q-bio.NCSep 30, 2026

Association profile conditioning in a set-temporal transformer for cross-session intracortical motor decoding

Authors: Xinyuan Zhang, Handong Mo, Pengfei Wen, Shuang Liang, Jichang Yang, Yan Zeng, Zhongrui Wang, Han Wang

Organizations: The University of Hong Kong, Hong Kong SAR, China · Southern University of Science and Technology, Shenzhen, China

Abstract

Intracortical motor decoders degrade across sessions because the set of recorded units changes and persisting units can alter how their firing relates to behavior. Most existing methods update network weights on each new session or rely on unlabeled activity, which does not directly reveal such changes. We present APST, an Association Profile-conditioned Set-Temporal transformer that adapts to new sessions with all network weights frozen. From a few labeled calibration trials, APST summarizes how each unit's firing relates to behavior in a four-dimensional association profile computed in closed form. The profiles condition a set-attention encoder that accepts any number and order of units, followed by a causal transformer for streaming decoding. On held-out DANDI688 sessions from two monkeys, APST reaches velocity R2R^2 of 0.780.78 and 0.810.81, versus 0.400.40 and 0.580.58 for a variant that uses neural activity alone, and matches or exceeds an RNN fine-tuned on the same trials. On FALCON private held-out evaluation, it attains R2R^2 of 0.650.65, 0.420.42, and 0.440.44 on M1, M2, and H1.

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