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Device-Free User Authentication, Activity Classification and Tracking using Passive Wi-Fi Sensing: A Deep Learning Based Approach (1911.11743v1)

Published 26 Nov 2019 in cs.LG, cs.HC, eess.SP, and stat.ML

Abstract: Privacy issues related to video camera feeds have led to a growing need for suitable alternatives that provide functionalities such as user authentication, activity classification and tracking in a noninvasive manner. Existing infrastructure makes Wi-Fi a possible candidate, yet, utilizing traditional signal processing methods to extract information necessary to fully characterize an event by sensing weak ambient Wi-Fi signals is deemed to be challenging. This paper introduces a novel end to-end deep learning framework that simultaneously predicts the identity, activity and the location of a user to create user profiles similar to the information provided through a video camera. The system is fully autonomous and requires zero user intervention unlike systems that require user-initiated initialization, or a user held transmitting device to facilitate the prediction. The system can also predict the trajectory of the user by predicting the location of a user over consecutive time steps. The performance of the system is evaluated through experiments.

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Authors (4)
  1. Vinoj Jayasundara (13 papers)
  2. Hirunima Jayasekara (6 papers)
  3. Tharaka Samarasinghe (18 papers)
  4. Kasun T. Hemachandra (5 papers)
Citations (9)

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