
INTECS SOLUTIONS
INTECS SOLUTIONS
8 Projects, page 1 of 2
Open Access Mandate for Publications assignment_turned_in Project2020 - 2023Partners:NXP (Germany), University of L'Aquila, ESOGU, PERCEIVE3D SA, RISE +40 partnersNXP (Germany),University of L'Aquila,ESOGU,PERCEIVE3D SA,RISE,AIT,RGB,INFOTIV AB,Ikerlan,INOVASYON MUHENDISLIK TEKNOLOJI GELISTIRME DANISMANLIK SANAYI VE TICARET LIMITED SIRKETI,ROBOAUTO,UTRC,BERGE,SIEMENS,BUT,FHG,PUMACY,NXP (Netherlands),RULEX,E.S.T.E. SRL,Polytechnic Institute of Porto,Goa University,Alstom (France),TECHY INFORMATION TECHNOLOGIESAND CONSULTANCY LIMITED COMPANY,STAM SRL,KTH,NXP,ERGUNLER INSAAT PETROL URUNLERI OTOMOTIV TEKSTIL MADENCILIK SU URUNLER SANAYI VE TICARET LIMITED STI.,THE REUSE COMPANY,CAMEA,CAF Signalling,UCLM,CARDIOID TECHNOLOGIES,VTI,ELECTROTECNICA ALAVESA SL,OTOKAR AS,FBK,MGEP,University of Coimbra,NUIM,QRTECH,INTECS SOLUTIONS,ISEP,LIEBERLIEBER SOFTWARE GMBH,Alstom (Sweden)Funder: European Commission Project Code: 876852Overall Budget: 25,621,000 EURFunder Contribution: 7,602,600 EURManufacturers of automated systems and the manufacturers of the components used in these systems have been allocating an enormous amount of time and effort in the past years developing and conducting research on automated systems. The effort spent has resulted in the availability of prototypes demonstrating new capabilities as well as the introduction of such systems to the market within different domains. Manufacturers of these systems need to make sure that the systems function in the intended way and according to specifications which is not a trivial task as system complexity rises dramatically the more integrated and interconnected these systems become with the addition of automated functionality and features to them. With rising complexity, unknown emerging properties of the system may come to the surface making it necessary to conduct thorough verification and validation (V&V) of these systems. VALU3S aims to design, implement and evaluate state-of-the-art V&V methods and tools in order to reduce the time and cost needed to verify and validate automated systems with respect to safety, cybersecurity and privacy (SCP) requirements. This will ensure that European manufacturers of automated systems remain competitive and that they remain world leaders. To this end, a multi-domain framework is designed and evaluated with the aim to create a clear structure around the components and elements needed to conduct V&V process through identification and classification of evaluation methods, tools, environments and concepts that are needed to verify and validate automated systems with respect to SCP requirements. The implemented V&V methods as well as improved process workflows and tools will also be evaluated in the project using a comprehensive set of demonstrators built from 13 use cases with specific SCP requirements from 6 domains of automotive, industrial robotics, agriculture, Aerospace, railway and health.
more_vert Open Access Mandate for Publications and Research data assignment_turned_in Project2019 - 2023Partners:INCQUERY LABS RESEARCH AND DEVELOPMENT LTD, UAM, University of York, MUG, University of L'Aquila +7 partnersINCQUERY LABS RESEARCH AND DEVELOPMENT LTD,UAM,University of York,MUG,University of L'Aquila,INQUERY LABS CLOSED COMPANY LIMITEDBY SHARES,UGROUND GLOBAL SL,TUW,CLMS (UK) LIMITED,IMT,INTECS SOLUTIONS,BT Group (United Kingdom)Funder: European Commission Project Code: 813884Overall Budget: 3,941,860 EURFunder Contribution: 3,941,860 EURLow-code development platforms (LCPD) are software development platforms on the Cloud, provided through a Platform-as a-Service model, which allow users to build completely operational applications by interacting through dynamic graphical user interfaces, visual diagrams and declarative languages. They address the need of non-programmers to develop personalised software, and focus on their domain expertise instead of implementation requirements. Lowcomote will train a generation of experts that will upgrade the current trend of LCPDs to a new paradigm, Low-code Engineering Platforms (LCEPs). LCEPs will be open, allowing to integrate heterogeneous engineering tools, interoperable, allowing for cross-platform engineering, scalable, supporting very large engineering models and social networks of developers, smart, simplifying the development for citizen developers by machine learning and recommendation techniques. This will be achieved by injecting in LCDPs the theoretical and technical framework defined by recent research in Model Driven Engineering (MDE), augmented with Cloud Computing and Machine Learning techniques. This is possible today thanks to recent breakthroughs in scalability of MDE performed in the EC FP7 research project MONDO, lead by Lowcomote partners. The 48-month Lowcomote project will train the first European generation of skilled professionals in LCEPs. The 15 future scientists will benefit from an original training and research programme merging competencies and knowledge from 5 highly recognised academic institutions and 9 large and small industries of several domains. Co-supervision from both sectors is a promising process to facilitate agility of our future professionals between the academic and industrial world. re
