Multi-Label Dimensionality Reduction

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Similar to other data mining and machine learning tasks, multi-label learning suffers from dimensionality. An effective way to mitigate this problem is through dimensionality reduction, which extracts a small number of features by removing irrelevant, redundant, and noisy information. The data mining and machine learning literature currently lacks
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epub
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52.99 £
Similar to other data mining and machine learning tasks, multi-label learning suffers from dimensionality. An effective way to mitigate this problem is through dimensionality reduction, which extracts a small number of features by removing irrelevant, redundant, and noisy information. The data mining and machine learning literature currently lacks
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  • Formats: epub
  • ISBN: 9781040069875
  • Publication Date: 19 Apr 2016
  • Publisher: CRC Press
  • Product language: English
  • Drm Setting: DRM