Using behavioural data to assess the environmental impact of electricity consumption of alternate television service distribution platforms
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Paul Shabajee | Chris Preist | Daniel Schien | Jigna Chandaria | Dan Williams | C. Preist | P. Shabajee | Jigna Chandaria | D. Schien | Dan Williams
[1] Alan J. Dix,et al. Evaluation Beyond Usability: Validating Sustainable HCI Research , 2018, CHI.
[2] Chris Preist,et al. A Review of Top-Down Models of Internet Network Energy Intensity , 2014, ICT4S.
[3] Eric Masanet,et al. The energy and greenhouse-gas implications of internet video streaming in the United States , 2014 .
[4] Mike Hazas,et al. From One Edge to the Other: Exploring Gaming's Rising Presence on the Network , 2020, ICT4S.
[5] Ampalavanapillai Nirmalathas,et al. Methodologies for assessing the use-phase power consumption and greenhouse gas emissions of telecommunications network services. , 2013, Environmental science & technology.
[6] Mark A. J. Huijbregts,et al. Framework for modelling data uncertainty in life cycle inventories , 2001 .
[7] Eli Blevis,et al. Understanding and Mitigating the Effects of Device and Cloud Service Design Decisions on the Environmental Footprint of Digital Infrastructure , 2016, CHI.
[8] Rodney S. Tucker,et al. Green Cloud Computing: Balancing Energy in Processing, Storage, and Transport , 2011, Proceedings of the IEEE.
[9] David Pennington,et al. Recent developments in Life Cycle Assessment. , 2009, Journal of environmental management.
[10] Jing Liao,et al. Measuring the energy intensity of domestic activities from smart meter data , 2016 .
[11] Lorenz M. Hilty,et al. Sustainable software products - Towards assessment criteria for resource and energy efficiency , 2018, Future Gener. Comput. Syst..
[12] Jeff Hunter,et al. The carbon footprint of watching television, comparing digital terrestrial television with video-on-demand , 2011, Proceedings of the 2011 IEEE International Symposium on Sustainable Systems and Technology.
[13] Jonathan G. Koomey,et al. Estimating the energy use of high definition games consoles , 2013 .
[14] Antonio Scipioni,et al. Life Cycle Assessment to support the quantification of the environmental impacts of an event , 2017 .
[15] Kieren Mayers,et al. The Carbon Footprint of Games Distribution , 2015 .
[16] Daniel Pargman,et al. The (Un)sustainability of Imagined Future Information Societies , 2017, CHI.
[17] Jens Malmodin,et al. A high-level estimate of the material footprints of the ICT and the E&M sector , 2018, ICT4S.
[18] Yigzaw G. Yohanis,et al. Domestic energy use and householders' energy behaviour , 2012 .
[19] Grace A. Lewis,et al. A Catalogue of Green Architectural Tactics for the Cloud , 2014, 2014 IEEE 8th International Symposium on the Maintenance and Evolution of Service-Oriented and Cloud-Based Systems.
[20] Jianzhong Wu,et al. Flexible Demand in the GB Domestic Electricity Sector in 2030 , 2015 .
[21] Roger B. Chen,et al. Heterogeneity in time and energy use of watching television , 2016 .
[22] Lorenz M. Hilty,et al. Evaluating the sustainability of electronic media: Strategies for life cycle inventory data collection and their implications for LCA results , 2014, Environ. Model. Softw..
[23] Richard J. Klimoski. Introduction: Sensitivity Analysis , 2006 .
[24] Amip J. Shah,et al. The life cycle assessment of a UK data centre , 2015, The International Journal of Life Cycle Assessment.
[25] Eli Blevis,et al. Sustainable interaction design: invention & disposal, renewal & reuse , 2007, CHI.
[26] Anders S. G. Andrae,et al. On Global Electricity Usage of Communication Technology: Trends to 2030 , 2015 .
[27] Göran Finnveden,et al. Lessons learned - Review of LCAs for ICT products and services , 2014, Comput. Ind..
[28] Malin Picha Edwardsson. Environmental aspects of media scenarios for the future ICT society , 2014, ICT4S.
[29] Lorenz M. Hilty,et al. Assessing Internet energy intensity: A review of methods and results , 2014 .
