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Loosely-self-stabilizing Byzantine-Tolerant Binary Consensus for Signature-Free Message-Passing Systems.

, , , and . NETYS, volume 12754 of Lecture Notes in Computer Science, page 36-53. Springer, (2021)

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Atomic Appends in Asynchronous Byzantine Distributed Ledgers., , , , and . EDCC, page 77-84. IEEE, (2020)Practically-self-stabilizing virtual synchrony., , , and . J. Comput. Syst. Sci., (2018)Achieving Reliability in Master-Worker Computing via Evolutionary Dynamics., , , , and . Euro-Par, volume 7484 of Lecture Notes in Computer Science, page 451-463. Springer, (2012)Competitive Analysis of Task Scheduling Algorithms on a Fault-Prone Machine and the Impact of Resource Augmentation., , , and . ARMS-CC@PODC, volume 9438 of Lecture Notes in Computer Science, page 1-16. Springer, (2015)Self-stabilization Overhead: A Case Study on Coded Atomic Storage., , , and . NETYS, volume 11704 of Lecture Notes in Computer Science, page 131-147. Springer, (2019)Fault-tolerant semifast implementations of atomic read/write registers., , and . SPAA, page 281-290. ACM, (2006)A Centralized Node Placement Algorithm in WSNs and IoT Networks., , , , and . GIIS, page 25-29. IEEE, (2022)On the Robustness of (Semi) Fast Quorum-Based Implementations of Atomic Shared Memory., , and . DISC, volume 5218 of Lecture Notes in Computer Science, page 289-304. Springer, (2008)Utilizing Mobile Nodes for Congestion Control in Wireless Sensor Networks., , , , and . PIMRC, page 1-7. IEEE, (2019)Competition: Dynamic Alternative Path Selection in Wireless Sensor Networks., , , , , and . EWSN, page 276-277. Junction Publishing, Canada / ACM, (2017)