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Effects of cropping practices on declining farmland birds during the breeding season. The 1997 Brighton Crop Protection Conference — Weeds, BCPC, Farnham, pp. 915–922.\nAnon., 1988. Set-aside, SA1. MAFF, London.\nAnon., 1991a. One-year Set-aside Scheme. SAO3. MAFF, London.\nAnon., 1991b. Set-aside, SA1 (Rev. 3). MAFF, London.\nAnon., 1992. Arable Area Payments Explanatory Booklet AR2. MAFF, London.\nAnon., 1995. Biodiversity: The UK Steering Group Report Vol. 2. Action Plans. HMSO, London.\nBartha, S., 1990. Spatial processes in developing plant communities: pattern formation detected using information theory. In: Krahulec, F., Agnew, A.D.Q., Agnew, S., Willems, J.H. (Eds.), Spatial Processes in Plant Communities. SPB Academic Publishing, The Hague, pp. 31–47.\nBazzaz, 1975, Plant species diversity in old-field successional ecosystems in southern Illinois, Ecology, 56, 485, 10.2307\u002F1934981\nBurch, 1996, Establishing species-rich grassland on set-aside land: balancing weed control and species enhancement, Asp. Appl. Biol., 44, 221\nCorbet, 1995, Insects, plants and succession: advantages of long-term set-aside, Agric. Ecosyst. Environ., 53, 201, 10.1016\u002F0167-8809(94)00581-X\nCritchley, 1998, A method to optimize precision and scale in grassland monitoring, J. Veg. Sci., 9, 837, 10.2307\u002F3237049\nEvans, A.D., 1997. Seed-eaters, stubble fields and set-aside. The 1997 Brighton Crop Protection Conference — Weeds, BCPC, Farnham, pp. 907–914.\nFirbank, L.G., Wilson, P.J., 1995. Arable weeds and set-aside — a cause for conservation or a cause for concern? In: Colston, A., Perring, F. (Eds.), Insects, Plants and Set-aside. Bot. Soc. Br. Isles, London, pp. 19–20.\nFirbank, L.G., Arnold, H.R., Eversham, B.C., Mountford, J.O., Radford, G.L., Telfer, M.G., Treweek, J.R., Webb, N.R.C., Wells, T.C.E., 1993. Managing Set-aside Land for Wildlife. ITE Research Publication No. 7, HMSO, London.\nFirbank, 1994, The use of species-decline statistics to help target conservation policy for set-aside arable land, J. Environ. Manage., 42, 415, 10.1006\u002Fjema.1994.1081\nFirbank, 1998, Mapping the distribution of weeds in Great Britain in relation to national survey data and to soil type, Weed Res., 38, 1, 10.1046\u002Fj.1365-3180.1998.00066.x\nFisher, N.M., Dyson, P.W., Winham, J.M., Davies, D.H.K., Lee, K., 1992. A botanical survey of set-aside in Scotland. In: Clarke, J. (Ed.), Set-aside. Monogr. No. 50, BCPC, Farnham, pp. 67–72.\nFord, 1996, The transformation of surplus farmland into semi-natural habitat I. Effect of seed supply on the conservation value of Scottish set-aside exemplified by the vegetation at a site near Elgin, Asp. Appl. Biol., 44, 179\nGibson, 1991, The effects of grazing on local colonisation and extinction during early succession, J. Veg. Sci., 2, 291, 10.2307\u002F3235919\nGibson, 1991, The nature and rate of development of calcareous grassland in Southern Britain, Biol. Conserv., 58, 297, 10.1016\u002F0006-3207(91)90097-S\nGibson, C.W.D., Brown, V.K., 1992. Grazing and vegetation change: deflected or modified succession? J. Appl. Ecol. 29, 120–131.\nGrime, J.P., Hodgson, J.G., Hunt, R., 1988. Comparative Plant Ecology. Unwin Hyman, London.\nHansson, 1998, Management of permanent set-aside on arable land in Sweden, J. Appl. Ecol., 35, 758, 10.1046\u002Fj.1365-2664.1998.355350.x\nHenderson, I.G., Vickery, J.A., Fuller, R.J. Summer bird abundance and distribution on set-aside fields on intensive arable farms in England. Ecography, in press.\nHodgson, J.G., Colasanti, R., Phillipson, P., Leach, S., Montgomery, S., Hunt, R., 1994. A simple method for monitoring grassland vegetation. In: Haggar, R.J., Peel, S. (Eds.), Grassland Management and Nature Conservation. Occasional Symp. Br. Grassland Soc. 28, pp. 286–288.\nHodgson, J.G., Grime, J.P., Hunt, R., Thompson, K., 1995. The Electronic Comparative Plant Ecology. Chapman and Hall, London.