Stress Propagation in Human-Robot Teams Based on Computational Logic Model

arxiv(2022)

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摘要
Mission teams are exposed to the emotional toll of life and death decisions. These are small groups of specially trained people supported by intelligent machines for dealing with stressful environments and scenarios. We developed a composite model for stress monitoring in such teams of human and autonomous machines. This modelling aims to identify the conditions that may contribute to mission failure. The proposed model is composed of three parts: 1) a computational logic part that statically describes the stress states of teammates; 2) a decision part that manifests the mission status at any time; 3) a stress propagation part based on standard Susceptible-Infected-Susceptible (SIS) paradigm. In contrast to the approaches such as agent-based, random-walk and game models, the proposed model combines various mechanisms to satisfy the conditions of stress propagation in small groups. Our core approach involves data structures such as decision tables and decision diagrams. These tools are adaptable to human-machine teaming as well.
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关键词
autonomous machines,composite model,computational logic model,computational logic part,death decisions,decision diagrams,decision part,decision tables,emotional toll,game models,human machines,human-machine teaming,human-robot teams,intelligent machines,mission failure,mission status,mission teams,random-walk,specially trained people,stress monitoring,stress propagation part,stressful environments,Susceptible-Infected-Susceptible paradigm
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