SCAD: Scalability Advisor for Interactive Microservices on Hybrid Clouds

Ka-Ho Chow, Umesh Deshpande, Veera Deenadhayalan, S. Seshadri, Ling Liu
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Abstract

The microservice architecture allows scaling application components independently based on their resource demands to serve user traffic. The notion of user traffic is critical because it is a mixture of requests to user-facing API endpoints representing valuable semantics (e.g., a customer transaction). Application owners can incorporate business insights to derive the expected user traffic, e.g., for holiday seasons, and rightsize each component to ensure availability and responsiveness. However, existing resource estimation techniques do not take user traffic from application owners into consideration but only rely on historical information, which leads to inaccurate predictions. Furthermore, on-premises infrastructure lacks elasticity, and the overall demands to serve the traffic can exceed its capacity, leaving no room for components to grow. Hybrid clouds provide an attractive solution by offloading some components to the cloud. However, a poor choice to offload can worsen the application in multiple aspects. To address these problems, we introduce SCAD, a scalability advisor for resource management. It estimates resource demands for any user traffic provided by the application owner and recommends how to scale microservices by spanning them on hybrid clouds, optimizing API performance, API availability, and cloud hosting cost.
SCAD:混合云上交互式微服务的可伸缩性顾问
微服务架构允许根据应用程序组件的资源需求独立扩展应用程序组件,以服务于用户流量。用户流量的概念至关重要,因为它是对面向用户的API端点的请求的混合,这些端点表示有价值的语义(例如,客户事务)。应用程序所有者可以结合业务洞察力来获得预期的用户流量(例如,假日季节),并适当调整每个组件的大小以确保可用性和响应性。然而,现有的资源估计技术没有考虑到来自应用程序所有者的用户流量,而只依赖于历史信息,这导致了不准确的预测。此外,内部部署基础设施缺乏弹性,服务流量的总体需求可能超过其容量,没有给组件留下增长的空间。混合云通过将一些组件卸载到云中提供了一个有吸引力的解决方案。但是,选择不当的卸载会在多个方面使应用程序恶化。为了解决这些问题,我们引入了SCAD,一个用于资源管理的可伸缩性顾问。它估计了应用程序所有者提供的任何用户流量的资源需求,并建议如何通过在混合云上跨越微服务、优化API性能、API可用性和云托管成本来扩展微服务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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