{"type": "FeatureCollection", "features": [{"id": "10.1002/pan3.10080", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:14:00Z", "type": "Journal Article", "created": "2020-03-09", "title": "Action needed for the EU Common Agricultural Policy to address sustainability challenges", "description": "Abstract<p>   <p>Making agriculture sustainable is a global challenge. In the European Union (EU), the Common Agricultural Policy (CAP) is failing with respect to biodiversity, climate, soil, land degradation as well as socio\uffe2\uff80\uff90economic challenges.</p>  <p>The European Commission's proposal for a CAP post\uffe2\uff80\uff902020 provides a scope for enhanced sustainability. However, it also allows Member States to choose low\uffe2\uff80\uff90ambition implementation pathways. It therefore remains essential to address citizens' demands for sustainable agriculture and rectify systemic weaknesses in the CAP, using the full breadth of available scientific evidence and knowledge.</p>  <p>Concerned about current attempts to dilute the environmental ambition of the future CAP, and the lack of concrete proposals for improving the CAP in the draft of the European Green Deal, we call on the European Parliament, Council and Commission to adopt 10 urgent action points for delivering sustainable food production, biodiversity conservation and climate mitigation.</p>  <p>Knowledge is available to help moving towards evidence\uffe2\uff80\uff90based, sustainable European agriculture that can benefit people, nature and their joint futures.</p>  <p>The statements made in this article have the broad support of the scientific community, as expressed by above 3,600 signatories to the preprint version of this manuscript. The list can be found here (https://doi.org/10.5281/zenodo.3685632).</p>  </p><p>A free Plain Language Summary can be found within the Supporting Information of this article.</p>", "keywords": ["330", "333.7 Landfl\u00e4chen", " Naturr\u00e4ume f\u00fcr Freizeit und Erholung", " Naturreservate", " Energie", "public goods", "ddc:320", "0211 other engineering and technologies", "02 engineering and technology", "SMART targets", "01 natural sciences", "7. Clean energy", "630", "Article", "12. Responsible consumption", "GF1-900", "11. Sustainability", "evidence-based policy", "ddc:630", "European Green Deal", "QH540-549.5", "agriculture", "biodiversity", "0105 earth and related environmental sciences", "2. Zero hunger", "Ecology", "ddc:333", "1. No poverty", "15. Life on land", "320", "Agronomy", "Environmental sciences", "climate change", "Human ecology. Anthropogeography", "13. Climate action", "evidence\u2010based policy", "Common Agricultural Policy"]}, "links": [{"href": "https://besjournals.onlinelibrary.wiley.com/doi/pdf/10.1002/pan3.10080"}, {"href": "https://doi.org/10.1002/pan3.10080"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/People%20and%20Nature", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1002/pan3.10080", "name": "item", "description": "10.1002/pan3.10080", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1002/pan3.10080"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2020-03-08T00:00:00Z"}}, {"id": "10.1016/j.ecolmodel.2023.110507", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:15:47Z", "type": "Journal Article", "created": "2023-10-10", "title": "Interactive effects of microbial functional diversity and carbon availability on decomposition \u2013 A theoretical exploration", "description": "<div><p>Microbial functional diversity in litter and soil has been hypothesized to affect the rate of decomposition of organic matter and other soil ecosystem functions. However, there are no clear theoretical expectations on how these effects might change with substrate availability, heterogeneity in the substrate chemistry, and different aspects of functional diversity itself (number of microbial groups vs. distribution of functional traits). To explore how these factors shape the decomposition-diversity relation, we carry out numerical experiments using a flexible reaction network comprising microbial processes and interactions with bioavailable carbon (extracellular degradation, uptake, respiration, growth, and mortality), and ecological processes (competition among the different groups). We also considered diverse carbon substrates, in terms of varying nominal oxidation state of carbon (NOSC). The reaction network was used to test the effects of (i) number of microbial groups, (ii) number of carbon pools, (iii) microbial functional diversity, and (iv) amount of bioavailable carbon. We found that the decomposition rate constant increases with increasing substrate concentration and heterogeneity, as well as with increasing microbial functional diversity or variance of microbial traits, albeit these biological factors are less important. The multivariate dependence of the decomposition rate constant (and other decomposition and microbial growth metrics) on substrate and microbial factors can be described using power laws with exponents lower than one, indicating that diversity effects on decomposition and microbial growth are reduced at high substrate concentration and heterogeneity, or at high microbial diversity.</p></div>", "keywords": ["Microbial model Organic matter decomposition Organic carbon oxidation state Decomposition kinetics Microbial diversity", "[SDE] Environmental Sciences", "2. Zero hunger", "Organic matter decomposition", "Supplementary Information", "GE", "Ecology", "330", "GF Human ecology. Anthropogeography", "15. Life on land", "ta4112", "GF", "6. Clean water", "12. Responsible consumption", "Ecological Modelling", "Decomposition kinetics", "13. Climate action", "Microbial functional trait", "Microbial diversity-function relation", "Microbial model", "GE Environmental Sciences", "Organic carbon oxidation state"]}, "links": [{"href": "https://doi.org/10.1016/j.ecolmodel.2023.110507"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Ecological%20Modelling", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1016/j.ecolmodel.2023.110507", "name": "item", "description": "10.1016/j.ecolmodel.2023.110507", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1016/j.ecolmodel.2023.110507"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2023-12-01T00:00:00Z"}}, {"id": "10.5194/we-19-39-2019", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:21:51Z", "type": "Journal Article", "created": "2019-06-06", "title": "Unassisted establishment of biological soil crusts on dryland road slopes", "description": "<?xml version='1.0' encoding='UTF-8'?><article><p>Abstract. Understanding patterns of habitat natural recovery after human-made disturbances is critical for the conservation of ecosystems under high environmental stress, such as drylands. In particular, the unassisted establishment of nonvascular plants such as biological soil crusts or biocrust communities (e.g., soil lichens, mosses and cyanobacteria) in newly formed habitats is not yet fully understood. However, the potential of biocrusts to improve soil structure and function at the early stages of succession and promote ecosystem recovery is enormous. In this study, we evaluated the capacity of lichen biocrusts to spontaneously establish and develop on road slopes in a Mediterranean shrubland. We also compared taxonomic and functional diversity of biocrusts between road slopes and natural habitats in the surroundings. Biocrust richness and cover, species composition, and functional structure were measured in 17 road slopes (nine roadcuts and eight embankments) along a 13\u2009km highway stretch. Topography, soil properties and vascular plant communities of road slopes were also characterized. We used Kruskal\u2013Wallis tests and applied redundancy analysis (RDA) to test the effect of environmental scenario (road slopes vs.\u00a0natural habitat) and other local factors on biocrust features. We found that biocrusts were common in road slopes after \u223c20\u00a0years of construction with no human assistance needed. However, species richness and cover were still lower than in natural remnants. Also, functional structure was quite similar between roadcuts (i.e., after soil excavation) and natural remnants, and topography and soil properties influenced species composition while environmental scenario type and vascular plant cover did not. These findings further support the idea of biocrusts as promising restoration tools in drylands and confirm the critical role of edaphic factors in biocrust establishment and development in land-use change scenarios.                     </p></article>", "keywords": ["0106 biological sciences", "QH301-705.5", "Physiology", "Science", "GC1-1581", "QH1-199.5", "Oceanography", "Microbiology", "01 natural sciences", "GF1-900", "QP1-981", "GE1-350", "Biology (General)", "QH540-549.5", "2. Zero hunger", "Ecology", "Q", "Botany", "General. Including nature conservation", " geographical distribution", "15. Life on land", "QR1-502", "Environmental sciences", "QL1-991", "Human ecology. Anthropogeography", "QK1-989", "QH1-278.5", "Natural history (General)", "Zoology"]}, "links": [{"href": "https://we.copernicus.org/articles/19/39/2019/we-19-39-2019.pdf"}, {"href": "https://doi.org/10.5194/we-19-39-2019"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Web%20Ecology", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.5194/we-19-39-2019", "name": "item", "description": "10.5194/we-19-39-2019", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.5194/we-19-39-2019"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2019-06-06T00:00:00Z"}}, {"id": "10.1080/26395916.2024.2401945", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:18:13Z", "type": "Journal Article", "created": "2024-10-08", "title": "Valuation of soil-mediated contributions to people (SmCPs) \u2013 a systematic review of values and methods", "description": "Soils have the capacity to contribute to human wellbeing through a variety of pathways. Preserving these contributions in light of human and climate-induced changes requires consideration of the numerous benefits \u2013 both in research and policy-making. Previous research has demonstrated how the benefits can be recognized through valuation, but a comprehensive understanding of how different types of valuation of soil-mediated contributions to people (SmCPs) are incorporated across various contexts is missing. Under the framework of the Intergovernmental Science-Policy Platform on Biodiversity and Ecosystem Services (IPBES), the current study undertook a systematic review of the literature to identify knowledge gaps and future research agendas in understanding the value of SmCPs to people. We analyse the frequency of methods, data and actors included in the studies as well as the consideration of drivers and quality of life categories linked to the valuation of SmCPs. Although the majority of studies were solely concerned with either monetary or non-monetary valuation approaches, several studies acknowledged the limitations of pure economic valuation and attempted an integrated valuation of both non-monetary and monetary approaches. Despite these efforts, there is further potential for fully integrating both monetary and non-monetary valuation methods to encompass a more comprehensive valuation approach through interdisciplinary approaches.", "keywords": ["Environmental sciences", "GF1-900", "non-monetary", "Human ecology. Anthropogeography", "Ram Pandit", "GE1-350", "Monetary valuation", "nature\u2019s contributions to people", "soil", "ecosystem service"]}, "links": [{"href": "https://doi.org/10.1080/26395916.2024.2401945"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Ecosystems%20and%20People", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1080/26395916.2024.2401945", "name": "item", "description": "10.1080/26395916.2024.2401945", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1080/26395916.2024.2401945"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2024-10-07T00:00:00Z"}}, {"id": "10.1093/ismeco/ycae116", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:18:17Z", "type": "Journal Article", "created": "2024-10-08", "title": "Land use effects on soil microbiome composition and traits with consequences for soil carbon cycling", "description": "Abstract                <p>The soil microbiome determines the fate of plant-fixed carbon. The shifts in soil properties caused by land use change leads to modifications in microbiome function, resulting in either loss or gain of soil organic carbon (SOC). Soil pH is the primary factor regulating microbiome characteristics leading to distinct pathways of microbial carbon cycling, but the underlying mechanisms remain understudied. Here, the taxa-trait relationships behind the variable fate of SOC were investigated using metaproteomics, metabarcoding, and a 13C-labeled litter decomposition experiment across two temperate sites with differing soil pH each with a paired land use intensity contrast. 