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Home > Proceedings / Proceedings of the AAAI Conference on Artificial Intelligence, 36 > No. 9: AAAI-22 Technical Tracks 9

Finding Nontrivial Minimum Fixed Points in Discrete Dynamical Systems: Complexity, Special Case Algorithms and Heuristics

February 1, 2023

Authors

Zirou Qiu

Computer Science Dept., University of Virginia Biocomplexity Institute and Initiative, University of Virginia


Chen Chen

Biocomplexity Institute and Initiative, University of Virginia


Madhav Marathe

Computer Science Dept., University of Virginia Biocomplexity Institute and Initiative, University of Virginia


S.S. Ravi

Biocomplexity Institute and Initiative, University of Virginia Computer Science Dept., University at Albany – SUNY


Daniel J. Rosenkrantz

Biocomplexity Institute and Initiative, University of Virginia Computer Science Dept., University at Albany – SUNY


Richard Stearns

Biocomplexity Institute and Initiative, University of Virginia Computer Science Dept., University at Albany – SUNY


Anil Vullikanti

Computer Science Dept., University of Virginia Biocomplexity Institute and Initiative, University of Virginia


Proceedings:

No. 9: AAAI-22 Technical Tracks 9

Volume

Issue:

Proceedings of the AAAI Conference on Artificial Intelligence, 36

Track:

AAAI Technical Track on Multiagent Systems

Downloads:

Download PDF

Abstract:

Networked discrete dynamical systems are often used to model the spread of contagions and decision-making by agents in coordination games. Fixed points of such dynamical systems represent configurations to which the system converges. In the dissemination of undesirable contagions (such as rumors and misinformation), convergence to fixed points with a small number of affected nodes is a desirable goal. Motivated by such considerations, we formulate a novel optimization problem of finding a nontrivial fixed point of the system with the minimum number of affected nodes. We establish that, unless P = NP, there is no polynomial-time algorithm for approximating a solution to this problem to within the factor n^(1 - epsilon) for any constant epsilon > 0. To cope with this computational intractability, we identify several special cases for which the problem can be solved efficiently. Further, we introduce an integer linear program to address the problem for networks of reasonable sizes. For solving the problem on larger networks, we propose a general heuristic framework along with greedy selection methods. Extensive experimental results on real-world networks demonstrate the effectiveness of the proposed heuristics. A full version of the manuscript, source code and data are available at: https://github.com/bridgelessqiu/NMIN-FPE

DOI:

10.1609/aaai.v36i9.21174


AAAI

Proceedings of the AAAI Conference on Artificial Intelligence, 36



Topics: AAAI

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