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A TOPSIS Data Mining Demonstration and Application to Credit Scoring:
| Our Price: |
$30.00 US |
| Article #: |
ITJ3262 |
| Number of pages: |
16-26 pages |
| Source: |
International Journal of Data Warehousing and Mining, Vol. 2, Issue 3 |
| Author(s): |
Wu, Desheng; Olson, David L. |
| Affiliation(s): |
University of Toronto, Canada; University of Nebraska, USA |
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Description
The technique for order preference by similarity to ideal solution (TOPSIS) is a technique that can consider any number of measures, seeking to identify solutions close to an ideal and far from a nadir solution. TOPSIS has traditionally been applied in multiple criteria decision analysis. In this paper we propose an approach to develop a TOPSIS classifier. We demonstrate its use in credit scoring, providing a way to deal with large sets of data using machine learning. Data sets often contain many potential explanatory variables, some preferably minimized, some preferably maximized. Results are favorable by a comparison with traditional data mining techniques of decision trees. Proposed models are validated using Mont Carlo simulation. |