HORIZON-CL4-2025-03-DIGITAL-EMERGING-07

Robust and trustworthy GenerativeAI for Robotics and industrial automation (RIA) (AI/Data/Robotics & Made in Europe Partnerships) -

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Expected Outcome:

Proposals are expected to address one area of the expected outcomes, either Type A or Type B. The type should be clearly identified within the proposal.

Type A GenAI4EU[1]: Generative AI for Robotics for industrial automation. Project results are expected to contribute to all the following expected outcomes:

  • Development of advanced foundation models for robotics, fostering increased autonomy and generalization capabilities, thus enabling robots to dynamically learn and comprehend their physical surroundings in real-time, ensuring adaptability and reliability across diverse and complex scenarios.
  • Validation of the model through fine-tuning and downstream application to address industrial automation use-cases

Type B Trustworthy and robust generative AI for improved manufacturing. Project results are expected to further advance foundation models and reliable industrial solutions and to contribute to some of the following expected outcomes, depending on the use-cases addressed in the proposals:

  • Increased productivity by high quality, flexible and resource-efficient industrial automation, both on the shop floor and in engineering/business processes;
  • Significantly improved facilitation of product and process certification and compliance assessment, as well as reliability, efficiency and sustainability of manufacturing processes, supporting easier high-mix production and manufacturing of products based on sustainable and advanced technologies; and
  • Significantly facilitated installation, commissioning and decommissioning of production facilities, through tools that enable faster industrialisation of factory automation well beyond the pilot phase, while reducing the need for manual on-site interventions.
  • Applicants will justify their selection by the expected business dimension of their use cases, while ensuring a critical mass of resources in the project to ensure significant outcomes in these.

Scope:

Proposals integrating Generative AI in robotics and industrial automation are expected to substantially contribute to productivity gains, including for instance in engineering industries, the automotive sector, food production or other sectors related to manufacturing industries. All proposals will have to demonstrate their expected impact on the competitiveness of the selected application sector.

The budget will be split in a balanced way between area Type A and Type B defined below. Proposals should clearly identify the area they are addressing.

Proposals aiming for Type A outcomes should adhere to the Type A scope, while proposals aiming for Type B outcomes should follow the Type B scope.

Type A Scope: While it is widely acknowledged that current use of generative AI has the potential to impact certain tasks in robotics such as improving user interaction or providing explanations about why a robot system made a particular decision, these are, in general, not within the critical operating flow of a robot. To reach next level of autonomy, generative AI must also enable robots to learn from their experiences, simulate realistic environments for training in challenging conditions, and enhance planning, decision making and control while considering the physical constraints imposed both by the environment and by the physical construction of the robot. This includes integrating 'Human-in-the-loop' mechanisms, where AI systems collaborate with human operators to enhance decision-making processes and adaptability, particularly in dynamic environments.

This represents a significant advancement in robotics, requiring the development of AI models that can effectively navigate the complexities of the physical world while ensuring safety. Generative AI is expecting to bring such a step-change in robots precision, adaptability, versatility and robustness, enabling them to efficiently achieve real world tasks such as complex moves (navigation, manipulations, etc.) with higher level of autonomy and precision.

In the context of advancing robotics capabilities, the use of generative AI stands as a transformative force, amplifying robots’ learning, interaction, and operational abilities. By enabling robots to learn from experiences, simulate diverse environments for training, and enhance human-robot interaction, it drives adaptability and efficiency. Additionally, generative AI facilitates the augmentation of robot situational awareness and planning capabilities, empowering them to predict outcomes of various actions, thereby elevating their autonomy and decision-making prowess.

Training current generative AI models, in particular Large AI models, requires high volumes of data to achieve effective levels of performance. The vast amount of data required present a significant challenge when it comes to robotics. Further research is necessary to find the appropriate balance between the quality, adequacy, and volume of data with regards to the performance of the AI model. Moreover, model distillation techniques may play a key role for the portability of the generative AI solution at the edge, in power-limited devices. The training data should come from the real world or from physical aware simulations of the real world. Where relevant, in particular in the context of human interaction, training data should encompass diverse individual characteristics, such as gender, age, racial and ethnical background, to mitigate potential bias and discriminations.

