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Last updated on
28 October 2024 |
E. Quiñones, S. Royuela, C. Scordino, P. Gai, L. M. Pinho, L. Nogueira, J. Rollo, T. Cucinotta, A. Biondi, A. Hamann, D. Ziegenbein, H. Saoud, R. Soulat, B. Forsberg, L. Benini, G. Mando, L. Rucher. "The AMPERE Project: A Model-driven development framework for highly Parallel and EneRgy-Efficient computation supporting multi-criteria optimization," in Proceedings of the 23rd IEEE International Symposium on Real-Time Distributed Computing (IEEE ISORC 2020), May 19-21, 2020, Nashville, Tennessee, USA.
The high-performance requirements needed to im- plement the most advanced functionalities of current and future Cyber-Physical Systems (CPSs) are challenging the development processes of CPSs. On one side, CPSs rely on model-driven engineering (MDE) to satisfy the non-functional constraints and to ensure a smooth and safe integration of new features. On the other side, the use of complex parallel and heterogeneous embed- ded processor architectures becomes mandatory to cope with the performance requirements. In this regard, parallel programming models, such as OpenMP or CUDA, are a fundamental brick to fully exploit the performance capabilities of these architectures. However, parallel programming models are not compatible with current MDE approaches, creating a gap between the MDE used to develop CPSs and the parallel programming models supported by novel and future embedded platforms.
The AMPERE project will bridge this gap by implementing a novel software architecture for the development of advanced CPSs. To do so, the proposed software architecture will be capable of capturing the definition of the components and communications described in the MDE framework, together with the non-functional properties, and transform it into key parallel constructs present in current parallel models, which may require extensions. These features will allow for making an efficient use of underlying parallel and heterogeneous architectures, while ensuring compliance with non-functional requirements, including those on real-time performance of the system.
Copyright by IEEE.
See paper on publisher website
DOI: 10.1109/ISORC49007.2020.00042
BibTeX entry:
@inproceedings{Quinones_2020, title={The AMPERE Project: : A Model-driven development framework for highly Parallel and EneRgy-Efficient computation supporting multi-criteria optimization}, url={http://dx.doi.org/10.1109/ISORC49007.2020.00042}, DOI={10.1109/isorc49007.2020.00042}, booktitle={2020 IEEE 23rd International Symposium on Real-Time Distributed Computing (ISORC)}, publisher={IEEE}, author={Quinones, Eduardo and Royuela, Sara and Scordino, Claudio and Gai, Paolo and Pinho, Luis Miguel and Nogueira, Luis and Rollo, Jan and Cucinotta, Tommaso and Biondi, Alessandro and Hamann, Arne and Ziegenbein, Dirk and Saoud, Hadi and Soulat, Romain and Forsberg, Bjorn and Benini, Luca and Mando, Gianluca and Rucher, Luigi}, year={2020}, month=may }
Last updated on
07 November 2024 |