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Spectral explainability toolkit for quantum-assisted PINNs. It uses Fourier analysis to show how encoding and circuit depth shape a QAPINN's expressivity, pairs that with gradient-variance diagnostics to expose trainability costs, and turns both into a design methodology for choosing quantum layer architectures per PDE class. See README.
A Python research framework implementing Active Flux Pinning Dynamics (AFPD) for next-generation quantum-assisted suspension control. Includes dual-input stiffness/damping control, nonlinear damping μ(v), micro-burst stabilization, and Bayesian optimization.