Proposals should detail strategies to leverage cutting-edge generative AI techniques to enhance the adaptability and reliability of these models across complex and dynamic scenarios, as well as how to ensure human-centricity and environmental considerations. The goal is to train and fine-tune generative AI models that meet the necessary standards for ensuring the safe operation of robotics hardware. These models should empower robots to autonomously plan and execute actions while maintaining high levels of performance and generalization capabilities.

Research activities should explore the training methodologies for these foundation models, emphasizing their ability to process multimodal data and derive actionable insights to inform robotic decision-making processes.

The proposals are also expected to include the validation of the trained models through applications. Proposals should detail methodologies for conducting rigorous testing procedures, incorporating both simulation-based evaluations and physical experiments. These tests aim to evaluate the performance and scalability of developed foundation models.

The research will be driven by impactful scenarios defined by major manufacturing industry players who should be well integrated in the consortium. They should be deeply involved in the proposed work in order to provide the use-case, the corresponding data and they will play an important role to accompany the validation process. They will define a number of representative real-world use-cases with gradually increased level of complexity to drive the technology development. They will provide existing relevant data and collect further data necessary to train and fine-tune the models, but also to validate the solutions. Given the sensitivity of sharing industrial data, manufacturers present in the consortium have to define upfront mechanisms to collectively provide and pool a sufficiently large dataset for training the models (this might involve a trusted third party as intermediary), ensuring sufficient quality and quantity of data needed to train the models. If necessary, they will have to put in place mechanisms to acquire data from sources outside the consortium.

Proposals are expected to enhance the accuracy and robustness of generative AI systems in robotics, ensuring that the solutions developed are trustworthy and reliable in their applications, hence in line with the AI Act requirements.

Proposals should address both the safety of robotic operations, ensuring protection against physical risks, and cybersecurity measures to safeguard against digital threats and ensure system integrity.

The emphasis lies in creating and disseminating general-purpose models and tools rather than being limited to narrowly focused solutions. Projects should also build on or seek collaboration with existing and upcoming projects and develop synergies and ensure complementarities with other relevant European (e.g. projects funded under HORIZON-CL4-2024-HUMAN-03-01: Advancing Large AI Models: Integration of New Data Modalities and Expansion of Capabilities), national or regional initiatives, funding programmes and platforms.

Type B Scope:

The objective is to enhance productivity and provide a competitive advantage to EU industry in the transition towards more sustainable, zero-carbon production, addressing the uncertainties and tensions on supply chains and the lack of highly-skilled workers. A new generation of digital technologies will integrate generative Artificial Intelligence, robotics, and advanced human interfaces in industry-grade applications with a high degree of autonomy. This will enable the development, production, and operation of complex and advanced high-tech products at lower cost while improving sustainability and flexibility, ultimately becoming a powerful tool for accelerating innovation in both processes and products.

The manufacturing sector should strongly benefit from increased levels of automation made possible by breakthroughs provided by AI, in particular by the family of technologies know as generative AI, including (e.g.) AI foundation models, large language models, transformers, multimodal generative AI. The main objective of this Type B is the development of Generative AI solutions dedicated to the manufacturing sector and making use of manufacturing data available in production lines.

Proposals should address at least one of the following use-cases:

1) Robustness and trustworthiness of digital technologies and data management at industry-grade quality, to raise the automation levels on production sites and across industry and supply chains;

2) Enhanced product and process qualification/certification and compliance assessment through higher levels of automation, digitalisation and data management, taking into account related requirements;

3) Automation of manufacturing processes to achieve higher reliability, efficiency and sustainability;

4) Automated tools for fast and large-scale deployment and reconfiguration of production assets and for rapid innovation cycles.