13C incorporation into microbial biomass increased with land use intensification in low-pH soil but decreased in high-pH soil, with potential impact on carbon use efficiency in opposing directions. Reduction in biosynthesis traits was due to increased abundance of proteins linked to resource acquisition and stress tolerance. These trait trade-offs were underpinned by land use intensification-induced changes in dominant taxa with distinct traits. We observed divergent pH-controlled pathways of SOC cycling. In low-pH soil, land use intensification alleviates microbial abiotic stress resulting in increased biomass production but promotes decomposition and SOC loss. In contrast, in high-pH soil, land use intensification increases microbial physiological constraints and decreases biomass production, leading to reduced necromass build-up and SOC stabilization. We demonstrate how microbial biomass production and respiration dynamics and therefore carbon use efficiency can be decoupled from SOC highlighting the need for its careful consideration in managing SOC storage for soil health and climate change mitigation.</p", "keywords": ["soil health", "Supplementary Data", "QH301 Biology", "carbon use efficiency", "carbon cycling", "https://oup.silverchair-cdn.com/oup/backfile/Content_public/Journal/ismecommun/4/1/10.1093_ismeco_ycae116/1/otu_table_16s_table_s1_ycae116.xlsx?Expires=1737538557&Signature=3IutEpMaJIknJFjSbheOQYWpAwXt2atlN4YtPR7BTaTGf3jrf1M6yHgYzlnrttKlwpbFcwz-IqYq96oubC5FxfBQQyiIC0H-az-D~Bkstxc9XHkEmERELO~nurTlszmUndzm3jLsKF05x00PNsiNFlGKUhlsMB6wRmyO3v3GNBqHQVdswXZ3UAjfXvqqinyDLK54UCxfLk8eKpcfFnvVctxQ8Hrk3gP-eMFToKDlXgPD4MXGrdegvcZblx6g8FAvJruLIG1NWIRJ6wzx6HcmAYiZDJcGosKrdjMBIznM8YIJjBrfWwhGvjh15Z7MJnsUWn8PjxLjXfww29q-YfQnw__&Key-Pair-Id=APKAIE5G5CRDK6RD3PGA", "https://oup.silverchair-cdn.com/oup/backfile/Content_public/Journal/ismecommun/4/1/10.1093_ismeco_ycae116/1/otu_table_18s_table_s2_ycae116.xlsx?Expires=1737538557&Signature=ZVWC9BaJ2MOsxOOfzrmd-9nuLAy5yHOmeqJQmKHhQ1z7mXxXITIYAvM8BpVkEkQHB7Bo-6dNEm5FlC6eAuTroyq-dvMW3PD6MNP9SN5KgwSrKUeHM6IKNhzav6Q4zd48B95IPreN5UKQTTVPrphpdOxfdVKYKxD3qOMdWqmHXt-IAD~W80PJ0BjvpHXPQ0pYCmGInVv1Fe-L3k~OKo80rD0xtncnBCFRd8DVHTIY5JLjJr4-E~M3Gainkbz2AVLZwys3S6MMEboS8vKSj~rG34Z04ByT6dBjp0XDj2H9K7WjXlEqOoPIwUWUUfcVvn4N5wZ6R6YFZr9mk4qTZKdEow__&Key-Pair-Id=APKAIE5G5CRDK6RD3PGA", "004", "soil organic carbon", "QH301", "soil pH", "13C labelling", "land use intensity", "soil microbiome", "metabarcoding", "SDG 13 - Climate Action", "metaproteomics", "Original Article", "SDG 15 - Life on Land"]}, "links": [{"href": "https://doi.org/10.1093/ismeco/ycae116"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/ISME%20Communications", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1093/ismeco/ycae116", "name": "item", "description": "10.1093/ismeco/ycae116", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1093/ismeco/ycae116"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2024-01-01T00:00:00Z"}}, {"id": "10.3390/molecules29204908", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:20:58Z", "type": "Journal Article", "created": "2024-10-17", "title": "Computational Multiscale Study of the Interaction Between the PDMS Polymer and Sunscreen-Related Pollutant Molecules", "description": "<?xml version='1.0' encoding='UTF-8'?><article><p>Sunscreen molecules play a critical role in protecting skin from ultraviolet radiation, yet their efficient detection and separation pose challenges in environmental and analytical contexts. In this work, we employ a multilevel modeling approach to investigate the molecular interactions between representative sunscreen molecules and the polydimethylsiloxane (PDMS) polymer, a material widely recognized for its sorbent properties. Our goal is to explore how these interactions can be fine-tuned to facilitate the effective separation of sunscreen molecules in portable membrane inlet mass spectrometry (MIMS) systems, potentially leading to the development of new membrane materials. Using a combination of advanced computational techniques\u2014force field molecular dynamics simulations, semiempirical GFN2-xTB, and density functional theory calculations\u2014we assess the interaction strength and noncovalent interactions of sunscreen molecules, namely oxybenzone, naphthalene, benzo[a]anthracene, avobenzone, and 1,3,5-trichlorobenzene, with PDMS. Additionally, the effect of temperature on the interaction dynamics is evaluated, with the aim of extending the sorbent capacities of PDMS beyond light polar molecules to larger, polar sunscreen compounds. This study provides critical insights into the molecular-level interactions that may guide the design of novel membrane materials for efficient molecular separation.</p></article>", "keywords": ["QD241-441", "membranes", "PDMS", "MD", "Organic chemistry", "GFN2-xTB", "MIMS", "DFT", "Article"]}, "links": [{"href": "https://doi.org/10.3390/molecules29204908"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Molecules", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.3390/molecules29204908", "name": "item", "description": "10.3390/molecules29204908", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.3390/molecules29204908"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2024-10-17T00:00:00Z"}}, {"id": "10.3390/rs14092253", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:21:02Z", "type": "Journal Article", "created": "2022-05-09", "title": "Extraction of Agricultural Fields via DASFNet with Dual Attention Mechanism and Multi-scale Feature Fusion in South Xinjiang, China", "description": "<?xml version='1.0' encoding='UTF-8'?><article><p>Agricultural fields are essential in providing human beings with paramount food and other materials. Quick and accurate identification of agricultural fields from the remote sensing images is a crucial task in digital and precision agriculture. Deep learning methods have the advantages of fast and accurate image segmentation, especially for extracting the agricultural fields from remote sensing images. This paper proposed a deep neural network with a dual attention mechanism and a multi-scale feature fusion (Dual Attention and Scale Fusion Network, DASFNet) to extract the cropland from a GaoFen-2 (GF-2) image of 2017 in Alar, south Xinjiang, China. First, we constructed an agricultural field segmentation dataset from the GF-2 image. Next, seven evaluation indices were selected to assess the extraction accuracy, including the location shift, to reveal the spatial relationship and facilitate a better evaluation. Finally, we proposed DASFNet incorporating three ameliorated and novel deep learning modules with the dual attention mechanism and multi-scale feature fusion methods. The comparison of these modules indicated their effects and advantages. Compared with different segmentation convolutional neural networks, DASFNet achieved the best testing accuracy in extracting fields with an F1-score of 0.9017, an intersection over a union of 0.8932, a Kappa coefficient of 0.8869, and a location shift of 1.1752 pixels. Agricultural fields can be extracted automatedly and accurately using DASFNet, which reduces the manual record of the agricultural field information and is conducive to further farmland surveys, protection, and management.</p></article>", "keywords": ["2. Zero hunger", "agricultural field extraction", "GaoFen-2 (GF-2)", "agricultural field extraction; attention mechanism; deep learning; GaoFen-2 (GF-2); multi-scale feature fusion", "Science", "Q", "deep learning", "0401 agriculture", " forestry", " and fisheries", "04 agricultural and veterinary sciences", "attention mechanism", "multi-scale feature fusion"]}, "links": [{"href": "http://www.mdpi.com/2072-4292/14/9/2253/pdf"}, {"href": "https://doi.org/10.3390/rs14092253"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Remote%20Sensing", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.3390/rs14092253", "name": "item", "description": "10.3390/rs14092253", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.3390/rs14092253"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2022-05-07T00:00:00Z"}}, {"id": "10.3390/s20174794", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:21:04Z", "type": "Journal Article", "created": "2020-08-25", "title": "Energy Consumption Analysis of LPWAN Technologies and Lifetime Estimation for IoT Application", "description": "<p>The spectrum of Internet of Things (IoT) applications is exponentially growing, driving the demand for better energy performance metrics. In conjunction, Low Power Wide Area Networks (LPWAN) have evolved as long-range connectivity enabler with low management cost. The integration of LPWAN communication assists in reliable IoT operation with extended lifetime. Notable LPWAN technologies that contend for many of the IoT applications are LoRaWAN, DASH7, Sigfox, and NB-IoT. Most of the end-devices such as sensors and actuators are battery powered, therefore investigating energy consumption becomes crucial. To estimate the consumed power, it is important to analyze the energy consumption in wireless communication. This paper describes an empirical evaluation of energy consumption for LPWAN wireless technologies. We measure the current consumption of LoRaWAN, DASH7, Sigfox, and NB-IoT and derive the respective battery lifetime. These measurements help to quantify the energy performance of different protocols. We observe that LoRaWAN and DASH7 are more energy efficient when compared to Sigfox and NB-IoT. Finally, a case study on energy consumption is done on precision agriculture in the greenhouse, showing that battery lifetime in real applications can drop significantly from the ideal case. These results can be used for increasing the effectiveness of the IoT application by selecting the right technology and battery capacity.