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Detecting and recognizing driver distraction through various data modality using machine learning: A review, recent advances, simplified framework and open …
Driver distraction is one of the main causes of fatal traffic accidents. Therefore, the ability to
detect driver inattention is essential in building a safe yet intelligent transportation system …
detect driver inattention is essential in building a safe yet intelligent transportation system …
A survey on driver behavior analysis from in-vehicle cameras
Distracted or drowsy driving is unsafe driving behavior responsible for thousands of crashes
every year. Studying driver behavior has challenges associated with observing drivers in …
every year. Studying driver behavior has challenges associated with observing drivers in …
Human action recognition and prediction: A survey
Derived from rapid advances in computer vision and machine learning, video analysis tasks
have been moving from inferring the present state to predicting the future state. Vision-based …
have been moving from inferring the present state to predicting the future state. Vision-based …
Evidential deep learning for open set action recognition
In a real-world scenario, human actions are typically out of the distribution from training data,
which requires a model to both recognize the known actions and reject the unknown …
which requires a model to both recognize the known actions and reject the unknown …
Open set action recognition via multi-label evidential learning
Existing methods for open set action recognition focus on novelty detection that assumes
video clips show a single action, which is unrealistic in the real world. We propose a new …
video clips show a single action, which is unrealistic in the real world. We propose a new …
Navigating open set scenarios for skeleton-based action recognition
In real-world scenarios, human actions often fall outside the distribution of training data,
making it crucial for models to recognize known actions and reject unknown ones. However …
making it crucial for models to recognize known actions and reject unknown ones. However …
A survey on open set recognition
Open Set Recognition (OSR) is about dealing with unknown situations that were not learned
by the models during training. In this paper, we provide a survey of existing works about …
by the models during training. In this paper, we provide a survey of existing works about …
Let's play for action: Recognizing activities of daily living by learning from life simulation video games
Recognizing Activities of Daily Living (ADL) is a vital process for intelligent assistive robots,
but collecting large annotated datasets requires time-consuming temporal labeling and …
but collecting large annotated datasets requires time-consuming temporal labeling and …
Unsupervised open-world human action recognition
Open-world recognition (OWR) is an important field of research that strives to develop
machine learning models capable of identifying and learning new classes as they appear …
machine learning models capable of identifying and learning new classes as they appear …
A comparative analysis of decision-level fusion for multimodal driver behaviour understanding
Visual recognition inside the vehicle cabin leads to safer driving and more intuitive human-
vehicle interaction but such systems face substantial obstacles as they need to capture …
vehicle interaction but such systems face substantial obstacles as they need to capture …