Proposals should accomplish these objectives exploiting the most suitable approach(es) among the ones described below:

  • The integration of applications exhibiting advanced developments of generative AI model(s) specifically designed for manufacturing, providing measurable advantages in one of more of these key areas: manufacturing cost, increased productivity, quality, flexibility, resilience, sustainability, circularity, time to market and usability. Applications can target factory-floor operations and/or management of data, knowledge and documentation associated to products and production (for use-case 1 or 2);
  • Development and integration of digital production systems capable of significantly increasing productivity and managing high-mix production with close to zero time needed for re-purposing and capability to manage different mixes of materials and components (for use-case 3);
  • Development of deployment tools to automate the management of production lines, namely through automatic configuration, integration with legacy systems, placement of data translators and connectors, and deployment of machines and sensors on the shop floor (for use-case 4).

Proposals should indicate which approach they are targeting. Proposals may combine several approaches above, indicating which is the main approach, provided there is added value in such a combined approach; arbitrary combinations without integration are excluded.

The use of generative AI techniques is encouraged for all the approaches. The applicants will specifically describe how they will secure the acquisition of quality manufacturing data from real-world industrial use cases of industry partners or companies outside the consortium in the context of the data volume necessary to train and finetune the models used in the proposal.

Type A and Type B

For both Type A and Type B projects, proposal should allocate up to EUR 30 million towards the development of the foundation model. Each project is anticipated to focus on up to six use cases.

A minimum of EUR 10 million of the proposal budget must be allocated via FSTP for the fine-tuning phase. This phase aims to create Generative AI applications tailored to impactful industry-driven use cases.

  • FSTP may be foreseen for up to EUR 2 million per use case, either for a single company (including SME/Start-up), user industry providing their data and use-case, or to a small consortium complementing such user industry company with one or two additional partners, such as AI developer/integrator. Such FSTP initiatives will develop mini-projects, working in close collaboration with the consortium partners, that will dedicate sufficient resources to support such FSTP projects, in order to develop advanced applications and demonstrate with quantitative KPIs the power of Generative AI solutions. These mini-projects will include data preparation, fine-tuning, validation of the Generative AI solution in the selected impactful use-cases.

Proposed projects should aim to develop models that align with European values and principles and regulation, including the AI Act. Research should build on existing standards or contribute to standardisation, particularly addressing the needs and requirements of the industry.

Where relevant, interoperability for data sharing should be addressed, focusing on open specifications and standards, enabling effective cross-domain data communities, and new data-driven markets.

If high computing resources are necessary, for both Type A and Type B proposals the primary source of computing resources for pretraining should be sought from external high-performance computing facilities such as EuroHPC or National centres. The proposal should describe convincingly the strategy to access these computing resources.

When possible, proposals should build on and reuse public results from relevant previous funded actions. Additionally, proposals should leverage the tools available for the AI and robotics community on the AI on demand platform. Communicable results should be shared with the European R&D community through the AI-on-demand platform, and if necessary, other relevant digital resource platforms to bolster the European AI, Data, and Robotics ecosystem by disseminating results and best practices.

This topic implements the co-programmed European Partnerships on AI, Data, and Robotic (ADRA) and Made in Europe and all proposals are expected to allocate tasks for cohesion activities with ADRA and the CSA HORIZON-CL4-2025-03-HUMAN-18: GenAI4EU central Hub.

Proposals should also build on or seek collaboration with existing projects and develop synergies with other relevant International, European, national or regional initiatives.

null

Activities are expected to start at TRL 2 and achieve TRL 6 by the end of the project – see General Annex B

[1] GenAI4EU is an initiative launched in the context of the AI innovation package, fostering the development of innovative Generative AI solutions to support the competitiveness of Europe’s strategic sectors and industries: https://digital-strategy.ec.europa.eu/en/news/commission-launches-ai-innovation-package-support-artificial-intelligence-startups-and-smes

News flashes

2026-10-09

EVALUATION results

Published: 15.05.2025

Deadline: 02.10.2025

Available budget: EUR 359.1 million

The results of the evaluation for each topic are as follows:

DATA-08

DATA-09

DATA-10

DATA-11

DATA-12

DATA-13

Number of proposals submitted (including proposals transferred from or to other calls)

