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Dynamic Scaling of Call-Stateful SIP Services in the Cloud

机译:云中呼叫状态SIP服务的动态缩放

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Many cloud technologies available today support dynamically scaling out and back computing services. The predominantly session-oriented nature and the carrier-grade requirements of telco services (such as SIP services) complicate the successful adoption of dynamic scaling in a telco cloud. This paper investigates how to enable dynamic scaling of these telco services in an effective manner, focusing in particular on call-stateful SIP services. First, we present and evaluate two protocols to transparently migrate ongoing sessions between call-stateful SIP servers. These allow to quickly shutdown call-stateful SIP servers in response to a scale back request, removing the need to wait until their ongoing calls have finished. Second, instead of responding to load changes in a reactive manner, this paper explores the potential value of pro-active resource provisioning based on call load forecasting. We propose a self-adaptive Kalman filter to implement short-term call load predictions and combine this with history-based predictions to anticipate future call load changes. We believe that session migration and call load forecasting are two important elements to safely reduce the operational expenditure (OpEx) of a cloudified SIP service.
机译:今天可用的许多云技术支持动态缩放和返回计算服务。主要的会议面为导向的性质和电信服务(如SIP服务)的运营商级要求使电信云中的动态缩放的成功采用复杂化。本文调查了如何以有效的方式启用这些电信服务的动态缩放,特别是在呼叫状态SIP服务上专注。首先,我们呈现并评估两个协议,以透明地迁移呼叫状态SIP服务器之间的持续会话。这些允许快速关闭呼叫状态SIP服务器以响应缩放次要求,从而删除需要等待直到他们正在进行的呼叫完成。其次,而不是以反应方式响应负载变化,而是探讨基于呼叫负荷预测的Pro-Active Resource Provisioning的潜在值。我们提出了一个自适应的卡尔曼滤波器来实现短期呼叫加载预测,并将其与基于历史的预测相结合,以期待未来的呼叫负载变化。我们认为,会议迁移和呼叫负荷预测是安全减少混浊的SIP服务的运营支出(OPEX)的两个重要因素。

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