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Course Outline

Introduction

  • The concept of design
  • Distinguishing C from Embedded C

The Lifecycle of Embedded Applications

  • The development phase
  • The maintenance phase
  • The extended lifecycle

Design Tools

  • Open-source versus proprietary solutions
  • Compilers, assemblers, and linkers
  • Libraries
  • Debuggers
  • Simulators
  • Integrated Development Environments (IDEs)

Challenges in Embedded Design

  • Constraints in embedded computing design
  • Cost implications
  • Performance and efficiency metrics
  • Power consumption management
  • Thermal management strategies

Establishing Design Objectives

  • Prioritizing simplicity
  • Specifying system functionality
  • Structuring program logic and architecture

Ensuring System Reliability

  • Inspection and maintenance protocols
  • Uptime requirements
  • Identifying points of failure

Code Reusability

  • Designing to eliminate redundancy

Code Abstraction

  • Implementing information hiding
  • Creating context-free modules

Code Modularization

  • System decomposition
  • Achieving loose coupling
  • Ensuring strong cohesion
  • Maintaining acyclic dependencies

Code Maintainability

  • Enhancing readability
  • Improving testability
  • Enabling configurability
  • Facilitating performance upgrades

Hardware Considerations

  • Scalable Thermal Design Power (TDP)
  • Integrated graphics capabilities
  • Additional hardware factors

Summary and Conclusions

Requirements

  • Fundamental knowledge of embedded systems
  • Practical experience with embedded C programming
  • A solid understanding of electronics basics

Intended Audience:

  • Software developers
 14 Hours

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