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portada Cost-Sensitive Machine Learning (Chapman & Hall (en Inglés)
Formato
Libro Físico
Editorial
Idioma
Inglés
N° páginas
331
Encuadernación
Tapa Blanda
ISBN13
9780367381912
N° edición
1

Cost-Sensitive Machine Learning (Chapman & Hall (en Inglés)

Krishnapuram, Balaji: (Autor) · Crc Press · Tapa Blanda

Cost-Sensitive Machine Learning (Chapman & Hall (en Inglés) - Krishnapuram, Balaji:

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Reseña del libro "Cost-Sensitive Machine Learning (Chapman & Hall (en Inglés)"

In machine learning applications, practitioners must take into account the cost associated with the algorithm. These costs include: Cost of acquiring training dataCost of data annotation/labeling and cleaningComputational cost for model fitting, validation, and testingCost of collecting features/attributes for test dataCost of user feedback collectionCost of incorrect prediction/classificationCost-Sensitive Machine Learning is one of the first books to provide an overview of the current research efforts and problems in this area. It discusses real-world applications that incorporate the cost of learning into the modeling process. The first part of the book presents the theoretical underpinnings of cost-sensitive machine learning. It describes well-established machine learning approaches for reducing data acquisition costs during training as well as approaches for reducing costs when systems must make predictions for new samples. The second part covers real-world applications that effectively trade off different types of costs. These applications not only use traditional machine learning approaches, but they also incorporate cutting-edge research that advances beyond the constraining assumptions by analyzing the application needs from first principles.Spurring further research on several open problems, this volume highlights the often implicit assumptions in machine learning techniques that were not fully understood in the past. The book also illustrates the commercial importance of cost-sensitive machine learning through its coverage of the rapid application developments made by leading companies and academic research labs.

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