Optimized Cloud Based Scheduling
Language: English
Published by Springer, 2018
Series: Book 274 of 538 - Studies in Computational Intelligence
- Hardcover
- New

Seller: Revaluation Books, Exeter, United KingdomRevaluation Books
AbeBooks seller since January 6, 2003
Condition: New
US$ 89.79
Quantity: 2 available
Add to basketItem description from seller
99 pages. 9.25x6.25x0.50 inches. In Stock.
Seller Inventory # x-3319732129
- Title
- Optimized Cloud Based Scheduling
- Author
- Tan, Rong Kun Jason (Author)/ Leong, John A. (Author)/ Sidhu, Amandeep S. (Author)
- Publisher
- Springer
- Publication year
- 2018
- Condition
- Brand New
- Binding
- Hardcover
- Language
- English
- ISBN 10
- 3319732129
- ISBN 13
- 9783319732121
- Item weight
- 0.34 kilograms
- Series
- Book 274 of 538: Studies in Computational Intelligence
This book presents an improved design for service provisioning and allocation models that are validated through running genome sequence assembly tasks in a hybrid cloud environment. It proposes approaches for addressing scheduling and performance issues in big data analytics and showcases new algorithms for hybrid cloud scheduling. Scientific sectors such as bioinformatics, astronomy, high-energy physics, and Earth science are generating a tremendous flow of data, commonly known as big data. In the context of growing demand for big data analytics, cloud computing offers an ideal platform for processing big data tasks due to its flexible scalability and adaptability. However, there are numerous problems associated with the current service provisioning and allocation models, such as inefficient scheduling algorithms, overloaded memory overheads, excessive node delays and improper error handling of tasks, all of which need to be addressed to enhance the performance of big data analytics.
"Synopsis" may belong to another edition of this title.
From the Back Cover
This book presents an improved design for service provisioning and allocation models that are validated through running genome sequence assembly tasks in a hybrid cloud environment. It proposes approaches for addressing scheduling and performance issues in big data analytics and showcases new algorithms for hybrid cloud scheduling. Scientific sectors such as bioinformatics, astronomy, high-energy physics, and Earth science are generating a tremendous flow of data, commonly known as big data. In the context of growing demand for big data analytics, cloud computing offers an ideal platform for processing big data tasks due to its flexible scalability and adaptability. However, there are numerous problems associated with the current service provisioning and allocation models, such as inefficient scheduling algorithms, overloaded memory overheads, excessive node delays and improper error handling of tasks, all of which need to be addressed to enhance the performance of big data analytics.
"About the title" may belong to another edition of this title.
Revaluation Books
Exeter, United Kingdom
AbeBooks seller since January 6, 2003
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