Publication | Open Access
Daily Living Activity Recognition In-The-Wild: Modeling and Inferring Activity-Aware Human Contexts
16
Citations
81
References
2022
Year
Physical ActivityEngineeringMachine LearningHuman Pose EstimationAction Recognition (Movement Science)Action Recognition (Computer Vision)Wearable TechnologyContext AwarenessHuman MonitoringAmbient Assisted LivingContext InformationImage AnalysisKinesiologyData SciencePattern RecognitionSmart SystemsReality MiningHuman MotionHealth SciencesPhysical Activity RecognitionComputer ScienceMobile ComputingComputer VisionMobile SensingHuman-computer InteractionHuman MovementActivity RecognitionContext-aware Pervasive SystemSmart Sensing
Advancement in smart sensing and computing technologies has provided a dynamic opportunity to develop intelligent systems for human activity monitoring and thus assisted living. Consequently, many researchers have put their efforts into implementing sensor-based activity recognition systems. However, recognizing people’s natural behavior and physical activities with diverse contexts is still a challenging problem because human physical activities are often distracted by changes in their surroundings/environments. Therefore, in addition to physical activity recognition, it is also vital to model and infer the user’s context information to realize human-environment interactions in a better way. Therefore, this research paper proposes a new idea for activity recognition in-the-wild, which entails modeling and identifying detailed human contexts (such as human activities, behavioral environments, and phone states) using portable accelerometer sensors. The proposed scheme offers a detailed/fine-grained representation of natural human activities with contexts, which is crucial for modeling human-environment interactions in context-aware applications/systems effectively. The proposed idea is validated using a series of experiments, and it achieved an average balanced accuracy of 89.43%, which proves its effectiveness.
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