暂无分享,去创建一个
[1] Chrispin Alfred Gray,et al. Energy consumption of Internet of Things applications and services , 2018 .
[2] Gorjan Alagic,et al. #p , 2019, Quantum information & computation.
[3] P. Alam. ‘G’ , 2021, Composites Engineering: An A–Z Guide.
[4] Emmanuelle Cor,et al. Lifecycle modeling for the eco design of the Internet of Things , 2020 .
[5] Rémi Dekimpe,et al. Moore's Law and ICT Innovation in the Anthropocene , 2021, 2021 Design, Automation & Test in Europe Conference & Exhibition (DATE).
[6] Eric Williams,et al. Environmental effects of information and communications technologies , 2011, Nature.
[7] G. Blair,et al. The climate impact of ICT: A review of estimates, trends and regulations , 2021, 2102.02622.
[8] Paulina Jaramillo,et al. Internet of Things: Energy boon or bane? , 2019, Science.
[9] Sonja van Dam,et al. Smart Energy Management for Households , 2013, Architecture and the Built Environment.
[10] P. Alam,et al. R , 1823, The Herodotus Encyclopedia.
[11] Sujit Das,et al. The global energy footprint of information and communication technology electronics in connected Internet-of-Things devices , 2020 .
[12] Fei Tao,et al. Internet of Things and BOM-Based Life Cycle Assessment of Energy-Saving and Emission-Reduction of Products , 2014, IEEE Transactions on Industrial Informatics.
[13] Paul Teehan,et al. Comparing embodied greenhouse gas emissions of modern computing and electronics products. , 2013, Environmental science & technology.
[14] M. Binswanger. Technological progress and sustainable development: what about the rebound effect? , 2001 .
[15] G. G. Stokes. "J." , 1890, The New Yale Book of Quotations.
[16] Daniel Brissaud,et al. An environmental assessment method for wireless sensor networks , 2012 .
[17] Miss A.O. Penney. (b) , 1974, The New Yale Book of Quotations.
[18] J. Malmodin,et al. The future carbon footprint of the ICT and EaM sectors , 2013 .
[19] P. Alam. ‘A’ , 2021, Composites Engineering: An A–Z Guide.
[20] P. Zapp,et al. Comparative Life Cycle Assessment of NdFeB Permanent Magnet Production from Different Rare Earth Deposits , 2018 .
[21] S. P. Singh,et al. Carbon management framework for sustainable manufacturing using life cycle assessment, IoT and carbon sequestration , 2019, Benchmarking: An International Journal.
[22] Joost G. Vogtländer,et al. The virtual eco-costs ‘99 A single LCA-based indicator for sustainability and the eco-costs-value ratio (EVR) model for economic allocation , 2001 .
[23] Anders S. G. Andrae,et al. Precision of a Streamlined Life Cycle Assessment Approach Used in Eco-Rating of Mobile Phones , 2017 .
[24] Dániel Kozma,et al. IoT Device Lifecycle – A Generic Model and a Use Case for Cellular Mobile Networks , 2018, 2018 IEEE 6th International Conference on Future Internet of Things and Cloud (FiCloud).
[25] M. Garcia Bardon,et al. DTCO including Sustainability: Power-Performance-Area-Cost-Environmental score (PPACE) Analysis for Logic Technologies , 2020, 2020 IEEE International Electron Devices Meeting (IEDM).
[26] J. Malmodin,et al. The Energy and Carbon Footprint of the Global ICT and E&M Sectors 2010–2015 , 2018, Sustainability.
[27] Søren Løkke,et al. Can Rebound Effects Explain Why Sustainable Mobility Has Not Been Achieved , 2014 .
[28] Andrius Plepys,et al. The Grey Side of ICT , 2002 .
[29] Agis M. Papadopoulos,et al. Smart technologies for promotion of energy efficiency, utilization of sustainable resources and waste management , 2019, Journal of Cleaner Production.
[30] Tanir Ozcelebi,et al. Understanding IoT Systems: A Life Cycle Approach , 2018, ANT/SEIT.
[31] L. Hilty,et al. Sources of variation in life cycle assessments of smartphones and tablet computers , 2020 .
[32] Gregoire Wallenborn,et al. Rebounds Are Structural Effects of Infrastructures and Markets , 2018, Front. Energy Res..
[33] L. Belkhir,et al. Assessing ICT global emissions footprint: Trends to 2040 & recommendations , 2018 .
[34] Sarah Boyd,et al. Life-Cycle Assessment of Semiconductors , 2011 .
[35] Jens Malmodin,et al. A Methodology for Assessing the Environmental Effects Induced by ICT Services: Part I: Single Services , 2020, ICT4S.
[36] Farzad Samie,et al. IoT technologies for embedded computing: A survey , 2016, 2016 International Conference on Hardware/Software Codesign and System Synthesis (CODES+ISSS).
[37] Daniel Schien,et al. The Footprint of Things: A hybrid approach towards the collection, storage and distribution of life cycle inventory data , 2018, ICT4S.
