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Coverage-Aware Virtual IMU Augmentation for Low-Resource Human Activity Recognition

A new arXiv paper (arXiv:2609.16768v1) proposes a coverage-aware virtual IMU augmentation framework to improve human activity recognition (HAR) when labeled wearable-sensor data is scarce. The method selects diversity and scarcity anchors in a learned sensor embedding space, converts anchor dynamics into prompts to generate virtual IMU candidates, ranks candidates by a selection cost combining anchor proximity and label consistency, and weights them during training by reliability. Experiments on public HAR benchmarks show consistent recognition improvements over competitive baselines, with ablation studies confirming the framework design.

by read1 min views1 publishedSep 16, 2026

arXiv:2609.16768v1 Announce Type: new Abstract: IMU-based human activity recognition (HAR) enables continuous, privacy-friendly monitoring of daily activities using wearable sensors. However, building reliable HAR models that generalize across diverse users and real-world conditions requires large amounts of labeled IMU data, which are expensive and difficult to collect. Existing approaches mainly rely on augmentation or synthesis to expand available data, but indiscriminately adding virtual samples may provide little new coverage and introduce unreliable supervision. To overcome these challenges, we propose a novel coverage-aware virtual IMU augmentation framework that decides where to supplement real data, how to generate and select virtual candidates, and how strongly to weight them during training. Specifically, we select diversity and scarcity anchors in a learned sensor embedding space, convert anchor dynamics into prompts, and generate virtual IMU candidates for each anchor. We then rank candidates by a selection cost combining anchor proximity and label consistency, and incorporate the selected candidates into HAR training with reliability-based weights. Experiments on public HAR benchmarks show that our method consistently improves recognition performance over competitive baselines, and ablation studies confirm the effectiveness of the proposed framework design.

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