从用户需求到软件服务:使用机器学习自动化需求规范过程

L. V. Rooijen, F. S. Bäumer, Marie Christin Platenius, Michaela Geierhos, Heiko Hamann, G. Engels
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引用次数: 10

摘要

在非正式的、不精确的、模糊的用户需求描述和精确的形式化规范之间架起桥梁是需求工程的主要任务。当需求工程师试图确定用户需求时,会使用诸如访谈或讲故事之类的技术。需求规范过程通常是在用户、领域专家和需求工程师之间的对话中完成的。在我们的研究中,我们的目标是自动化需求说明。这个想法是为了区分未经训练的用户和经过训练的用户,并利用从以前的系统运行中学到的领域知识。我们让未经训练的用户提供非结构化的自然语言描述,而我们允许训练有素的用户提供行为描述的示例。在这两种情况下,我们的目标都是合成类似于状态图的正式需求模型。从经过培训的用户的需求说明过程中,可以学习到行为本体,这些本体稍后用于支持未经培训的用户的需求说明过程。我们的研究方法是将自然语言处理和基于搜索的技术结合起来,用于需求规范的综合。我们的工作嵌入到一个更大的项目中,该项目旨在在设想的未来软件服务市场中实现整个软件开发和部署过程的自动化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
From User Demand to Software Service: Using Machine Learning to Automate the Requirements Specification Process
Bridging the gap between informal, imprecise, and vague user requirements descriptions and precise formalized specifications is the main task of requirements engineering. Techniques such as interviews or story telling are used when requirements engineers try to identify a user's needs. The requirements specification process is typically done in a dialogue between users, domain experts, and requirements engineers. In our research, we aim at automating the specification of requirements. The idea is to distinguish between untrained users and trained users, and to exploit domain knowledge learned from previous runs of our system. We let untrained users provide unstructured natural language descriptions, while we allow trained users to provide examples of behavioral descriptions. In both cases, our goal is to synthesize formal requirements models similar to statecharts. From requirements specification processes with trained users, behavioral ontologies are learned which are later used to support the requirements specification process for untrained users. Our research method is original in combining natural language processing and search-based techniques for the synthesis of requirements specifications. Our work is embedded in a larger project that aims at automating the whole software development and deployment process in envisioned future software service markets.
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