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Finite Time Input-to-State Stability of Discrete Time Autonomous Systems.

, , , and . IEEE Control. Syst. Lett., (2023)

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Finite Time Input-to-State Stability of Discrete Time Autonomous Systems., , , and . IEEE Control. Syst. Lett., (2023)Robustness of the Adaptive Bellman -Ford Algorithm: Global Stability and Ultimate Bounds., , and . IEEE Trans. Automat. Contr., 64 (10): 4121-4136 (2019)Stability and Resilience of Distributed Information Spreading in Aggregate Computing., , and . IEEE Trans. Autom. Control., 68 (1): 454-461 (2023)Improved small gain conditions for input-to-state stability with respect to measurement functions: Discrete time networked system., , and . CDC, page 3875-3880. IEEE, (2021)Stability and Resilience of Distributed Information Spreading in Aggregate Computing., , and . CoRR, (2021)A Small-Gain Analysis for an All-Pairs Shortest-Path Algorithm: Global Exponential Input-to-State Stability., , and . IEEE Trans. Control. Netw. Syst., 11 (2): 821-830 (June 2024)Near-optimal knowledge-free resilient leader election., , , and . Autom., (2022)Small gain conditions for finite time input-to-state stability of interconnected discrete time systems., and . CDC, page 7714-7719. IEEE, (2022)A Framework for Self-Adaptive Dispersal of Computing Services., , , , , , , , , and 3 other author(s). FAS*W@SASO/ICAC, page 98-103. IEEE, (2019)A Lyapunov Analysis of a Most Probable Path Finding Algorithm., , and . IEEE Control. Syst. Lett., (2022)