A Hybrid KNN algorithm with Sugeno measure for the personal credit reference system in China

Author:

Han Lu1,Su Zhi23,Lin Jing1

Affiliation:

1. School of Management Science and Engineering, Central University of Finance and Economics, Beijing, China

2. School of Statistics and Mathematics, Central University of Finance and Economics, Beijing, China

3. School of Finance, Central University of Finance and Economics, Beijing, China

Abstract

Ever increasing ordinal variables are being collected by the Personal Credit Reference System in China, however this system suffers from analysis of this kind of data, which cannot be calculated by Euclidean distance. In this study, we put forward a hybrid KNN algorithm based on Sugeno measure, and we prove that the error of this algorithm is smaller than that of Euclidean distance, furthermore, we use real data obtained from the Personal Credit Reference System to perform experiments and get the user’s initial portrait. Through the comparisons with Kmeans algorithm and other different distance measures in KNN algorithm, we find that the hybrid KNN algorithm is more suitable for clustering personal credit data.

Publisher

IOS Press

Subject

Artificial Intelligence,General Engineering,Statistics and Probability

Reference26 articles.

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1. Credit Evaluation Based on Spectral Clustering Method;2024 7th International Conference on Artificial Intelligence and Big Data (ICAIBD);2024-05-24

2. The personal credit default discrimination model based on DF21;Journal of Intelligent & Fuzzy Systems;2023-03-09

3. Fuzzy MLKNN in Credit User Portrait;Applied Sciences;2022-11-08

4. A Two-Stage NER Method for Online-Sale Comments;Applications of Decision Science in Management;2022-09-08

5. Word2vec Fuzzy Clustering Algorithm and Its Application in Credit Evaluation;Applications of Decision Science in Management;2022-09-08

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