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HORIZON-CL4-2024-HUMAN-03-01
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No motivation recorded.
Center graph on this topic →Both topics cover a strong AI aspect, which can boost competitiveness for EU organizations.
Potential for building on one another's results
Proposals under HORIZON-CL4-2024-HUMAN-03-01 are expected to dedicate tasks and resources to collaborate with and provide input to the open innovation challenge under HORIZON-CL4-2023-HUMAN-01-04.
DIGITAL-2024-AI-06-FINETUNE and HORIZON-CL4-2024-HUMAN-03-01 both centre on the development of European AI foundation models, only at different development stages and on different scales.
DIGITAL-2024-AI-06-LANGUAGE-01 centres on providing data for the development of European large language models, which may be used also as part of the multimodal foundation models developed under HORIZON-CL4-2024-HUMAN-03-01.
ICT-22-2014 - Multimodal and Natural Computer Interaction - focuses on enabling systems to handle multimodal inputs such as voice, gesture, and text for natural interaction). The topic complements "HORIZON-CL4-2024-HUMAN-03-01 Advancing Large AI Models" by having a focus on multimodal data integration and interaction.
HORIZON-CL4-2023-HUMAN-01-03 Explores advanced NLP capabilities, improving AI’s ability to process and respond to multimodal inputs like text and audio.
Connected via HORIZON-CL4-2024-DIGITAL-EMERGING-01-04, not directly to the current topic.
Both topics are built around robust AI systems, though they focus on different operational areas. HORIZON-CL4-2024-HUMAN-01-06 focuses on robust, reliable and trustworthy AI, where HORIZON-CL4-2024-DIGITAL-EMERGING-01-04 focuses on industry and green deal AI applications.
Connected via HORIZON-CL4-2024-DIGITAL-EMERGING-01-04, not directly to the current topic.
Shared Green Deal / Green Transition goals.
Connected via HORIZON-CL4-2024-DIGITAL-EMERGING-01-04, not directly to the current topic.
Build on robust and trustworthy AI.
Connected via HORIZON-CL4-2024-DIGITAL-EMERGING-01-04, not directly to the current topic.
Both cover trustworthy AI applications.
Connected via HORIZON-CL4-2024-DIGITAL-EMERGING-01-04, not directly to the current topic.
The older topic is a support action that mapped the adoption of trustworthy AI.
Connected via HORIZON-CL4-INDUSTRY-2025-01-DIGITAL-61, not directly to the current topic.
The CSA should provide coordination and dissemination for interdisciplinary AI-enabled science to facilitate stakeholder engagement, coordination and promotion of AI in Science initiatives across Europe. The RIA provides foundation models for the same community.
Connected via HORIZON-CL4-INDUSTRY-2025-01-DIGITAL-61, not directly to the current topic.
All topics under the GenAI4EU Initiative are supposed to link with the GenAI4EU central hub.
Connected via HORIZON-CL4-INDUSTRY-2025-01-DIGITAL-61, not directly to the current topic.
HORIZON-CL4-INDUSTRY-2025-01-DIGITAL-61 developes AI foundation models for science, including materials science, and is part of the RAISE initiative, just like HORIZON-RAISE-2026-01-01.
Connected via HORIZON-CL4-INDUSTRY-2025-01-DIGITAL-61, not directly to the current topic.
HORIZON-CL4-INDUSTRY-2025-01-DIGITAL-61 developes AI foundation models for science, including for agricultural science and environmental pollution science, and therefore links directly to the network of excellence for this application field of AI.
Connected via HORIZON-CL4-INDUSTRY-2025-01-DIGITAL-61, not directly to the current topic.
Proposals under HORIZON-RAISE-2027-01-01 are expected to develop synergies with running Horizon Europe projects in the same field, for example with HORIZON-CL4-INDUSTRY-2025-01-DIGITAL-61.
Connected via HORIZON-CL4-2023-HUMAN-01-04, not directly to the current topic.
Proposals are expected to dedicate tasks and resources to collaborate with and provide input to the open innovation challenge under HORIZON-CL4-2023-HUMAN-01-04.
Connected via DIGITAL-2024-AI-06-FINETUNE, not directly to the current topic.
Call topic requests the chosen project to foster synergies with projects selected under this call topic
Connected via ICT-22-2014, not directly to the current topic.
ICT-23-2017 1st bullet point of A(RIA) is a continuation of ICT-22-2014 B(RIA) with a focus on people with cognitive disabilities. Solutions should work on real life environments
Connected via ICT-22-2014, not directly to the current topic.
