An Immune Systems Approach for Classifying Mobile Phone Usage
Hanny Yulius Limanto,
Tay Joc Cing and
Andrew Watkins
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Hanny Yulius Limanto: Nanyang Technological University, Singapore
Tay Joc Cing: Nanyang Technological University, Singapore
Andrew Watkins: Mississippi State University, USA
International Journal of Data Warehousing and Mining (IJDWM), 2007, vol. 3, issue 2, 54-66
Abstract:
With the recent introduction of third generation (3G) technology in the field of mobile commu-nications, mobile phone service providers will have to find an effective strategy to market this new technology. One approach is to analyze the current profile of existing 3G subscribers to discover common patterns in their usage of mobile phones. With these usage patterns, the service provider can effectively target certain classes of customers who are more likely to purchase their subscription plans. To discover these patterns, we use a novel algorithm called Artificial Immune Recognition System (AIRS) that is based on the specificity of the human immune system. In our experiment, the algorithm performs well, achieving an accuracy rate in the range of 80% to 90%, depending on the set of parameter values used.
Date: 2007
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Persistent link: https://EconPapers.repec.org/RePEc:igg:jdwm00:v:3:y:2007:i:2:p:54-66
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