Statistical atlas of European agriculture: gridded data from the agricultural census 2020 and the spatial distribution of CAP contextual indicators

<p>International organizations have voiced the need to integrate geographical information from agricultural holdings into official statistics to gain a better understanding of the spatial dynamics of the European agricultural sector. This paper presents a set of thematic maps based on the Euro...

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Main Authors: N. Lampach, J. O. Skøien, H. Ramos, J. Gaffuri, R. Koeble, L. See, M. van der Velde
Format: Article
Language:English
Published: Copernicus Publications 2025-08-01
Series:Earth System Science Data
Online Access:https://essd.copernicus.org/articles/17/3893/2025/essd-17-3893-2025.pdf
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author N. Lampach
N. Lampach
J. O. Skøien
H. Ramos
J. Gaffuri
R. Koeble
L. See
M. van der Velde
author_facet N. Lampach
N. Lampach
J. O. Skøien
H. Ramos
J. Gaffuri
R. Koeble
L. See
M. van der Velde
author_sort N. Lampach
collection DOAJ
description <p>International organizations have voiced the need to integrate geographical information from agricultural holdings into official statistics to gain a better understanding of the spatial dynamics of the European agricultural sector. This paper presents a set of thematic maps based on the European 2020 agricultural census to explore the major structural differences between regions and countries. To comply with the confidentiality requirements associated with the census data, we applied a multi-resolution gridded approach by varying the resolution of the grid cells as a function of the density, dominance, and quality of individual observations. The datasets contain a mixture of grid resolutions ranging from 1 to 40 km, preserving a hierarchical structure where higher-resolution grid cells are aggregated into lower resolutions until the statistical disclosure requirements are met. The variables presented here correspond to the Contextual Indicators of the Performance Monitoring and Evaluation Framework of the Common Agricultural Policy and are divided into three broad categories: structural components (i.e., agricultural holdings, land use, livestock patterns, and labor input); the demographics of farmers (i.e., age, gender, and skills); and agricultural production methods (i.e., irrigation and organic farming). Our exploratory analysis indicates that high farm density occurs in plains, lowlands, and fertile soil in valleys; that high shares of organic farming tend to be concentrated in certain areas with high proportions of grassland; and that agricultural holdings managed by young farmers are located in a belt stretching from France through to Switzerland, Austria, Czechia, Slovakia, and Poland. These novel datasets are highly versatile, not only allowing policies to evaluate funding schemes at more local levels, but also offering researchers new opportunities to draw causal spatial inference from the multi-resolution gridded data. The dataset is the first attempt to create an unprecedented harmonized view of European agriculture with high spatial resolution and is available at <span class="uri">https://doi.org/10.5281/zenodo.14852709</span> <span class="cit" id="xref_paren.1">(<a href="#bib1.bibx46">Eurostat</a>, <a href="#bib1.bibx46">2025</a>)</span>.</p>
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spelling doaj-art-56cefa4e40064397b5e7a0df2a731d972025-08-20T03:03:11ZengCopernicus PublicationsEarth System Science Data1866-35081866-35162025-08-01173893391910.5194/essd-17-3893-2025Statistical atlas of European agriculture: gridded data from the agricultural census 2020 and the spatial distribution of CAP contextual indicatorsN. Lampach0N. Lampach1J. O. Skøien2H. Ramos3J. Gaffuri4R. Koeble5L. See6M. van der Velde7Eurostat, Unit E.1. Agricultural and Fisheries Statistics, 5 rue Alphonse Weicker, 2721 Luxembourg, LuxembourgBOKU University, Institute of Sustainable Economic Development, Gregor-Mendel-Straße 33, Vienna, AustriaARHS Developments, Boulevard du Jazz 13, 4370 Belvaux, LuxembourgEurostat, Unit E.1. Agricultural and Fisheries Statistics, 5 rue Alphonse Weicker, 2721 Luxembourg, LuxembourgEurostat, Unit E.4. Regional Statistics and Geographical Information, 5 rue Alphonse Weicker, 2721 Luxembourg, LuxembourgARHS Developments, Boulevard du Jazz 13, 4370 Belvaux, LuxembourgInternational Institute for Applied Systems Analysis (IIASA), Schloßplatz 1, 2361 Laxenburg, AustriaEuropean Commission, Joint Research Centre (JRC), Via E. Fermi, 2749, 21027 Ispra VA, Italy<p>International organizations have voiced the need to integrate geographical information from agricultural holdings into official statistics to gain a better understanding of the spatial dynamics of the European agricultural sector. This paper presents a set of thematic maps based on the European 2020 agricultural census to explore the major structural differences between regions and countries. To comply with the confidentiality requirements associated with the census data, we applied a multi-resolution gridded approach by varying the resolution of the grid cells as a function of the density, dominance, and quality of individual observations. The datasets contain a mixture of grid resolutions ranging from 1 to 40 km, preserving a hierarchical structure where higher-resolution grid cells are aggregated into lower resolutions until the statistical disclosure requirements are met. The variables presented here correspond to the Contextual Indicators of the Performance Monitoring and Evaluation Framework of the Common Agricultural Policy and are divided into three broad categories: structural components (i.e., agricultural holdings, land use, livestock patterns, and labor input); the demographics of farmers (i.e., age, gender, and skills); and agricultural production methods (i.e., irrigation and organic farming). Our exploratory analysis indicates that high farm density occurs in plains, lowlands, and fertile soil in valleys; that high shares of organic farming tend to be concentrated in certain areas with high proportions of grassland; and that agricultural holdings managed by young farmers are located in a belt stretching from France through to Switzerland, Austria, Czechia, Slovakia, and Poland. These novel datasets are highly versatile, not only allowing policies to evaluate funding schemes at more local levels, but also offering researchers new opportunities to draw causal spatial inference from the multi-resolution gridded data. The dataset is the first attempt to create an unprecedented harmonized view of European agriculture with high spatial resolution and is available at <span class="uri">https://doi.org/10.5281/zenodo.14852709</span> <span class="cit" id="xref_paren.1">(<a href="#bib1.bibx46">Eurostat</a>, <a href="#bib1.bibx46">2025</a>)</span>.</p>https://essd.copernicus.org/articles/17/3893/2025/essd-17-3893-2025.pdf
spellingShingle N. Lampach
N. Lampach
J. O. Skøien
H. Ramos
J. Gaffuri
R. Koeble
L. See
M. van der Velde
Statistical atlas of European agriculture: gridded data from the agricultural census 2020 and the spatial distribution of CAP contextual indicators
Earth System Science Data
title Statistical atlas of European agriculture: gridded data from the agricultural census 2020 and the spatial distribution of CAP contextual indicators
title_full Statistical atlas of European agriculture: gridded data from the agricultural census 2020 and the spatial distribution of CAP contextual indicators
title_fullStr Statistical atlas of European agriculture: gridded data from the agricultural census 2020 and the spatial distribution of CAP contextual indicators
title_full_unstemmed Statistical atlas of European agriculture: gridded data from the agricultural census 2020 and the spatial distribution of CAP contextual indicators
title_short Statistical atlas of European agriculture: gridded data from the agricultural census 2020 and the spatial distribution of CAP contextual indicators
title_sort statistical atlas of european agriculture gridded data from the agricultural census 2020 and the spatial distribution of cap contextual indicators
url https://essd.copernicus.org/articles/17/3893/2025/essd-17-3893-2025.pdf
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