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数据挖掘技术在证券业中的应用 被引量:2
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作者 杨永斌 《重庆工商大学学报(自然科学版)》 2005年第5期461-463,共3页
从数据挖掘技术和应用角度出发,结合行业特点和实际应用,提出并分析了数据挖掘技术在证券行业中的需求及应用,简要分析了证券类数据挖掘产品的基本功能,并对数据挖掘在证券行业中的应用前景进行了展望。
关键词 数据挖掘 建模 证券 应用
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A Least Included Angles Method with Mean Cumulative Dominance in AHP
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作者 XU Ze\|shui Institute of Communications Engineering PLA University of Science & Technology, Nanjing 210016, China 《Systems Science and Systems Engineering》 CSCD 2000年第1期1-7,共7页
Dominance is an underlying concept in decision making that is used to develop a method to obtain the derived weight. The eigenvector method (EM) [3] is favored because it captures dominance at the level of toler... Dominance is an underlying concept in decision making that is used to develop a method to obtain the derived weight. The eigenvector method (EM) [3] is favored because it captures dominance at the level of tolerated inconsistency, the least included angles method (LAM) [1] minimizes error without an explict attempt to capture dominance, but with simplicity and practicality. This paper puts forward a new priority method——the least included angles method with mean cumulative dominance (DLAM) combining the good characteristics of EM and LAM. Compared with the EM, the LAM, the GMDM and the AMDM, the DLAM is a simpler, practical and more rational method in calculating the weight vectors of judgement matrices. The results of the numerical example also show that the DLAM and the EM always derive the same rankings, the other methods such as the LAM, the logarithmic least squares method (LLSM), the GMDM and the AMDM are possible to obtain the rankings, which are different from those derived by the DLAM and the EM. 展开更多
关键词 AHP dlam dominance cumulative dominance matrix
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