</p>", "keywords": ["Physics", "Chemical technology", "power consumption", "TP1-1185", "02 engineering and technology", "7. Clean energy", "Article", "LoRaWAN", "Chemistry", "LPWAN", "Sigfox", "NB-IoT", "DASH7", "0202 electrical engineering", " electronic engineering", " information engineering", "Engineering sciences. Technology", "energy efficiency"]}, "links": [{"href": "http://www.mdpi.com/1424-8220/20/17/4794/pdf"}, {"href": "https://www.mdpi.com/1424-8220/20/17/4794/pdf"}, {"href": "https://doi.org/10.3390/s20174794"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Sensors", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.3390/s20174794", "name": "item", "description": "10.3390/s20174794", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.3390/s20174794"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2020-08-25T00:00:00Z"}}, {"id": "10.5281/zenodo.5653389", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:23:19Z", "type": "Other", "title": "Fast on-site detection of Ochratoxin A by the graphene-based field-effect transistors", "description": "Open AccessOral contribution", "keywords": ["mycotoxin", " graphene", " GFET", " biosensor"], "contacts": [{"organization": "Jari\u0107, Stefan, Nekrasov, Nikita, Kireev, Dmitry, Akinwande, Deji, Bobrinetskiy, Ivan,", "roles": ["creator"]}]}, "links": [{"href": "https://doi.org/10.5281/zenodo.5653389"}, {"rel": "self", "type": "application/geo+json", "title": "10.5281/zenodo.5653389", "name": "item", "description": "10.5281/zenodo.5653389", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.5281/zenodo.5653389"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2021-11-03T00:00:00Z"}}, {"id": "10.5281/zenodo.5653390", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:23:19Z", "type": "Other", "title": "Fast on-site detection of Ochratoxin A by the graphene-based field-effect transistors", "description": "Open AccessOral contribution", "keywords": ["mycotoxin", " graphene", " GFET", " biosensor"], "contacts": [{"organization": "Jari\ufffd\ufffd, Stefan, Nekrasov, Nikita, Kireev, Dmitry, Akinwande, Deji, Bobrinetskiy, Ivan,", "roles": ["creator"]}]}, "links": [{"href": "https://doi.org/10.5281/zenodo.5653390"}, {"rel": "self", "type": "application/geo+json", "title": "10.5281/zenodo.5653390", "name": "item", "description": "10.5281/zenodo.5653390", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.5281/zenodo.5653390"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2021-11-03T00:00:00Z"}}, {"id": "10.5281/zenodo.8092644", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:23:36Z", "type": "Journal Article", "created": "2022-05-08", "title": "Extraction of Agricultural Fields via DASFNet with Dual Attention Mechanism and Multi-scale Feature Fusion in South Xinjiang, China", "description": "<?xml version='1.0' encoding='UTF-8'?><article><p>Agricultural fields are essential in providing human beings with paramount food and other materials. Quick and accurate identification of agricultural fields from the remote sensing images is a crucial task in digital and precision agriculture. Deep learning methods have the advantages of fast and accurate image segmentation, especially for extracting the agricultural fields from remote sensing images. This paper proposed a deep neural network with a dual attention mechanism and a multi-scale feature fusion (Dual Attention and Scale Fusion Network, DASFNet) to extract the cropland from a GaoFen-2 (GF-2) image of 2017 in Alar, south Xinjiang, China. First, we constructed an agricultural field segmentation dataset from the GF-2 image. Next, seven evaluation indices were selected to assess the extraction accuracy, including the location shift, to reveal the spatial relationship and facilitate a better evaluation. Finally, we proposed DASFNet incorporating three ameliorated and novel deep learning modules with the dual attention mechanism and multi-scale feature fusion methods. The comparison of these modules indicated their effects and advantages. Compared with different segmentation convolutional neural networks, DASFNet achieved the best testing accuracy in extracting fields with an F1-score of 0.9017, an intersection over a union of 0.8932, a Kappa coefficient of 0.8869, and a location shift of 1.1752 pixels. Agricultural fields can be extracted automatedly and accurately using DASFNet, which reduces the manual record of the agricultural field information and is conducive to further farmland surveys, protection, and management.</p></article>", "keywords": ["2. Zero hunger", "agricultural field extraction", "GaoFen-2 (GF-2)", "agricultural field extraction; attention mechanism; deep learning; GaoFen-2 (GF-2); multi-scale feature fusion", "Science", "Q", "deep learning", "0401 agriculture", " forestry", " and fisheries", "04 agricultural and veterinary sciences", "attention mechanism", "multi-scale feature fusion"]}, "links": [{"href": "http://www.mdpi.com/2072-4292/14/9/2253/pdf"}, {"href": "https://doi.org/10.5281/zenodo.8092644"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Remote%20Sensing", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.5281/zenodo.8092644", "name": "item", "description": "10.5281/zenodo.8092644", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.5281/zenodo.8092644"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2022-05-07T00:00:00Z"}}, {"id": "2164/22267", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:25:27Z", "type": "Journal Article", "created": "2023-10-09", "title": "Interactive effects of microbial functional diversity and carbon availability on decomposition \u2013 A theoretical exploration", "description": "<div><p>Microbial functional diversity in litter and soil has been hypothesized to affect the rate of decomposition of organic matter and other soil ecosystem functions. However, there are no clear theoretical expectations on how these effects might change with substrate availability, heterogeneity in the substrate chemistry, and different aspects of functional diversity itself (number of microbial groups vs. distribution of functional traits). To explore how these factors shape the decomposition-diversity relation, we carry out numerical experiments using a flexible reaction network comprising microbial processes and interactions with bioavailable carbon (extracellular degradation, uptake, respiration, growth, and mortality), and ecological processes (competition among the different groups). We also considered diverse carbon substrates, in terms of varying nominal oxidation state of carbon (NOSC). The reaction network was used to test the effects of (i) number of microbial groups, (ii) number of carbon pools, (iii) microbial functional diversity, and (iv) amount of bioavailable carbon. We found that the decomposition rate constant increases with increasing substrate concentration and heterogeneity, as well as with increasing microbial functional diversity or variance of microbial traits, albeit these biological factors are less important. The multivariate dependence of the decomposition rate constant (and other decomposition and microbial growth metrics) on substrate and microbial factors can be described using power laws with exponents lower than one, indicating that diversity effects on decomposition and microbial growth are reduced at high substrate concentration and heterogeneity, or at high microbial diversity.</p></div>", "keywords": ["Microbial model Organic matter decomposition Organic carbon oxidation state Decomposition kinetics Microbial diversity", "[SDE] Environmental Sciences", "2. Zero hunger", "Organic matter decomposition", "Supplementary Information", "GE", "Ecology", "330", "GF Human ecology. Anthropogeography", "15. Life on land", "ta4112", "GF", "6. Clean water", "12. Responsible consumption", "Ecological Modelling", "Decomposition kinetics", "13. Climate action", "Microbial functional trait", "Microbial diversity-function relation", "Microbial model", "GE Environmental Sciences", "Organic carbon oxidation state"]}, "links": [{"href": "https://doi.org/2164/22267"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Ecological%20Modelling", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "2164/22267", "name": "item", "description": "2164/22267", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/2164/22267"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2023-12-01T00:00:00Z"}}, {"id": "23a63bf5-f87c-4672-ad07-0cf61db42af6", "type": "Feature", "geometry": null, "properties": {"updated": "2021-09-23", "type": "Dataset", "title": "Skjellsand - observasjoner", "description": "Skjellsandobservasjoner er et punktdatasett med over 3000 pr\u00f8vepunkter, der skjellsand eller skjellgrus er p\u00e5vist i bunnsedimentene. Skjellsand og skjellgrus er definert som sedimenter med over 50% kalsiumkarbonatinnhold.", "formats": [{"name": "SHP"}], "keywords": ["agder-fylke", "biologisk-mangfold", "fellesdatakatalog", "finnmark", "fjord", "geologi", "geology", "habitats-and-biotopes", "havbunn", "kyst", "kyst-og-fiskeri", "marin", "mineral-resources", "m\u00f8re-og-romsdal-fylke", "national", "natur", "ngu", "no", "nordland-fylke", "norge", "norge-digitalt", "norskekysten", "pr\u00f8vetaking", "ressurs", "rogaland-fylke", "sea-regions", "sediment", "sedimentasjon", "skjellgrus", "skjellsand", "soil", "telemark", "troms", "tr\u00f8ndelag-fylke", "vestfold", "vestland-fylke"], "contacts": [{"organization": "https://register.geonorge.no/organisasjoner/norges-geologiske-unders\u00f8kelse/aave_lepland", "roles": ["publisher"]}]}, "links": [{"href": "https://kartkatalog.geonorge.no/Metadata/uuid/23a63bf5-f87c-4672-ad07-0cf61db42af6"}, {"href": "https://kartkatalog.geonorge.no/metadata/uuid/23a63bf5-f87c-4672-ad07-0cf61db42af6"}, {"href": "http://data.europa.eu/88u/dataset/23a63bf5-f87c-4672-ad07-0cf61db42af6"}, {"rel": "self", "type": "application/geo+json", "title": "23a63bf5-f87c-4672-ad07-0cf61db42af6", "name": "item", "description": "23a63bf5-f87c-4672-ad07-0cf61db42af6", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/23a63bf5-f87c-4672-ad07-0cf61db42af6"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"interval": ["2010-10-06T00:00:00Z", "2010-10-06T00:00:00Z"]}}, {"id": "2164/24787", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:25:27Z", "type": "Journal Article", "created": "2024-10-08", "title": "Land use effects on soil microbiome composition and traits with consequences for soil carbon cycling", "description": "Abstract                <p>The soil microbiome determines the fate of plant-fixed carbon. The shifts in soil properties caused by land use change leads to modifications in microbiome function, resulting in either loss or gain of soil organic carbon (SOC). Soil pH is the primary factor regulating microbiome characteristics leading to distinct pathways of microbial carbon cycling, but the underlying mechanisms remain understudied. Here, the taxa-trait relationships behind the variable fate of SOC were investigated using metaproteomics, metabarcoding, and a 13C-labeled litter decomposition experiment across two temperate sites with differing soil pH each with a paired land use intensity contrast. 13C incorporation into microbial biomass increased with land use intensification in low-pH soil but decreased in high-pH soil, with potential impact on carbon use efficiency in opposing directions. Reduction in biosynthesis traits was due to increased abundance of proteins linked to resource acquisition and stress tolerance. These trait trade-offs were underpinned by land use intensification-induced changes in dominant taxa with distinct traits. We observed divergent pH-controlled pathways of SOC cycling. In low-pH soil, land use intensification alleviates microbial abiotic stress resulting in increased biomass production but promotes decomposition and SOC loss. In contrast, in high-pH soil, land use intensification increases microbial physiological constraints and decreases biomass production, leading to reduced necromass build-up and SOC stabilization. We demonstrate how microbial biomass production and respiration dynamics and therefore carbon use efficiency can be decoupled from SOC highlighting the need for its careful consideration in managing SOC storage for soil health and climate change mitigation.