Essential Variables help to focus Sustainable Development Goals monitoring
Tóm tắt
Từ khóa
Tài liệu tham khảo
UN, 2016
UN SDSN, 2015
Stafford-Smith, 2016, Integration: the key to implementing the Sustainable Development Goals, Sustain. Sci.
Kim, 2013, The emergent network structure of the multilateral environmental agreement system, Glob. Environ. Change, 23, 980, 10.1016/j.gloenvcha.2013.07.006
Kim, 2016, The nexus between international law and the Sustainable Development Goals, Rev. Eur. Comp. Int. Environ. Law, 25, 15, 10.1111/reel.12148
UN, 2012
Kim, 2017, International environmental law in the anthropocene: towards a purposive system of multilateral environmental agreements, Transnatl. Environ. Law, 2, 285, 10.1017/S2047102513000149
Le Blanc, 2015, Towards integration at last? The Sustainable Development Goals as a network of targets, Sustain. Dev., 23, 176, 10.1002/sd.1582
Lu, 2015, Five priorities for the UN Sustainable Development Goals, Nature, 520, 432, 10.1038/520432a
Liu, 2015, Systems integration for global sustainability, Science, 347, 963, 10.1126/science.1258832
Pahl-Wostl, 2009, A conceptual framework for analysing adaptive capacity and multi-level learning processes in resource governance regimes, Glob. Environ. Change, 19, 354, 10.1016/j.gloenvcha.2009.06.001
Reyers, 2013, Getting the measure of ecosystem services: a social–ecological approach, Front. Ecol. Environ., 11, 268, 10.1890/120144
Wiek, 2012, From complex systems analysis to transformational change: a comparative appraisal of sustainability science projects, Sustain. Sci., 7, 5, 10.1007/s11625-011-0148-y
Bojinski, 2014, The concept of Essential Climate Variables in support of climate research, applications, and policy, Am. Meteorol. Soc, 95, 1431, 10.1175/BAMS-D-13-00047.1
Constable, 2016, Developing priority variables (“ecosystem Essential Ocean Variables”—eEOVs) for observing dynamics and change in Southern Ocean ecosystems, J. Mar. Syst., 161, 26, 10.1016/j.jmarsys.2016.05.003
Houghton, 2012, The GCOS at 20 years: the origin, achievement and future development of the Global Climate Observing System, Weather, 67, 227, 10.1002/wea.1964
Lindstrom, 2012
Geijzendorffer, 2015, Improving the identification of mismatches in ecosystem services assessments, Ecol. Indic., 52, 320, 10.1016/j.ecolind.2014.12.016
Pettorelli, 2016, Framing the concept of satellite remote sensing essential biodiversity variables: challenges and future directions, Remote Sens. Ecol. Conserv., 2, 122, 10.1002/rse2.15
Schmeller, 2015, Towards a global terrestrial species monitoring program, J. Nat. Conserv., 25, 51, 10.1016/j.jnc.2015.03.003
Skidmore, 2015, Environmental science: agree on biodiversity metrics to track from space, Nature, 523, 403, 10.1038/523403a
GEO BON, 2017
Hayes, 2015, Identifying indicators and essential variables for marine ecosystems, Ecol. Indic., 57, 409, 10.1016/j.ecolind.2015.05.006
Rockström, 2009, Planetary boundaries: exploring the safe operating space for humanity, Ecol. Soc., art32, 10.5751/ES-03180-140232
Steffen, 2015, Planetary boundaries: guiding human development on a changing planet, Science, 347, 10.1126/science.1259855
Carpenter, 2011, Reconsideration of the planetary boundary for phosphorus, Environ. Res. Lett., 6, 14009, 10.1088/1748-9326/6/1/014009
Mace, 2014, Approaches to defining a planetary boundary for biodiversity, Glob. Environ. Change, 28, 289, 10.1016/j.gloenvcha.2014.07.009
Running, 2012, A measurable planetary boundary for the biosphere, Science, 337, 10.1126/science.1227620
Gerten, 2013, Towards a revised planetary boundary for consumptive freshwater use: role of environmental flow requirements, Curr. Opin. Environ. Sustain., 5, 551, 10.1016/j.cosust.2013.11.001
Blas, 2016, The feasibility of measuring and monitoring social determinants of health and the relevance for policy and programme—a qualitative assessment of four countries, Glob. Health Action, 9, 10.3402/gha.v9.29002
Stok, 2016, The DONE framework: creation, evaluation, and updating of an interdisciplinary, dynamic framework 2. 0 of determinants of nutrition and eating, PLoS One, 12, e0171077, 10.1371/journal.pone.0171077
Alkire, 2014, Measuring acute poverty in the developing world: robustness and scope of the multidimensional poverty index, World Dev., 59, 251, 10.1016/j.worlddev.2014.01.026
Ostrom, 2009, A general framework for analyzing sustainability of social–ecological systems, Science, 325, 10.1126/science.1172133
Wilkinson, 2009, Income inequality and social dysfunction, Annu. Rev. Sociol., 35, 493, 10.1146/annurev-soc-070308-115926
Fang, 2015, Understanding the complementary linkages between environmental footprints and planetary boundaries in a footprint–boundary environmental sustainability assessment framework, Ecol. Econ., 114, 218, 10.1016/j.ecolecon.2015.04.008