\nKirkwood, R.C. (Ed.), 1997. Biodiversity and Conservation in Agriculture. BCPC Symp. Proc. 69, British Crop Protection Council, Farnham.\nLepš, 1987, Vegetation dynamics in early old field succession: a quantitative approach, Vegetatio, 72, 95, 10.1007\u002FBF00044839\nMarshall, 1989, Distribution patterns of plants associated with arable field edges, J. Appl. Ecol., 26, 247, 10.2307\u002F2403665\nOksanen, 1997, Instability of ordination results under changes in input order: explanations and remedies, J. Veg. Sci., 8, 447, 10.2307\u002F3237336\nPickett, 1982, Population patterns through twenty years of oldfield succession, Vegetatio, 49, 45, 10.1007\u002FBF00051566\nRew, L.J., Wilson, P.J., Froud-Williams, R.J., Boatman, N.D., 1992. Changes in vegetation composition and distribution within set-aside land. In: Clarke, J. (Ed.), Set-aside. Monogr. No. 50, BCPC, Farnham, pp. 79–84.\nRich, 1996, Changes in the vascular plant floras of England and Scotland between 1930–1960 and 1987–1988. The BSBI Monitoring Scheme, Biol. Conserv., 75, 217, 10.1016\u002F0006-3207(95)00077-1\nSotherton, 1998, Land use changes and the decline of farmland wildlife: an appraisal of the set-aside approach, Biol. Conserv., 83, 259, 10.1016\u002FS0006-3207(97)00082-7\nStace, C.A., 1991. New Flora of the British Isles. Cambridge University Press, Cambridge.\nSymonides, E., Wierzchowska, U., 1990. Changes in the spatial pattern of vegetation structure and of soil properties in early old-field succession. In: Krahulec, F., Agnew, A.D.Q., Agnew, S., Willems, J.H. (Eds.), Spatial Processes in Plant Communities. SPB Academic Publishing, The Hague, pp. 201–213.\nter Braak, 1987, The analysis of vegetation-environment relationships by canonical correspondence analysis, Vegetatio, 69, 69, 10.1007\u002FBF00038688\nter Braak, C.J.F., 1988. CANOCO — a FORTRAN Program for Canonical Community Ordination by (Partial) (Detrended) (Canonical) Correspondence Analysis, Principal Components Analysis and Redundancy Analysis Version 2.1. GLW, Wageningen.\nter Braak, C.J.F., 1990. Update Notes: CANOCO Version 3.10. Agricultural Mathematics Group, Wageningen.\nTurley, 1994, Development of flora during three years of set-aside, and weed levels in a following wheat crop, Asp. Appl. Biol., 40, 435\nWilson, P.J., 1992. The natural regeneration of vegetation under set-aside in southern England. In: Clarke, J. (Ed.), Set-aside. Monogr. 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Ecosyst. Environ., 121, 47, 10.1016\u002Fj.agee.2006.12.004\nAmmann, 2007, The carbon budget of newly established temperate grassland depends on management intensity, Agr. Ecosyst. Environ., 121, 5, 10.1016\u002Fj.agee.2006.12.002\nAmundson, 2001, The carbon budget in soils, Annu. Rev. Earth Plant Sci., 29, 535, 10.1146\u002Fannurev.earth.29.1.535\nAubinet, 2008, Eddy covariance CO2 flux measurements in nocturnal conditions: an analysis of the problem, Ecol. Appl., 18, 1368, 10.1890\u002F06-1336.1\nBaldocchi, 2008, Breathing of the terrestrial biosphere: lessons learned from a global network of carbon dioxide flux measurement systems, Aust. J. Bot., 56, 1, 10.1071\u002FBT07151\nBaldocchi, 2003, Assessing the eddy covariance technique for evaluating carbon dioxide exchange rates of ecosystems: past, present and future, Global Change Biol., 9, 479, 10.1046\u002Fj.1365-2486.2003.00629.x\nBellamy, 2005, Carbon losses from all soils across England and Wales 1978–2003, Nature, 437, 245, 10.1038\u002Fnature04038\nBirch, 1959, Further observations on humus decomposition and nitrification, Plant Soil, 11, 262, 10.1007\u002FBF01435157\nBrown, 2009, Regulation of soil surface respiration in a grazed pasture in New Zealand, Agr. Forest Meteorol., 149, 205, 10.1016\u002Fj.agrformet.2008.08.005\nByrne, 2007, Carbon sequestration determined using farm scale carbon balance and eddy covariance, Agr. Ecosyst. Environ., 121, 357, 10.1016\u002Fj.agee.2006.11.015\nChapin, 2006, Reconciling carbon-cycle concepts, terminology, and methods, Ecosystems, 9, 1041, 10.1007\u002Fs10021-005-0105-7\nCiais, 