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Time Line Based ATM Transaction Clustering
2017
International Journal of Advanced Research in Science, Engineering and Technology
unpublished
Organizations and firms are capturing increasingly more data about their customers, suppliers, competitors, and business environment. Most of this data is multiattribute (multidimensional) and temporal in nature. Data mining and business intelligence techniques are often used to discover patterns in such data; however, mining temporal relationships typically is a complex task. This paper propose a new data analysis and visualization technique for representing trends in multi attribute temporal
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