</p", "keywords": ["soil health", "Supplementary Data", "QH301 Biology", "carbon use efficiency", "carbon cycling", "https://oup.silverchair-cdn.com/oup/backfile/Content_public/Journal/ismecommun/4/1/10.1093_ismeco_ycae116/1/otu_table_16s_table_s1_ycae116.xlsx?Expires=1737538557&Signature=3IutEpMaJIknJFjSbheOQYWpAwXt2atlN4YtPR7BTaTGf3jrf1M6yHgYzlnrttKlwpbFcwz-IqYq96oubC5FxfBQQyiIC0H-az-D~Bkstxc9XHkEmERELO~nurTlszmUndzm3jLsKF05x00PNsiNFlGKUhlsMB6wRmyO3v3GNBqHQVdswXZ3UAjfXvqqinyDLK54UCxfLk8eKpcfFnvVctxQ8Hrk3gP-eMFToKDlXgPD4MXGrdegvcZblx6g8FAvJruLIG1NWIRJ6wzx6HcmAYiZDJcGosKrdjMBIznM8YIJjBrfWwhGvjh15Z7MJnsUWn8PjxLjXfww29q-YfQnw__&Key-Pair-Id=APKAIE5G5CRDK6RD3PGA", "https://oup.silverchair-cdn.com/oup/backfile/Content_public/Journal/ismecommun/4/1/10.1093_ismeco_ycae116/1/otu_table_18s_table_s2_ycae116.xlsx?Expires=1737538557&Signature=ZVWC9BaJ2MOsxOOfzrmd-9nuLAy5yHOmeqJQmKHhQ1z7mXxXITIYAvM8BpVkEkQHB7Bo-6dNEm5FlC6eAuTroyq-dvMW3PD6MNP9SN5KgwSrKUeHM6IKNhzav6Q4zd48B95IPreN5UKQTTVPrphpdOxfdVKYKxD3qOMdWqmHXt-IAD~W80PJ0BjvpHXPQ0pYCmGInVv1Fe-L3k~OKo80rD0xtncnBCFRd8DVHTIY5JLjJr4-E~M3Gainkbz2AVLZwys3S6MMEboS8vKSj~rG34Z04ByT6dBjp0XDj2H9K7WjXlEqOoPIwUWUUfcVvn4N5wZ6R6YFZr9mk4qTZKdEow__&Key-Pair-Id=APKAIE5G5CRDK6RD3PGA", "004", "soil organic carbon", "QH301", "soil pH", "13C labelling", "land use intensity", "soil microbiome", "metabarcoding", "SDG 13 - Climate Action", "metaproteomics", "Original Article", "SDG 15 - Life on Land"]}, "links": [{"href": "https://doi.org/2164/24787"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/ISME%20Communications", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "2164/24787", "name": "item", "description": "2164/24787", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/2164/24787"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2024-01-01T00:00:00Z"}}, {"id": "2948108503", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:25:43Z", "type": "Journal Article", "created": "2019-06-06", "title": "Unassisted establishment of biological soil crusts on dryland road slopes", "description": "<?xml version='1.0' encoding='UTF-8'?><article><p>Abstract. Understanding patterns of habitat natural recovery after human-made disturbances is critical for the conservation of ecosystems under high environmental stress, such as drylands. In particular, the unassisted establishment of nonvascular plants such as biological soil crusts or biocrust communities (e.g., soil lichens, mosses and cyanobacteria) in newly formed habitats is not yet fully understood. However, the potential of biocrusts to improve soil structure and function at the early stages of succession and promote ecosystem recovery is enormous. In this study, we evaluated the capacity of lichen biocrusts to spontaneously establish and develop on road slopes in a Mediterranean shrubland. We also compared taxonomic and functional diversity of biocrusts between road slopes and natural habitats in the surroundings. Biocrust richness and cover, species composition, and functional structure were measured in 17 road slopes (nine roadcuts and eight embankments) along a 13\u2009km highway stretch. Topography, soil properties and vascular plant communities of road slopes were also characterized. We used Kruskal\u2013Wallis tests and applied redundancy analysis (RDA) to test the effect of environmental scenario (road slopes vs.\u00a0natural habitat) and other local factors on biocrust features. We found that biocrusts were common in road slopes after \u223c20\u00a0years of construction with no human assistance needed. However, species richness and cover were still lower than in natural remnants. Also, functional structure was quite similar between roadcuts (i.e., after soil excavation) and natural remnants, and topography and soil properties influenced species composition while environmental scenario type and vascular plant cover did not. These findings further support the idea of biocrusts as promising restoration tools in drylands and confirm the critical role of edaphic factors in biocrust establishment and development in land-use change scenarios.                     </p></article>", "keywords": ["0106 biological sciences", "QH301-705.5", "Physiology", "Science", "GC1-1581", "QH1-199.5", "Oceanography", "Microbiology", "01 natural sciences", "GF1-900", "QP1-981", "GE1-350", "Biology (General)", "QH540-549.5", "2. Zero hunger", "Ecology", "Q", "Botany", "General. Including nature conservation", " geographical distribution", "15. Life on land", "QR1-502", "Environmental sciences", "QL1-991", "13. Climate action", "Human ecology. Anthropogeography", "QK1-989", "QH1-278.5", "Natural history (General)", "Zoology"]}, "links": [{"href": "https://we.copernicus.org/articles/19/39/2019/we-19-39-2019.pdf"}, {"href": "https://doi.org/2948108503"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Web%20Ecology", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "2948108503", "name": "item", "description": "2948108503", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/2948108503"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2019-06-06T00:00:00Z"}}, {"id": "5d79c548-4e5a-48d6-83ab-296ba0d25791", "type": "Feature", "geometry": null, "properties": {"updated": "2025-09-15T00:00:00Z", "type": "Dataset", "language": "nl", "title": "Management instrument - Sensor", "description": "Map layer that displays the instruments and sensors created in DOV. Different sensor parameters can be measured (the most common are rising heights, temperature and soil moisture). The corresponding high-frequency measurement series are charged (automatically or not) in DOV.", "formats": [{"name": "KML"}], "keywords": ["be", "bodem", "databank-ondergrond-vlaanderen", "dov", "grondwater", "meetprogramma", "ondergrond", "sensoren-en-instrumenten-voor-de-opmetingen-van-hoogfrequente-metingen", "vlaanderen", "vmm"], "contacts": [{"organization": "Vlaamse overheid - Vlaamse MilieuMaatschappij", "roles": ["creator"]}, {"organization": "https://org.belgif.be/id/CbeEstablishmentUnit/2143719695", "roles": ["publisher"]}]}, "links": [{"href": "https://metadata.vlaanderen.be/srv/dut/catalog.search#/metadata/2164ec21-ed6c-43e0-916b-8434962fcfbe"}, {"href": "https://www.vlaanderen.be/DataCatalogRecord/2164ec21-ed6c-43e0-916b-8434962fcfbe"}, {"href": "http://data.europa.eu/88u/dataset/5d79c548-4e5a-48d6-83ab-296ba0d25791"}, {"rel": "self", "type": "application/geo+json", "title": "5d79c548-4e5a-48d6-83ab-296ba0d25791", "name": "item", "description": "5d79c548-4e5a-48d6-83ab-296ba0d25791", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/5d79c548-4e5a-48d6-83ab-296ba0d25791"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"null": "date"}}, {"id": "7520bfe1-d548-4ffb-bdd8-18cc534df855", "type": "Feature", "geometry": null, "properties": {"updated": "2024-09-25T14:47:06", "type": "Dataset", "language": "en", "title": "Tellus Geochemistry \u2014 topsoil", "description": "The latest topsoils data from the Tellus project, managed by the Geological Survey Ireland.  The topsoil (c.5\u201320 cm deep) samples were analysed for: Analytical Method: ICP(-OES/-MS) following aqua regia digestion; soil loss-on-ignition at 450\u00a0\u00b0C The survey was conducted on foot; samples were collected approx. every 4 sq km from. For more information please visit tellus.ie.  The following elements were analysed: Aluminium, Antimony, Arsenic, Barium, Beryllium, Bismuth, Cadmium, caesium, Calcium, Cerium, Chromium, Cobalt, Copper, Gallium, Germanium, Hafnium, indium, Iron, Lanthanum, Lead, Lithium, Loss-on-ignition, Lutetium, Magnesium, Manganese, Mercury, Molybdenum, Nickel, Niobium, pH, Phosphorus, Potassium, Rubidium, scandium, Selenium, Silver, Sodium, Strontium, Sulphur, Tantalum, Tellurium, Terbium, Thallium, Thorium, Tin, Titanium, Tungsten, Uranium, vanadium, Ytterbium, Yttrium, Zinc, Zinc, Zirconium (Al, B, Ba, Ca, Cr, Cu, Fe, K, Li, Mg, Mn, Na, Ni, P, S, S, Sr, Ti, V, Zn, Zr, Ag, Be, Be, Bi, Cd, Ce, Co, Cs, Ga, Ge, Hf, In, La, Lu, P, Mo, Mo, Pb, Rb, Sb, Sb, Sb, Sn, Sn, Tb, Te, Th, Tl, U, W, Yb) The current coverage includes:  Tellus Border survey block (2011-2013, Co Donegal, Sligo, Leitrim, Cavan, Monaghan, Louth)  Some elements have been merged with topsoil data from Northern Ireland conducted in the mid ninties and Noughties.", "formats": [{"name": "ESRI REST"}], "keywords": ["aintrim", "aluminium", "antimony", "aqua-regia", "aqua-regia-digestion", "armagh", "arsenic", "barium", "beryllium", "bismuth", "cadmium", "caesium", "calcium", "cavan", "cerium", "chemistry", "chromium", "cobalt", "copper", "derry", "donegal", "down", "dublin", "earth-science", "environment", "european-union", "fermanagh", "gallium", "galway", "geochemical", "geochemical-survey", "geochemistry", "geological", "geological-survey-ireland", "geology", "geoscientificinformation", "germanium", "hafnium", "icp-ms", "icp-oes", "icpms", "icpoes", "ie", "indium", "interreg", "ireland", "iron", "kildare", "lanthanum", "lead", "lietrim", "lithium", "lithology", "lithosphere", "londonderry", "longford", "loss-on-ignition", "louth", "lutetium", "magnesium", "manganese", "mayo", "meath", "mercury", "molybdenum", "monaghan", "nickel", "niobium", "offaly", "organics", "phosphorus", "potassium", "rocks", "roscommon", "rubidium", "scandium", "selenium", "silver", "sligo", "sodium", "soil", "soil-loss-on-ignition", "soil-ph", "strontium", "sulphur", "tantalum", "tellurium", "tellus", "tellus-border", "terbium", "thallium", "thorium", "tin", "titanium", "top-soil", "topsoil", "tungsten", "tyrone", "uranium", "vanadium", "westmeath", "wicklow", "ytterbium", "yttrium", "zinc", "zirconium"], "contacts": [{"organization": "https://data.gov.ie/organization/geological-survey-of-ireland", "roles": ["publisher"]}]}, "links": [{"href": "http://dcenr.maps.arcgis.com/apps/MapSeries/index.html?appid=6304e122b733498b99642707ff72f754"}, {"href": "https://gsi.geodata.gov.ie/server/rest/services/Geochemistry"}, {"href": "https://secure.dccae.gov.ie/GSI_DOWNLOAD/Tellus/PDFs/EBook_Topsoils_Final_03Feb2016.pdf"}, {"href": "https://www.gsi.ie/en-ie/data-and-maps/Pages/Geochemistry.aspx#DeeperTopsoilS"}, {"href": "https://www.gsi.ie/en-ie/data-and-maps/Pages/Geochemistry.aspx#ShallowTopsoilA"}, {"href": "https://www.gsi.ie/en-ie/programmes-and-projects/tellus/activities/ground-survey/Pages/default.aspx"}, {"href": "http://data.europa.eu/88u/dataset/7520bfe1-d548-4ffb-bdd8-18cc534df855"}, {"rel": "self", "type": "application/geo+json", "title": "7520bfe1-d548-4ffb-bdd8-18cc534df855", "name": "item", "description": "7520bfe1-d548-4ffb-bdd8-18cc534df855", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/7520bfe1-d548-4ffb-bdd8-18cc534df855"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"null": "date"}}, {"id": "PMC11510613", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:28:00Z", "type": "Journal Article", "created": "2024-10-17", "title": "Computational Multiscale Study of the Interaction Between the PDMS Polymer and Sunscreen-Related Pollutant Molecules", "description": "<?xml version='1.0' encoding='UTF-8'?><article><p>Sunscreen molecules play a critical role in protecting skin from ultraviolet radiation, yet their efficient detection and separation pose challenges in environmental and analytical contexts. In this work, we employ a multilevel modeling approach to investigate the molecular interactions between representative sunscreen molecules and the polydimethylsiloxane (PDMS) polymer, a material widely recognized for its sorbent properties. Our goal is to explore how these interactions can be fine-tuned to facilitate the effective separation of sunscreen molecules in portable membrane inlet mass spectrometry (MIMS) systems, potentially leading to the development of new membrane materials. Using a combination of advanced computational techniques\u2014force field molecular dynamics simulations, semiempirical GFN2-xTB, and density functional theory calculations\u2014we assess the interaction strength and noncovalent interactions of sunscreen molecules, namely oxybenzone, naphthalene, benzo[a]anthracene, avobenzone, and 1,3,5-trichlorobenzene, with PDMS. Additionally, the effect of temperature on the interaction dynamics is evaluated, with the aim of extending the sorbent capacities of PDMS beyond light polar molecules to larger, polar sunscreen compounds. This study provides critical insights into the molecular-level interactions that may guide the design of novel membrane materials for efficient molecular separation.