Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 70 checked references that resolve
resolves10.1016/j.agrformet.2017.04.006Experimental validation of footprint models for eddy covariance CO2 flux measurements above grassland by means of natural and artificial tracers
resolves10.1111/gcb.12131Methane emissions from wetlands: biogeochemical, microbial, and modeling perspectives from local to global scales
resolves10.5194/bg-11-4651-2014Evaluation of a plot-scale methane emission model using eddy covariance observations and footprint modelling
resolves10.5194/bg-15-2691-2018Year-round simulated methane emissions from a permafrost ecosystem in Northeast Siberia
resolves10.1007/s10546-008-9339-1Assessing Tower Flux Footprint Climatology and Scaling Between Remotely Sensed and Eddy Covariance Measurements
resolves10.1007/s10021-016-9991-0Vegetation Type Dominates the Spatial Variability in CH4 Emissions Across Multiple Arctic Tundra Landscapes
resolves10.3390/rs9121227Upscaling CH4 Fluxes Using High-Resolution Imagery in Arctic Tundra Ecosystems
resolves10.1111/gcb.13400Methane oxidation in contrasting soil types: responses to experimental warming with implication for landscape‐integrated CH<sub>4</sub> budget
resolves10.1029/91JD02531Micrometeorological measurements of CH<sub>4</sub> and CO<sub>2</sub> exchange between the atmosphere and subarctic tundra
resolves10.1016/j.agrformet.2011.02.006Cross-evaluation of measurements of peatland methane emissions on microform and ecosystem scales using high-resolution landcover classification and source weight modelling
resolves10.1029/1999GB001136Trace gas exchange in a high‐Arctic valley: 2. Landscape CH<sub>4</sub> fluxes measured and modeled using eddy correlation data
resolves10.5194/bg-5-433-2008Quality control of CarboEurope flux data – Part 1: Coupling footprint analyses with flux data quality assessment to evaluate sites in forest ecosystems
resolves10.1111/gcb.13547The case for increasing the statistical power of eddy covariance ecosystem studies: why, where and how?
resolves10.1007/BF00119817Footprint estimation for scalar flux measurements in the atmospheric surface layer
resolves10.1038/ngeo2305Net regional methane sink in High Arctic soils of northeast Greenland
resolves10.1088/1748-9326/aa7f85Spatial variation and seasonal dynamics of leaf-area index in the arctic tundra-implications for linking ground observations and satellite images
resolves10.1016/j.agrformet.2004.11.015Upscaling fluxes from tower to landscape: Overlaying flux footprints on high-resolution (IKONOS) images of vegetation cover
resolves10.1029/2005GL023462Measuring methane emissions from a landfill using a cost‐effective micrometeorological method
resolves10.1007/BF00122089Footprint prediction of scalar fluxes using a Markovian analysis
resolves10.5194/bg-13-597-2016Methane dynamics in the subarctic tundra: combining stable isotope analyses, plot- and ecosystem-scale flux measurements
resolves10.1002/2014JG002642Parsing the variability in CH<sub>4</sub> flux at a spatially heterogeneous wetland: Integrating multiple eddy covariance towers with high‐resolution flux footprint analysis
resolves10.5194/bg-9-3185-2012An assessment of the carbon balance of Arctic tundra: comparisons among observations, process models, and atmospheric inversions
resolves10.5194/bg-15-2781-2018Spatial variation and linkages of soil and vegetation in the Siberian Arctic tundra – coupling field observations with remote sensing data
resolves10.1111/gcb.12071Environmental and physical controls on northern terrestrial methane emissions across permafrost zones
resolves10.1029/2010JG001637Spatial and temporal dynamics in eddy covariance observations of methane fluxes at a tundra site in northeastern Siberia
resolves10.1007/s00704-004-0095-yQuality analysis applied on eddy covariance measurements at complex forest sites using footprint modelling
resolves10.1029/2007JG000505Environmental controls on ecosystem‐scale CH<sub>4</sub> emission from polygonal tundra in the Lena River Delta, Siberia
resolves10.1111/j.1365-2486.2010.02232.xEnvironmental controls on CH<sub>4</sub> emission from polygonal tundra on the microsite scale in the Lena river delta, Siberia
resolves10.1016/j.rse.2008.10.013Land cover classification of tundra environments in the Arctic Lena Delta based on Landsat 7 ETM+ data and its application for upscaling of methane emissions
resolves10.1111/j.1365-2745.2006.01187.xWhat is the relationship between changes in canopy leaf area and changes in photosynthetic CO<sub>2</sub> flux in arctic ecosystems?
