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Jolteon: Unleashing the Promise of Serverless for Serverless Workflows

Zili Zhang, Chao Jin, Xin Jin

2024Year
15Citations
5Top-tier citations

Abstract

Serverless computing promises automatic resource provisioning to relieve the burden of developers. Yet, developers still have to manually configure resources on current serverless platforms to satisfy application-level requirements. This is because cloud applications are orchestrated as serverless workflows with multiple stages, exhibiting a complex relationship between resource configuration and application requirements.

We propose Jolteon, an orchestrator to unleash the promise of automatic resource provisioning for serverless workflows. At the core of Jolteon is a stochastic performance model that combines the benefits of whitebox modeling to capture the execution characteristics of serverless computing and blackbox modeling to accommodate the inherent performance variability. We formulate a chance constrained optimization problem based on the performance model, and exploit sampling and convexity to find optimal resource configurations that satisfy user-defined cost or latency bounds. We implement a system prototype of Jolteon and evaluate it on AWS Lambda with a variety of serverless workflows. The experimental results show that Jolteon outperforms the state-of-the-art solution, Orion, by up to 2.3× on cost and 2.1× on latency.

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