2005, Europe-wide reduction in primary productivity caused by the heat and drought in 2003, Nature, 437, 529, 10.1038\u002Fnature03972\nClark, 2007, Issues and options for future dairy farming in New Zealand, New Zeal. J. Agr. Res., 50, 203, 10.1080\u002F00288230709510291\nConant, 2001, Grassland management and conversion into grassland: effects on soil carbon, Ecol. Appl., 11, 343, 10.1890\u002F1051-0761(2001)011[0343:GMACIG]2.0.CO;2\nConen, 2003, Potential for detecting changes in soil organic carbon concentrations resulting from climate change, Global Change Biol., 9, 1515, 10.1046\u002Fj.1365-2486.2003.00689.x\nDavidson, 1993, Changes in soil carbon inventories following cultivation of previously untilled soils, Biogeochemistry, 20, 161, 10.1007\u002FBF00000786\nFalge, 2001, Gap filling strategies for defensible annual sums of net ecosystem exchange, Agr. Forest Meteorol., 107, 43, 10.1016\u002FS0168-1923(00)00225-2\nFlanagan, 2002, Seasonal and interannual variation in carbon dioxide exchange and carbon balance in a northern temperate grassland, Global Change Biol., 8, 599, 10.1046\u002Fj.1365-2486.2002.00491.x\nGilmanov, 2010, Productivity, respiration, and light-response parameters of world grassland and agroecosystems derived from flux-tower measurements, Rangeland Ecol. 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Forest Meteorol., 147, 209, 10.1016\u002Fj.agrformet.2007.08.011\nMoore, 1986, Frequency response corrections for eddy correlation systems, Bound. Lay. Meteorol., 37, 17, 10.1007\u002FBF00122754\nMudge, P.L., 2009. Annual carbon balance of an intensively grazed pasture: magnitude and controls. MSc Thesis. Department of Earth and Ocean Sciences. University of Waikato, Hamilton, New Zealand, p. 147.\nNagy, 2007, The carbon budget of semi-arid grassland in a wet and a dry year in Hungary, Agr. Ecosyst. Environ., 121, 21, 10.1016\u002Fj.agee.2006.12.003\nNieveen, 2005, Carbon exchange of grazed pasture on a drained peat soil, Global Change Biol., 11, 607, 10.1111\u002Fj.1365-2486.2005.00929.x\nNIWA, 2010\nParfitt, 2009, Effects of soil fertility on leaching losses of N, P and C in hill country, New Zeal. J. Agr. Res., 52, 69, 10.1080\u002F00288230909510490\nPeichl, 2011, Six-year stable annual uptake of carbon dioxide in intensively managed humid temperate grassland, Ecosystems, 14, 112, 10.1007\u002Fs10021-010-9398-2\nReichstein, 2005, On the separation of net ecosystem exchange into assimilation and ecosystem respiration: review and improved algorithm, Global Change Biol., 11, 1424, 10.1111\u002Fj.1365-2486.2005.001002.x\nRogiers, 2005, Effect of land management on ecosystem carbon fluxes at a subalpine grassland site in the Swiss Alps, Theor. Appl. Climatol., 80, 187, 10.1007\u002Fs00704-004-0099-7\nSaggar, 1999, Hill slope effects on the vertical fluxes of photosynthetically fixed 14C in a grazed pasture, Aust. J. 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Phys., 5, 223, 10.1039\u002Fb208564j\nHan, 2016, Heterogeneous photochemical conversion of NO2 to HONO on the humic acid surface under simulated sunlight, Environ. Sci. Technol., 50, 5017, 10.1021\u002Facs.est.5b05101\nHenault, 1998, Nitrous oxide emissions under different soil and land management conditions, Biol. Fertil. Soils, 26, 199, 10.1007\u002Fs003740050368\nIPCC, 2007, 996\nIPCC, 2013, 1535\nJohansson, 1984, Emission of nitric oxide from arable land, Tellus B: Chem. Phys. Meteorol., 36, 25, 10.3402\u002Ftellusb.v36i1.14797\nLaufs, 2017, Diurnal fluxes of HONO above a crop rotation, Atmos. Chem. Phys., 17, 6907, 10.5194\u002Facp-17-6907-2017\nMaljanen, 2007, Fluxes of nitrous oxide and nitric oxide from experimental excreta patches in boreal agricultural soil, Soil Biol. Biochem., 39, 914, 10.1016\u002Fj.soilbio.2006.11.001\nMaljanen, 2013, Acidic northern soils as sources of atmospheric nitrous acid (HONO), Soil Biol. Biochem., 67, 94, 10.1016\u002Fj.soilbio.2013.08.013\nMaljanen, 2016, Emissions of nitrous acid (HONO), nitric oxide (NO), and