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cs.LG updates on arXiv.org

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Giving Sensors a Voice: Multimodal JEPA for Semantic Time...
[Submitted on 29 May 2026] · 2026-06-01 · via cs.LG updates on arXiv.org

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Abstract:Transformer-based architectures have advanced sequence modeling in language and vision, yet general-purpose representation learning for heterogeneous multivariate time series remains underexplored. We introduce CHARM (Channel-Aware Representation Model), which incorporates channel-level textual descriptions into a Transformer encoder equivariant to channel order. CHARM is trained with a Joint Embedding Predictive Architecture (JEPA) and a novel loss promoting informative, temporally stable embeddings; latent-space prediction encourages robustness to sensor noise while description-aware gating provides interpretability through learned inter-channel relationships. Across anomaly detection, classification, and short- and long-term forecasting, the learned embeddings achieve strong performance using only a linear probe. Performance is driven primarily by the JEPA objective and conditioning architecture, with text descriptions serving as channel identifiers for cross-dataset generalization.

Submission history

From: Gerardo Pastrana [view email]
[v1] Fri, 29 May 2026 17:48:30 UTC (4,984 KB)