A. Grossel, B. Nicoullaud, H. Bourennane, P. Rochette, C. Guimbaud et al., Simulating the spatial variability of nitrous oxide emission from cropped soils at the within-field scale using the NOE model, Ecological Modelling, vol.288, pp.155-165, 2014.
DOI : 10.1016/j.ecolmodel.2014.06.007

URL : https://hal.archives-ouvertes.fr/insu-01064719

D. Beheydt, P. Boeckx, S. Sleutel, C. Li, and O. Van-cleemput, Validation of DNDC for 22 long-term N2O field emission measurements, Atmospheric Environment, vol.41, issue.29, pp.6196-498, 2007.
DOI : 10.1016/j.atmosenv.2007.04.003

&. Konopka and A. E. , Field-scale variability of soil properties in central Iowa soils, p.501, 1994.

O. Folorunso and D. Rolston, Spatial Variability of Field-Measured Denitrification Gas Fluxes1, Soil Science Society of America Journal, vol.48, issue.6, pp.1214-1219, 1984.
DOI : 10.2136/sssaj1984.03615995004800060002x

P. Gabrielle, O. Laville, B. Duval, J. C. Nicoullaud, C. Germon et al., Process- 508 based modeling of nitrous oxide emissions from wheat-cropped soils at the sub- 509 regional scale, 2006.

S. Gogo, C. Guimbaud, F. Laggoun-défarge, V. Catoire, and C. Robert, In situ quantification of CH4 bubbling events from a peat soil using a new infrared laser spectrometer, Journal of Soils and Sediments, vol.21, issue.4, pp.545-551, 2011.
DOI : 10.1007/s11368-011-0338-3

URL : https://hal.archives-ouvertes.fr/insu-00521762

C. Tague, C. Tonitto, and P. Vidon, Challenges to incorporating spatially and 515 temporally explicit phenomena (hotspots and hot moments) in denitrification models, p.516, 2009.

G. Richard, Modeling nitrous oxide emissions from tile-drained winter wheat 522 fields in Central France, Nutrient Cycling in Agroecosystems, vol.98, pp.27-40, 2014.

A. Grossel, B. Nicoullaud, H. Bourennane, P. Rochette, C. Guimbaud et al., Simulating the spatial variability of nitrous oxide emission from cropped soils at the within-field scale using the NOE model, Ecological Modelling, vol.288, pp.155-165, 2014.
DOI : 10.1016/j.ecolmodel.2014.06.007

URL : https://hal.archives-ouvertes.fr/insu-01064719

C. Guimbaud, V. Catoire, S. Gogo, C. Robert, M. Chartier et al., A portable infrared laser 525 spectrometer for flux measurements of trace gases at the geosphere-atmosphere 526 interface, Measurement Science and technology, vol.22, pp.1-17, 2011.

C. Hénault and J. C. Germon, NEMIS, a predictive model of denitrification on the field scale, European Journal of Soil Science, vol.9, issue.2, pp.257-270, 2000.
DOI : 10.1046/j.1365-2389.2000.00314.x

A. Hensen, T. Groot, W. Van-den-bulk, J. E. Olesen, A. V. Schelde et al., Dairy farm 539 CH 4 and N 2 O emissions, from one square meter to the full farm scale, Agriculture Ecosystems and Environment, vol.112, pp.540-146, 2006.

K. Hergoualc-'h, J. M. Harmand, P. Cannavo, U. Skiba, R. Oliver et al., The utility of process-based models for simulating N2O emissions from soils: A case study based on Costa Rican coffee plantations, Soil Biology and Biochemistry, vol.41, issue.11, pp.2343-544, 2009.
DOI : 10.1016/j.soilbio.2009.08.023

G. Hutchinson and A. Mosier, Improved Soil Cover Method for Field Measurement of Nitrous Oxide Fluxes1, 547 IUSS Working Group WRB, pp.311-316, 1981.
DOI : 10.2136/sssaj1981.03615995004500020017x

A. Grossel, B. Nicoullaud, H. Bourennane, P. Rochette, C. Guimbaud et al., Simulating the spatial variability of nitrous oxide emission from cropped soils at the within-field scale using the NOE model, Ecological Modelling, vol.288, pp.155-165, 2014.
DOI : 10.1016/j.ecolmodel.2014.06.007