18

3

1

4

3

76

Number of inadmissible proposals

0

0

0

0

0

3

Number of ineligible proposals

14

1

0

0

0

13

Number of above-threshold proposals

3

2

1

3

3

38

Total budget requested for above-threshold proposals

225,328,342.50 €

4,997,875.00 €

2,500,000.00 €

29,995,930.85 €

5,838,061.00 €               

310,159,620.22 €

Number of proposals retained for funding

1

1

1

1

1

5

Number of proposals in the reserve list

1

1

0

1

1

1

Funding threshold1

14.5

14.5

11.5

14

12

13.5

Ranking distribution

Number of proposals with scores lower or equal to 15 and higher or equal to 14

1

1

0

1

1

2

Number of proposals with scores lower than 14 and higher or equal to 13

1

1

0

1

1

6

Number of proposals with scores lower than 13 and higher or equal to 10

1

0

1

1

1

30

DIGITAL-EMERGING-01

DIGITAL-EMERGING-02

DIGITAL-EMERGING-03

DIGITAL-EMERGING-04

DIGITAL-EMERGING-07

DIGITAL-EMERGING-08

Number of proposals submitted (including proposals transferred from or to other calls)

4

18

40

4

28

2

Number of inadmissible proposals

1

0

1

0

1

0

Number of ineligible proposals

0

0

0

4

0

1

Number of above-threshold proposals

3

12

30

1

20

1

Total budget requested for above-threshold proposals

13,486,849.50 €

59,729,108.00 €

80,814,339.75 €

2,498,857.25 €

804,393,845.50 €

1,000,000.00 €

Number of proposals retained for funding

1

2

3

1

2

1

Number of proposals in the reserve list

1

1

2

0

2

0

Funding threshold1

13.5

14.5

14.5

13.5

15

14

Ranking distribution

Number of proposals with scores lower or equal to 15 and higher or equal to 14

0

6

6

0

5

1

Number of proposals with scores lower than 14 and higher or equal to 13

1

3

11

1

2

0

Number of proposals with scores lower than 13 and higher or equal to 10

2

3

13

0

13

0

HUMAN-14

HUMAN-15

HUMAN-16

HUMAN-17

HUMAN-18

HUMAN-19

Number of proposals submitted (including proposals transferred from or to other calls)

59

46

34

3

4

6

Number of inadmissible proposals

0

0

0

1

0

1

Number of ineligible proposals

0

1

2

0

0

0

Number of above-threshold proposals

44

35

27

1

1

2

Total budget requested for above-threshold proposals

256,818,668.15 €

169,733,280.30 €

78,286,154.25 €

2,546,117.50 €

2,998,504.92 €

5,999,006.25 €

Number of proposals retained for funding

8

4

4

1

1

1

Number of proposals in the reserve list

3

4

3

0

0

1

Funding threshold1,2

14.5

14

13.5

12.5

13.5

15

Ranking distribution

Number of proposals with scores lower or equal to 15 and higher or equal to 14

12

5

3

0

0

1

Number of proposals with scores lower than 14 and higher or equal to 13

6

5

7

0

1

1

Number of proposals with scores lower than 13 and higher or equal to 10

26

25

17

1

0

0

MATERIALS-46

MATERIALS-47

Number of proposals submitted (including proposals transferred from or to other calls)

17

70

Number of inadmissible proposals

0

0

Number of ineligible proposals

0

0

Number of above-threshold proposals

9

58

Total budget requested for above-threshold proposals

44,109,108.00 €

283,995,317.95 €

Number of proposals retained for funding

2

3

Number of proposals in the reserve list

1

1

Funding threshold1

14.5

14

Ranking distribution

Number of proposals with scores lower or equal to 15 and higher or equal to 14

2

4

Number of proposals with scores lower than 14 and higher or equal to 13

1

14

Number of proposals with scores lower than 13 and higher or equal to 10

6

40

1 Proposals with the same score were ranked according to the priority order procedure set out in the call conditions (for HE, in the General Annexes to the Work Programme or specific arrangements in the specific call/topic conditions). To determine the ranking for ‘Innovation actions’, the score for ‘Impact’ is given a weight of 1.5.

2 According to the specific conditions of HUMAN-14 and HUMAN-16, to ensure a balanced portfolio coverage, grants are awarded to not only in order of ranking [see the specific condition for each topic in the topic page]. Therefore, additional proposals are retained for funding to fulfil this condition.

