One Adapter Pair per Model: A Universal Activation Interface for Language Models 文章

ArXiv CS.AI2026-08-11PAPERen作者: Su-Hyeon Kim, Jiwan Mun, Yo-Sub Han

详细信息

来源站点
ArXiv CS.AI
作者
Su-Hyeon Kim, Jiwan Mun, Yo-Sub Han
文章类型
PAPER
语言
en
发布日期
2026-08-11

摘要

arXiv:2608.09521v1 Announce Type: new Abstract: Activation-based tools are usually tied to one model's native hidden space, requiring probes, sparse autoencoders, and natural-language interpreters to be rebuilt or rediscovered for each new language model. We present a Universal Activation Bus, a framework that provides a common activation interface across compatible language models. Using a small set of source models, we learn a shared dense space together with one lightweight linear encoder--decoder adapter pair per model. After source training, the interface is frozen; a new model joins by fitting only its adapter pair on unlabeled matched text. The resulting interface allows activation-based tools to be shared across connected models, including common probes and SAE features as well as access to an NLA originally trained for a different model.

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