1 / 15

Essential Issues in Codesign: Models

Essential Issues in Codesign: Models. Part of HW/SW Codesign of Embedded Systems Course (CE 40-226). Today programme. Essential issues in codesign Models Architectures Languages. Models. Model should be Formal => avoid ambiguity Complete => can describe entire system

praymond
Télécharger la présentation

Essential Issues in Codesign: Models

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


  1. Essential Issues in Codesign:Models Part of HW/SW Codesign of Embedded Systems Course (CE 40-226) Codesign of Embedded Systems

  2. Today programme • Essential issues in codesign • Models • Architectures • Languages Codesign of Embedded Systems

  3. Models • Model should be • Formal => avoid ambiguity • Complete => can describe entire system • Comprehensible and easy-to-modify • Model vs. Language • We use a model to decompose a system into pieces (Model implies a way of thinking) • We generate a specification by describing these pieces in a particular language (Language is a tool for description) Codesign of Embedded Systems

  4. Models:Finite-State Machines (FSM) • A set of states and a set of transitions between them • Most popular model for control systems • Formal definition • <S,I,O,f,h> • Depending on output function (h) • Mealy machine / Moore machine Codesign of Embedded Systems

  5. Models:Dataflow Graph (DFG) • Most popular model for computation-intensive systems • Its basic principles • Asynchrony: all operations execute when and only when all its operands are available • Functionality: operations are functions with no side-effects => execution order is not important • Formal definition • <N,A,V,v0,f> Codesign of Embedded Systems

  6. Models:FSM with Datapath (FSMD) • Both control and computation are required in most systems • FSMD is a combination of FSM and DFG models • Formal definition • <S,I,O,f,h> • f = {fC,fD} • h= {hC,hD} Codesign of Embedded Systems

  7. Models:FSM with Datapath (cont’d) • Neither FSM nor FSMD are suitable for complex systems • Concurrency • Explosion in states • Hierarchy • Explosion in arcs Codesign of Embedded Systems

  8. Models:Hierarchical Concurrent FSMs • Extension of FSM, supporting concurrency and hierarchy • Like FSM: sets of states and transitions • Unlike FSM: each state can consist of concurrent substates • Transitions can be structured or unstructured • An example language: Statecharts Codesign of Embedded Systems

  9. Models:Programming Languages • Heterogeneous model • support data, and control modeling • Major PL types • Imperative (C, Pascal) • Control-driven model of execution • Declarative • Demand-driven / Pattern-driven model of execution Codesign of Embedded Systems

  10. Models:Programming Lang. (cont’d) • Declarative languages • No explicit order of execution • Focus on defining target of the computation through a set of functions of logic rules • Imperative Languages • Variety of data-structures • Support hierarchy (functions of procedures) • Support control-flow • Well-suited for modeling an algorithm Codesign of Embedded Systems

  11. Models:Programming Lang. (cont’d) • Main disadvantage • Do not explicitly model system states Codesign of Embedded Systems

  12. Models:Program-State Machines • Combination of HCFSM with PL • Consists of a hierarchy of Program-states • Program-states • Leaf / composite program-states • Composite program-state • concurrent / sequential program-substates • Sequential program-substates • Transition-on-Completion (TOC) arc / Transition-immediately (TI) arc Codesign of Embedded Systems

  13. What we learned today • We use Models to decompose systems into pieces, then use Languages to generate a specification of those pieces. • FSM, DFG, FSMD, HCFSM, PL, PSM, ... Codesign of Embedded Systems

  14. Complementary notes:Extra classes • “Compiler Design Short Course” by Gh. Jaberi-Pur • Date-Time: Thursday, Esfand 18th, 9-12 o’clock • Place: • “HW Synthesis Techniques Seminar” by S. Safari • Date-Time: Saturday, Esfand 20th, 13-14:30 • Place • “HW design using RenoirTM workshop” by A. Ganjei • Date-Time: • Place: Codesign of Embedded Systems

  15. Complementary notes (cont’d) • Assignment 1.c becomes optional • Course webpage is ready • Subscribe to course mailing list • Send an email from your desired email address to majordomo@ce.sharif.edu containing:subscribe ce226list • Project • Choose and announce your partner for the final project Codesign of Embedded Systems

More Related