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LDRD23-0730: Invoking Multilayer Networks to Develop a Paradigm for Security Science—Summary Report

Williams, Adam D.; Birch, Gabriel C.; Caskey, Susan; Fleming, Elizabeth S.; Mayle, Ashley N.; Adams, Thomas; Gailliot, Samuel F.; Stverak, Jami M.

Current approaches to securing high consequence facilities (HCF) and critical assets are linear and static and therefore struggle to adapt to emerging threats (e.g., unmanned aerial systems) and changing environmental conditions (e.g., decreasing operational control). The pace of change in technological, organizational, societal, and political dynamics necessitates a move toward codifying underlying scientific principles to better characterize the rich interactions observed between HCF security technology, infrastructure, digital assets, and human or organizational components. The promising results of Laboratory Directed Research and Development (LDRD) 20-0373—“Developing a Resilient, Adaptive, and Systematic Paradigm for Security Analysis”—suggest that when compared to traditional security analysis, invoking multilayer network (MLN) modeling for HCF security system components captures unexpected failure cases and unanticipated interactions.