Lyapunov based Stochastic Stability of a Quantum Decision System for Human-Machine Interaction
Abstract
In mathematical psychology, decision makers are modeled using the Lindbladian equations from quantum mechanics to capture important human-centric features such as order effects and violation of the sure thing principle. We consider human-machine interaction involving a quantum decision maker (human) and a controller (machine). Given a sequence of human decisions over time, how can the controller dynamically provide input messages to adapt these decisions so as to converge to a specific decision? We show via novel stochastic Lyapunov arguments how the Lindbladian dynamics of the quantum decision maker can be controlled to converge to a specific decision asymptotically. Our methodology yields a useful mathematical framework for human-sensor decision making. The stochastic Lyapunov results are also of independent interest as they generalize recent results in the literature.
Cite
@article{arxiv.2205.12378,
title = {Lyapunov based Stochastic Stability of a Quantum Decision System for Human-Machine Interaction},
author = {Luke Snow and Shashwat Jain and Vikram Krishnamurthy},
journal= {arXiv preprint arXiv:2205.12378},
year = {2022}
}
Comments
arXiv admin note: substantial text overlap with arXiv:2204.00059