resolves10.1111/gcb.12875A pan‐Arctic synthesis of CH<sub>4</sub> and CO<sub>2</sub> production from anoxic soil incubations
resolves10.1111/gcb.14421Tundra landscape heterogeneity, not interannual variability, controls the decadal regional carbon balance in the Western Russian Arctic
resolves10.1029/98JD01165Resistances to ozone deposition to a flark fen in the northern aapa mire zone
resolves10.5194/bg-2018-155Interpreting eddy covariance data from heterogeneous Siberian tundra: land cover-specific methane fluxes and spatial representativeness
resolves10.1111/gcb.12580A synthesis of methane emissions from 71 northern, temperate, and subtropical wetlands
resolves10.1175/BAMS-D-14-00145.1International Arctic Systems for Observing the Atmosphere: An International Polar Year Legacy Consortium
resolves10.3390/rs8090742Assessment of Spatial Representativeness of Eddy Covariance Flux Data from Flux Tower to Regional Grid
resolves10.1038/ngeo2578Climate-sensitive northern lakes and ponds are critical components of methane release
resolves10.1016/j.envpol.2013.06.018A comparison of methane emission measurements using eddy covariance and manual and automated chamber-based techniques in Tibetan Plateau alpine wetland
resolves10.1029/2009GB003487Methane fluxes during the initiation of a large‐scale water table manipulation experiment in the Alaskan Arctic tundra
The 10 references without a DOI — listed, not checked
no DOI — not checkedAARI: Archive of Tiksi standard meteorological observations (1932–2016),
Russian Federal Service for Hydrometeorology and Environmental Monitoring, St
Petersburg, Russia, available at:
http://www.aari.ru/resources/d0024/archive/description_e.html, last
access: 13 September 2018.
no DOI — not checkedAurela, M., Lohila, A., Tuovinen, J.-P., Hatakka, J., Riutta, T., and
Laurila, T.: Carbon dioxide exchange on a northern boreal fen, Boreal
Environ. Res., 14, 699–710, 2009.
no DOI — not checkedAurela, M., Laurila, T., Tuovinen, J.-P., Hatakka, J., Linkosalmi, M.,
Virtanen, T., Mikola, J., Asmi, E., Ivakhov, V., Kondratyev, V., Uttal, T.,
and Makshtas, A.: CH4 and CO2 exchange on permafrost tundra in
Tiksi, Siberia, in: Proceedings of the 1st Pan-Eurasian Experiment (PEEX)
Conference and the 5th PEEX Meeting, edited by: Kulmala, M., Zilitinkevich,
S., Lappalainen, H. K., Kyrö, E.-M., and Kontkanen, J., Report Series in
Aerosol Science, 163, 60–62, 2015.
no DOI — not checkedBöhner, J. and Selige, T.: Spatial prediction of soil attributes using
terrain analysis and climate regionalisation, in: SAGA – Analysis and
Modelling Applications, edited by: Böhner, J., McCloy, K. R., and Strobl,
J., Göttinger Geographische Abhandlungen, 115, University of
Göttingen, Germany, 13–28, 2006.
no DOI — not checkedGreene, W. H.: Econometric Analysis, 7th edn., Pearson Education Ltd.,
Harlow, UK, 2012.
no DOI — not checkedLivingston, G. P. and Hutchinson, G. L.: Enclosure-based measurement of trace
gas exchange: applications and sources of error, in: Biogenic Trace Gases:
Measuring Emissions from Soil and Water, edited by: Matson, P. A. and
Harriss, R. C., Blackwell Science Ltd., Oxford, UK, 14–51, 1995.
no DOI — not checkedNappo, C. J., Caneill, J. Y., Furman, R. W., Gifford, F. A., Kaimal, J. C.,
Kramer, M. L., Lockhart, T. J., Pendergast, M. M., Pielke, R. A., Randerson,
D., Shreffler, J. H., and Wyngaard, J. C.: The workshop on the
representativeness of meteorological observations, June 1981, Boulder, Colo.,
B. Am. Meteorol. Soc., 63, 761–764, 1982.
no DOI — not checkedNyman, J.: The composition and phenological development of the vegetation and
its impact on carbon fluxes in the Siberian tundra, MSc thesis, Department of
Environmental Sciences, University of Helsinki, Finland, 2015.
no DOI — not checkedPasquill, F. and Smith, F. B.: Atmospheric Diffusion, 3rd edn., Ellis Horwood
Ltd., Chichester, UK, 1983.
no DOI — not checkedVähä, E.: Kasvillisuus- ja maaperämuuttujien välinen yhteys
ja niiden merkitys hiilidioksidin ja metaanin vaihdossa arktisen
tundraekosysteemin ja ilmakehän välillä [The relationship between
vegetation and soil variables and their importance in the carbon dioxide and
methane exchange between an Arctic tundra ecosystem and the atmosphere], MSc
thesis, Department of Environmental Sciences, University of Helsinki,
Finland, 2016.
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