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A statistical analysis approach to predict user's changing requirements for software service evolution

机译:一种统计分析方法,可以预测用户对软件服务演进的不断变化的需求

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摘要

Evolution is inevitable for almost all software, and may be driven by users’ continuous requests for changes and improvement, the enablement of technology development, among other factors. The evolution of software services can be seen as the evolution of system-user interactions. The capability to accurately and efficiently observe users’ volatile requirements is critical to making timely system improvements to adapt to rapidly changing environments. In this paper, we propose a methodology that employs Conditional Random Fields (CRF) as a means to provide quantitative exploration of system-user interactions that often lead to the discovery of users’ potential needs and requirements. By analyzing users’ run-time behavioral patterns, domain experts can make prompt predictions on how users’ intentions shift, and timely propose system improvements or remedies to help address emerging needs. Our ultimate research goal is to speed up software service evolution to a great extent with automated tools, knowing that the challenge can be undoubtedly steep. The evolution of an online research library service is used to illustrate and evaluate the proposed approach in detail.
机译:演化对于几乎所有软件都是不可避免的,并且可能受用户不断要求变更和改进,支持技术开发以及其他因素的驱动。软件服务的演进可以看作是系统-用户交互的演进。准确有效地观察用户的易失性需求的能力对于及时进行系统改进以适应快速变化的环境至关重要。在本文中,我们提出了一种方法,该方法采用条件随机场(CRF)作为对系统与用户交互进行定量研究的方法,该方法通常会导致发现用户的潜在需求和要求。通过分析用户的运行时行为模式,域专家可以对用户的意图如何做出及时的预测,并及时提出系统改进或补救措施,以帮助满足新兴需求。我们的最终研究目标是使用自动化工具在很大程度上加快软件服务的发展,同时知道挑战无疑会非常艰巨。在线研究图书馆服务的发展用于详细说明和评估所提出的方法。

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