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Soil Ecol., 22, 113, 10.1016\u002FS0929-1393(02)00135-X\nKorthals, 1996, Short-term effects of cadmium, copper, nickel and zinc on soil nematodes from different feeding and life-history groups, Appl. Soil Ecol., 4, 107, 10.1016\u002F0929-1393(96)00113-8\nMahn, 1985, Effects of herbicide stress on weed communities and soil nematodes in agroecosystems, Oikos, 44, 185, 10.2307\u002F3544060\nPaşca, 1998, Enzymological and microbiological study of the evolution of a technogenic soil submitted to biological recultivation at the lead and zinc mine in Rodna (Romania), Soil Till. Res., 47, 163, 10.1016\u002FS0167-1987(98)00088-9\nPopovici, 1995, The use of soil nematodes to assess the quality of technogenic soil rehabilitation, Stud. Univ. Babeş-Bolyai, Biol., 38, 43\nRaski, 1975, Revision of the genus Paratylenchus Micoletzky, 1922, and descriptions of new species. Part II of three parts, J. Nematol., 7, 274\nRusek, J., 2004. Collembola succession on deposits from a chemical factory. Pedobiologia, in press.\nS̆ály, 1983, Vplyv luženca z Niklovej huty Sered’, n. p., na volne žijúce nematódy v kultúrnych pôdach. [The effect of nickeliferous ore wastes from the Nickel Works National Enterprise at Sered’ upon free living nematodes in culture soils], Biológia (Bratislava), 38, 535\nSmit, 2002, Effects of zinc contamination on a natural nematode community in outdoor soil mesocosms, Arch. Environ. Contam. Toxicol., 42, 205, 10.1007\u002Fs00244-001-0029-y\nSzczygiel, 1974, Plant parasitic nematodes associated with strawberry plantations in Poland, Zesz. Probl. Post. Nauk Roln., 154, 9\nTer Braak, C.J.F., 1987. CANOCO—a FORTRAN program for canonical ordination by (partial) (detrended) (canonical) correspondence analysis, principal component analysis and redundancy analysis (version 2.1.). 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Biol., 47, 711, 10.1046\u002Fj.1365-2427.2002.00892.x\nAndersson, 2005\nBarber, 2009, Centipedes. Keys and notes for the identification of the species\nBlower, 1985, Millipedes. Keys and notes for the identification of the species\nBogyó, 2015, Distribution of millipedes (Myriapoda, Diplopoda) along a forest interior – forest edge – grassland habitat complex, ZooKeys, 510, 181, 10.3897\u002Fzookeys.510.8657\nBonato, 2005, Geophilomorph Centipedes of Latvia (Chilopoda, Geophilomorpha), Latvijas Entomol., 42, 5\nBonato, 2016\nCarpenter, 2012, Biodiversity of soil macrofauna in the New Forest: a benchmark study across a national park landscape, Biodiv. Conserv., 21, 3385, 10.1007\u002Fs10531-012-0369-0\nColeman, 2004\nCoyle, 2017, Soil fauna responses to natural disturbances, invasive species, and global climate change: current state of the science and a call to action, Soil Biol. Biochem., 110, 116, 10.1016\u002Fj.soilbio.2017.03.008\nDahlström, 2013, Managing biodiversity rich hay meadows in the EU: a comparison of Swedish and Romanian grasslands, Environ. Conserv., 40, 194, 10.1017\u002FS0376892912000458\nDecker, 2017, The millipedes and centipedes (Diplopoda, Chilopoda) of the river banks and the stream islands at the northern Upper-Rhine in Germany, Schubartiana, 6, 1\nDecker, 2009, Die Hundertfüßer und Tausendfüßer (Myriapoda, Chilopoda, Diplopoda) des Truppenübungsplatzes Haltern-Borkenberge (Kreise Coesfeld und Recklinghausen), 469\nEngelmann, 1978, Zur Dominanzklassifizierung von Bodenarthropoden, Pedobiologia, 18, 378, 10.1016\u002FS0031-4056(23)00612-1\nEriksson, 2002, Land-use history and fragmentation of traditionally managed grasslands in Scandinavia, J. Veg. Sci., 13, 743, 10.1111\u002Fj.1654-1103.2002.tb02102.x\nEstonian Land Board Geoportal. https:\u002F\u002Fgeoportaal.maaamet.ee\u002Feng\u002F (Accessed 26.09. 