[38] Ann Gordon-Ross,et al. Microprocessor Optimizations for the Internet of Things: A Survey , 2016, IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems.
[39] Ravi Naidu,et al. Electronic waste management approaches: an overview. , 2013, Waste management.
[40] Torsten Lehmann,et al. Integrated circuits towards reducing e-waste: Future design directions , 2010, The 2010 International Conference on Green Circuits and Systems.
[41] Gebräuchliche Fertigarzneimittel,et al. V , 1893, Therapielexikon Neurologie.
[42] Nick Lethaby. Wireless connectivity for the Internet of Things: One size does not fit all , 2014 .
[43] Lars Ole Valøen,et al. Life Cycle Assessment of a Lithium‐Ion Battery Vehicle Pack , 2014 .
[44] Hoon Sohn,et al. An Overview of Non-Destructive Testing Methods for Integrated Circuit Packaging Inspection , 2018, Sensors.
[45] Devin Perkins,et al. E-waste: a global hazard. , 2014, Annals of global health.
[46] Paul Teehan,et al. Integrative approaches to environmental life cycle assessment of consumer electronics and connected media , 2014 .
[47] Cédric Gossart,et al. Rebound Effects and ICT: A Review of the Literature , 2015, ICT Innovations for Sustainability.
[48] Luigi Patrono,et al. Internet of Things (IoT): Opportunities, issues and challenges towards a smart and sustainable future , 2020, Journal of Cleaner Production.
[49] Kai Rannenberg,et al. Internet of Things. Information Processing in an Increasingly Connected World , 2018, IFIP Advances in Information and Communication Technology.
[50] Andreas R. Köhler,et al. Life cycle assessment and eco-design of smart textiles: The importance of material selection demonstrated through e-textile product redesign , 2015 .
[51] Jean-Pierre Raskin,et al. Material and manufacturing process selection for electronics eco-design: Case study on paper-based water quality sensors , 2020 .
[52] M. Schneider-Ramelow,et al. Flexible, stretchable, conformal electronics, and smart textiles: environmental life cycle considerations for emerging applications , 2020, MRS Communications.
[53] مسعود رسول آبادی,et al. 2011 , 2012, The Winning Cars of the Indianapolis 500.
[54] Callie W. Babbitt,et al. Disassembly-based bill of materials data for consumer electronic products , 2020, Scientific Data.
[55] U. Zweifel,et al. United Nations Environment Programme , 2005, Essential Concepts of Global Environmental Governance.
[56] Eva Pongrácz,et al. Environmental Impacts and Benefits of Smart Home Automation: Life Cycle Assessment of Home Energy Management System , 2015 .
[57] Ruediger Kuehr,et al. The Global E-waste Monitor 2020: Quantities, flows and the circular economy potential , 2020 .
[58] Daniel Brissaud,et al. An integrated method for environmental assessment and ecodesign of ICT-based optimization services , 2014 .
[59] Jens Malmodin,et al. Life Cycle Assessment of a Smartphone , 2016 .
[60] Marimuthu Palaniswami,et al. Internet of Things (IoT): A vision, architectural elements, and future directions , 2012, Future Gener. Comput. Syst..
[61] M. Varacallo,et al. 2019 , 2019, Journal of Surgical Orthopaedic Advances.
[62] Silviu Folea,et al. Analysis of Three IoT-Based Wireless Sensors for Environmental Monitoring , 2017, IEEE Transactions on Instrumentation and Measurement.
[63] Eleftherios Papachristos,et al. Sustainable Solutions for Wearable Technologies: Mapping the Product Development Life Cycle , 2020, Sustainability.
[64] Conny Bakker,et al. Do home energy management systems make sense? Assessing their overall lifecycle impact , 2013 .
[65] David Bol,et al. Can we connect trillions of IoT sensors in a sustainable way? A technology/circuit perspective (Invited) , 2015, 2015 IEEE SOI-3D-Subthreshold Microelectronics Technology Unified Conference (S3S).
[66] P. Alam. ‘S’ , 2021, Composites Engineering: An A–Z Guide.
[67] Gerd Kortuem,et al. Circular Strategies Enabled by the Internet of Things—A Framework and Analysis of Current Practice , 2019, Sustainability.
[68] Oliver Bates,et al. Exploring the hidden impacts of HomeSys: energy and emissions of home sensing and automation , 2013, UbiComp.
[69] David Bol,et al. Green SoCs for a sustainable Internet-of-Things , 2013, 2013 IEEE Faible Tension Faible Consommation.
[70] Thomas de Quincey. [C] , 2000, The Works of Thomas De Quincey, Vol. 1: Writings, 1799–1820.
[71] David Bol,et al. Application-aware LCA of semiconductors: Life-cycle energy of microprocessors from high-performance 32nm CPU to ultra-low-power 130nm MCU , 2011, Proceedings of the 2011 IEEE International Symposium on Sustainable Systems and Technology.
[72] Lorenz M. Hilty. Information Technology and Sustainability - Essays on the Relationship between Information Technology and Sustainable Development , 2008 .