Online Capacity Provisioning for Energy-Efficient Datacenters

Online Capacity Provisioning for Energy-Efficient Datacenters
Title Online Capacity Provisioning for Energy-Efficient Datacenters PDF eBook
Author Minghua Chen
Publisher Springer Nature
Pages 85
Release 2022-10-19
Genre Computers
ISBN 303111549X

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This book addresses the urgent issue of massive and inefficient energy consumption by data centers, which have become the largest co-located computing systems in the world and process trillions of megabytes of data every second. Dynamic provisioning algorithms have the potential to be the most viable and convenient of approaches to reducing data center energy consumption by turning off unnecessary servers, but they incur additional costs from being unable to properly predict future workload demands that have only recently been mitigated by advances in machine-learned predictions. This book explores whether it is possible to design effective online dynamic provisioning algorithms that require zero future workload information while still achieving close-to-optimal performance. It also examines whether characterizing the benefits of utilizing the future workload information can then improve the design of online algorithms with predictions in dynamic provisioning. The book specifically develops online dynamic provisioning algorithms with and without the available future workload information. Readers will discover the elegant structure of the online dynamic provisioning problem in a way that reveals the optimal solution through divide-and-conquer tactics. The book teaches readers to exploit this insight by showing the design of two online competitive algorithms with competitive ratios characterized by the normalized size of a look-ahead window in which exact workload prediction is available.

Advances in Cybernetics, Cognition, and Machine Learning for Communication Technologies

Advances in Cybernetics, Cognition, and Machine Learning for Communication Technologies
Title Advances in Cybernetics, Cognition, and Machine Learning for Communication Technologies PDF eBook
Author Vinit Kumar Gunjan
Publisher Springer Nature
Pages 593
Release 2020-04-28
Genre Technology & Engineering
ISBN 9811531250

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This book highlights recent advances in Cybernetics, Machine Learning and Cognitive Science applied to Communications Engineering and Technologies, and presents high-quality research conducted by experts in this area. It provides a valuable reference guide for students, researchers and industry practitioners who want to keep abreast of the latest developments in this dynamic, exciting and interesting research field of communication engineering, driven by next-generation IT-enabled techniques. The book will also benefit practitioners whose work involves the development of communication systems using advanced cybernetics, data processing, swarm intelligence and cyber-physical systems; applied mathematicians; and developers of embedded and real-time systems. Moreover, it shares insights into applying concepts from Machine Learning, Cognitive Science, Cybernetics and other areas of artificial intelligence to wireless and mobile systems, control systems and biomedical engineering.

A Survey on Coordinated Power Management in Multi-Tenant Data Centers

A Survey on Coordinated Power Management in Multi-Tenant Data Centers
Title A Survey on Coordinated Power Management in Multi-Tenant Data Centers PDF eBook
Author Thant Zin Oo
Publisher Springer
Pages 176
Release 2017-09-13
Genre Technology & Engineering
ISBN 3319660624

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This book investigates the coordinated power management of multi-tenant data centers that account for a large portion of the data center industry. The authors include discussion of their quick growth and their electricity consumption, which has huge economic and environmental impacts. This book covers the various coordinated management solutions in the existing literature focusing on efficiency, sustainability, and demand response aspects. First, the authors provide a background on the multi-tenant data center covering the stake holders, components, power infrastructure, and energy usage. Then, each power management mechanism is described in terms of motivation, problem formulation, challenges and solution.

Sustainable Energy Systems Planning, Integration and Management

Sustainable Energy Systems Planning, Integration and Management
Title Sustainable Energy Systems Planning, Integration and Management PDF eBook
Author Kim Guldstrand Larsen
Publisher MDPI
Pages 286
Release 2020-01-21
Genre Technology & Engineering
ISBN 3039280465

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Energy systems worldwide are undergoing major transformation as a consequence of the transition towards the widespread use of clean and sustainable energy sources. Basically, this involves massive changes in technical and organizational levels together with tremendous technological upgrades in different sectors ranging from energy generation and transmission systems down to distribution systems. These actions generate huge science and engineering challenges and demands for expert knowledge in the field to create solutions for a sustainable energy system that is economically, environmentally, and socially viable while meeting high security requirements. This book covers these promising and dynamic areas of research and development, and presents contributions in sustainable energy systems planning, integration, and management. Moreover, the book elaborates on a variety of topics, ranging from design and planning of small- to large-scale energy systems to the operation and control of energy networks in different sectors, namely electricity, heat, ‎and transport.

