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Ranking of sensitive positions based on statistical parameters and cross correlation analysis

机译:基于统计参数和互相关分析的敏感职位排名

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Condition Based Monitoring of a machine refers to analysis of the health status of the machine and its components. For this purpose, acoustic data is acquired from various positions on the machine. Acquiring data from large number of sensor positions is not economically viable. It is preferable to have an effective monitoring system that is faster in data acquisition without compromising on the robustness of the system. In fact taking data from too many positions would directly affect its reliability due to various kinds of noises. Therefore there is a need to locate sensitive positions on a machine. These sensitive positions are expected to exhibit appropriate fault characteristics in a much better way as compared to other sensor positions. This paper presents a novel method for ranking sensitive positions based on statistical parameters. While selecting the required number of sensitive positions, cross-correlation among the positions is taken into consideration to avoid redundancy. Furthermore, a standalone application for implementing the same has been developed on Android platform. The scheme and application can be used for many other applications as well, where data is acquired from multiple sensors.
机译:机器的基于状态的监视是指对机器及其组件的健康状况进行分析。为此,从机器上的各个位置获取声学数据。从大量传感器位置获取数据在经济上不可行。最好有一个有效的监视系统,该系统的数据采集速度更快,而且不会影响系统的健壮性。实际上,由于各种噪声,从太多位置获取数据将直接影响其可靠性。因此,需要在机器上定位敏感位置。与其他传感器位置相比,这些敏感位置有望以更好的方式表现出适当的故障特性。本文提出了一种基于统计参数对敏感位置进行排名的新方法。在选择所需数量的敏感位置时,考虑位置之间的互相关以避免冗余。此外,已经在Android平台上开发了用于实现该功能的独立应用程序。该方案和应用程序也可以用于许多其他应用程序,这些数据是从多个传感器获取的。

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