Integrating Remote Sensing and in-situ observations of Biodiversity, towards a fully interoperable observation and data framework
Integrates satellite remote sensing with in-situ biodiversity observations into an interoperable data framework for ecosystem assessment and restoration planning.
Beskrivelse
Expected outcome
Project results are expected to contribute to all of the following expected outcomes: advancing robust, policy-relevant ecosystem assessment, nature protection and restoration planning activities, and biodiversity trend prediction based on fit for purpose data, thus supporting EU biodiversity and climate objectives; strengthened capacity of researchers, practitioners and decision-makers to improve biodiversity monitoring practices and address knowledge gaps via the integration of data and observations across sensors and platforms, ranging from omics-based data (genomic, transcriptomic, metabolomic), various in-situ to satellite-based Earth observation data; enhanced usability of in-situ datasets as training and validation resources for statistical, machine learning and advanced AI-based approaches, in support of applications such as habitat classification, ecosystem mapping and biodiversity trend prediction.
Scope
Achieving the goals of the EU biodiversity strategy for 2030 , the Kunming-Montreal Global Biodiversity Framework, and assessing progress towards their defined targets, requires coherent, integrated and long-term monitoring approaches, underpinned by FAIR (Findable, Accessible, Interoperable and Re-usable) data systems. Many existing in-situ data collections (i.e. genomic assessments, ground sampling, drone and airborne observations) were not designed with Satellite Remote Sensing integration in mind (i.e. for validation and calibration, integrated data products, or statistical scaling of information) and lack the structure, interface and metadata required to support advanced analytics, including AI. FAIR data on species and ecosystems will also help to ensure that biodiversity preservation is a mainstream feature of other sectors, such as agriculture, transport, energy or the bioeconomy. There is a need for systemic, harmonised or standardised biodiversity data at Earth’s surface in order to support AI applications ranging from genome to space and to build up our knowledge on the status and trends of habitats, species, ecosystems, and on the drivers of decline. To address these challenges, proposals should: develop and validate fit-for-purpose multisensory biodiversity data integration systems, to enable omics-based and in-situ data harmonization and integration with remote sensing data from space or sub-orbital platforms, as well as socio-ecological and climatic data for enhancing assessment of ecosystem condition and degradation, and the predictive modelling of biodiversity trends at international, regional and European scales; develop concrete technical capabilities able to answer to diverse use cases, across terrestrial, freshwater and marine ecosystems in Member States and Associated Countries. To this end, proposals should identify and prioritise critical biodiversity knowledge gaps and their data needs, with a focus on predictive analytics and the use of AI, and address them by designing data integration approaches that support scientific and policy needs, including biodiversity protection, restoration, and sustainable use goals and targets, as well as other related policy objectives; develop demonstration and verification cases focusing on specific ecosystems under the EU ecosystem typology and habitats, including ecotones , identified as those under pressure or as restoration priorities. Proposals should take into account socio-economic pressures and activities impacting ecosystems, including land and sea use and emissions of pollutants (e.g. agriculture, aquaculture, urbanization, resource exploitation and management practices).
What this means for cities and regions
Regional and local nature-conservation authorities and protected-area managers as users of the monitoring framework, alongside researchers. Topic budget €10 million; 2 grants expected; around €5 million per project. Opens 20 April 2027; closes 22 September 2027. Explicitly a space call: the topic exists to connect Satellite Remote Sensing with ground data, serving the Nature Restoration Regulation's monitoring duties.
Nøglefakta
Indsendelsesfrist
22 September 2027, 17:00 (Brussels time)
Offentliggjort
Åbner
Program
Overordnet opslag
Samlet bevilling
Pr. projekt
Forventede bevillinger
Medfinansieringsrate
Berettigelse
Berettigede lande
Berettigede NUTS-regioner
—Berettigede organisationstyper
Min. konsortiestørrelse
—Min. partnerlande
—Noter om berettigelse
Type of action for this topic
HORIZON Research and Innovation Actions (HORIZON Lump Sum Grant).
Who can apply
- Any legal entity (public body, private body, NGO, university, research organisation, SME, large company) established in an EU Member State (including Overseas Countries and Territories), or in a Horizon Europe Associated Country.
- The list of Horizon Europe Associated Countries is maintained on the EU Funding & Tenders Portal.
Consortium rule for this topic
Proposals must be submitted by a consortium of at least 3 independent legal entities, each established in a different EU Member State or Horizon Europe Associated Country, of which at least one must be established in an EU Member State.
Co-financing rate
- Research and Innovation Actions (RIA): 100% of eligible direct costs + 25% flat-rate indirect costs.
- Innovation Actions (IA): 70% of eligible direct costs (100% for non-profit legal entities) + 25% flat-rate indirect costs.
- Coordination and Support Actions (CSA): 100%.
The applicable Type of Action is indicated on the topic record in the Funding & Tenders Portal.
Restrictions and special cases
- Natural persons not eligible except sole traders.
- International organisations and the JRC are eligible.
- Other EU bodies cannot participate.
- Financial support to third parties is allowed where the topic explicitly provides for it.
EU restrictive measures (TEU Article 29 / TFEU Article 215) and EU conditionality measures (Regulation 2020/2092) apply. Currently this excludes Hungarian public-interest trusts established under Hungarian Act IX of 2021 (Council Implementing Decision (EU) 2022/2506).
Space data condition
If the project uses satellite-based Earth observation, positioning, navigation or related timing data and services, beneficiaries must make use of Copernicus and/or Galileo/EGNOS. Other data and services may be used in addition.
Klassifikation
Tematiske områder
Aktivitetstyper
Rumrelevans
Niveau A — rumværktøjer er et eksplicit krav i opslaget.
Rumtjenester
Kilder
HORIZON-CL6-2027-01-BIODIV-01
Indlæst 20. september 2026
Søskendeemner under dette opslag
Developing effective air quality planning strategies through innovative multi-scale modelling
Develops multi-scale air-quality models, from regional to street level, so public authorities can plan effective clean-air measures and targeted alerts.
Relaterede muligheder
Designing new ways of risk awareness and enhanced disaster preparedness
Designs new ways of risk awareness and enhanced disaster preparedness for communities and authorities.
Tools and processes to support stress tests of critical infrastructure
Develops tools and processes for virtual and physical stress tests of critical infrastructure against natural, accidental and malicious threats.
Security challenges of the green transition in urban and peri-urban areas
Addresses security challenges arising from the green transition in urban and peri-urban areas.