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Machine Learning for Adaptive Many-Core Machines – A Practical Approach – Begagnad bok

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Artikelnr: SK0221579-SE20260527-055838 Kategori: Etikett:

Beskrivning

Beskrivning

The overwhelming data produced everyday and the increasing performance and cost requirements of applications are transversal to a wide range of activities in society, from science to industry. In particular, the magnitude and complexity of the tasks that Machine Learning (ML) algorithms have to solve are driving the need to devise adaptive many-core machines that scale well with the volume of data, or in other words, can handle Big Data.

This book gives a concise view on how to extend the applicability of well-known ML algorithms in Graphics Processing Unit (GPU) with data scalability in mind. It presents a series of new techniques to enhance, scale and distribute data in a Big Learning framework. It is not intended to be a comprehensive survey of the state of the art of the whole field of machine learning for Big Data. Its purpose is less ambitious and more practical: to explain and illustrate existing and novel GPU-based ML algorithms, not viewed as a universal solution for the Big Data challenges but rather as part of the answer, which may require the use of different strategies coupled together.

Om boken

Om denna bok

Machine Learning for Adaptive Many-Core Machines – A Practical Approach av Bernardete Ribeiro och Noel Lopes är en Häftad bok med 241 sidor på Engelska. Detta är den 1:a upplagan som utgavs 2016 av Springer Nature.

Produktinformation

Kategori
Okänd
Bandtyp
Häftad
Språk
Engelska
ISBN
9783319380964
Upplaga
1
Utgiven
2016-09-17
Förlag
Springer Nature
Sidantal
241