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Toward Foundation Model for Multivariate Wearable Sensing of Physiological Signals

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arxiv 2412.09758 v2 pith:QDYSLJFO submitted 2024-12-12 cs.LG eess.SP

classification cs.LGeess.SP
keywords modelsensingwearableacrossapplicationsdatafoundationrepresentations
verification ladder T0 review T1 audit T2 compute T3 formal
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Time-series foundation models excel at tasks like forecasting across diverse data types by leveraging informative waveform representations. Wearable sensing data, however, pose unique challenges due to their variability in patterns and frequency bands, especially for healthcare-related outcomes. The main obstacle lies in crafting generalizable representations that adapt efficiently across heterogeneous sensing configurations and applications. To address this, we propose NormWear, the first multi-modal and ubiquitous foundation model designed to extract generalized and informative representations from wearable sensing data. Specifically, we design a channel-aware attention mechanism with a shared special liaison [CLS] token to detect signal patterns in both intra-sensor and inter-sensors. This helps the model to extract more meaningful information considering both time series themselves and the relationships between input sensors. This helps the model to be widely compatible with various sensors settings. NormWear is pretrained on a diverse set of physiological signals, including PPG, ECG, EEG, GSR, and IMU, from various public datasets. Our model shows exceptional generalizability across 11 public wearable sensing datasets, spanning 18 applications in mental health, body state inference, vital sign estimation, and disease risk evaluation. It consistently outperforms competitive baselines under zero-shot, partial-shot, and full-shot settings, indicating broad applicability in real-world health applications.

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  1. DeepFeature: LLM-Empowered Context-aware Feature Generation for Wearable Biosignals

    cs.AI 2025-12 conditional novelty 6.0 of 10

    An LLM-based pipeline that generates context-aware features from raw wearable biosignals and iteratively refines them via performance feedback reports AUROC gains of 4-10% over baselines.

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