Achieving Probabilistic Atomicity with Well-Bounded Staleness and Low Read Latency in Distributed Datastores

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Abstract

Although it has been commercially successful to deploy weakly consistent but highly-responsive distributed datastores, the tension between developing complex applications and obtaining only weak consistency guarantees becomes more and more severe. The almost strong consistency tradeoff aims at achieving both strong consistency and low latency in the common case. In distributed storage systems, we investigate the generic notion of almost strong consistency in terms of designing fast read algorithms while guaranteeing Probabilistic Atomicity with well-Bounded staleness (PAB). This problem has been explored in the case where only one client can write the data. However, the more general case where multiple clients can write the data has not been studied. In this article, we study the fast read algorithm for PAB in the multi-writer case. We show the bound of data staleness and the probability of atomicity violation by decomposing inconsistent reads into the read inversion and the write inversion patterns. We implement the fast read algorithm and evaluate the consistency-latency tradeoffs based on the instrumentation of Cassandra and the YCSB benchmark framework. The theoretical analysis and the experimental evaluations show that our fast read algorithm guarantees PAB, even when faced with dynamic changes in the computing environment.

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APA

Ouyang, L., Huang, Y., Wei, H., & Lu, J. (2021). Achieving Probabilistic Atomicity with Well-Bounded Staleness and Low Read Latency in Distributed Datastores. IEEE Transactions on Parallel and Distributed Systems, 32(4), 815–829. https://doi.org/10.1109/TPDS.2020.3034328

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