more_vert Open Access Mandate for Publications and Research data assignment_turned_in Project2023 - 2027Partners:Solver IA, FENTISS, ICCS, ALMENDE, UoA +15 partnersSolver IA,FENTISS,ICCS,ALMENDE,UoA,FHG,UAB TERAGLOBUS,ITEC B.V.,BSC,TUC,UCLM,EXASCALE PERFORMANCE SYSTEMS - EXAPSYS IKE,Lund University,FOUNDATION FOR RESEARCH AND TECHNOLOGYHELLAS,ARCELIK,POLITO,IMEC-NL,INTECS SOLUTIONS,AQUASMART ENGINEERING BV,SYSGO AGFunder: European Commission Project Code: 101097224Overall Budget: 8,498,330 EURFunder Contribution: 2,744,320 EURREBECCA, a heavily SME-driven project, will democratize the development of novel edge AI systems. Towards this aim, REBECCA will develop a purely European complete Hardware(HW) and Software(SW) stack around a RISC-V CPU, which will provide significantly higher levels of a) performance (e.g., inferences per second), b) energy/power efficiency (e.g., inferences per joule/watt), c) safety and d) security than the existing ones. This will be achieved by utilizing state-of-the-art technologies and by making significant scientific and technological advances in several key relevant domains, including a) processing units, b) hardware accelerators, c) reconfigurable hardware, d) tightly coupled interconnected chiplets e) HW/SW co-design and co-development tools, f) system software, g) middleware, and h) AI libraries and frameworks. REBECCA will significantly contribute to realizing business and societal opportunities by validating and demonstrating its approach on 4 real-world use cases and 2 benchmarks based on real-world applications from the Smart appliances, Energy Generation, Infrastructure Inspection, Avionics Automotive and Health domains. In terms of HW, REBECCA will develop a novel chip consisting of two tightly coupled chiplets which will incorporate: a) RISC-V multicore, b) Neuromorphic AI Accelerator, c) Programmable array AI Accelerator, d) AI Accelerator utilizing a hierarchical processing architecture, e) DNN Accelerator, f) Reconfigurable hardware, g) Near-Memory-Processing, h) Memory Encryption. In terms of SW, REBECCA will implement optimized system SW, middleware, and AI libraries that will take full advantage of the underlying novel HW. The REBECCA platform will be complemented by a novel HW/SW Design Space Exploration tool which will allow the development of highly efficient REBECCA-based systems. REBECCA will additionally provide the means for safety and security modeling and verification for the developed HW and SW from the very early design stages.
more_vert Open Access Mandate for Publications assignment_turned_in Project2017 - 2020Partners:SYSGO AG, TRUSTPORT AS, AIT, RGB, CEA +19 partnersSYSGO AG,TRUSTPORT AS,AIT,RGB,CEA,University of London,University of L'Aquila,INTEGRASYS,TAS-E,SIEMENS,ITI,BUT,IMT,CLEARSY,ABSINT,KPIT MEDINI TECHNOLOGIES AG,SIEMENS PLM,RheinMain University of Applied Sciences,TECNALIA,ALL4TEC,THALES,Magillem Design Services,City, University of London,INTECS SOLUTIONSFunder: European Commission Project Code: 737475Overall Budget: 15,512,800 EURFunder Contribution: 4,612,950 EURThere is an ever increasing complexity of the systems we engineer in modern society, which includes facing the convergence of the embedded world and the open world. This complexity creates increasing difficulty with providing assurance for factors including safety, security and performance - particularly for safety critical systems such as the transportation, aerospace and the industrial control domains. In this project we will focus on the following: • Safety/Security/Performance to be considered together, during the overall life cycle of our products. • Flexibility across domains. • Consolidate the industrial market by reducing costs and increasing system quality and maintaining compliance with more and more exacting standards. • Improved tool features and capabilities
more_vert Open Access Mandate for Publications assignment_turned_in Project2017 - 2020Partners:University of L'Aquila, ROTECH, Åbo Akademi University, UPPA, FENTISS +25 partnersUniversity of L'Aquila,ROTECH,Åbo Akademi University,UPPA,FENTISS,UC,RISE,ARMINES,SOFTEAM,Ikerlan,CONFORMIQ SOFTWARE OY,TEKNE,Volvo Construction Equipment AB,RISE SICS VASTERAS AB,BUT,MDH,SOFTEAM,CLEARSY,Alstom (France),FUOC UNIVERSITAT OBERTA DE CATALUNYA UOC,NSNFINLAND,TEKNOLOGIAN TUTKIMUSKESKUS VTT OY,CAMEA,TELIA COMMUNICATION OY,SSF,ATOS SPAIN SA,Smartesting (France),INTECS SOLUTIONS,Alstom (Sweden),THALESFunder: European Commission Project Code: 737494Overall Budget: 14,946,600 EURFunder Contribution: 4,442,950 EUREuropean industry faces stiff competition on the global arena. Electronic Components and Systems become more and more complex, thus calling for modern engineering practices to be applied in order to better tackle both productivity and quality. Model-based technologies promise significant productivity gains, which have already been proven in several studies and applications. However, these technologies still need more enhancements to scale up for real-life industrial projects and to provide more benefits in different contexts. The ultimate objective of improving productivity, while reducing costs and ensuring quality in development, integration and maintenance, can be achieved by using techniques integrating seamlessly design time and runtime aspects. Industrial scale system models, which are usually multi-disciplinary, multi-teams and serving to several product lines have to be be exploited at runtime, e.g. by advanced tracing and monitoring, thus boosting the overall quality of the final system and providing lessons-learnt for future product generations. MegaM@Rt brings model-based engineering to the next level in order to help European industry reducing development and maintenance costs while reinforcing both productivity and quality. To achieve that, MegaM@Rt will create a framework incorporating methods and tools for continuous development and runtime validation to significantly improve productivity, quality and predictability of large and complex industrial systems. MegaM@Rt addresses the scalability challenges with advanced megamodelling and traceability approaches, while runtime aspects will be tackled via so-called “models@runtime”, online testing and execution traces analysis. MegaM@Rt brings together a strong international consortium involving experts from France, Spain, Italy and Finland. The partners cover the whole value chain from research organizations to tool providers, including 9 end-users with large industrial case studies for results validation.
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