Summary of observer report:

The efficiency of the procedures in this call is very good. The tools such as IER, CR, ESR and cross- reading are well suited and the usability is very effective. Harmonisation and calibration procedures are excellent. This is thanks to the superior performance of the moderators and co-moderators in panel meetings with sometimes more than 40 experts under nightmarish conditions of unstable meeting connections, failing in access and interoperability of SEP and WebEx platform. Overall, the evaluation was fair and consistent, with full compliance with the applicable rules.

We recently informed the applicants about the evaluation results for their proposals.

For questions, please contact the Research Enquiry Service.

2026-10-09

PROPOSAL NUMBERS

Call HORIZON-CL4-2025-03 has closed on 02.10.2025.

440 proposals have been submitted.

The breakdown per topic is:

HORIZON-CL4-2025-03-DATA-08:        18

HORIZON-CL4-2025-03-DATA-09:        3

HORIZON-CL4-2025-03-DATA-10:        1

HORIZON-CL4-2025-03-DATA-11:        4

HORIZON-CL4-2025-03-DATA-12:        3

HORIZON-CL4-2025-03-DATA-13:        76

HORIZON-CL4-2025-03-DIGITAL-EMERGING-01:        4

HORIZON-CL4-2025-03-DIGITAL-EMERGING-02:        18

HORIZON-CL4-2025-03-DIGITAL-EMERGING-03:        40

HORIZON-CL4-2025-03-DIGITAL-EMERGING-04:        4

HORIZON-CL4-2025-03-DIGITAL-EMERGING-07:        28

HORIZON-CL4-2025-03-DIGITAL-EMERGING-08:        2

HORIZON-CL4-2025-03-HUMAN-14:    59

HORIZON-CL4-2025-03-HUMAN-15:    46

HORIZON-CL4-2025-03-HUMAN-16:    34

HORIZON-CL4-2025-03-HUMAN-17:    3

HORIZON-CL4-2025-03-HUMAN-18:    4

HORIZON-CL4-2025-03-HUMAN-19:    6

HORIZON-CL4-2025-03-MATERIALS-46:          17

HORIZON-CL4-2025-03-MATERIALS-47:          70

Evaluation results are expected to be communicated in January 2026.

2026-10-09

Please note that due to a technical issue, during the first days of publication of this call, the topic page did not display the description of the corresponding destination. This problem is now solved.

In addition to the information published in the topic page, you can always find a full description of the Destination 4 ("Achieving open strategic autonomy in digital and emerging enabling technologies") that are relevant for the call in the Work Programme 2025 part for "Digital, Industry and Space". Please select from the work programme the destination relevant to your topic and take into account the description and expected impacts of that destination for the preparation of your proposal.

2026-10-09
The submission session is now available for: HORIZON-CL4-2025-03-DIGITAL-EMERGING-02, HORIZON-CL4-2025-03-HUMAN-14, HORIZON-CL4-2025-03-HUMAN-16, HORIZON-CL4-2025-03-DATA-09, HORIZON-CL4-2025-03-DIGITAL-EMERGING-03, HORIZON-CL4-2025-03-MATERIALS-47, HORIZON-CL4-2025-03-DIGITAL-EMERGING-01, HORIZON-CL4-2025-03-DIGITAL-EMERGING-07, HORIZON-CL4-2025-03-DATA-08, HORIZON-CL4-2025-03-HUMAN-19, HORIZON-CL4-2025-03-DIGITAL-EMERGING-08, HORIZON-CL4-2025-03-DATA-12, HORIZON-CL4-2025-03-DATA-13, HORIZON-CL4-2025-03-HUMAN-18, HORIZON-CL4-2025-03-HUMAN-15, HORIZON-CL4-2025-03-DATA-10, HORIZON-CL4-2025-03-DIGITAL-EMERGING-04, HORIZON-CL4-2025-03-DIGITAL-EMERGING-09, HORIZON-CL4-2025-03-DATA-11, HORIZON-CL4-2025-03-MATERIALS-46, HORIZON-CL4-2025-03-HUMAN-17
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call topic details
Call status: Closed
Opening date: 2025-06-10 (1 year ago)
Closing date: 2025-10-02 (1 year ago)
Procedure: single-stage

Budget: 85,000,000
Expected grants: 2
Contribution: 40,000,000 - 45,000,000
News flashes

This call topic has been appended 4 times by the EC with news.

