Gradient descent in a 1D shallow network acts like a shrinkage operator on the Jacobian's singular values, so the learning rate and number of iterations explicitly set the spectral bandwidth for monotonic activations.
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Gradient Descent as a Shrinkage Operator for Spectral Bias
Gradient descent in a 1D shallow network acts like a shrinkage operator on the Jacobian's singular values, so the learning rate and number of iterations explicitly set the spectral bandwidth for monotonic activations.