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Author

Julie Huang

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#machine learning Preprint Sep 2026

Exact Finite Attention Responses From RoPE Derivatives

We derive exact local responses for attention interventions, allowing candidate edits to be scored from a cached baseline and one backward pass. The starting point is the RoPE derivative $\partial_p z(p) = A z(p)$: its integral gives the finite positional displacement, which we carry through the softmax without lineari...

Julie Huang, Maggie Chlon, G. Gutin et al. · 0 citations
#machine learning Preprint Sep 2026

RoPE attention is an exact forward-pass gradient step with softmax intact

We derive an exact gradient-step representation of the RoPE-softmax forward pass. For every deterministic RoPE-softmax attention head with arbitrary affine projection weights, we construct a query-dependent effective matrix $\Delta M_i$ satisfying $y_i = \mu_i + u_i^\top \Delta M_i$, where $\mu_i$ is the uniform mean o...

Julie Huang, Maggie Chlon, Leon Chlon · 0 citations

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