4.7 Article

On-site text classification and knowledge mining for large-scale projects construction by integrated intelligent approach

期刊

ADVANCED ENGINEERING INFORMATICS
卷 49, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.aei.2021.101355

关键词

Large-scale projects construction; Text classification; Knowledge mining; CNN; Mutual information; TF-IDF

资金

  1. National Natural Science Foundation of China [51622904]
  2. Open Fund of Hubei Key Laboratory of Construction and Management in Hydropower Engineering [2020KSD05]

向作者/读者索取更多资源

This research proposes an integrated intelligent approach based on NLP technology, which involves text classification, information extraction, and relation network construction to handle construction on-site text data, aiming to enhance management efficiency and practical knowledge discovery.
A large-scale project produces a lot of text data during construction commonly achieved as various management reports. Having the right information at the right time can help the project team understand the project status and manage the construction process more efficiently. However, text information is presented in unstructured or semi-structured formats. Extracting useful information from such a large text warehouse is a challenge. A manual process is costly and often times cannot deliver the right information to the right person at the right time. This research proposes an integrated intelligent approach based on natural language processing technology (NLP), which mainly involves three stages. First, a text classification model based on Convolution Neural Network (CNN) is developed to classify the construction on-site reports by analyzing and extracting report text features. At the second stage, the classified construction report texts are analyzed with improved frequency-inverse document frequency (TF-IDF) by mutual information to identify and mine construction knowledge. At the third stage, a relation network based on the co-occurrence matrix of the knowledge is presented for visualization and better understanding of the construction on-site information. Actual construction reports are used to verify the feasibility of this approach. The study provides a new approach for handling construction on-site text data which can lead to enhancing management efficiency and practical knowledge discovery for project management.

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