Publication | Closed Access
Multi-label classification using boolean matrix decomposition
51
Citations
14
References
2012
Year
Unknown Venue
Data ClassificationClassification MethodEngineeringMachine LearningInformation RetrievalData ScienceData MiningPattern RecognitionAutomatic ClassificationBoolean Matrix DecompositionKnowledge DiscoveryBoolean Matrix MultiplicationIntelligent ClassificationComputer ScienceFull Label MatrixText Mining
This paper introduces a new multi-label classifier based on Boolean matrix decomposition. Boolean matrix decomposition is used to extract, from the full label matrix, latent labels representing useful Boolean combinations of the original labels. Base level models predict latent labels, which are subsequently transformed into the actual labels by Boolean matrix multiplication with the second matrix from the decomposition. The new method is tested on six publicly available datasets with varying numbers of labels. The experimental evaluation shows that the new method works particularly well on datasets with a large number of labels and strong dependencies among them.
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