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An Activity and Metric Model for Online Controlled Experiments

机译:在线控制实验的活动和度量模型

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Accurate prioritization of efforts in product and services development is critical to the success of every company. Online controlled experiments, also known as A/B tests, enable software companies to establish causal relationships between changes in their systems and the movements in the metrics. By experimenting, product development can be directed towards identifying and delivering value. Previous research stresses the need for data-driven development and experimentation. However, the level of granularity in which existing models explain the experimentation process is neither sufficient, in terms of details, nor scalable, in terms of how to increase number and run different types of experiments, in an online setting. Based on a case study of multiple products running online controlled experiments at Microsoft, we provide an experimentation framework composed of two detailed experimentation models focused on two main aspects; the experimentation activities and the experimentation metrics. This work intends to provide guidelines to companies and practitioners on how to set and organize experimentation activities for running trustworthy online controlled experiments.
机译:准确的产品和服务开发努力的优先顺序对每个公司的成功至关重要。在线控制实验,也称为A / B测试,使软件公司能够建立其系统变化与度量的变化之间的因果关系。通过实验,可以针对识别和提供价值的产品开发。以前的研究强调了对数据驱动的发展和实验的需求。然而,现有模型解释实验过程的粒度水平在细节或可扩展的方面,在在线设置中,在如何增加数量和运行不同类型的实验方面,既不是足够的。基于在微软运行在线控制实验的多个产品的案例研究,我们提供由两个详细的实验模型组成的实验框架,专注于两个主要方面;实验活动和实验指标。这项工作旨在为如何为运行可信标准的在线控制实验提供和组织实验活动的公司和从业者提供指导方针。

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