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Ser., 8, 37, 10.3354\u002Fmeps008037\nFukuchi, 1981, A preliminary note on the occurrence of copepods under sea ice near Syowa Station, Antarctica, Mem. Natl. Inst. Polar Res. Ser. E. (Biol. Med. Sci.), 34, 37\nGarrison, 1991, Surface-layer sea ice assemblage in Antarctic pack ice during the austral spring: environmental conditions, primary production and community structure, Mar. Ecol. Prog. Ser., 75, 161, 10.3354\u002Fmeps075161\nHeil, 1999, The patterns and variability of Antarctic sea-ice drift in the Indian Ocean and western Pacific sectors, J. Geophys. Res. Oceans, 104, 15789, 10.1029\u002F1999JC900076\nHorner, 1992, Ecology of sea ice biota 1. Habitat, terminology, and methodology, Polar Biol., 12, 417, 10.1007\u002FBF00243113\nHoshiai, 1981, Copepods in the stomach of a nototheniid fish, Trematomus borchgrevinki fry at Syowa Station, Antarctica, Natl. Inst. Polar Res. Ser. E. (Biol. Med. Sci.), 34, 44\nHoshiai, 1989, Feeding by the nototheniid fish, Pagothenia borchgrevinki on the ice-associated copepod, Paralabidocera antarctica, Proc. NIPR Symp. Polar Biol., 2, 61\nKiko, 2008, Living conditions, abundance and composition of the metazoan fauna in surface and sub-ice layers in pack ice of the western Weddell Sea during late spring, Deep-Sea Res. II, 55, 1000, 10.1016\u002Fj.dsr2.2007.12.012\nKramer, 2011, Antarctic sympagic meiofauna in winter: comparing diversity, abundance and biomass between perennially and seasonally ice-covered region, Deep-Sea Res. II, 58, 1062, 10.1016\u002Fj.dsr2.2010.10.029\nLee, 1991\nLipps, 1974, Planktonic foraminifera associated with Antarctic sea ice, J. Foramin. 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Alp. Res., 30, 97, 10.2307\u002F1552124\nBenn, 2003, Glaciated valley landsystems, 372\nBreen, 2006, Proglacial succession of biological soil crusts and vascular plants: biotic interactions in the High Arctic, Can. J. Bot., 84, 1714, 10.1139\u002Fb06-131\nBrooker, 2008, Facilitation in plant communities: the past, the present, and the future, J. Ecol., 96, 18\nBurnham, 2002\nChapin, 1987, Environmental controls over growth of tundra plants, Ecol. Bull., 38, 69\nChase, 2003, Community assembly: when should history matter?, Oecologia, 136, 489, 10.1007\u002Fs00442-003-1311-7\nChase, 2010, Stochastic community assembly causes higher biodiversity in more productive environments, Science, 328, 1388, 10.1126\u002Fscience.1187820\nCooper, 2004, Plant recruitment in the high Arctic: seed bank and seedling emergence on Svalbard, J. Veg. Sci., 15, 115, 10.1111\u002Fj.1654-1103.2004.tb02244.x\nCrawley, 2007\nCutler, 2011, Vegetation–environment interactions in a sub-arctic primary succession, Polar Biol., 34, 693, 10.1007\u002Fs00300-010-0925-6\nCutler, 2008, The spatiotemporal dynamics of a primary succession, J. Ecol., 96, 231, 10.1111\u002Fj.1365-2745.2007.01344.x\ndel Moral, 2009, Increasing deterministic control of primary succession on Mount St. Helens, Washington, J. Veg. Sci., 20, 1145, 10.1111\u002Fj.1654-1103.2009.01113.x\nElmarsdottir, 2003, Microsite availability and establishment of native species on degraded and reclaimed sites, J. Appl. Ecol., 40, 81, 10.1046\u002Fj.1365-2664.2003.00848.x\nFlinn, 2007, Microsite-limited recruitment controls fern colonization of post-agricultural forests, Ecology, 88, 3103, 10.1890\u002F06-2124.1\nFowler, 1986, Microsite requirements for germination and establishment of three grass species, Amer. Midl. Nat., 115, 131, 10.2307\u002F2425843\nFreedman, 1992, Alexandra fiord – an ecological oasis in the polar desert, 1\nFukami, 2011, Community assembly: alternative stable states or alternative transient states?, Ecol. Lett., 14, 973, 10.1111\u002Fj.1461-0248.2011.01663.x\nGill, 2006, Linking community and ecosystem development on Mount St. Helens, Oecologia, 148, 312, 10.1007\u002Fs00442-006-0358-7\nGimenez-Benavides, 2007, Local adaptation enhances seedling recruitment along an altitudinal gradient in a high mountain Mediterranean plant, Ann. Bot., 99, 723, 10.1093\u002Faob\u002Fmcm007\nGotzenberger, 2012, Ecological assembly rules in plant communities–approaches, patterns and prospects, Biol. Rev., 87, 111, 10.1111\u002Fj.1469-185X.2011.00187.x\nHamrick, 1987, Effect of soil surface topography and litter cover on the germination, survival, and growth of musk thistle (Carduus nutans), Am. J. 