URL : https://hal.archives-ouvertes.fr/insu-01064719

D. G. Kim, R. Vargas, B. Bond-lamberty, and M. R. Turetsky, Effects of soil rewetting and thawing on soil gas fluxes: a review of current literature and suggestions for future research, Biogeosciences, vol.9, issue.7, pp.2459-2483, 2012.
DOI : 10.5194/bg-9-2459-2012

R. Konda, S. O. Ishizuka, S. Arai, S. Ansori, S. Tanaka et al., Spatial structures of N2O, CO2, and CH4 fluxes from Acacia mangium plantation soils during a relatively dry season in Indonesia, Soil Biology and Biochemistry, vol.40, issue.12, pp.3021-3030, 2008.
DOI : 10.1016/j.soilbio.2008.08.022

M. Lamers, J. Ingwersen, and T. Streck, Modelling N 2 O emission from a forest upland 559 soil: A procedure for an automatic calibration of the biogeochemical model Forest- 560 DNDC. Ecological Modelling, pp.52-58, 2007.

S. Lehuger, M. Gabrielle, D. Van-oijen, J. Makowski, T. Germon et al., Bayesian calibration of the nitrous oxide emission module of an agro- 563 ecosystem model, Agriculture, Ecosystems and Environment, vol.562, issue.133, pp.208-222, 2009.

E. Lugato, M. Zuliani, G. Alberti, G. D. Vedove, B. Gioli et al., Application of DNDC biogeochemistry model to estimate greenhouse gas 566 emissions from Italian agricultural areas at high spatial resolution. Agriculture, 567 ecosystems & environment, pp.565-546, 2010.

A. E. Milne, M. E. Lark, T. M. Addiscott, W. T. Goulding, C. P. Webster et al., Wavelet analysis of the scale-and location-dependent correlation of modelled 574 and measured nitrous oxide emissions from soil, European Journal of Soil Science, vol.573, issue.575, pp.56-59, 2005.

A. Grossel, B. Nicoullaud, H. Bourennane, P. Rochette, C. Guimbaud et al., Simulating the spatial variability of nitrous oxide emission from cropped soils at the within-field scale using the NOE model, Ecological Modelling, vol.288, pp.155-165, 2014.
DOI : 10.1016/j.ecolmodel.2014.06.007

URL : https://hal.archives-ouvertes.fr/insu-01064719

K. Nishina, C. Takenaka, and S. Ishizuka, Spatial variations in nitrous oxide and nitric 577 oxide emission potential on a slope of Japanese cedar (cryptomeria japonica) forest, p.578, 2009.

T. P. Parkin, Soil microsites as a source of denitrification variability, Soil Science, p.580, 1987.

T. Parkin, J. Cheisinger, S. Chester, J. Satarr, and J. Robinson, Evaluation of statistical 582 estimation methods for log-normally distributed variables, Soil Science Society, p.583, 1988.

T. B. Parkin, R. , and J. A. , Stochastic models of soil denitrification, p.585, 1989.

A. Pedersen, S. Petersen, and K. Schelde, A comprehensive approach to soil- 587 atmosphere trace-gas flux estimation with static chambers, European Journal of Soil, vol.588, 2010.

D. Pennock, C. Van-kessel, R. Farrell, and R. Sutherland, Landscape-Scale Variations in Denitrification, Soil Science Society of America Journal, vol.56, issue.3, pp.770-776, 1992.
DOI : 10.2136/sssaj1992.03615995005600030016x

M. J. Pringle, S. J. Baxter, B. P. Marchant, and R. M. Lark, Spatial analysis of the error in a model of soil nitrogen, Ecological Modelling, vol.211, issue.3-4, pp.453-467, 2008.
DOI : 10.1016/j.ecolmodel.2007.09.021

C. Robert, Simple, stable, and compact multiple-reflection optical cell for very long optical paths, Applied Optics, vol.46, issue.22, pp.5408-5418, 2007.
DOI : 10.1364/AO.46.005408

