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WiFlexFormer: Efficient WiFi-Based Person-Centric Sensing

2024-11-06 · Julian Strohmayer, Matthias Wödlinger, Martin Kampel

We propose WiFlexFormer, a highly efficient Transformer-based architecture designed for WiFi Channel State Information (CSI)-based person-centric sensing. We benchmark WiFlexFormer against state-of-the-art vision and specialized architectures for processing radio frequency data and demonstrate that it achieves comparable Human Activity Recognition (HAR) performance while offering a significantly lower parameter count and faster inference times. With an inference time of just 10 ms on an Nvidia Jetson Orin Nano, WiFlexFormer is optimized for real-time inference. Additionally, its low parameter count contributes to improved cross-domain generalization, where it often outperforms larger models. Our comprehensive evaluation shows that WiFlexFormer is a potential solution for efficient, scalable WiFi-based sensing applications. The PyTorch implementation of WiFlexFormer is publicly available at: https://github.com/StrohmayerJ/WiFlexFormer.

📄 PDF Abstract BibTeX arXiv:2411.04224

Code (1)

strohmayerj/wiflexformer 공식 구현 pytorch

Tasks

Activity RecognitionDomain GeneralizationHuman Activity RecognitionNVIDIA Jetson Orin Nano

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