Generative Model Inversion Through the Lens of the Manifold Hypothesis
–Neural Information Processing Systems
Model inversion attacks (MIAs) aim to reconstruct class-representative samples from trained models. Recent generative MIAs utilize generative adversarial networks to learn image priors that guide the inversion process, yielding reconstructions with high visual quality and strong fidelity to the private training data. To explore the reason behind their effectiveness, we begin by examining the gradients of inversion loss w.r.t.
Neural Information Processing Systems
Jun-17-2026, 23:20:45 GMT
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