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Multiple Instance Learning

von Amelia Zafra, Chris Cornelis, Dánel Sánchez-Tarragó, Francisco Herrera, Rafael Bello, Sarah Vluymans und Sebastián Ventura
Softcover - 9783319838151
106,99 €
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Hardcover - 9783319477589
106,99 €

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Weitere Formate

Hardcover - 9783319477589
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Beschreibung

This book provides a general overview of multiple instance learning (MIL), defining the framework and covering the central paradigms. The authors discuss the most important algorithms for MIL such as classification, regression and clustering. With a focus on classification, a taxonomy is set and the most relevant proposals are specified. Efficient algorithms are developed to discover relevant information when working with uncertainty. Key representative applications are included.
This book carries out a study of the key related fields of distance metrics and alternative hypothesis. Chapters examine new and developing aspects of MIL such as data reduction for multi-instance problems and imbalanced MIL data. Class imbalance for multi-instance problems is defined at the bag level, a type of representation that utilizes ambiguity due to the fact that bag labels are available, but the labels of the individual instances are not defined.
Additionally, multiple instance multiple label learning is explored. This learning framework introduces flexibility and ambiguity in the object representation providing a natural formulation for representing complicated objects. Thus, an object is represented by a bag of instances and is allowed to have associated multiple class labels simultaneously. 
This book is suitable for developers and engineers working to apply MIL techniques to solve a variety of real-world problems. It is also useful for researchers or students seeking a thorough overview of MIL literature, methods, and tools.

Foundations and Algorithms

Foundations and Algorithms

Details

Verlag Springer International Publishing
Ersterscheinung 29. Juni 2018
Maße 23.5 cm x 15.5 cm
Gewicht 382 Gramm
Format Softcover
ISBN-13 9783319838151
Seiten 233

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