</p></article>", "keywords": ["QD241-441", "membranes", "PDMS", "MD", "Organic chemistry", "GFN2-xTB", "MIMS", "DFT", "Article"]}, "links": [{"href": "https://www.mdpi.com/1420-3049/29/20/4908/pdf"}, {"href": "https://doi.org/PMC11510613"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Molecules", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "PMC11510613", "name": "item", "description": "PMC11510613", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/PMC11510613"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2024-10-17T00:00:00Z"}}, {"id": "349d23d8-558e-4f29-8eb2-9ca0580832a4", "type": "Feature", "geometry": null, "properties": {"updated": "2026-05-25T16:32:18Z", "type": "Dataset", "title": "Administrative Atlas \u2013 Bayer. State Ministry of Food, Agriculture, Forestry and Tourism \u2013 WMS", "description": "The service provides spatial information on the subject. Seat and competence of public institutions in the area of the Bavarian State Ministry of Food, Agriculture, Forestry and Tourism.", "formats": [{"name": "WMS_SRVC"}], "keywords": ["amt-fu\u0308r-erna\u0308hrung", "-landwirtschaft-und-forsten", "amt-fu\u0308r-la\u0308ndliche-entwicklung", "boden", "de", "erna\u0308hrung", "forst", "freistaat-bayern", "gdiby", "infomapaccessservice", "inspireidentifiziert", "laendlicheentwicklungflaeche", "laendlicheentwicklungstandort", "landesanstalt-fu\u0308r-landwirtschaft", "landesanstalt-fu\u0308r-wald-und-forstwirtschaft", "landesanstalt-fu\u0308r-weinbau-und-gartenbau", "landwirtschaft", "landwirtschaftsforstverwaltungflaeche", "landwirtschaftsforstverwaltungstandort", "la\u0308ndlicher-raum", "opendata", "staatsministerium-fu\u0308r-erna\u0308hrung", "-landwirtschaft", "-forsten-und-tourismus", "stmelft", "verwaltungsatlas", "wald"], "contacts": [{"organization": "Servicestelle Bayern Direkt", "roles": ["creator"]}]}, "links": [{"href": "https://gdiserv.bayern.de/srv1970/services/verwaltungsatlas_stmelf_view-wms"}, {"href": "http://data.europa.eu/88u/dataset/349d23d8-558e-4f29-8eb2-9ca0580832a4"}, {"href": "https://registry.gdi-de.org/id/de.by/5ef8709d-04a0-4efa-b1c9-93ef5ef3c3b0"}, {"rel": "self", "type": "application/geo+json", "title": "349d23d8-558e-4f29-8eb2-9ca0580832a4", "name": "item", "description": "349d23d8-558e-4f29-8eb2-9ca0580832a4", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/349d23d8-558e-4f29-8eb2-9ca0580832a4"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"null": "date"}}, {"id": "12fab437-ceba-42b8-b176-f06fcf8567f3", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[-5.52, 9.4], [-5.52, 15.08], [2.4, 15.08], [2.4, 9.4], [-5.52, 9.4]]]}, "properties": {"themes": [{"concepts": [{"id": "boundaries"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}], "updated": "2020-01-27T09:46:37", "language": "eng", "title": "Burkina Faso: Livelihoods zones for Agricultural Water Management", "description": "Livelihood zoning consists in identifying areas where rural people share relatively homogeneous living conditions, on the basis of a combination of biophysical and socio-economic determinants. The main criteria to establish livelihood zones are: the predominant source of income (livelihood activities); the natural resources available to people and the way they are used; and the prevailing agroclimatic conditions that influence farming activities. Patterns of livelihood vary from one area to another, based on local factors such as climate, soil or access to markets. The analysis delineates geographical areas within which people share similar livelihood patterns: source of living, access to food, farming practices, including crops, livestock and access to markets.\nThe map of livelihood zones is the main output from a participatory mapping workshop and forms the basis for the overall AWM assessment. It describes and geographically locates the different country livelihood contexts, focusing on the main smallholders\u2019 livelihood strategies, their water-related problems and other constraints\nfor development, and the role agricultural water management plays for their livelihoods. An attribute table provides a detailed description of each livelihood zone.", "formats": [{"name": "WWW:LINK-1.0-http--link"}, {"name": "WWW:DOWNLOAD-1.0-http--download"}], "keywords": ["BMGF-AWS", "water management", "Tag_AQUASTAT", "Tag_Water-Management", "Burkina Faso"], "contacts": [{"name": "Guido Santini", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "guido.santini@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}, {"name": "Jean-Marc Faur\u00e8s", "organization": "UN Food and Agriculture Organization", "position": "Senior Officer (Water Resources Management)", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "jeanmarc.faures@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}], "denominator": "1000000"}, "links": [{"href": "http://awm-solutions.iwmi.org/", "name": "awm-solutions website", "description": "Project website", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/12fab437-ceba-42b8-b176-f06fcf8567f3/resources/BFA_livelihoods.zip", "description": "Conatins: ESRI shp file,", "protocol": "WWW:DOWNLOAD-1.0-http--download", "rel": null}, {"href": "http://www.fao.org/nr/water/projects_agwatermanagement.html", "name": "Agricultural water management solutions project", "description": "Project page on FAO WATER website", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "http://www.fao.org/nr/water/docs/BFA_LZ_analysis.pdf", "name": "Link to PDF: BF Livelihoods Report", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/12fab437-ceba-42b8-b176-f06fcf8567f3/large_thumbnail/BF_map_livelihoodsLT.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "12fab437-ceba-42b8-b176-f06fcf8567f3", "name": "item", "description": "12fab437-ceba-42b8-b176-f06fcf8567f3", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/12fab437-ceba-42b8-b176-f06fcf8567f3"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2020-01-27T09:46:37Z"}}, {"id": "1874c9ac-d3a9-4c21-ad35-27c2e75049ff", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[68.14, 6.75], [68.14, 35.51], [97.38, 35.51], [97.38, 6.75], [68.14, 6.75]]]}, "properties": {"themes": [{"concepts": [{"id": "boundaries"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}], "updated": "2012-12-10T15:51:54", "language": "eng", "title": "Madhya Pradesh (India) - Livelihoods zones for Agricultural Water Management", "description": "Livelihood zoning consists in identifying areas where rural people share relatively homogeneous living conditions, on the basis of a combination of biophysical and socio-economic determinants. The main criteria to establish livelihood zones are: the predominant source of income (livelihood activities); the natural resources available to people and the way they are used; and the prevailing agroclimatic conditions that influence farming activities. Patterns of livelihood vary from one area to another, based on local factors such as climate, soil or access to markets. The analysis delineates geographical areas within which people share similar livelihood patterns: source of living, access to food, farming practices, including crops, livestock and access to markets.\nThe map of livelihood zones is the main output from a participatory mapping workshop and forms the basis for the overall AWM assessment. It describes and geographically locates the different country livelihood contexts, focusing on the main smallholders\u00e2\u0080\u0099 livelihood strategies, their water-related problems and other constraints\nfor development, and the role agricultural water management plays for their livelihoods. An attribute table provides a detailed description of each livelihood zone.", "formats": [{"name": "WWW:LINK-1.0-http--link"}, {"name": "WWW:DOWNLOAD-1.0-http--download"}], "keywords": ["BMGF-AWS", "water management", "Tag_AQUASTAT", "Tag_Water-Management", "Madhya Pradesh", "India"], "contacts": [{"name": "Guido Santini", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "guido.santini@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}, {"name": "Jean-Marc Faur\u00e8s", "organization": "UN Food and Agriculture Organization", "position": "Senior Officer (Water Resources Management)", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "jeanmarc.faures@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}], "denominator": "1000000"}, "links": [{"href": "http://awm-solutions.iwmi.org/", "name": "awm-solutions website", "description": "Project website", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/1874c9ac-d3a9-4c21-ad35-27c2e75049ff/resources/IMP_Livelihoods.zip", "description": "Contains: ESRI shp file", "protocol": "WWW:DOWNLOAD-1.0-http--download", "rel": null}, {"href": "http://www.fao.org/nr/water/projects_agwatermanagement.html", "name": "Agricultural water management solutions project", "description": "Project page on FAO WATER website", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "http://www.fao.org/nr/water/docs/MP_LZ_analysis.pdf", "name": "Link to PDF: Livelihoods zones Report", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "http://www.fao.org/nr/water/docs/MadhyaP.pdf", "name": "Link to PDF - Country Investment brief", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/1874c9ac-d3a9-4c21-ad35-27c2e75049ff/thumbnail/MP_livelihoods_ST.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/1874c9ac-d3a9-4c21-ad35-27c2e75049ff/large_thumbnail/MP_livelihoods_LT.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "1874c9ac-d3a9-4c21-ad35-27c2e75049ff", "name": "item", "description": "1874c9ac-d3a9-4c21-ad35-27c2e75049ff", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/1874c9ac-d3a9-4c21-ad35-27c2e75049ff"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2012-12-10T15:51:54Z"}}, {"id": "1b4b978d-5d5f-49d9-9c9b-fbf7738b926e", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[-12.24, 10.14], [-12.24, 25.0], [4.25, 25.0], [4.25, 10.14], [-12.24, 10.14]]]}, "properties": {"themes": [{"concepts": [{"id": "boundaries"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}], "updated": "2019-11-22T10:32:13", "language": "eng", "title": "Mali - Livelihoods zones AWM for poverty reduction", "description": "Livelihood zoning consists in identifying areas where rural people share relatively homogeneous living conditions, on the basis of a combination of biophysical and socio-economic determinants. The main criteria to establish livelihood zones are: the predominant source of income (livelihood activities); the natural resources available to people and the way they are used; and the prevailing agroclimatic conditions that influence farming activities. Patterns of livelihood vary from one area to another, based on local factors such as climate, soil or access to markets. The analysis delineates geographical areas within which people share similar livelihood patterns: source of living, access to food, farming practices, including crops, livestock and access to markets.\nThe map of livelihood zones is the main output from a participatory mapping workshop and forms the basis for the overall AWM assessment. It describes and geographically locates the different country livelihood contexts, focusing on the main smallholders\u00e2\u0080\u0099 livelihood strategies, their water-related problems and other constraints\nfor development, and the role agricultural water management plays for their livelihoods. An attribute table provides a detailed description of each livelihood zone.", "formats": [{"name": "WWW:DOWNLOAD-1.0-http--download"}], "keywords": ["BMGF-AWS", "water management", "Tag_AQUASTAT", "Tag_Water-Management", "Mali"], "contacts": [{"name": "Patricia Mej\u00edas Moreno", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "Patricia.MejiasMoreno@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}], "denominator": "1000000"}, "links": [{"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/1b4b978d-5d5f-49d9-9c9b-fbf7738b926e/resources/ML_LHZ.rar", "protocol": "WWW:DOWNLOAD-1.0-http--download", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/1b4b978d-5d5f-49d9-9c9b-fbf7738b926e/thumbnail/ZSR_conso_s.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/1b4b978d-5d5f-49d9-9c9b-fbf7738b926e/large_thumbnail/ZSR_conso.