Title :
A Top-Down Constraint-Driven Methodology for Smart System Design
Author :
Crepaldi, Marco ; Grosso, M. ; Sassone, Alessandro ; Gallinaro, Stefano ; Rinaudo, S. ; Poncino, Massimo ; Macii, E. ; Demarchi, Danilo
Author_Institution :
Center for Space Human Robot. (CSHR), Ist. Italiano di Tecnol. @ PoliTo, Turin, Italy
fDate :
Firstquarter 2014
Abstract :
Smart Systems collate leading technologies and solutions for the design of new generation embedded and cyber-physical systems. They can be applied to a broad range of application domains, from everyday life to mission and safety critical tasks, and achieve a wide set of functionality using diverging architectures. Smart system design needs to be achieved in a real multi-domain environment, where analog, digital, mixed-signal, and now even MEMS sub-systems tightly interact. With a traditional approach, these different units are designed separately, and finally merged at the electronic system level. However, given the increasing integration and interactions among components of different nature, methodologies enabling effective system-level architectural exploration are becoming more and more significant. Starting from a detailed analysis and classification of state-of-the-art use scenarios, and based on a review of the existing approaches, we present a top-down constraint-driven methodology for the design of new generation smart systems. It enables partitioning and propagation of high-level application-driven requisites towards low-level units in the design flow. The methodology reviews fundamental and cross-sectional system-level design aspects applied to the definition of an example case, to identify sub-system requirements towards the specifications of the electrical features of each internal unit.
Keywords :
electronic design automation; embedded systems; micromechanical devices; mixed analogue-digital integrated circuits; safety-critical software; MEMS subsystems; analog signal processing; cross-sectional system level design; cyber-physical systems; design flow; digital signal processing; electronic system level; embedded systems; mixed signal processing; multidomain environment; new generation smart system design; safety critical tasks; top-down constraint driven methodology; Computer security; Contingency management; Cyberspace; Design methodology; Embedded systems; Micromechanical devices; Mission critical systems; Smart sensors;
Journal_Title :
Circuits and Systems Magazine, IEEE
DOI :
10.1109/MCAS.2013.2296415