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Text analytics for supporting stakeholder opinion mining for large-scale highway projects

机译:用于支持大型公路项目的利益相关者意见挖掘的文本分析

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For large-scale highway projects, late identification of stakeholder concerns often leads to design changes and duplication of effort, which may cause major project delays. This paper proposes a stakeholder opinion mining approach for helping transportation practitioners better identify the types of concerns in the early project stage. The proposed approach includes two major components: (1) stakeholder concern extraction, and (2) stakeholder concern classification. This paper focuses on presenting the proposed methodology and experimental results for stakeholder concern extraction, which extracts the words and phrases that describe stakeholder concerns from stakeholder comments on large-scale highway projects. In developing the proposed stakeholder concern extraction methodology, several supervised machine learning (ML) algorithms were tested and evaluated, and the effect of using a predefined name list as feature was also investigated. All the algorithms were tested on a testing data set of 200 comment sentences, which were selected from a comment collection including 1,849 stakeholder comments on five large-scale highway projects.
机译:对于大型公路项目,利益攸关方的迟到识别往往导致设计变更和重复努力,这可能导致重大项目延误。本文提出了一种利益相关者意见采矿方法,用于帮助运输从业者更好地确定早期项目阶段的关注类型。拟议的方法包括两个主要组成部分:(1)利益相关者涉及提取,(2)利益相关者关注分类。本文侧重于提出利益相关者涉及提取的提出的方法和实验结果,从而提取描述利益相关者对大型公路项目的评论的词语和短语。在开发拟议的利益相关者涉及提取方法中,还测试了几个监督机器学习(ML)算法,并调查了使用预定名称列表的效果。所有算法都在测试数据集200评论句子上进行了测试,这些句子是从评论收集中选择的,包括1,849名利益相关者评论五个大型公路项目。

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