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "1b4b978d-5d5f-49d9-9c9b-fbf7738b926e", "name": "item", "description": "1b4b978d-5d5f-49d9-9c9b-fbf7738b926e", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/1b4b978d-5d5f-49d9-9c9b-fbf7738b926e"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2019-11-22T10:32:13Z"}}, {"id": "20b0a363-df92-402c-ac12-c14c89c5c366", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[43.24, -25.59], [43.24, -11.95], [50.5, -11.95], [50.5, -25.59], [43.24, -25.59]]]}, "properties": {"themes": [{"concepts": [{"id": "boundaries"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}], "updated": "2019-11-22T10:40:48", "language": "eng", "title": "MADAGASCAR - AGRICULTURAL WATER MANAGEMENT INVESTMENTS: SOIL AND WATER CONSERVATION", "description": "Biophysical suitability of soil conservation (agroecological practices) has been assessed on the basis of slope, population density and dry period.", "formats": [{"name": "WWW:DOWNLOAD-1.0-http--download"}], "keywords": ["BMGF-AWS", "water management", "AWM GEA", "Tag_AQUASTAT", "Tag_Water-Management", "Madagascar"], "contacts": [{"name": "Patricia Mej\u00edas Moreno", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "Patricia.MejiasMoreno@fao.org"}], "addresses": [{"deliveryPoint": ["Viale delle Terme di Caracalla"], "city": "Rome", "administrativeArea": null, "postalCode": "00149", "country": "Italy"}], "links": [{"href": null}]}], "denominator": "1000000"}, "links": [{"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/20b0a363-df92-402c-ac12-c14c89c5c366/resources/Mdg_SWC_result.rar", "protocol": "WWW:DOWNLOAD-1.0-http--download", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/20b0a363-df92-402c-ac12-c14c89c5c366/thumbnail/SWC_Result_s.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/20b0a363-df92-402c-ac12-c14c89c5c366/large_thumbnail/SWC_Result.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "20b0a363-df92-402c-ac12-c14c89c5c366", "name": "item", "description": "20b0a363-df92-402c-ac12-c14c89c5c366", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/20b0a363-df92-402c-ac12-c14c89c5c366"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2019-11-22T10:40:48Z"}}, {"id": "647308a1-5196-4096-a1c4-b461f757863f", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[43.24, -25.59], [43.24, -11.95], [50.5, -11.95], [50.5, -25.59], [43.24, -25.59]]]}, "properties": {"themes": [{"concepts": [{"id": "boundaries"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}], "updated": "2019-11-22T10:41:38", "language": "eng", "title": "Madagascar - Livelihoods zones AWM for poverty reduction", "description": "Livelihood zoning consists in identifying areas where rural people share relatively homogeneous living conditions, on the basis of a combination of biophysical and socio-economic determinants. The main criteria to establish livelihood zones are: the predominant source of income (livelihood activities); the natural resources available to people and the way they are used; and the prevailing agroclimatic conditions that influence farming activities. Patterns of livelihood vary from one area to another, based on local factors such as climate, soil or access to markets. The analysis delineates geographical areas within which people share similar livelihood patterns: source of living, access to food, farming practices, including crops, livestock and access to markets.\nThe map of livelihood zones is the main output from a participatory mapping workshop and forms the basis for the overall AWM assessment. It describes and geographically locates the different country livelihood contexts, focusing on the main smallholders\u00e2\u0080\u0099 livelihood strategies, their water-related problems and other constraints for development, and the role agricultural water management plays for their livelihoods. An attribute table provides a detailed description of each livelihood zone.", "formats": [{"name": "WWW:DOWNLOAD-1.0-http--download"}], "keywords": ["BMGF-AWS", "water management", "Tag_AQUASTAT", "Tag_Water-Management", "Madagascar"], "contacts": [{"name": "Patricia Mej\u00edas Moreno", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "Patricia.MejiasMoreno@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}], "denominator": "1000000"}, "links": [{"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/647308a1-5196-4096-a1c4-b461f757863f/resources/Mdg_LHZ.rar", "protocol": "WWW:DOWNLOAD-1.0-http--download", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/647308a1-5196-4096-a1c4-b461f757863f/thumbnail/MDG_LHZones_s.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/647308a1-5196-4096-a1c4-b461f757863f/large_thumbnail/MDG_LHZones.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "647308a1-5196-4096-a1c4-b461f757863f", "name": "item", "description": "647308a1-5196-4096-a1c4-b461f757863f", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/647308a1-5196-4096-a1c4-b461f757863f"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2019-11-22T10:41:38Z"}}, {"id": "69164682-e187-44e5-87da-04a46395554c", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[32.99, 3.41], [32.99, 14.88], [47.99, 14.88], [47.99, 3.41], [32.99, 3.41]]]}, "properties": {"themes": [{"concepts": [{"id": "boundaries"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}], "updated": "2019-11-22T10:34:31", "language": "eng", "title": "Ethiopia - Livelihoods zones for Agricultural Water Management", "description": "Livelihood zoning consists in identifying areas where rural people share relatively homogeneous living conditions, on the basis of a combination of biophysical and socio-economic determinants. The main criteria to establish livelihood zones are: the predominant source of income (livelihood activities); the natural resources available to people and the way they are used; and the prevailing agroclimatic conditions that influence farming activities. Patterns of livelihood vary from one area to another, based on local factors such as climate, soil or access to markets. The analysis delineates geographical areas within which people share similar livelihood patterns: source of living, access to food, farming practices, including crops, livestock and access to markets.\nThe map of livelihood zones is the main output from a participatory mapping workshop and forms the basis for the overall AWM assessment. It describes and geographically locates the different country livelihood contexts, focusing on the main smallholders\u00e2\u0080\u0099 livelihood strategies, their water-related problems and other constraints\nfor development, and the role agricultural water management plays for their livelihoods. An attribute table provides a detailed description of each livelihood zone.", "formats": [{"name": "WWW:LINK-1.0-http--link"}, {"name": "WWW:DOWNLOAD-1.0-http--download"}], "keywords": ["BMGF-AWS", "water management", "smallholders", "Tag_AQUASTAT", "Tag_Water-Management", "Ethiopia"], "contacts": [{"name": "Guido Santini", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "guido.santini@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}, {"name": "Jean-Marc Faur\u00e8s", "organization": "UN Food and Agriculture Organization", "position": "Senior Officer (Water Resources Management)", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "jeanmarc.faures@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}, {"name": "Livia Peiser", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": ["originator"], "phones": [{"value": null}], "emails": [{"value": "livia.peiser@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}, {"organization": "UN Food and Agriculture Organization", "roles": ["creator"]}], "denominator": "1000000"}, "links": [{"href": "http://awm-solutions.iwmi.org/", "name": "awm-solutions website", "description": "Project website", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/69164682-e187-44e5-87da-04a46395554c/resources/ETH_Livelihoods.zip", "description": "ESRI shp file and Livelihoods report", "protocol": "WWW:DOWNLOAD-1.0-http--download", "rel": null}, {"href": "http://www.fao.org/nr/water/projects_agwatermanagement.html", "name": "Agricultural water management solutions project", "description": "Project page on FAO WATER website", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "http://www.fao.org/nr/water/docs/Country_Investment_Brief_Ethiopia.pdf", "name": "Link to PDF - Ethiopia AWM Country Investment Brief", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/69164682-e187-44e5-87da-04a46395554c/thumbnail/ET_livelihoodST.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/69164682-e187-44e5-87da-04a46395554c/large_thumbnail/ET_livelihoodLT.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "69164682-e187-44e5-87da-04a46395554c", "name": "item", "description": "69164682-e187-44e5-87da-04a46395554c", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/69164682-e187-44e5-87da-04a46395554c"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2019-11-22T10:34:31Z"}}, {"id": "72b8edce-4737-4abb-b27c-5b54f8a5ffcf", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[-3.25, 4.73], [-3.25, 11.16], [1.2, 11.16], [1.2, 4.73], [-3.25, 4.73]]]}, "properties": {"themes": [{"concepts": [{"id": "boundaries"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}], "updated": "2022-07-05T08:19:22", "language": "eng", "title": "Ghana: Livelihoods zones for Agricultural Water Management", "description": "Livelihood zoning consists in identifying areas where rural people share relatively homogeneous living conditions, on the basis of a combination of biophysical and socio-economic determinants. The main criteria to establish livelihood zones are: the predominant source of income (livelihood activities); the natural resources available to people and the way they are used; and the prevailing agroclimatic conditions that influence farming activities. Patterns of livelihood vary from one area to another, based on local factors such as climate, soil or access to markets. The analysis delineates geographical areas within which people share similar livelihood patterns: source of living, access to food, farming practices, including crops, livestock and access to markets.\nThe map of livelihood zones is the main output from a participatory mapping workshop and forms the basis for the overall AWM assessment. It describes and geographically locates the different country livelihood contexts, focusing on the main smallholders\u00e2\u20ac\u2122 livelihood strategies, their water-related problems and other constraints\nfor development, and the role agricultural water management plays for their livelihoods. An attribute table provides a detailed description of each livelihood zone.", "formats": [{"name": "WWW:LINK-1.0-http--link"}, {"name": "WWW:DOWNLOAD-1.0-http--download"}], "keywords": ["BMGF-AWS", "water management", "smallholders", "Tag_AQUASTAT", "Tag_Water-Management", "Ghana", "West Africa"], "contacts": [{"name": "Guido Santini", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "guido.santini@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}, {"name": "Jean-Marc Faur\u00e8s", "organization": "UN Food and Agriculture Organization", "position": "Senior Officer (Water Resources Management)", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "jeanmarc.faures@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}], "denominator": "1000000"}, "links": [{"href": "http://awm-solutions.iwmi.org/", "name": "awm-solutions website", "description": "Project website", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/72b8edce-4737-4abb-b27c-5b54f8a5ffcf/resources/GHA_livelihoods.zip", "description": "Contains: ESRI shp file, livelihoods report", "protocol": "WWW:DOWNLOAD-1.0-http--download", "rel": null}, {"href": "http://www.fao.org/nr/water/projects_agwatermanagement.html", "name": "Agricultural water management solutions project", "description": "Project page on FAO WATER website", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/72b8edce-4737-4abb-b27c-5b54f8a5ffcf/thumbnail/GH_map_livelihoodsST.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/72b8edce-4737-4abb-b27c-5b54f8a5ffcf/large_thumbnail/GH_map_livelihoodsLT.