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| Content Provider | IEEE Xplore Digital Library |
|---|---|
| Author | Emara, W. Kantardzic, M. |
| Copyright Year | 2009 |
| Description | Author affiliation: Department of Computer Engineering and Computer Science, University of Louisville, Kentucky, USA (Emara, W.; Kantardzic, M.) |
| Abstract | Data mining algorithms for large scale data are becoming more crucial in today's world. This is due to the unprecedented size of streaming data being collected by information technology. Incremental learning is considered one of the key concepts for streaming data mining where a learned model is updated when new data becomes available in time. In this paper, we study RBF-SVM local incremental learning. The RBF-SVM decision function has been shown to have local properties which can be beneficial if they hold during learning as well. A learning machine that has local properties during learning is very desirable for incremental learning; this is because the machine will need to be updated only locally to accommodate the newly collected training data. In this paper we show via mathematical formalization and experimental verification that RBF-SVM preserves the local properties during learning. We also propose an estimate of the size of the regions in the learned model that need to be updated during the learning increments. |
| Starting Page | 355 |
| Ending Page | 362 |
| File Size | 4190523 |
| Page Count | 8 |
| File Format | |
| ISBN | 9781424427659 |
| DOI | 10.1109/CIDM.2009.4938671 |
| Language | English |
| Publisher | Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
| Publisher Date | 2009-03-30 |
| Publisher Place | USA |
| Access Restriction | Subscribed |
| Rights Holder | Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
| Subject Keyword | Support vector machines Computer science Training data Support vector machine classification Machine learning Explosives Large-scale systems Data mining Kernel Information technology |
| Content Type | Text |
| Resource Type | Article |
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