nitrous oxide (N2O) from horse dung, Agric. Food Sci., 25, 225, 10.23986\u002Fafsci.59314\nMedinets, 2015, A review of soil NO transformation: associated processes and possible physiological significance on organisms, Soil Biol. Biochem., 80, 92, 10.1016\u002Fj.soilbio.2014.09.025\nOswald, 2013, HONO Emissions from soil bacteria as a major source of atmospheric reactive nitrogen, Science, 341, 1233, 10.1126\u002Fscience.1242266\nOswald, 2015, A comparison of HONO budgets for two measurement heights at a field station within the boreal forest in Finland, Atmos. Chem. Phys., 15, 799, 10.5194\u002Facp-15-799-2015\nPihlatie, 2004, Contribution of nitrification and denitrification to N2O production in peat, clay and loamy sand soils under different soil moisture conditions, Nutr. Cycl. Agroecosyst., 70, 135, 10.1023\u002FB:FRES.0000048475.81211.3c\nPitts, 1984, An investigation of the dark formation of nitrous acid in environmental chambers, Int. J. Chem. Kinet., 16, 919, 10.1002\u002Fkin.550160712\nRegina, 2013, Emissions of nitrous oxide from boreal agricultural mineral soils—statistical models based on measurements, Agric. Ecosyst. Environ., 164, 131, 10.1016\u002Fj.agee.2012.09.013\nRen, 2011, A relaxed eddy accumulation system for measuring vertical fluxes of nitrous acid, Atmos. Meas. Tech., 4, 2093, 10.5194\u002Famt-4-2093-2011\nRiedel, 2008, Detergent of the atmosphere, Water Atmos., 16, 22\nSörgel, 2015, A comparison of measured HONO uptake and release with calculated source strengths in a heterogeneous forest environment, Atmos. Chem. Phys. 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Agroecosyst., 74, 207, 10.1007\u002Fs10705-006-9000-7\nStemmler, 2006, Photosensitized reduction of nitrogen dioxide on humic acid as a source of nitrous acid, Nature, 440, 195, 10.1038\u002Fnature04603\nSu, 2011, Soil nitrite as a source of atmospheric HONO and OH radicals, Science, 333, 1616, 10.1126\u002Fscience.1207687\nSvehla, 2014, Inhibition effect of free ammonia and free nitrous acid on nitrite-oxidising bacteria during sludge liquor treatment: influence of feeding strategy, Chem. Pap., 68, 871, 10.2478\u002Fs11696-014-0538-6\nSyväsalo, 2004, Emissions of nitrous oxide from boreal agricultural clay and loamy sand soils, Nutr. Cycl. Agroecosyst., 69, 155, 10.1023\u002FB:FRES.0000029675.24465.fc\nSyväsalo, 2006, Fluxes of nitrous oxide and methane: and nitrogen leaching from organically and conventionally cultivated sandy soil in western Finland, Agric. Ecosyst. Environ., 113, 342, 10.1016\u002Fj.agee.2005.10.013\nTilman, 2001, Forecasting agriculturally driven global environmental change, Science, 292, 281, 10.1126\u002Fscience.1057544\nVandenBoer, 2013, Understanding the role of the ground surface in HONO vertical structure: high resolution vertical profiles during NACHTT-11, J. Geophys. Res. Atmos., 118, 171\nVandenBoer, 2014, Evidence for a nitrous acid (HONO) reservoir at the ground surface in Bakersfield, CA, during CalNex 2010, J. Geophys. Res. Atmos., 119, 9093, 10.1002\u002F2013JD020971\nVandenBoer, 2015, Nocturnal loss and daytime source of nitrous acid through reactive uptake and displacement, Nat. Geosci., 8, 55, 10.1038\u002Fngeo2298\nVeldkamp, 1997, Fertilizer-induced nitric oxide emissions from agricultural soils, Nutr. Cycl. Agroecosyst., 48, 69, 10.1023\u002FA:1009725319290\nVenterea, 2000, Mechanisms and kinetics of nitric and nitrous oxide production during nitrification in agricultural soil, Glob. 