There have been lots of project using such technologies but there are often off the shelf components and effort is not done in their development. The closest to the RIA have been an innovation call in 2014, ICT 22 2014: Multimodal and Natural computer interaction, point c)
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Expected Outcome:
Projects are expected to contribute to one or more of the following outcomes:
Scope:
Large artificial intelligence (AI) models refer to a new generation of general-purpose AI models (i.e., generative AI) capable of adapting to diverse domains and tasks without significant modification. Notable examples, such as OpenAI's GPT-4V and META’s Llama 2 or DinoV2, have demonstrated a wide and growing variety of capabilities.
The swift progression of large AI models in recent years holds immense potential to revolutionize various industries, due to their ability to adapt to diverse tasks and domains. For them to achieve their potential, access to vast data repositories, significant computing resources, and skilled engineers is required. A promising avenue of research is the development of multi-modal large AI models that can seamlessly integrate multiple modalities, including text, structured data, computer code, visual or audio media, robotics or IoT sensors, and remote sensing data.
This topic centres around the development of innovative multimodal large AI models, covering both the training of foundation models and their subsequent fine-tuning. These models should show superior capabilities across a wide array of down-stream tasks. The emphasis is both on integrating new input data modalities into large AI models and on developing multimodal large AI models with either significantly higher capabilities and/or the ability to handle a greater number of modalities.
Moreover, projects should contribute to reinforcing Europe's research excellence in the field of large AI models by driving substantial scientific progress and innovation in key large AI areas. This includes the development of novel methods for pretraining multimodal foundation models. Additionally, novel approaches to effective and efficient fine-tuning of such models should be pursued.
Research activities should explore innovative methodologies for enhancing the representation, alignment, and interaction among the different data modalities, thereby substantially improving the overall performance and trustworthiness of these models. Advances in efficient computation for the pre-training, execution and fine-tuning of foundation models to reduce their computational and environmental impact, and increasing the safety of models are also topics of interest.
Proposals should outline how the models will incorporate trustworthiness, considering factors such as explainability, security, and privacy in line with provisions in the upcoming Artificial Intelligence Act. Additionally, the models should incorporate characteristics that align with European values, and provide improved multilingual capabilities, where relevant.
Proposals should address at least one of the following focus areas:
Each proposal is expected to address all of the following:
Proposals should adopt a multidisciplinary research team, as appropriate, to cover all the above issues.
Proposals should adhere to Horizon Europe's guidelines regarding Open Science practices as well as the FAIR data principles. Open access should be provided to research outputs - including training datasets, software tools, model architecture and hyperparameters, as well as model weights - unless a legitimate interest or constraint applies. Additionally, proposals are encouraged to deliver results under open-source licenses.
All proposals are expected to embed mechanisms to assess and demonstrate progress (with qualitative and quantitative KPIs, benchmarking and progress monitoring, including participation to international evaluation contests, as well as illustrative application use-cases demonstrating concrete potential added value), and share communicable results with the European R&D community, through the AI-on-demand platform, and Common European data spaces, and if necessary other relevant digital resource platforms in order to enhance the European AI, Data and Robotics ecosystem through the sharing of results and best practice.
Proposals are also expected to dedicate tasks and resources to collaborate with and provide input to the open innovation challenge under HORIZON-CL4-2023-HUMAN-01-04. Research teams involved in the proposals are expected to participate in the respective Innovation Challenges.
This topic implements the co-programmed European Partnership on AI, data and robotics.
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Activities are expected to start at TRL 2-3 and achieve TRL 4-5 by the end of the project – see General Annex B.
