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Error Prediction for Multi-Classification
Towson University, Towson, Maryland, USA May 23-May 25
DOI Bookmark: http://doi.ieeecomputersociety.org/10.1109/SNPD-SAWN.2005.35Sixth International Conference on Sof ...
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Fu-Shing Sun, Ball State University
This paper describes an error prediction mechanism for multiclassification systems. First, a multiclassification system is constructed by combining a suite of two-class classifiers. While training, each sub-classifier does not utilize all the training data and the remaining data will be used for testing purpose. Thus, the classification system can predict its own performance after training. We have tested this mechanism on several well-known benchmark datasets. Experimental results are demonstrated for its effectiveness.
Citation:
Fu-Shing Sun, "Error Prediction for Multi-Classification," snpd-sawn, pp.140-143, Sixth International Conference on Software Engineering, Artificial Intelligence, Networking and Parallel/Distributed Computing and First ACIS International Workshop on Self-Assembling Wireless Networks (SNPD/SAWN'05), 2005
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