Introduction to Signals and Systems: Continuous and Discrete Time
Master the core mathematical foundations of continuous and discrete-time signals and systems to prepare for advanced engineering and digital signal processing.
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このコースについて
Understanding how signals are represented, transformed, and processed is the foundation of modern engineering, communications, and data science. This course clarifies the complex mathematical concepts behind both continuous-time and discrete-time systems.
You will transition from basic mathematical definitions to analyzing linear time-invariant (LTI) systems and applying frequency-domain transformations. By reading through clear explanations and working through guided analytical exercises, you will develop a strong intuitive and mathematical grasp of how signals behave in the real world and in digital devices.
What you'll learn:
- Understand the fundamental classifications of continuous-time and discrete-time signals and systems.
- Analyze Linear Time-Invariant (LTI) systems using convolution sum and convolution integral methods.
- Apply Fourier analysis to represent signals in the frequency domain.
- Explore the Laplace transform and Z-transform for system analysis and stability testing.
- Relate classic signal processing theory to modern digital applications and software-based filtering concepts.
The journey begins with foundational definitions of signal properties, moving systematically through system characteristics, convolution, and frequency-domain representations. You will progress from continuous-time theories to discrete-time applications, ensuring a complete conceptual framework.
This text-based course is designed for undergraduate students, aspiring engineers, and self-taught learners looking for a structured introduction to signal processing. No prior exposure to signals and systems is required, though a basic background in calculus is helpful.
Start building your foundational knowledge of signals and systems today.