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            Chapter Energy Efficiency for 5G Multi-Tier Cellular Networks

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            Author(s)
            Ho Lee, Moon
            Hashem Ali Khan, Md.
            Language
            English
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            Abstract
            This chapter provides an introduction to quantifying the energy consumed by software. It is written for computer scientists, software engineers, embedded system developers and programmers who want to understand how to measure the energy consumed by the code they write in order to optimize for energy efficiency. We start with an overview of the electrical foundations of energy measurement and show how these are applied by reviewing the most commonly found energy sensing techniques. This is followed by a brief discussion of the signal processing required to obtain energy consumption data from sensing. We then present two energy measurement systems that are based on sensing techniques. Both can be used to directly measure the energy consumed by software running on embedded systems without the need to modify the hardware. As an alternative, regression-based techniques can be used to infer energy consumption based on monitoring events during program execution using counters monitors offered by the hardware. We introduce the foundations of regression analysis and illustrate how an energy model for an ARM processor can be built using linear regression. In the conclusion, we offer a wider discussion on what should be considered when selecting an energy measurement technique.
            URI
            https://doab-dev.siscern.org/handle/20.500.12854/154496
            Keywords
            energy measurement, power, energy sensing, energy measurement systems, regression analysis
            DOI
            10.5772/66052
            Publisher
            InTechOpen
            Publication date and place
            2016
            Classification
            Sustainability
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            Credits


            • logo Investir l'avenirInvestir l'avenir
            • logo MESRIMESRI
            • logo EUEuropean Union
              This project received funding from the European Union’s Horizon 2020 research and innovation programme under grant agreement No 871069.

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