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Experimental Comparison of Local and Shared Coin Randomized Consensus Protocols.

, , , and . SRDS, page 235-244. IEEE Computer Society, (2006)

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When 3f+1 Is Not Enough: Tradeoffs for Decentralized Asynchronous Byzantine Consensus., , , , and . DISC, volume 4731 of Lecture Notes in Computer Science, page 480-481. Springer, (2007)Greft: Arbitrary Fault-Tolerant Distributed Graph Processing., , and . BigData Congress, page 452-459. IEEE Computer Society, (2015)Worm-IT - A wormhole-based intrusion-tolerant group communication system., , , and . J. Syst. Softw., 80 (2): 178-197 (2007)MultiTLS: Secure communication channels with cipher suite diversity., , , and . IACR Cryptol. ePrint Arch., (2020)μVerum: Intrusion Recovery for Microservice Applications., , , and . IEEE Access, (2023)Efficient Byzantine Fault-Tolerance., , , , and . IEEE Trans. Computers, 62 (1): 16-30 (2013)On Byzantine generals with alternative plans., , and . J. Parallel Distributed Comput., 68 (9): 1291-1296 (2008)Low complexity Byzantine-resilient consensus., , , and . Distributed Comput., 17 (3): 237-249 (2005)Pando: Personal Volunteer Computing in Browsers., , , and . Middleware, page 96-109. ACM, (2019)RITAS: Services for Randomized Intrusion Tolerance., , , and . IEEE Trans. Dependable Secur. Comput., 8 (1): 122-136 (2011)