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⏱ 2h 30m📚 25 lessons🎧 Audio version
Symbolic Math in Python: SymPy and Series Expansions
Learn to solve algebraic equations, perform calculus, and compute series expansions programmatically using SymPy in Python.
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About this course
Python is a powerful tool for scientific computing, but standard numerical libraries often fall short when you need exact, symbolic mathematical solutions. Using SymPy, you can perform algebraic manipulation, calculus, and series expansions with absolute precision. This text-based course guides you from the absolute basics of symbolic variables to advanced mathematical operations. You will learn how to write clean, modern Python code to solve complex algebraic equations, compute limits, find derivatives, and work with Taylor and Laurent series expansions. \n\nWhat you'll learn: \n- Understand the core concepts of symbolic computation versus numerical approximation \n- Define symbolic variables, expressions, and functions using clean Python syntax \n- Perform algebraic simplification, expansion, and factorization programmatically \n- Compute limits, derivatives, integrals, and solve differential equations \n- Master series expansions, including Taylor and Laurent series, to approximate complex functions \n- Apply SymPy to solve real-world mathematical and physics-based problems \n\nYou will start with foundational definitions and key mathematical terminology before moving on to hands-on symbolic operations. Through structured written explanations and clear code examples, you will progress to handling advanced calculus and series expansions. This course is designed for students, educators, and developers who are new to symbolic computing in Python. No prior experience with SymPy or advanced math is required, though a basic understanding of Python variables is helpful. Start mastering symbolic computation with SymPy today.
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⚡Short & focused 2h 30m of practical content
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