Fang, 2014, Theoretical exploration for the combination of the ecological, energy, carbon, and water footprints: overview of a footprint family, Ecol. Indic., 36, 508, 10.1016/j.ecolind.2013.08.017
Hoekstra, 2009, Human appropriation of natural capital: a comparison of ecological footprint and water footprint analysis, Ecol. Econ., 68, 1963, 10.1016/j.ecolecon.2008.06.021
Haberl, 2007, Quantifying and mapping the human appropriation of net primary production in earth’s terrestrial ecosystems, Proc. Natl. Acad. Sci., 104, 12942, 10.1073/pnas.0704243104
Lenzen, 2012, International trade drives biodiversity threats in developing nations, Nature, 486, 109, 10.1038/nature11145
Wiedmann, 2015, The material footprint of nations, Proc. Natl. Acad. Sci. U. S. A., 112, 6271, 10.1073/pnas.1220362110
Erb, 2012, How a socio-ecological metabolism approach can help to advance our understanding of changes in land-use intensity, Ecol. Econ., 76, 8, 10.1016/j.ecolecon.2012.02.005
Binder, 2011, Comparison of frameworks for analyzing social-ecological systems, Ecol. Soc., 18, 26
Bots, 2015, A framework for analyzing, comparing, and diagnosing social–ecological systems, Ecol. Soc., 20, 10.5751/ES-08051-200418
Leach, 2013, Between social and planetary boundaries: navigating pathways in the safe and just space for humanity, 84
Hajer, 2015, Beyond Cockpit-ism: four insights to enhance the transformative potential of the Sustainable Development Goals, Sustainability, 7, 1651, 10.3390/su7021651
Meadows, 2010, Leverage points: places to intervene in a system, Solutions, 1, 41
Moore, 2014, Studying the complexity of change: toward an analytical framework for understanding deliberate social–ecological transformations, Ecol. Soc., 19, 10.5751/ES-06966-190454
Rockström, 2013
Osborn, 2015
Nilsson, 2016, Map the interactions between Sustainable Development Goals, Nature, 534, 320, 10.1038/534320a
Fischer-Kowalski, 2016, The Archipelago of social ecology and the Island of the Vienna School, 3
Liu, 2007, Coupled human and natural systems, Ambio, 36, 639, 10.1579/0044-7447(2007)36[639:CHANS]2.0.CO;2
Hinkel, 2014, Enhancing the Ostrom social-ecological system framework through formalization, Ecol. Soc., 19, 10.5751/ES-06475-190351
Díaz, 2015, The IPBES Conceptual Framework—connecting nature and people, Curr. Opin. Environ. Sustain., 14, 1, 10.1016/j.cosust.2014.11.002
Haberl, 2004, Progress towards sustainability? What the conceptual framework of material and energy flow accounting (MEFA) can offer, Land Use Policy, 21, 199, 10.1016/j.landusepol.2003.10.013
Liu, 2007, Complexity of coupled human and natural systems, Science, 317, 1513, 10.1126/science.1144004
Enfors, 2013, Social–ecological traps and transformations in dryland agro-ecosystems: using water system innovations to change the trajectory of development, Glob. Environ. Change, 23, 51, 10.1016/j.gloenvcha.2012.10.007
Walker, 2004, Resilience, adaptability and transformability in social–ecological systems, Ecol. Soc., 9, art5, 10.5751/ES-00650-090205
Brown, 2015, Transformational learning: are we all playing the same game?, J. Transform. Learn., 3, 35
Olsson, 2010, 263
Griggs, 2014, An integrated framework for sustainable development goals, Ecol. Soc., 19, art49, 10.5751/ES-07082-190449
Costanza, 2016, Modelling and measuring sustainable wellbeing in connection with the UN Sustainable Development Goals, Ecol. Econ., 130, 350, 10.1016/j.ecolecon.2016.07.009
Rogelj, 2013, The UN’s Sustainable Energy for All initiative is compatible with a warming limit of 2°C, Nat. Clim. Change, 3, 545, 10.1038/nclimate1806
Lacey, 2017, Transient climate and ambient health impacts due to national solid fuel cookstove emissions, Proc. Natl. Acad. Sci. U. S. A., 114, 1269, 10.1073/pnas.1612430114
Godfray, 2010, Food security: the challenge of feeding 9 billion people, Science, 327, 10.1126/science.1185383
Vinnari, 2014, A framework for sustainability transition: the case of plant-based diets, J Agric. Environ. Ethics, 27, 369, 10.1007/s10806-013-9468-5
Weiler, 2015, Food sovereignty, food security and health equity: a meta-narrative mapping exercise, Health Policy Plann., 30, 10.1093/heapol/czu109
Van Vuuren, 2016, Horses for courses: analytical tools to explore planetary boundaries, Earth Syst. Dyn., 7, 267, 10.5194/esd-7-267-2016
Feola, 2015, Societal transformation in response to global environmental change: a review of emerging concepts, Ambio, 44, 376, 10.1007/s13280-014-0582-z
Geels, 2011, The multi-level perspective on sustainability transitions: responses to seven criticisms, Environ. Innov. Soc. Transitions, 1, 24, 10.1016/j.eist.2011.02.002
Olsson, 2014, Sustainability transformations: a resilience perspective, Ecol. Soc., 19, art1, 10.5751/ES-06799-190401
Westley, 2011, Tipping toward sustainability: emerging pathways of transformation, Ambio, 40, 762, 10.1007/s13280-011-0186-9