2018
DOI: 10.1155/2018/6292143
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Scalable Multilabel Learning Based on Feature and Label Dimensionality Reduction

Abstract: The data-driven management of real-life systems based on a trained model, which in turn is based on the data gathered from its daily usage, has attracted a lot of attention because it realizes scalable control for large-scale and complex systems. To obtain a model within an acceptable computational cost that is restricted by practical constraints, the learning algorithm may need to identify essential data that carries important knowledge on the relation between the observed features representing the measuremen… Show more

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Cited by 6 publications
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References 45 publications
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