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Using Classification Techniques for Assigning Work Descriptions to Task Groups on the Basis of Construction Vocabulary

机译:使用分类技术根据构造词汇向任务组分配工作描述

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Construction project management produces a huge amount of documents in a variety of formats. The efficient use of the data contained in these documents is crucial to enhance control and to improve performance. A central pillar throughout the project life cycle is the Bill of Quantities (BoQ) document. It provides economic information and details a collection of work descriptions describing the nature of the different works needed to be done to achieve the project goal. In this work, we focus on the problem of automatically classifying such work descriptions into a predefined task organization hierarchy, so that it can be possible to store them in a common data repository. We describe a methodology for preprocessing the text associated to work descriptions to build training and test data sets and carry out a complete experimentation with several well-known machine learning algorithms.
机译:建设项目管理会以各种格式生成大量文档。有效使用这些文档中包含的数据对于增强控制和提高性能至关重要。整个项目生命周期的核心支柱是数量清单(BoQ)文件。它提供了经济信息,并详细描述了工作描述的集合,这些描述描述了实现项目目标所需完成的不同工作的性质。在这项工作中,我们专注于将此类工作描述自动分类到预定义的任务组织层次结构中的问题,以便可以将它们存储在公共数据存储库中。我们描述了一种预处理与工作描述相关的文本的方法,以构建训练和测试数据集,并使用几种著名的机器学习算法进行完整的实验。

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