A landscape persistence-based methodological framework for assessing ecological stability
Tài liệu tham khảo
Romanelli, 2018, Assessing ecological restoration as a research topic using bibliometric indicators, Ecol. Eng., 120, 311, 10.1016/j.ecoleng.2018.06.015
Li, 2021, Evaluation of ecological stability in semi-arid open-pit coal mining area based on structure and function coupling during 2002–2017, Rem. Sens., 13, 5040, 10.3390/rs13245040
Li, 2016, Vegetation changes in recent large-scale ecological restoration projects and subsequent impact on water resources in China's Loess Plateau, Sci. Total Environ., 569–570, 1032, 10.1016/j.scitotenv.2016.06.141
Uprety, 2012, Contribution of traditional knowledge to ecological restoration: practices and applications, Ecoscience, 19, 225, 10.2980/19-3-3530
Strassburg, 2020, Global priority areas for ecosystem restoration, Nature, 586, 724, 10.1038/s41586-020-2784-9
Fan, 2019, Nature protection and human development in the Selincuo region: conflict resolution, Sci. Bull., 64, 425, 10.1016/j.scib.2019.03.014
Song, 2018, Vegetation changes along the qinghai-tibet plateau engineering corridor since 2000 induced by climate change and human activities, Rem. Sens., 10, 95, 10.3390/rs10010095
Atkinson, 2022, Terrestrial ecosystem restoration increases biodiversity and reduces its variability, but not to reference levels: a global meta-analysis, Ecol. Lett., 25, 1725, 10.1111/ele.14025
Xia, 2021, Spatio-temporal changes of ecological vulnerability across the Qinghai-Tibetan Plateau, Ecol. Indicat., 123, 10.1016/j.ecolind.2020.107274
Xiao, 2021, Potential risk to water resources under eco-restoration policy and global change in the Tibetan Plateau, Environ. Res. Lett., 16, 10.1088/1748-9326/ac1819
Feng, 2016, Revegetation in China's Loess Plateau is approaching sustainable water resource limits, Nat. Clim. Change, 6, 1019, 10.1038/nclimate3092
Clark, 2021, General statistical scaling laws for stability in ecological systems, Ecol. Lett., 24, 1474, 10.1111/ele.13760
Van Meerbeek, 2021, Unifying the concepts of stability and resilience in ecology, J. Ecol., 109, 3114
Urrutia-Cordero, 2022, Integrating multiple dimensions of ecological stability into a vulnerability framework, J. Ecol., 110, 374
Pimm, 2019, Measuring resilience is essential to understand it, Nat. Sustain., 2, 895, 10.1038/s41893-019-0399-7
Gigon, 1983, Typology and principles of ecological stability and instability, Mt. Res. Dev., 3, 95, 10.2307/3672989
Pimm, 1984, The complexity and stability of ecosystems, Nature, 307, 321, 10.1038/307321a0
Jóźwik, 2021, Spatial diversity of ecological stability in different types of spatial units: case study of Poland, Acta Geogr. Slov., 61, 57, 10.3986/AGS.8779
Parparov, 2015, Quantifying the ecological stability of a phytoplankton community: the Lake Kinneret case study, Ecol. Indicat., 56, 134, 10.1016/j.ecolind.2015.04.002
Wan, 2014, Ecological engineering of ground cover vegetation enhances the diversity and stability of peach orchard canopy arthropod communities, Ecol. Eng., 70, 175, 10.1016/j.ecoleng.2014.05.010
Pennekamp, 2018, Biodiversity increases and decreases ecosystem stability, Nature, 563, 109, 10.1038/s41586-018-0627-8
Li, 2021, Ecological stability evaluation of tidal flat in coastal estuary: a case study of Liaohe estuary wetland, China, Ecol. Indicat., 130, 10.1016/j.ecolind.2021.108032
Chen, 2021, Review on research of spatial pattern and influencing mechanisms of terrestrial ecosystem stability, Chin. J. Agrometeorol., 42, 552
Parparov, 2016, Quantifying ecological stability: from community to the lake ecosystem, Ecosystems, 20, 1015, 10.1007/s10021-016-0090-z
Demirkesen, 2016, Compositing climate change vulnerability of a Mediterranean region using spatiotemporally dynamic proxies for ecological and socioeconomic impacts and stabilities, Environ. Monit. Assess., 189, 29, 10.1007/s10661-016-5750-0
Donohue, 2016, Navigating the complexity of ecological stability, Ecol. Lett., 19, 1172, 10.1111/ele.12648
Scheffer, 2009, Early-warning signals for critical transitions, Nature, 461, 53, 10.1038/nature08227
Scheffer, 2015, Generic indicators of ecological resilience: inferring the chance of a critical transition, Annu. Rev. Ecol. Evol. Syst., 46, 145, 10.1146/annurev-ecolsys-112414-054242
Immerzeel, 2020, Importance and vulnerability of the world's water towers, Nature, 577, 364, 10.1038/s41586-019-1822-y
Liu, 2020, Mapping critical natural capital at a regional scale: spatiotemporal variations and the effectiveness of priority conservation, Environ. Res. Lett., 15, 10.1088/1748-9326/abc4ac
Fu, 2021, Current condition and protection strategies of qinghai-tibet plateau ecological security barrier, Bull. Chin. Acad. Sci., 36, 1298
Hopping, 2018, Warming and land use change concurrently erode ecosystem services in Tibet, Global Change Biology, 24, 5534, 10.1111/gcb.14417
Liu, 2021, Production of global daily seamless data cubes and quantification of global land cover change from 1985 to 2020 - iMap World 1.0, Rem. Sens. Environ., 258, 10.1016/j.rse.2021.112364
