--- license: gpl --- # Control Systems Analysis Dataset This dataset contains analytical examples for both continuous and discrete closed-loop control systems and control objects. ## 🛠️ Core Analysis Methods * **Maxima CAS:** Examples using the Maxima symbolic computing system (Computer Algebra System). * **Hybrid Workflows:** Systems and objects analysis combining Maxima and Python. --- ## 📈 Continuous Objects & Control Systems ### Circuit Analysis & Modeling * **Kirchhoff's Rules:** Introduction to electrical circuit analysis. * **Equation Systems:** Compiling systems for circuit voltages and node currents. * **Incidence Matrices:** Using a netlist to compose structural matrices. ### Transfer Function & Stability Analysis * **Step Response:** Transfer function analysis and obtaining response to a given signal. * **Zero-Pole Analysis:** Zeros and poles of the transfer function. * **Stability:** Pole-based stability criteria. * **Root Locus:** Constructing trajectories when varying object or system parameters. ### Second-Order System Analysis * **Symbolic Evaluation:** Symbolic analysis for second-order systems. * **System Types:** Discriminant, oscillatory, aperiodic, and multiply aperiodic systems. ### Frequency Domain Analysis * **Complex Response:** Evaluation of complex frequency response (imaginary and real parts). * **Bode Elements:** Frequency and phase response using the arctangent of complex arguments. ### Integral Transforms * **Laplace Transform:** Forward and inverse Laplace transforms. * **Numerical Methods:** Numerical Inverse Laplace transform for higher-order systems. --- ## 🔢 Discrete Systems ### Discretization Techniques * **Bilinear Transforms:** Tustin substitution, bilinear transform, rectangle (left/right), and trapezoid methods. * **Zero-Pole Matching:** Matching methods for continuous-to-discrete translation. * **Special Cases:** Matching methods in the presence of single or multiple zeros equal to zero. ### Digital Filter Implementation * **Reduction:** Reducing discrete transfer functions to digital filters. * **DSP Optimization:** Types of digital filters and optimization for digital signal processors. --- ## 🧮 Numerical & Nonlinear Computation ### Function Calculation Methods * **Taylor Series:** Function approximation and sine function calculations. * **Newton-Raphson Method:** Root functions and division operations. * **Coefficient Approximation:** Approximation methods for Taylor series coefficients. * **Fixed-Point Optimization:** Adapting approximations for arithmetic right and left bit-shifts. --- ## ⚡ Advanced Power Control ### Park Transform Systems * **Modulation Effects:** Laplace transform of function-sine products and amplitude modulation. * **Dynamic Links:** Links in $\alpha\beta$ or $dq$ channels. * **Symbolic Modeling:** Analysis of symmetrical closed-loop systems with Park transforms. * **Harmonic Analysis:** Evaluation of second harmonic effects. ### Single-Phase Astatic Systems * **Transformations:** Single-phase $dq$ transform. * **Filtering:** Second-order notch filters and infinite Q band-pass filters. * **Resonant Controllers:** Controller properties and closed-loop systems with resonant controllers. * **Astatic Control:** Control based on a specific frequency component. * **AC Circuits:** Symbolic analysis of AC circuits at a given frequency. ### Symmetrical Components * **Extraction:** Symmetrical components extraction and the rotation operator. * **Signal Orthogonalization:** Phase filters and orthogonal signal generation. ### Variable coefficients filters * **Variable Coefficients** Phase filters with variable transfer function coefficients. * **Adaptive Filtering** Notch filters with variable coefficients. ### Phase-Locked Loops (PLL) * **Variable Coefficients:** Phase, Notch filters, Integrators with variable transfer function coefficients. * **Feedback Systems** Nonlinear frequency-dependent feedback loops. * **Phase filtering with unwrapping** +- pi correction of atan2