M. Röver, O. Heinemeyer, J. C. Munch, and E. A. Kaiser, Spatial heterogeneity within the plough layer: high variability of N2O emission rates, Soil Biology and Biochemistry, vol.31, issue.2, pp.167-173, 1999.
DOI : 10.1016/S0038-0717(97)00271-X

U. Skiba and K. A. Smith, The control of nitrous oxide emissions from agricultural and natural soils, Chemosphere - Global Change Science, vol.2, issue.3-4, pp.379-386, 2000.
DOI : 10.1016/S1465-9972(00)00016-7

K. F. Stacey, R. M. Lark, A. P. Whitmore, and A. E. Milne, Using a process model and 601 regression kriging to improve predictions of nitrous oxide emissions from soil, p.602, 2006.

A. Grossel, B. Nicoullaud, H. Bourennane, P. Rochette, C. Guimbaud et al., Simulating the spatial variability of nitrous oxide emission from cropped soils at the within-field scale using the NOE model, Ecological Modelling, vol.288, pp.155-165, 2014.
DOI : 10.1016/j.ecolmodel.2014.06.007

URL : https://hal.archives-ouvertes.fr/insu-01064719

E. Stehfest and L. Bouwmann, N2O and NO emission from agricultural fields and soils under natural vegetation: summarizing available measurement data and modeling of global annual emissions, Nutrient Cycling in Agroecosystems, vol.100, issue.3, pp.207-228, 2006.
DOI : 10.1007/s10705-006-9000-7

D. A. Turner, D. Chen, I. E. Galbally, R. Leuning, R. B. Edis et al., Spatial variability of nitrous oxide emissions from an Australian irrigated dairy 608 pasture, Plant Soil, vol.607, issue.309, pp.77-88, 2008.

R. Van-den-heuvel, M. Hefting, N. Tan, M. Jetten, and J. Verhoeven, O emission 610 hotspots at different spatial scales and governing factors for small scale hotspots, p.611, 2009.

G. Velthof, S. Jarvis, A. Stein, A. Allen, and O. Oenema, Spatial variability of nitrous 613 oxide fluxes in mown and grazed grasslands on a poorly drained clay soil, Soil Biology Biochemistry, vol.614, issue.28, pp.1215-1225, 1996.

G. Vilain, J. Garnier, G. Tallec, and P. Cellier, Effect of slope position and land use on 616 nitrous oxide emissions Agricultural and forest Meteorology, pp.1192-1202, 2010.

R. Webster and M. A. Oliver, Geostatistics for environmental scientists, 2007.
DOI : 10.1002/9780470517277

M. Whelan and C. Gandolfi, Modelling of spatial controls on denitrification at the 620 landscape scale. Hydrological processes 16, pp.1437-1450, 2002.

T. T. Yates, B. C. Si, R. E. Farrell, and D. J. Pennock, Probability distribution and spatial 622 dependence of nitrous oxide emission: Temporal change in hummocky terrain, 2006.

A. Grossel, B. Nicoullaud, H. Bourennane, P. Rochette, C. Guimbaud et al., Simulating the spatial variability of nitrous oxide emission from cropped soils at the within-field scale using the NOE model, Ecological Modelling, vol.288, pp.155-165, 2014.
DOI : 10.1016/j.ecolmodel.2014.06.007

URL : https://hal.archives-ouvertes.fr/insu-01064719

A. Grossel, B. Nicoullaud, H. Bourennane, P. Rochette, C. Guimbaud et al., Simulating the spatial variability of nitrous oxide emission from cropped soils at the within-field scale using the NOE model, Ecological Modelling, vol.288, pp.155-165, 2014.
DOI : 10.1016/j.ecolmodel.2014.06.007

URL : https://hal.archives-ouvertes.fr/insu-01064719

A. Grossel, B. Nicoullaud, H. Bourennane, P. Rochette, C. Guimbaud et al., Simulating the spatial variability of nitrous oxide emission from cropped soils at the within-field scale using the NOE model, Ecological Modelling, vol.288, pp.155-165, 2014.
DOI : 10.1016/j.ecolmodel.2014.06.007

URL : https://hal.archives-ouvertes.fr/insu-01064719