Thinking in Different Spaces: Domain-Specific Latent Geometry Survives Cross-Architecture Translation
We investigate whether independently trained language models converge to geometrically compatible latent representations, and whether this compatibility can be exploited to correct model behavior at inference time without any weight updates. We learn a linear projection matrix that maps activation vectors from a large teacher model into the coordinate system of a smaller student model, then intervene on the student's residual stream during generation by substituting its internal state with the t
Record details
Published: 20 March 2026
Source: arXiv
Category: Research
Topics: Children & education · Finance, VC & PE
Retrieved: 14 July 2026
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ethics.ai (20 March 2026), “Thinking in Different Spaces: Domain-Specific Latent Geometry Survives Cross-Architecture Translation,” evidence record 6937, https://ethics.ai/record/6937 (originally published by arXiv).
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