication and Iris datasets, even surpassing the accuracy of support vector machine on the Seeds dataset." @default.
- W2951616521 created "2019-06-27" @default.
- W2951616521 creator A5006619044 @default.
- W2951616521 date "2019-06-11" @default.
- W2951616521 modified "2023-09-27" @default.
- W2951616521 title "k-Nearest Neighbor Optimization via Randomized Hyperstructure Convex Hull." @default.
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- W2951616521 doi "https://doi.org/10.5281/zenodo.3244260" @default.
- W2951616521 hasPublicationYear "2019" @default.
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