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Titlebook: Data Complexity in Pattern Recognition; Mitra Basu,Tin Kam Ho Book 2006 Springer-Verlag London 2006 algorithm.algorithms.classification.cl

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https://doi.org/10.1007/978-94-009-2093-4efits from the long experience and research in the area. We describe the XCS learning mechanisms by which a set of rules describing the class boundaries is evolved. We study XCS’s behavior and its relationship to data complexity. We find that the difficult cases for XCS are those with long boundarie
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Modelling Sea Ice for Climate Studiesity. We find that the simplest classifiers—the nearest neighbor and the linear classifier—have extreme behavior in the sense that they mostly behave either as the best approach for certain types of problems or as the worst approach for other types of problems. We also identify that the domain of com
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https://doi.org/10.1007/978-3-030-18206-9tterns in high-dimensional feature spaces, with a view to gaining insight into the complexity of classification tasks. Pattern vectors from several data sets of printed and hand-printed digits are standardized to identity covariance matrix variables via principal component analysis, shifting to zero
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https://doi.org/10.1007/978-3-030-18206-9ame biological process tend to have similar expression patterns, and clustering is one of the most useful and efficient methods for identifying these patterns. Due to the complexity of microarray profiles, there are some limitations in directly applying traditional clustering techniques to the micro
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The Climates of the “Polar Regions”magnetic resonance spectra for two-class discrimination. Results suggest that for this typical problem with sparse samples in a high-dimensional space, even robust classifiers like random decision forests can benefit from sophisticated feature selection procedures, and the improvement can be explain
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