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "72b8edce-4737-4abb-b27c-5b54f8a5ffcf", "name": "item", "description": "72b8edce-4737-4abb-b27c-5b54f8a5ffcf", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/72b8edce-4737-4abb-b27c-5b54f8a5ffcf"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2022-07-05T08:19:22Z"}}, {"id": "8e32e6ef-435d-431f-a038-21c8975ddd36", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[0.17, 11.69], [0.17, 23.52], [16.0, 23.52], [16.0, 11.69], [0.17, 11.69]]]}, "properties": {"themes": [{"concepts": [{"id": "boundaries"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}], "updated": "2019-11-22T10:36:19", "language": "eng", "title": "NIGER - Livelihoods zones AWM for poverty reduction", "description": "Livelihood zoning consists in identifying areas where rural people share relatively homogeneous living conditions, on the basis of a combination of biophysical and socio-economic determinants. The main criteria to establish livelihood zones are: the predominant source of income (livelihood activities); the natural resources available to people and the way they are used; and the prevailing agroclimatic conditions that influence farming activities. Patterns of livelihood vary from one area to another, based on local factors such as climate, soil or access to markets. The analysis delineates geographical areas within which people share similar livelihood patterns: source of living, access to food, farming practices, including crops, livestock and access to markets.\nThe map of livelihood zones is the main output from a participatory mapping workshop and forms the basis for the overall AWM assessment. It describes and geographically locates the different country livelihood contexts, focusing on the main smallholders\u00e2\u0080\u0099 livelihood strategies, their water-related problems and other constraints\nfor development, and the role agricultural water management plays for their livelihoods. An attribute table provides a detailed description of each livelihood zone.", "formats": [{"name": "WWW:DOWNLOAD-1.0-http--download"}], "keywords": ["BMGF-AWS", "water management", "Tag_AQUASTAT", "Tag_Water-Management", "Niger"], "contacts": [{"name": "Patricia Mej\u00edas Moreno", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "Patricia.MejiasMoreno@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}], "denominator": "1000000"}, "links": [{"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/8e32e6ef-435d-431f-a038-21c8975ddd36/resources/NI_LHZ.rar", "protocol": "WWW:DOWNLOAD-1.0-http--download", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/8e32e6ef-435d-431f-a038-21c8975ddd36/thumbnail/NI_LHZ_s.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/8e32e6ef-435d-431f-a038-21c8975ddd36/large_thumbnail/NI_LHZ.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "8e32e6ef-435d-431f-a038-21c8975ddd36", "name": "item", "description": "8e32e6ef-435d-431f-a038-21c8975ddd36", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/8e32e6ef-435d-431f-a038-21c8975ddd36"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2019-11-22T10:36:19Z"}}, {"id": "8b5f5eb4-2fe4-4192-b5ad-8a029d0ea69e", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[-12.24, 10.14], [-12.24, 25.0], [4.25, 25.0], [4.25, 10.14], [-12.24, 10.14]]]}, "properties": {"themes": [{"concepts": [{"id": "boundaries"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}], "updated": "2019-11-22T10:35:22", "language": "eng", "title": "Mali - Agriculture Water Management Investments: Soil and water conservation techniques Biophysical Suitability", "description": "Physical conservation for Soil and water conservation techniques has been assessed on the basis of slope, climate and land use. The SW conservation techniques assessed are: plantation holes, dune fixation and contour stone bunds. \nSlope: flat zones are considered as the most suitable for the implementation of these technologies. \nRainfall: Zones with moderate to high rainfall rates (from 250mm/year) are considered favorable. \nLand use: Using as input the Globecover land use grid, a boolean mask has been generated to concentrate the suitability evaluation only on agricultural lands.", "formats": [{"name": "WWW:DOWNLOAD-1.0-http--download"}], "keywords": ["BMGF-AWS", "water management", "Tag_AQUASTAT", "Tag_Water-Management", "Mali"], "contacts": [{"name": "Patricia Mej\u00edas Moreno", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "Patricia.MejiasMoreno@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}], "denominator": "1000000"}, "links": [{"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/8b5f5eb4-2fe4-4192-b5ad-8a029d0ea69e/resources/ML_AgrCons.rar", "protocol": "WWW:DOWNLOAD-1.0-http--download", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/8b5f5eb4-2fe4-4192-b5ad-8a029d0ea69e/thumbnail/ML_AgrCons_s.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/8b5f5eb4-2fe4-4192-b5ad-8a029d0ea69e/large_thumbnail/ML_AgrCons.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "8b5f5eb4-2fe4-4192-b5ad-8a029d0ea69e", "name": "item", "description": "8b5f5eb4-2fe4-4192-b5ad-8a029d0ea69e", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/8b5f5eb4-2fe4-4192-b5ad-8a029d0ea69e"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2019-11-22T10:35:22Z"}}, {"id": "a8f2bb7d-2054-46ab-b45d-a49bfb14e19b", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[43.24, -25.59], [43.24, -11.95], [50.5, -11.95], [50.5, -25.59], [43.24, -25.59]]]}, "properties": {"themes": [{"concepts": [{"id": "boundaries"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}], "updated": "2019-11-22T10:19:28", "language": "eng", "title": "MADAGASCAR - AGRICULTURAL WATER MANAGEMENT INVESTMENTS: DRIP IRRIGATION", "description": "Physical conservation for drip irrigation systems has been assessed on the basis of time to reach the markets, type of soil and distance to surface water. \n- Access to markets: Average time to reach the closest market ( less than 4 hours is considered as highly suitable)\n- Access to surface water: suitable zones are the ones within a distance of 1km or less\n-Presence of shallow groundwater: associated to the presence of gleysols", "formats": [{"name": "WWW:DOWNLOAD-1.0-http--download"}], "keywords": ["BMGF-AWS", "water management", "AWM GEA", "Tag_AQUASTAT", "Tag_Water-Management", "Madagascar"], "contacts": [{"name": "Patricia Mej\u00edas Moreno", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "Patricia.MejiasMoreno@fao.org"}], "addresses": [{"deliveryPoint": ["Viale delle Terme di Caracalla"], "city": "Rome", "administrativeArea": null, "postalCode": "00149", "country": "Italy"}], "links": [{"href": null}]}], "denominator": "1000000"}, "links": [{"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/a8f2bb7d-2054-46ab-b45d-a49bfb14e19b/resources/Mdg_Spump_gag_result.rar", "protocol": "WWW:DOWNLOAD-1.0-http--download", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/a8f2bb7d-2054-46ab-b45d-a49bfb14e19b/thumbnail/SP_GaG_Model_s.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/a8f2bb7d-2054-46ab-b45d-a49bfb14e19b/large_thumbnail/SP_GaG_Model.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "a8f2bb7d-2054-46ab-b45d-a49bfb14e19b", "name": "item", "description": "a8f2bb7d-2054-46ab-b45d-a49bfb14e19b", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/a8f2bb7d-2054-46ab-b45d-a49bfb14e19b"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2019-11-22T10:19:28Z"}}, {"id": "ab140262-ab28-4a2a-b9af-e486ed3159fd", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[43.24, -25.59], [43.24, -11.95], [50.5, -11.95], [50.5, -25.59], [43.24, -25.59]]]}, "properties": {"themes": [{"concepts": [{"id": "boundaries"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}], "updated": "2019-11-22T10:20:30", "language": "eng", "title": "Madagascar - Potential Beneficiaries AWM for poverty reduction", "description": "Livelihood zoning consists in identifying areas where rural people share relatively homogeneous living conditions, on the basis of a combination of biophysical and socio-economic determinants. The main criteria to establish livelihood zones are: the predominant source of income (livelihood activities); the natural resources available to people and the way they are used; and the prevailing agroclimatic conditions that influence farming activities. Patterns of livelihood vary from one area to another, based on local factors such as climate, soil or access to markets. The analysis delineates geographical areas within which people share similar livelihood patterns: source of living, access to food, farming practices, including crops, livestock and access to markets.\nThe map of livelihood zones is the main output from a participatory mapping workshop and forms the basis for the overall AWM assessment. It describes and geographically locates the different country livelihood contexts, focusing on the main smallholders\u00e2\u0080\u0099 livelihood strategies, their water-related problems and other constraints\nfor development, and the role agricultural water management plays for their livelihoods. An attribute table provides a detailed description of each livelihood zone.", "keywords": ["BMGF-AWS", "water management", "Tag_AQUASTAT", "Tag_Water-Management", "Madagascar"], "contacts": [{"name": "Patricia Mej\u00edas Moreno", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "Patricia.MejiasMoreno@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}], "denominator": "1000000"}, "links": [{"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/ab140262-ab28-4a2a-b9af-e486ed3159fd/large_thumbnail/BF_livelihoods_LT.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/ab140262-ab28-4a2a-b9af-e486ed3159fd/thumbnail/MDG_LHZones_s.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "ab140262-ab28-4a2a-b9af-e486ed3159fd", "name": "item", "description": "ab140262-ab28-4a2a-b9af-e486ed3159fd", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/ab140262-ab28-4a2a-b9af-e486ed3159fd"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2019-11-22T10:20:30Z"}}, {"id": "ae912f97-a6d7-4502-9fee-1ea3ec567a19", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[0.17, 11.69], [0.17, 23.52], [16.0, 23.52], [16.0, 11.69], [0.17, 11.69]]]}, "properties": {"themes": [{"concepts": [{"id": "boundaries"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}], "updated": "2019-11-22T10:33:17", "language": "eng", "title": "NIGER - Agriculture Water Management Investments: Soil and water conservation techniques Biophysical Suitability", "description": "Physical conservation for Soil and water conservation techniques has been assessed on the basis of slope, climate and land use. The SW conservation techniques assessed are: plantation holes, dune fixation and contour stone bunds.\nSlope: flat zones are considered as the most suitable for the implementation of these technologies.\nRainfall: Zones with moderate to high rainfall rates (from 250mm/year) are considered favorable.\nLand use: Using as input the Globecover land use grid, a boolean mask has been generated to concentrate the suitability evaluation only on agricultural lands.", "formats": [{"name": "WWW:DOWNLOAD-1.0-http--download"}], "keywords": ["BMGF-AWS", "water management", "Tag_AQUASTAT", "Tag_Water-Management", "Niger"], "contacts": [{"name": "Patricia Mej\u00edas Moreno", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "Patricia.MejiasMoreno@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}], "denominator": "1000000"}, "links": [{"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/ae912f97-a6d7-4502-9fee-1ea3ec567a19/resources/NI_SWC.rar", "protocol": "WWW:DOWNLOAD-1.0-http--download", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/ae912f97-a6d7-4502-9fee-1ea3ec567a19/thumbnail/NI_SWC_Result_s.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/ae912f97-a6d7-4502-9fee-1ea3ec567a19/large_thumbnail/NI_SWC_Result.