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Generating a Linguistic Model for Requirement Quality Analysis

机译:为需求质量分析生成语言模型

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In this work, we aim at identifying potential problems of ambiguity, completeness, conformity, singularity and readability in system and software requirements specifications. Those problems arise particularly when they are written in Natural Language. We describe them from linguistic point of view but the business impacts of each potential error will be considered in system engineering context where our corpus come from. Several standards give the criteria on writing good requirements to guide requirement authors. These properties are linguistically observable because they appear as lexical, syntactic, semantic and discursive problems in documents. We investigate error patterns heavily used, by analyzing manually the corpus. This analysis is based on the requirements grammar that we developed in this work. We then propose an approach to identify them automatically by applying the rules developed from the error patterns to the POS tagged and parsed corpus. By using error annotated corpus, we can train the error model using CRFs and evaluate it. We obtain overall 79.17% F_1 score for the error label annotation task.
机译:在这项工作中,我们旨在识别系统和软件要求规范中的模糊,完整性,符合性,奇点和可读性的潜在问题。这些问题出现了,特别是当他们用自然语言编写时。我们从语言角度描述它们,但在我们的语料库来自的系统工程背景下,将考虑每个潜在错误的业务影响。有几个标准为指导要求作者提供了编写良好要求的标准。这些属性是语言上可观察到的,因为它们在文档中表现为词汇,句法,语义和话语问题。我们通过手动分析语料库来调查严重使用的错误模式。该分析基于我们在这项工作中开发的要求语法。然后,我们提出了一种方法来通过应用从错误模式开发的规则来自动来识别它们标记标记的POS和解析语料库。通过使用错误注释语料库,我们可以使用CRFS培训错误模型并评估它。我们在错误标签注释任务中获取总共79.17%f_1分数。

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