通过监控和可视化协作来支持工业流程

M. Biancucci, Massimo Mecella, Jordan Janeiro, S. Lukosch
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引用次数: 1

摘要

在现代动态工业工程协作环境中,需要专业人员,如促进者或会议协调员,在协作过程之前,期间和之后指导参与者,以评估个人和小组的表现以及想法产生,讨论等的水平。本文提出了一个协作支持系统REGALMINER,它能够利用文本挖掘和信息检索技术,如情感分析(又称意见挖掘)和关键字提取,从协作数据流中捕获、处理、监控和可视化元数据。分析产生一组分数,代表各种会议指标,可用于监测和评估正在进行的协作过程的动态,并提供自动干预以提高其有效性和效率。信息可视化技术用于向当前协作过程的参与者或会议协调员展示分析结果,会议协调员在运行时监督会议,防止出现与会议议程有关的偏差,并进行必要的干预。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Supporting industrial processes by monitoring and visualizing collaborations
In modern dynamic industrial engineering collaboration contexts, professionals such as the facilitators or meeting coordinators, are required to guide participants before, during and after a collaborative process in order to evaluate individual and group performances and the levels of idea generation, discussion, etc. This paper presents a collaboration support system, REGALMINER, that is able to capture, process, monitor and also visualize metadata from collaboration data streams taking advantage of text mining and information retrieval techniques like sentiment analysis (a.k.a. opinion mining) and keyword extraction. The analysis produces a set of scores that represent various meeting indicators that can be used to monitor and evaluate the dynamics of an ongoing collaborative process and to provide automatic interventions to enhance its effectiveness and efficiency. Information visualization techniques are used to present the results of the analysis to the participants of the current collaborative process or to the meeting coordinator, who supervises the meeting at runtime preventing the occurrence of deviations with respect to the meeting agenda and to make necessary interventions.
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