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arxiv: 2606.12146 · v1 · pith:S6F7FYVPnew · submitted 2026-06-10 · 💻 cs.LG · cs.AI

nD-RoPE: A Generalized RoPE for n-Dimensional Position Embedding

classification 💻 cs.LG cs.AI
keywords formulationropeembeddingfrequenciesgeneralizationhigh-dimensionalnd-ropeposition
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Rotary Position Embedding (RoPE) is widely adopted in Transformer models, yet its extension to high-dimensional domains lacks a unified theoretical formulation. Most existing approaches either apply rotations independently along each axis or empirically mix frequencies, which limits cross-dimensional interactions and yields direction-dependent representations. To address these limitations, we propose nD-RoPE, a decomposition-free generalization of RoPE to arbitrary dimensions. From a translation-invariant formulation in continuous Hilbert space, we derive a spectral condition for isotropy that requires treating positions and frequencies as coupled \(n\)-dimensional vectors. We instantiate this formulation with a multi-scale regular-simplex wave-vector design, which provides non-degenerate spatial coverage and a symmetric, directionally balanced second-order response. Experiments across images, videos, and point clouds demonstrate consistent performance gains and improved generalization in high-dimensional settings.

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