Quantitative Modeling and Analysis of Reliance in Physical Human–Machine Coordination
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Summary
The extent to which λ may serve as an online measure of trust and reliance in a physical load sharing task requires further investigation under more complex task scenarios that involve greater degrees of vulnerability and uncertainty.
- Type
- article
- Published
- 2019-12-01
- Cited by
- 6
- References
- 28
- OpenAlex
- https://openalex.org/W2971926166
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:203002869
Keywords
Computer science, Weighting, Task (project management), Context (archaeology), Human–computer interaction
References
- Modeling Driver Distraction from Cognitive Tasks
- Shared control of human and robot by approximate dynamic programming
- Adaptive representation of dynamics during learning of a motor task
- Continuous Role Adaptation for Human–Robot Shared Control
- The effect of distractor modality and processing code on human-automation interaction
- A Framework to Describe, Analyze and Generate Interactive Motor Behaviors
- Situation Awareness, Mental Workload, and Trust in Automation: Viable, Empirically Supported Cognitive Engineering Constructs
- Foundations for an Empirically Determined Scale of Trust in Automated Systems
- Conceptual Issues in the Study of Dynamic Hazard Warnings
- Social Connection Through Joint Action and Interpersonal Coordination
- Learning optimal controllers in human-robot cooperative transportation tasks with position and force constraints
- Trust in Automation: Designing for Appropriate Reliance
- The influence of distraction and driving context on driver response to imperfect collision warning systems
- Adaptive dynamic programming as a theory of sensorimotor control
- Human Performance Consequences of Stages and Levels of Automation
- A Meta-Analysis of Factors Affecting Trust in Human-Robot Interaction
- Trust in Automation
- Slaves no longer: review on role assignment for human–robot joint motor action
- Collaborative manufacturing with physical human–robot interaction
- Learning Controllers for Reactive and Proactive Behaviors in Human–Robot Collaboration
Cited by
- Designing human-robot collaboration (HRC) workspaces in industrial settings: A systemic literature review
- Bounded Rational Game-theoretical Modeling of Human Joint Actions with Incomplete Information
- Human Factors Considerations for Quantifiable Human States in Physical Human–Robot Interaction: A Literature Review
- Human-Like Robot Action Policy Through Game-Theoretic Intent Inference for Human–Robot Collaboration
- Human Factors Considerations for Quantifiable Human States in Physical Human-Robot Interaction: A Literature Review
- Distributed dynamic team trust in human, artificial intelligence, and robot teaming
- Ergonomics and Safety in the Design of Industrial Collaborative Robotics
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