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Combining automatically and manually collected data for project monitoring and control

机译:组合自动和手动收集的项目监控和控制数据

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Purpose In an extended research program, started about two decades ago, a number of models have been developed for monitoring and controlling construction. These include models for the control of materials, earthmoving equipment, guardrail installation and labor. All these models convert data on the actual project performance that is obtained through Automated Data Collection (ADC) technologies, into information that can be compared with the project plan. Tests that were conducted with these models indicate that the use of ADC can substantially improve project control, but that in the areas that were studied manually obtained data is required as well, due to the limitations of existing ADC technologies, and due to the complexity and unpredictability of human actions. The proposed paper will discuss how manually and automatically collected data can be combined for project monitoring and control. Method In addition to ADC, manual data is currently required to support project monitoring - i.e., the identification of deviations from the planned performance that will likely lead to significant problems in the project. For example, tests show that in order to obtain information on the actual duration of activities, a manual recording of their completion time is required in addition to the automated tracking of workers. This can be facilitated through the use of data taken from a computerized daily site report. These data are transformed by a progress monitoring model into information regarding the actual progress, and then transferred to scheduling software. Project control involves taking the measures necessary to correct or minimize significant deviations. However, it is often difficult to automatically identify the actual impact these measures might have on the project. To facilitate project control, a graph-based model that can be used to identify the project elements affected by proposed measures, is expanded to include data that is manually added by users. This data includes tacit knowledge regarding existing buffers in the project, and decisions by project team members on the way in which measures will be implemented. Results & Discussion Different methods can be used for the integration of data from manual and automated sources. A model that uses the daily site report for project monitoring was implemented in a computerized prototype and tested in a construction project. Another model, that combines a graph-based representation of the project with manual data from project team members for project control, was tested in simulations with experts. The results of these tests were positive, and demonstrated the usefulness of the proposed approach.
机译:目的在扩展研究项目,开始大约二十年前,一些车型已经开发出用于监测和控制建设。这些措施包括对材料的控制,土方设备,安装护栏和劳动模范。所有这些模型转换上通过自动数据采集(ADC)技术获得的,到可与项目计划进行对比信息的实际项目的性能数据。用这些模型进行的,测试表明,使用ADC的可以大大提高项目的控制,但在研究人工获得的数据方面的需要,以及由于现有ADC技术的限制,并且由于复杂性和人类行为的不可预测性。拟议本文将讨论手动或自动收集的数据如何结合项目的监测和控制。方法除了ADC,手工数据当前需要支援项目监督 - 即从计划性能,这将有可能导致项目显著问题偏差的鉴定。例如,试验表明,为了获得对活动的实际持续时间的信息,其完成时间的手动记录除了工人的自动跟踪是必需的。这可以通过使用电脑控制的日常现场报告得到的数据来促进。这些数据由一个进度监控模式进入信息有关的实际进展转化,然后转移到调度软件。项目控制涉及采取必要的纠正或减少显著偏差的措施。然而,往往很难自动识别的实际影响,这些措施可能对这个项目。为了便于项目控制,可被用来识别影响提出的措施的项目元素基于图形的模型,被扩展到包括被由用户手动添加的数据。此数据包括关于通过有关措施将被实施的方式的项目团队成员在项目中的现有缓冲区和决策隐性知识。结果和讨论不同的方法可被用于从手动和自动源的集成数据。使用项目监督网站的日常报告的模型在计算机化的原型实现,并在建设项目进行测试。另一种模式,它结合了从项目组成员项目控制手动数据项目的基于图的表示,在模拟测试与专家。这些测试的结果呈阳性,并证明了该方法的有效性。

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