2018).\nEstonian Weather Service. https:\u002F\u002Fwww.ilmateenistus.ee\u002Film\u002Filmavaatlused\u002Fsademed\u002Fsademete-kuu-summad\u002F (Accessed 30.03. 2018).\nGallé, 2017, Sparse trees and shrubs confers a high biodiversity to pastures: case study on spiders from Transylvania, PLoS One, 12, e0183465, 10.1371\u002Fjournal.pone.0183465\nGerlach, 2013, Terrestrial invertebrates as bioindicators: an overview of available taxonomic groups, J. Insect. Conserv., 17, 831, 10.1007\u002Fs10841-013-9565-9\nIvask, 2012, Effect of flooding by fresh and brackish water on earthworm communities along Matsalu Bay and the Kasari River, Eur. J. Soil Biol., 53, 11, 10.1016\u002Fj.ejsobi.2012.08.001\nIvask, 2018, Springtails of flooded meadows along Matsalu Bay and the Kasari River, Estonia, Pedobiologia, 66, 1, 10.1016\u002Fj.pedobi.2017.12.001\nJongman, 2004, European ecological networks and greenways, Landsc. Urban Plann., 68, 305, 10.1016\u002FS0169-2046(03)00163-4\nKime, 2011\nKime, 2017, Atlas of European Millipedes 2: Order Julida (Class Diplopoda), Eur. J. Taxon. order Julida (class diplopoda), Eur. J. Taxon., 346, 1\n1985\nLeito, 2014, Coastal grassland waders abundance in relation to breeding habitat characteristics in Matsalu Bay, Estonia, Ornis Fennica, 3, 149\nLeśniewska, 2015, Centipede (Chilopoda) richness and diversity in the Bug River valley (Eastern Poland), Zookeys, 510, 125, 10.3897\u002Fzookeys.510.8763\nLewis, 2006\nLock, 2001, Centipede communities on the inland dunes of eastern Franders (Belgium), Eur. J. 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Eng., 82, 493, 10.1016\u002Fj.ecoleng.2015.05.013\nPalmén, 1948, The Chilopoda of Eastern Fennoscandia, Annales Zoologici Societatis Zoologico-Botanicae Fennicae Vanamo, 13, 1\nPalmén, 1949, The Diplopoda of Eastern Fennoscandia, Annales Zoologici Societatis Zoologico-Botanicae Fennicae Vanamo, 13, 1\nPereira, 2015, Eﬀ ;ects of NaCl and seawater induced salinity on survival and reproduction of three soil invertebrate species, Chemosphere, 135, 116, 10.1016\u002Fj.chemosphere.2015.03.094\nPlum, 2005, Terrestrial invertebrates in flooded grassland: a literature review, Wetlands, 25, 721, 10.1672\u002F0277-5212(2005)025[0721:TIIFGA]2.0.CO;2\nRidding, 2015, Fate of semi-natural grassland in England between 1960 and 2013: a test of national conservation policy, Global Ecol. 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Part 1: basic theory and linear methods, Ecoscience, 1, 127, 10.1080\u002F11956860.1994.11682237\nter Braak, 1996, 93\nTuf, 2000, Communities of centipedes (Chilopoda) in three floodplain forests of various age in Litovecké Pomoraví (Czech Republic), Fragmenta Faunistica, 43, 327\nTuf, 2003, Four-year development of a centipede (Chilopoda) community after a summer flood, Afr. 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Terrestrial invertebrates in Matsalu wetland, 140\nVoigtländer, 2005, Habitat preferences of selected Central European centipedes, Peckiana, 4, 163\nVoigtländer, 2011, Preferences of common Central European millipedes for different biotope types (Myriapoda, Diplopoda) in Saxony-Anhalt (Germany), Int. J. Myriapodol., 6, 61, 10.3897\u002Fijm.6.2172\nWallwork, 1970\nZalesskaja, 1978\nZapparoli, 2011, New records and remarks on the centipede fauna of endogean habitats of Sardinia (Chilopoda), 223\nZulka, 1991, Myriapods from a Central European River floodplain. In: 8th International congress of myriapodology, Innsbruck, Austria, July 15 - 20, 1990, Ber. Nat. Med. 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