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "ae912f97-a6d7-4502-9fee-1ea3ec567a19", "name": "item", "description": "ae912f97-a6d7-4502-9fee-1ea3ec567a19", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/ae912f97-a6d7-4502-9fee-1ea3ec567a19"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2019-11-22T10:33:17Z"}}, {"id": "dd942676-e95c-4c7c-9124-5d36492dddcc", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[68.14, 6.75], [68.14, 35.51], [97.38, 35.51], [97.38, 6.75], [68.14, 6.75]]]}, "properties": {"themes": [{"concepts": [{"id": "boundaries"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}], "updated": "2012-12-10T16:45:53", "language": "eng", "title": "West Bengal (India): Livelihoods zones for Agricultural Water Management", "description": "Livelihood zoning consists in identifying areas where rural people share relatively homogeneous living conditions, on the basis of a combination of biophysical and socio-economic determinants. The main criteria to establish livelihood zones are: the predominant source of income (livelihood activities); the natural resources available to people and the way they are used; and the prevailing agroclimatic conditions that influence farming activities. Patterns of livelihood vary from one area to another, based on local factors such as climate, soil or access to markets. The analysis delineates geographical areas within which people share similar livelihood patterns: source of living, access to food, farming practices, including crops, livestock and access to markets.\nThe map of livelihood zones is the main output from a participatory mapping workshop and forms the basis for the overall AWM assessment. It describes and geographically locates the different country livelihood contexts, focusing on the main smallholders\u00e2\u0080\u0099 livelihood strategies, their water-related problems and other constraints\nfor development, and the role agricultural water management plays for their livelihoods. An attribute table provides a detailed description of each livelihood zone.", "formats": [{"name": "WWW:LINK-1.0-http--link"}, {"name": "WWW:DOWNLOAD-1.0-http--download"}], "keywords": ["BMGF-AWS", "water management", "Tag_AQUASTAT", "Tag_Water-Management", "West Bengal", "India"], "contacts": [{"name": "Guido Santini", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "guido.santini@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}, {"name": "Jean-Marc Faur\u00e8s", "organization": "UN Food and Agriculture Organization", "position": "Senior Officer (Water Resources Management)", "roles": ["pointOfContact"], "phones": [{"value": null}], "emails": [{"value": "jeanmarc.faures@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}], "denominator": "1000000"}, "links": [{"href": "http://awm-solutions.iwmi.org/", "name": "awm-solutions website", "description": "Project website", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/dd942676-e95c-4c7c-9124-5d36492dddcc/resources/IWB_Livelihoods.zip", "description": "Download ESRI shp file", "protocol": "WWW:DOWNLOAD-1.0-http--download", "rel": null}, {"href": "http://www.fao.org/nr/water/projects_agwatermanagement.html", "name": "Agricultural water management solutions project", "description": "Project page on FAO WATER website", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "http://www.fao.org/nr/water/docs/WB_LZ_analysis.pdf", "name": "Link to PDF - Livelihoods zone report", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/dd942676-e95c-4c7c-9124-5d36492dddcc/thumbnail/WB_livelihoodmap_ST.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/dd942676-e95c-4c7c-9124-5d36492dddcc/large_thumbnail/WB_livelihoodmap_LT.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "dd942676-e95c-4c7c-9124-5d36492dddcc", "name": "item", "description": "dd942676-e95c-4c7c-9124-5d36492dddcc", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/dd942676-e95c-4c7c-9124-5d36492dddcc"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2012-12-10T16:45:53Z"}}, {"id": "e0dd6d5e-b203-4ef5-be64-e2b925a579d9", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[68.14, 6.75], [68.14, 35.51], [97.38, 35.51], [97.38, 6.75], [68.14, 6.75]]]}, "properties": {"themes": [{"concepts": [{"id": "boundaries"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}], "updated": "2012-12-10T16:09:47", "language": "eng", "title": "Madhya Pradesh (India): suitability domains for AWM intervention", "description": "This map shows areas suitable for the Agricultural Water Management interventions as identified by the project. The assessment is based primarily on each intervention's bio-physical requirements (such as: climate, proximity to water resources, terrain), but it also includes a qualitative rating based on socio-economic settings (namely distance to markets).", "formats": [{"name": "WWW:LINK-1.0-http--link"}, {"name": "WWW:DOWNLOAD-1.0-http--download"}], "keywords": ["\"BMGF-AWS\"", "water management", "soil and water conservation", "water harvesting", "field bunding", "Tag_AQUASTAT", "Tag_Water-Management", "Madhya Pradesh", "India"], "contacts": [{"name": "Guido Santini", "organization": "UN Food and Agriculture Organization", "position": "Technical Officer", "roles": [""], "phones": [{"value": null}], "emails": [{"value": "guido.santini@fao.org"}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}], "denominator": "500000"}, "links": [{"href": "http://awm-solutions.iwmi.org/", "name": "awm-solutions website", "description": "Project website", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/e0dd6d5e-b203-4ef5-be64-e2b925a579d9/resources/IMP_Suitability.zip", "description": "ESRI shp and mxd file", "protocol": "WWW:DOWNLOAD-1.0-http--download", "rel": null}, {"href": "http://www.fao.org/nr/water/projects_agwatermanagement.html", "name": "Project page on FAO Water website", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "http://www.fao.org/nr/water/docs/MadhyaP.pdf", "name": "Link to PDF - Investment brief", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/e0dd6d5e-b203-4ef5-be64-e2b925a579d9/thumbnail/MP_map_suitdomains_WHST.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"href": "https://storage.googleapis.com/fao-maps-catalog-data/uuid/e0dd6d5e-b203-4ef5-be64-e2b925a579d9/large_thumbnail/MP_map_suitdomains_WHLT.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "e0dd6d5e-b203-4ef5-be64-e2b925a579d9", "name": "item", "description": "e0dd6d5e-b203-4ef5-be64-e2b925a579d9", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/e0dd6d5e-b203-4ef5-be64-e2b925a579d9"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2012-12-10T16:09:47Z"}}, {"id": "27cfce4408f6f5a4dfc7106d1d78e053", "type": "Feature", "geometry": null, "properties": {"updated": "2025-03-20T14:21:15.669803Z", "type": "Dataset", "language": "en", "title": "Survey data for vascular plants in 240 plots inside and outside a 900 ha area with a deer exclusion fence in Nikko National Park, Japan", "description": "The data file contains 240 rows \u00d7 126 columns.  Forest stands and plot setup:  Study area:  24 forest stands identified (12 larch, 12 oak) in the southern portion of the fenced area. Replicate stands:  Each stand paired with a replicate within 300 m on opposite sides of the fence; stands without replicates within this distance were excluded. Plot establishment: Total plots: 10 circular plots per stand = in total 240 plots (120 inside, 120 outside the fence). Plot size:  Each plot covers 10 m\u00b2, centered on a larch or oak tree. Plot layout:  Plots were placed at least 10 m from other canopy trees (>30 cm DBH) to avoid influences from species other than larch and oak.  Data collection:  Dwarf bamboo:  Average height measured from five random points per plot. Understory vascular plants:  All species, including trees and shrubs <1.3 m tall, recorded. Species cover:  Measured using a modified Braun-Blanquet cover class system with seven cover categories.  Braun -Blanquet scaleCover range (%)Used in calculations (%) r <0.1 + 0.1 \u2013 1 1 1 \u2013 5 2 5 \u2013 25 3 25 \u2013 50  4 50 \u2013 75  5 75 \u2013 100 *For dwarf bamboo, which was very abundant, 100% cover was used for category 5. This did not affect the calculations.   Taxonomic groupings:  Grouped species:         Dwarf bamboos: Sasa spp. (S. kurilensis, S. nipponica, S. palmata, Sasamorpha borealis).         Graminoids: Carex, Juncus, Luzula, Poaceae.         Non-flowering specimens: Rosa, Rubus, Viola (excluding Viola tokubuchiana var. tokubuchiana which was registered separately).         Maple seedlings: Acer spp. (excluding A. rufinerve which was registered separately).         Birch seedlings: Betula (B. platyphylla var. japonica, B. ermanii).         Euonymus species: E. alatus, E. macropterus, E. sieboldianus (excluding vine E. fortunei).  Nomenclature:  Follows Wamei checklist version 1.10 (Yamanouchi 2022) https://gbif.jp/activities/checklist/wamei_checklist_110/", "keywords": ["arters-utbredning", "barrskogar", "bergsskog", "cervidae", "competitive-exclusion", "coniferous-forest", "coniferous-forests", "deer", "deer-moose", "forest-biodiversity", "forest-composition-vegetation-structure", "forest-conservation", "forest-cover", "forest-damage", "forest-dynamics", "forest-ecology", "forest-ecosystem", "forest-floor", "forest-inventory", "forest-protection", "forest-regeneration", "forest-restoration", "forest-structure", "forest-vegetation", "game-fences", "game-management", "habitats-and-biotopes", "hjortdjur", "japan", "ka\u0308rlva\u0308xter", "land-use", "lo\u0308vskogar", "mark", "markanva\u0308ndning", "montane-forest", "mountain-forest", "nature-conservation", "naturskydd", "naturtyper-och-biotoper", "oak-forest", "plant-species-composition", "protected-sites", "se", "skogens-biologiska-ma\u030angfald", "skogens-ekologi", "skogens-ekosystem", "skogsekologi", "skogsfo\u0308rsto\u0308relse", "skogsfo\u0308ryngring", "skogsskydd-(naturskydd)", "skogsskydd-(skogsbruk)", "skogsvegetation", "skyddade-omra\u030aden", "soil", "species-competition", "species-distribution", "species-diversity", "species-interactions", "temperate-broadleaf-and-mixed-forests", "temperate-coniferous-forest", "temperate-deciduous-forest", "temperate-forest", "tempererad-skog", "vascular-plant-species", "vascular-plant-species-abundance", "vascular-plant-species-coverage", "vascular-plants", "viltsta\u0308ngsel", "viltva\u030ard"], "contacts": [{"organization": "Unknown", "roles": ["creator"]}, {"organization": "http://dataportal.se/organisation/SE2021002817", "roles": ["publisher"]}]}, "links": [{"href": "http://data.europa.eu/88u/dataset/https-doi-org-10-5878-mxtb-y706"}, {"href": "https://doi.org/10.5878/mxtb-y706"}, {"href": "https-doi-org-10-5878-mxtb-y706"}, {"rel": "self", "type": "application/geo+json", "title": "27cfce4408f6f5a4dfc7106d1d78e053", "name": "item", "description": "27cfce4408f6f5a4dfc7106d1d78e053", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/27cfce4408f6f5a4dfc7106d1d78e053"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"null": "date"}}], "links": [{"rel": "self", "type": "application/geo+json", "title": "This document as GeoJSON", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items?keywords=GF&f=json", "hreflang": "en-US"}, {"rel": "alternate", "type": "text/html", "title": "This document as HTML", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items?keywords=GF&f=html", "hreflang": "en-US"}, {"rel": "collection", "type": "application/json", "title": "Collection URL", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main", "hreflang": "en-US"}, {"type": "application/geo+json", "rel": "first", "title": "items (first)", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items?keywords=GF&", "hreflang": "en-US"}, {"rel": "last", "type": "application/geo+json", "title": "items (last)", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items?keywords=GF&offset=34", "hreflang": "en-US"}], "numberMatched": 34, "numberReturned": 34, "distributedFeatures": [], "timeStamp": "2026-05-26T05:11:26.359628Z"}