Robustness and Adaptiveness Analysis of Future Fleets
Slawomir Wesolkowski, Michael Mazurek, James M. Whitacre, Axel Bender,, Hussein Abbass

TL;DR
This paper presents a simulation-based framework to evaluate the robustness and adaptiveness of future fleet designs under various uncertainties and scenarios, aiding strategic decision-making.
Contribution
It introduces a novel conceptual framework for assessing fleet robustness and adaptiveness using scenario-based simulations in strategic planning.
Findings
Framework effectively captures fleet robustness and adaptiveness.
Simulation studies demonstrate how fleet design influences risk and flexibility.
Scenario analysis reveals key factors affecting fleet resilience.
Abstract
Making decisions about the structure of a future military fleet is a challenging task. Several issues need to be considered such as the existence of multiple competing objectives and the complexity of the operating environment. A particular challenge is posed by the various types of uncertainty that the future might hold. It is uncertain what future events might be encountered; how fleet design decisions will influence and shape the future; and how present and future decision makers will act based on available information, their personal biases regarding the importance of different objectives, and their economic preferences. In order to assist strategic decision-making, an analysis of future fleet options needs to account for conditions in which these different classes of uncertainty are exposed. It is important to understand what assumptions a particular fleet is robust to, what the…
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Taxonomy
TopicsSystems Engineering Methodologies and Applications · Advanced Multi-Objective Optimization Algorithms · Probabilistic and Robust Engineering Design