Guo, 2020, Spatial and temporal change patterns of net primary productivity and its response to climate change in the Qinghai-Tibet Plateau of China from 2000 to 2015, J. Arid Lamd, 12, 1
Li, 2018, Mapping human influence intensity in the Tibetan Plateau for conservation of ecological service functions, Ecosyst. Serv., 30, 276, 10.1016/j.ecoser.2017.10.003
Verburg, 2009, Combining top-down and bottom-up dynamics in land use modeling: exploring the future of abandoned farmlands in Europe with the Dyna-CLUE model, Landsc. Ecol., 24, 1167, 10.1007/s10980-009-9355-7
Yi, 2012, Dynamic modelling of future land-use change: a comparison between CLUE-S and Dinamica EGO models, vol. 8513
Mas, 2014, Inductive pattern-based land use/cover change models: a comparison of four software packages, Environ. Model. Software, 51, 94, 10.1016/j.envsoft.2013.09.010
Holben, 1986, Characteristics of maximum-value composite images from temporal AVHRR data, Int. J. Rem. Sens., 7, 1417, 10.1080/01431168608948945
Li, 2016, Quantitative assessment of the relative roles of climate change and human activities in desertification processes on the Qinghai-Tibet Plateau based on net primary productivity, Catena, 147, 789, 10.1016/j.catena.2016.09.005
Li, 2019, Increasing sensitivity of alpine grasslands to climate variability along an elevational gradient on the Qinghai-Tibet Plateau, Sci. Total Environ., 678, 21, 10.1016/j.scitotenv.2019.04.399
Zhang, 2020, Ecological consequence of nomad settlement policy in the pasture area of Qinghai-Tibetan Plateau: from plant and soil perspectives, J. Environ. Manag., 260
Yili, 2007, Spatial characteristic of vegetation change in the source regions of the Yangtze river, Yellow river and Lancang river in China, Geogr. Res., 26, 500
Luo, 2020, Increased human pressures on the alpine ecosystem along the Qinghai-Tibet Railway, Reg. Environ. Change, 20, 33, 10.1007/s10113-020-01616-7
Lei, 2017, Lake seasonality across the Tibetan Plateau and their varying relationship with regional mass changes and local hydrology, Geophys. Res. Lett., 44, 892, 10.1002/2016GL072062
Gao, 2014, Climate change as the major driver of alpine grasslands expansion and contraction: a case study in the Mt. Qomolangma (Everest) National Nature Preserve, southern Tibetan Plateau, Quat. Int., 336, 108, 10.1016/j.quaint.2013.09.035
Huete, 2002, Overview of the radiometric and biophysical performance of the MODIS vegetation indices, Rem. Sens. Environ., 83, 195, 10.1016/S0034-4257(02)00096-2
Wang, 2014, Ecosystem stability in space: α, β and γ variability, Ecol. Lett., 17, 891, 10.1111/ele.12292
Chen, 2019, A late middle pleistocene denisovan mandible from the Tibetan plateau, Nature, 569, 409, 10.1038/s41586-019-1139-x
Fang, 2020, Revised chronology of central tibet uplift (Lunpola basin), Sci. Adv., 6, 10.1126/sciadv.aba7298
Pan, 2019, Low input parks strategy can work: dynamic profile of Mishmi Takins under constrained conservation management in Mt. Gaoligong, China, Global Ecology and Conservation, 19, 10.1016/j.gecco.2019.e00659
Li, 2020, Enhancing protected areas for biodiversity and ecosystem services in the Qinghai Tibet Plateau, Ecosyst. Serv., 43, 10.1016/j.ecoser.2020.101090
Li, 2015, Projected impacts of climate change on protected birds and nature reserves in China, Sci. Bull., 60, 1644, 10.1007/s11434-015-0892-y
Dai, 2020, Green vegetation cover has steadily increased since establishment of community forests in Western Chitwan, Nepal, Rem. Sens., 12, 4071, 10.3390/rs12244071
Armstrong McKay, 2022, Exceeding 1.5°C global warming could trigger multiple climate tipping points, Science, 377, 10.1126/science.abn7950
Cheng, 2020, Offering the win-win solutions between ecological conservation and livelihood development: National parks in Qinghai, China, Geography Sustain., 1, 251, 10.1016/j.geosus.2020.10.001
Liu, 2020, The willingness to pay for ecosystem services on the Tibetan Plateau of China, Geography Sustain., 1, 141, 10.1016/j.geosus.2020.06.001
Zhang, 2021, Sustainable wildlife protection on the Qingzang Plateau, Geography Sustain., 2, 40, 10.1016/j.geosus.2021.02.005
Zhao, 2020, Sustainable development problems and countermeasures: a case study of the Qinghai-Tibet Plateau, Geography Sustain., 1, 275, 10.1016/j.geosus.2020.11.002
Dong, 2020, Enhancing sustainability of grassland ecosystems through ecological restoration and grazing management in an era of climate change on Qinghai-Tibetan Plateau, Agric. Ecosyst. Environ., 287, 10.1016/j.agee.2019.106684
Elleason, 2021, Strictly protected areas are not necessarily more effective than areas in which multiple human uses are permitted, Ambio, 50, 1058, 10.1007/s13280-020-01426-5
Zhang, 2021, Variations and controlling factors of vegetation dynamics on the Qingzang Plateau of China over the recent 20 years, Geography Sustain., 2, 74, 10.1016/j.geosus.2021.02.001
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Barrington-Leigh, 2017, The world's user-generated road map is more than 80% complete, PLoS One, 12, 10.1371/journal.pone.0180698
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