[30] Sara Behdad,et al. Environmental Impact Assessment of the Heterogeneity in Consumers’ Usage Behavior: An Agent‐Based Modeling Approach , 2018 .
[31] Hadi Dowlatabadi,et al. Estimating the changing environmental impacts of ICT-based tasks: A top-down approach , 2010, Proceedings of the 2010 IEEE International Symposium on Sustainable Systems and Technology.
[32] Stefano Tarantola,et al. Introduction to Sensitivity Analysis , 2008 .
[33] Daniel Pargman,et al. Developing a Framework for Evaluating the Sustainability of Computing Projects , 2017, LIMITS.
[34] Göran Finnveden,et al. Printed and tablet e-paper newspaper from an environmental perspective — A screening life cycle assessment , 2010 .
[35] Adrian Friday,et al. Demand Around the Clock: Time Use and Data Demand of Mobile Devices in Everyday Life , 2017, CHI.
[36] G. Finnveden,et al. Methods for assessing future scenarios from a sustainability perspective , 2017 .
[37] C. Weber,et al. The Energy and Climate Change Implications of Different Music Delivery Methods , 2010 .
[38] G. Finnveden,et al. Greenhouse Gas Emissions and Operational Electricity Use in the ICT and Entertainment & Media Sectors , 2010 .
[39] M. Hazas,et al. Digitalisation, energy and data demand: The impact of Internet traffic on overall and peak electricity consumption , 2018 .
[40] Paul Shabajee,et al. Energy Use in the Media Cloud , 2010 .
[41] Laura C. Draucker,et al. Greenhouse Gas Protocol Product Life Cycle Accounting and Reporting Standard , 2011 .
[42] Paul Shabajee,et al. Modeling and Assessing Variability in Energy Consumption During the Use Stage of Online Multimedia Services , 2013 .
[43] Adrian Friday,et al. Demand in My Pocket: Mobile Devices and the Data Connectivity Marshalled in Support of Everyday Practice , 2015, CHI.
[44] Gernot Heiser,et al. An Analysis of Power Consumption in a Smartphone , 2010, USENIX Annual Technical Conference.
[45] E. Williams,et al. How behavioral and geographic heterogeneity affects economic and environmental benefits of efficient appliances , 2019, Energy Policy.
[46] Fabrice Saffre,et al. Understanding the environmental costs of fixed line networking , 2014, e-Energy.
[47] Ampalavanapillai Nirmalathas,et al. Modeling the Total Energy Consumption of Mobile Network Services and Applications , 2019, Energies.
[48] Å. Moberg,et al. Life Cycle Assessment of a Magazine, Part I: Tablet Edition in Emerging and Mature States , 2015 .
[49] Chris Preist,et al. Approaches to energy intensity of the internet , 2014, IEEE Communications Magazine.
[50] Adrian Friday,et al. Towards an holistic view of the energy and environmental impacts of domestic media and IT , 2014, CHI.
[51] Winco K.C. Yung,et al. Review of life cycle assessment on consumer electronic products: Developments and the way ahead , 2016 .
[52] Christopher Leckie,et al. Telecommunications energy and greenhouse gas emissions management for future network growth , 2016 .
[53] Lorenz M. Hilty,et al. Effects of Internet-based multiple-site conferences on greenhouse gas emissions , 2012, Telematics Informatics.
[54] Stefan Naumann,et al. Impacts of software and its engineering on the carbon footprint of ICT , 2015 .
[55] A. Andrae. New perspectives on internet electricity use in 2030 , 2020 .
[56] Paul Shabajee,et al. A model for green design of online news media services , 2013, WWW.
[57] Göran Finnveden,et al. Books from an environmental perspective—Part 2: e-books as an alternative to paper books , 2011 .
[58] Robert A. Kozak,et al. Comparative life cycle assessments: The case of paper and digital media , 2014 .
[59] Yinshan Tang,et al. Methodology to model the energy and greenhouse gas emissions of electronic software distributions. , 2012, Environmental science & technology.
[60] R. Cuevas,et al. Environmental impact assessment of online advertising , 2018, Environmental Impact Assessment Review.
[61] Jens Clausen,et al. Green Cloud? The current and future development of energy consumption by data centers, networks and end-user devices , 2016 .
[62] Paul Shabajee,et al. Evaluating Sustainable Interaction Design of Digital Services: The Case of YouTube , 2019, CHI.