Publication | Closed Access
Gait-Based Continuous Authentication Using Multimodal Learning
13
Citations
4
References
2017
Year
Unknown Venue
Gait AnalysisWearable SystemEngineeringMachine LearningBiometric PrivacyBiometricsWearable TechnologyFeature ExtractionPrivacy LossData SciencePattern RecognitionRobot LearningSoft BiometricsSmart SocksHealth SciencesAssistive TechnologyComputer SciencePathological GaitHuman MovementActivity Recognition
The ever-growing threats of security and privacy loss from unauthorized access to mobile devices has led to the development of various biometric authentication methods for easier and safer data access. In this work we present a gait-based continuous authentication method using accelerometer and ground contact force data recorded from a pair of smart socks. Multi-modal learning and auto-encoders are used for feature extraction and a multi-task learning approach is used for classification. The effectiveness of the proposed approach has been demonstrated through preliminary experiments on a dataset of 8 subjects.
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