EVALUATION results
Published: 18.04.2024
Deadline: 18.09.2024
Available budget: EUR 72,500,000
The results of the evaluation for each topic are as follows:
HUMAN-03-01
HUMAN-03-02
HUMAN-03-03
HUMAN-03-04
Number of proposals submitted (including proposals transferred from or to other calls)
27
131
23
2
Number of inadmissible proposals
0
0
0
0
Number of ineligible proposals
1
5
1
0
Number of above-threshold proposals
19
92
10
1
Total budget requested for above-threshold proposals
444,267,401.95 €
673,046,895.38 €
14,727,623.27 €
6,000,000 €
Number of proposals retained for funding
2
3
1
1
Number of proposals in the reserve list
1
1
1
0
Funding threshold
14.5
15
14.5
12.5
Number of proposals with scores lower or equal to 15 and higher or equal to 14
3
14
1
0
Number of proposals with scores lower than 14 and higher or equal to 13
4
20
1
0
Number of proposals with scores lower than 13 and higher or equal to 10
12
58
8
1
Summary of observer reports:
Observer report for topics HUMAN-03-01, 02 and 04:
Based on the achieved results the overall quality of the evaluation is rated as “very good”. The topics in this report were monitored by a team of two Independent Observers. The entire observation process was conducted remotely through analysis of documentation on the SEP system and consensus and panel meetings held in the video conferencing system (Cisco Webex). The Independent Observers (IO) verified that the procedures set out or referred to in the EU Funding & Tenders Online Manual are followed, drew the attention of Commission staff to any potential deficiencies; and compiled a report with findings and recommendations aiming to improve the overall efficiency and effectiveness of the evaluation process. Scale of the evaluation task as well as its complexity were challenging but within the boundaries of the professional and personal capacities of the experts who were invited to evaluate the proposals received in response to this Call. The exercise was very well prepared and managed excellently by the Call and Topic Coordinators and their teams. The Commission staff is to be commended for their professionalism during the exercise. The organisation and scheduling of evaluator briefings, and consensus meetings was carried out with considered efficiency and effectiveness. The Independent Observers are satisfied that the evaluation process conformed to the applicable rules and required standards. The evaluation process was fair, efficient, and effective and the throughput time of the evaluation process was good. The Commission staff is to be commended for the support provided to the observers during their task. procedures and tools were efficient, reliable and user-friendly. All evaluation procedures monitored by the observers were implemented in conformity with the applicable and agreed rules. All experts and involved actors adhered strictly to the guiding principles of independence, objectivity, accuracy, and consistency. No significant deviations have been observed or reported to the observers. The observers have given careful consideration to recommendations which were discussed during the checkpoint meeting with EU Staff. Based on observations the following recommendations can be derived:
Observer report for topic HUMAN-03-03:
The IO finds that the evaluation followed the applicable rules for the call, and that it was competently evaluated in a fair and equitable manner by the experts and continuously monitored by the Agency staff. The IO did not observe any event or activity that gave rise to specific concern that might have jeopardised the fairness of the evaluation. HORIZON-CL4-2024-HUMAN-03-03: 23 proposals were submitted; 1 proposal accepted for funding. The expert team evaluating the proposals were perfectly gender balanced and from the broadest possible national representation.
We recently informed the applicants about the evaluation results for their proposals.
For questions, please contact the Research Enquiry Service.
PROPOSAL NUMBERS
Call HORIZON-CL4-2024-HUMAN-03 has closed on the 18/09/2024.
183 proposals have been submitted.
The breakdown per topic is:
Evaluation results are expected to be communicated in December 2024.
To the applicants of topic HORIZON-CL4-2024-HUMAN-03-01:
NB: With regards to the previous update on this topic and the fact that, due to a technical problem, the ownership control declaration (annex to be uploaded) was missing in the Portal Submission System, the Commission will exceptionally allow the submission of this annex at a later stage as needed and upon request.
Be reassured that the assessment of the ownership control declaration will not affect the outcome of the evaluation. The evaluation will focus on the Application form (Part A) and Technical description (Part B), which need to be completed and submitted in the Portal Submission System by the established deadline of 18/09/2024 17:00 Brussels time.
To the applicants of topic HORIZON-CL4-2024-HUMAN-03-01:
Dear applicants,
Please note that the mandatory annex ownership control declaration has been added to the Portal Submission System. It is now possible to submit the annex next to Part B application.
The ownership control declaration annex must be filled in by project participants as part of the application. All declarations must be assembled by the coordinator and uploaded in a single file in the Portal Submission System.
We apologise for the inconvenience caused.
Dear applicant,
Please note that there was an error in the Part B template available for download for this topic.
The correct version is entitled “Standard Application Form (HE RIA and IA)” and indicates a page limit of 45 pages.
The correct version is the one now available in the submission system. Please make sure that you use the correct version before proceeding further in the drafting of your proposal.
We apologise for the inconvenience.
This call topic has been appended 6 times by the EC with news.
HORIZON-CL4-2024-HUMAN-03
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Grant agreement signed · 18 May 2025 (1 year ago)
All expected milestones for this call have passed.
Work programme published
23 Feb 2024 · est.
Call opens
23 Apr 2024
Call closes
18 Sep 2024
Call published
30 Sep 2024
Outcome expected
18 Feb 2025 · est.
Grant agreement signed
18 May 2025 · est.
Work programme published Estimated
23 Feb 2024 · 2 years ago
Topics are listed in the Work Programme before the call opens. Spotting this early gives you a head start on partner search and proposal planning.
Call opens
23 Apr 2024 · 2 years ago
Submissions can be made from this date.
Call closes
18 Sep 2024 · 2 years ago
Deadline to submit a proposal.
Call published
30 Sep 2024 · 2 years ago
This topic was first published in TopicTree.
Outcome expected Estimated
18 Feb 2025 · 1 year ago
The maximum time to inform applicants of the evaluation outcome is five months after the call closes.
Grant agreement signed Estimated
18 May 2025 · 1 year ago
The maximum time to sign the grant agreement is three months after applicants are informed of the outcome.
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