  • 2026-10-09
    evaluation resultspublished: 15.05.2025d...
  • 2026-10-09
    proposal numberscall horizon-cl4-2025-03...
  • 2026-10-09
    please note that due to a technical issu...
  • 2026-10-09
    the submission session is now available...
Source information

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  • 2026-02-18_06-34-47
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  • 2025-07-02_03-30-38
  • 2025-06-12_03-30-21
  • 2025-06-10_03-30-11
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Work Programme info
Added 1 year ago by Alrun Hauke
Eligibility for this topic is restricted under art. 22.5 and art. 22.6 of the Horizon Europe regulation (see [1]). Specifically, under art. 22.5, participation for projects under this call topic is restricted to legal entities established in EU member states, Iceland, Norway, Canada, Israel, the Republic of Korea, New Zealand, Switzerland and the United Kingdom. Under art. 22.6, any entities considered high-risk suppliers of mobile network communication equipment are expressly excluded from participating. This currently concerns companies Huawei and ZTE (see [2]) as well as any entities fully or partially owned / controlled by them. As part of the proposal submission for this topic, consortium members have to fill in the ownership control declaration (see pages 1-4 in [3] below). The coordinator has to collect these forms from all partners and submit them as a single appendix to the proposal. The ownership control declarations are examined by the EC as part of the evaluation process. If it is found that a consortium partner is established in one of the eligible countries listed above, but controlled by an entity established in a non-eligible third country, the partner in question will be asked to provide a guarantee (see pages 5-8 of [3] below) during grant agreement preparation which ensures that the EU's strategic interests are protected. The European Commission (EC) will examine this guarantee and - if approved - will forward it to the government of the eligible country of establishment of the partner for national approval. The partner in question may participate in the project only if both the EC and the respective national authority approve the guarantee. If either or both of these bodies do not approve the guarantee, the partner in question will be removed from the consortium during grant agreement preparation. [1] https://eur-lex.europa.eu/eli/reg/2021/695/oj/eng [2] https://digital-strategy.ec.europa.eu/en/library/communication-commission-implementation-5g-cybersecurity-toolbox [3] https://ec.europa.eu/info/funding-tenders/opportunities/docs/2021-2027/common/temp-form/af/ownership-control-declaration_en.docx

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Timeline

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Grant agreement signed · 02 Jun 2026 (4 months ago)

All expected milestones for this call have passed.

Today

Work programme published

10 Apr 2025 · est.

Call published

16 May 2025

Call opens

10 Jun 2025

Call closes

02 Oct 2025

Outcome expected

02 Mar 2026 · est.

Grant agreement signed

02 Jun 2026 · est.

Preparation Open for submission Evaluation Grant preparation Not yet reached
  1. Work programme published Estimated

    10 Apr 2025 · 1 year ago

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  2. Call published

    16 May 2025 · 1 year ago

    This topic was first published in TopicTree.

  3. Call opens

    10 Jun 2025 · 1 year ago

    Submissions can be made from this date.

  4. Call closes

    02 Oct 2025 · 1 year ago

    Deadline to submit a proposal.

  5. Outcome expected Estimated

    02 Mar 2026 · 7 months ago

    The maximum time to inform applicants of the evaluation outcome is five months after the call closes.

  6. Grant agreement signed Estimated

    02 Jun 2026 · 4 months ago

    The maximum time to sign the grant agreement is three months after applicants are informed of the outcome.

Funded Projects

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Project information comes from CORDIS (for Horizon 2020 and Horizon Europe) and will be sourced from F&T Portal (for Digital Europe projects)

Call document info

This section will come soon and contain the scraped information from the call document, such as the expected impact, scope, and other relevant sections. In the meantime, you can find this information in the call text section or directly on the F&T portal. View on F&T portal