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of nitrification and urease inhibitors on nitrous oxide and methane emissions from an oat crop in a volcanic ash soil",{"VOID":1230},"[\"15537956942608680381\"]",{"VOID":1232},"Abalos, 2014, Meta-analysis of the effect of urease and nitrification inhibitors on crop productivity and nitrogen use efficiency, Agr, Ecosyst. Environ., 189, 136, 10.1016\u002Fj.agee.2014.03.036\nAbbasi, 2000, N emission during simultaneous nitrification-denitrification associated with mineral N fertilization to a grassland soil under field conditions, Soil Biol. Biochem., 32, 1251, 10.1016\u002FS0038-0717(00)00042-0\nAkiyama, 2010, Evaluation of effectiveness of enhanced‐efficiency fertilizers as mitigation options for N2O and NO emissions from agricultural soils: meta-analysis, Glob. Change Biol., 16, 1837, 10.1111\u002Fj.1365-2486.2009.02031.x\nAlfaro, 2006, Nitrogen leaching losses on a volcanic ash soil as affected by the source of fertilizer, J. Soil Sci. Plant Nutr., 6, 54\nAlfaro, 2016, Ammonia and nitrous oxide emissions as affected by nitrification and urease inhibitors on a volcanic ash soil, Atmos. Environ.\nBarton, 2008, Nitrous oxide emissions from a cropped soil in a semi-arid climate, Glob. 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Soils, 50, 63, 10.1007\u002Fs00374-013-0831-5\nZaman, 2010, Effects of the different rates of urease and nitrification inhibitors on gaseous emissions of ammonia and nitrous oxide: nitrate leaching and pasture production from urine patches in an intensive grazed pasture system, Agric. Ecosyst. Environ., 136, 236, 10.1016\u002Fj.agee.2009.07.010\nZaman, 2009, Effect of urease and nitrification inhibitors on N transformation gaseous emissions of ammonia and nitrous oxide, pasture yield and N uptake in grazed pasture system, Soil Biol. 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Zootecn., 38, 596, 10.1590\u002FS1516-35982009000400002\nČámská, 2012, Effect of low-dose N application and early mowing on plant species composition of mesophilous meadow grassland (Arrhenatherion) in Central Europe, Grass Forage Sci., 67, 403, 10.1111\u002Fj.1365-2494.2012.00858.x\nChytrý, 2007, Vegetation of Czech Republic 1\nČop, 2009, Influence of cutting regime and fertilizer application on the botanical composition, yield and nutritive value of herbage of wet grasslands in Central Europe, Grass Forage Sci., 64, 454, 10.1111\u002Fj.1365-2494.2009.00713.x\nDale, 2013, Fertilization effects on chemical composition and in vitro organic matter digestibility of semi-natural meadows as predicted by NIR spectrometry, Not. Bot. Horti Agrobot. Cluj., 41, 58, 10.15835\u002Fnbha4119112\nDuffková, 2013, Effects of cattle slurry application on plant species composition of moderately moist Arrhenatherion grassland, Plant Soil Environ., 59, 485, 10.17221\u002F62\u002F2013-PSE\nDuffková, 2015, Effect of cattle slurry on soil and herbage chemical properties, yield, nutrient balance and plant species composition of moderately dry Arrhenatherion grassland, Agric., Ecosyst. Environ. Appl. Soil Ecol., 213, 281, 10.1016\u002Fj.agee.2015.07.018\nDuru, 1997, Leaf and Stem in vitro digestibility for grasses and dicotyledons of meadow plant communities in spring, J. Sci. 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P., 55, 264\nHejcman, 2007, The Rengen Grassland Experiment: plant species composition after 64 years of fertilizer application, Agric., Ecosyst. Environ., Appl. Soil Ecol., 122, 259, 10.1016\u002Fj.agee.2006.12.036\nHejcman, 2010, The Rengen Grassland Experiment: relationship between soil and biomass chemical properties, amount of elements applied, and their uptake, Plant Soil, 333, 163, 10.1007\u002Fs11104-010-0332-3\nHofmann, 2005, Species enrichment in an agriculturally improved grassland and its effects on botanical composition yield and forage quality, Grass Forage Sci., 60, 136, 10.1111\u002Fj.1365-2494.2005.00460.x\nHonsová, 2007, Species composition of an alluvial meadow after 40 years of applying nitrogen, phospohorus and potassium fertilizer, Preslia, 79, 245\nHrevušová, 2015, Soil chemical properties, plant species composition, herbage quality, production and nutrient uptake of and alluvial meadow after 45 years of N, P, and K application, Grass Forage Sci., 70, 205, 10.1111\u002Fgfs.12112\nHuhtanen, 2016, Improving utilization of forage protein in ruminant production by crop and feed management, The Multiple Roles of Grassland in the European Bioeconomy. 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