Contagion Source Detection in Epidemic and Infodemic Outbreaks: Mathematical Analysis and Network Algorithms

C. Tan, Pei-Duo Yu
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引用次数: 2

Abstract

This monograph provides an overview of the mathematical theories and computational algorithm design for contagion source detection in large networks. By leveraging network centrality as a tool for statistical inference, we can accurately identify the source of contagions, trace their spread, and predict future trajectories. This approach provides fundamental insights into surveillance capability and asymptotic behavior of contagion spreading in networks. Mathematical theory and computational algorithms are vital to understanding contagion dynamics, improving surveillance capabilities, and developing effective strategies to prevent the spread of infectious diseases and misinformation.
流行病和信息疫情的传染源检测:数学分析和网络算法
本专著概述了大型网络中传染源检测的数学理论和计算算法设计。通过利用网络中心性作为统计推断的工具,我们可以准确地识别传染的来源,追踪其传播,并预测未来的轨迹。这种方法提供了对网络中传染病传播的监测能力和渐近行为的基本见解。数学理论和计算算法对于理解传染动力学、提高监测能力和制定有效策略以防止传染病和错误信息的传播至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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