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  • https://doi.org/10.1109/isceic67854.2025.11405691Copy DOI Icon

WIFI fingerprint positioning algorithm based on location mapping in graph convolutional network

  • Nov 24, 2025
  • Hefei Liu +4 more
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Abstract

WiFi fingerprinting positioning is one of the main indoor localization methods because of its reliable accuracy and low cost of deployment. The traditional methods conduct the localization by comparing the online RSSI with the fingerprint database using the various distance metrics while ignoring the structure information of fingerprints in the spatial and signal spaces. To tackle the problem, we proposes a graph learning based method with the combination of geographical location and node features. Our graph regards the WIFI fingerprints as graph nodes. Then we uses the semi-supervised graph convolutional neural network to predict the locations of the online the RSSI. After that, the prediction is preprocessed by uses the smoothing prediction with label propagation. Due to the experimental results, the proposed algorithm achieves good positioning results on both the UJIIndoorLoc public dataset and the self-collected museum dataset.

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