Advancing Cloud Database Systems and Capacity Planning With Dynamic Applications

Advancing Cloud Database Systems and Capacity Planning With Dynamic Applications
Title Advancing Cloud Database Systems and Capacity Planning With Dynamic Applications PDF eBook
Author Kamila, Narendra Kumar
Publisher IGI Global
Pages 453
Release 2017-01-05
Genre Computers
ISBN 1522520147

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Continuous improvements in data analysis and cloud computing have allowed more opportunities to develop systems with user-focused designs. This not only leads to higher success in day-to-day usage, but it increases the overall probability of technology adoption. Advancing Cloud Database Systems and Capacity Planning With Dynamic Applications is a key resource on the latest innovations in cloud database systems and their impact on the daily lives of people in modern society. Highlighting multidisciplinary studies on information storage and retrieval, big data architectures, and artificial intelligence, this publication is an ideal reference source for academicians, researchers, scientists, advanced level students, technology developers and IT officials.

Evaluating Demand Response Opportunities for Data Centers

Evaluating Demand Response Opportunities for Data Centers
Title Evaluating Demand Response Opportunities for Data Centers PDF eBook
Author Sonja Klingert
Publisher Cuvillier Verlag
Pages 286
Release 2020-12-03
Genre Computers
ISBN 3736963300

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Data center demand response is a solution to a problem that is just recently emerging: Today’s energy system is undergoing major transformations due to the increasing shares of intermittent renewable power sources as solar and wind. As the power grid physically requires balancing power feed-in and power draw at all times, traditionally, power generation plants with short ramp-up times were activated to avoid grid imbalances. Additionally, so-called demand response schemes may incentivize power consumers to manipulate their planned power profile in order to activate hidden sources of flexibility. The data center industry has been identified as a suitable candidate for demand response as it is continuously growing and relies on highly automated processes. The presented thesis exceeds the related work by creating a framework for modeling data center demand response on a high level of abstraction that allows subsuming a great variety of specific models. Based on a generic architecture of demand response enabled data centers this is formalized through a micro-economics inspired optimization framework that generates technical power flex functions and an associated cost and market skeleton. This is evaluated through a simulation based on 2014 data from a real HPC data center in Germany, implementing two power management strategies, namely temporal workload shifting and manipulating the CPU frequency. The flexibility extracted is then monetized on two German electricity markets. As a result, in 2014 this data center would have achieved the largest benefit by changing from static electricity pricing to dynamic EPEX prices without changing their power profile. Through demand response they might have created an additional gross benefit of 4% of the power bill on the secondary reserve market. In a sensitivity analysis, however, it could be shown that these results are largely dependent on specific parameters as service level agreements and job heterogeneity. The results show that even though concrete simulations can evaluate demand response activities of individual data centers, the proposed modeling framework helps to understand their relevance from a system-wide viewpoint.

Energy Efficient Data Centers

Energy Efficient Data Centers
Title Energy Efficient Data Centers PDF eBook
Author Jyrki Huusko
Publisher Springer
Pages 163
Release 2012-09-26
Genre Computers
ISBN 3642336450

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This book constitutes the thoroughly refereed post-conference proceedings of the First International Workshop on Energy Efficient Data Centers (E2DC 2012) held in Madrid, Spain, in May 2012. The 13 revised full papers presented were carefully selected from 32 submissions. The papers cover topics from information and communication technologies of green data centers to business models and GreenSLA solutions. The first section presents contributions in form of position and short papers, related to various European projects. The other two sections comprise papers with more in-depth technical details. The topics covered include energy-efficient data center management and service delivery as well as energy monitoring and optimization techniques for data centers.