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Sci., 21, 531, 10.1111\u002Fj.1654-1103.2009.01161.x\nMatthews, 1992, 386\nMatthews, 1987, Vegetation succession on the Storbreen glacier foreland, Arct. Alp. Res., 19, 385, 10.2307\u002F1551403\nMori, 2005, Season and substrate effects on the first-year establishment of current-year seedlings of major conifer species in an old-growth subalpine forest in central Japan, For. Ecol. Manage., 210, 461, 10.1016\u002Fj.foreco.2005.02.027\nMori, 2006, Topographical variation in initial recruitment and establishment of vascular plants and microhabitat conditions along a slope of the recently-deglaciated moraine in Ellesmere Island, High Arctic Canada, Polar Biosci., 19, 85\nMori, 2008, Changes in the structure and heterogeneity of vegetation and microsite environments with the chronosequence of primary succession on a glacier foreland in Ellesmere Island, High Arctic Canada, Ecol. 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Glaciol., 54, 13, 10.3189\u002F2013AoG62A146\nShimoda, 1997, Observations of sea-ice conditions in the Antarctic coastal region using ship-board video cameras, Antarct. Rec., 41, 355\nStammerjohn, 2012, Regions of rapid sea ice change: An inter-hemispheric seasonal comparison, Geophys. Res. Lett., 39, L06501, 10.1029\u002F2012GL050874\nTin, 2001, Sea-ice thickness and roughness in the Ross Sea, Antarctica, Ann. Glaciol., 33, 187, 10.3189\u002F172756401781818770\nUshio, 2006, On sea-ice advance and retreat in the Indian Ocean sector and off Lützow-Holmbukata, Antarctica, Antarct. Rec., 50, 142\nUto, 2006, Characteristics of sea-ice thickness and snow-depth distributions of the summer landfast ice in Lützow-Holm Bay, East Antarctica, Ann. Glaciol., 44, 281, 10.3189\u002F172756406781811240\nVaughan, 2013, Observations: Cryosphere, 317\nWadhams, 1987, The ice thickness distribution across the Atlantic sector of the Antarctic ocean in midwinter, J. Geophys. 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Res., 93, 9341, 10.1029\u002FJD093iD08p09341\nIshidoya, 2016, Ship observations of atmospheric potential oxygen and regional air-sea O2 flux in the northern north pacific and the Arctic Ocean, Tellus B, 68, 29972, 10.3402\u002Ftellusb.v68.29972\nJakobsson, 2002, Hypsometry and volume of the Arctic Ocean and its constituent seas, Geochem. Geophys. Geosyst., 3, 10.1029\u002F2001GC000302\nKatsumata, 2011, Re-evaluation of NIES CO scale using high concentration gravimetric CO standard gases, 295\nKort, 2012, Atmospheric observations of Arctic Ocean methane emissions up to 82° north, Nat. Geosci., 5, 318, 10.1038\u002Fngeo1452\nMachida, 2011, A new CO2 calibration scale based on gravimetric one-step dilution cylinders in National Institute for Environmental Studies-NIES 09 CO2 scale, 165\nManabe, 1980, Sensitivity of a global climate model to an increase of CO2 concentration in the atmosphere, J. Geophys. 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Model Dev., 10, 2201, 10.5194\u002Fgmd-10-2201-2017\nRamanathan, 1985, Trace gas trends and their potential role in climate change, J. Geophys. Res., 90, 5547, 10.1029\u002FJD090iD03p05547\nRasmussen, 1984, Atmospheric methane in the recent and ancient atmospheres: concentrations, trends, and interhemispheric gradient, J. Geophys. Res., 89, 11599, 10.1029\u002FJD089iD07p11599\nReynolds, 2002, An improved in situ and satellite SST analysis for climate, J. Clim., 15, 1609, 10.1175\u002F1520-0442(2002)015\u003C1609:AIISAS>2.0.CO;2\nRigby, 2008, Renewed growth of atmospheric methane, Geophys. Res. Lett., 35, L22805, 10.1029\u002F2008GL036037\nRogelj, 2012, Global warming under old and new scenarios using IPCC climate sensitivity range estimates, Nat. Clim. Change, 2, 248, 10.1038\u002Fnclimate1385\nSaunois, 2020, The global methane budget 2000–2017, Earth Syst. Sci. Data, 12, 1, 10.5194\u002Fessd-12-1561-2020\nSaha, 2010, The NCEP climate forecast system reanalysis, Bull. Amer. Meteor. 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