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A MEASURE OF THE INFORMATION LOSS FOR INSPECTION POINT REDUCTION

机译:检验点减少信息损失的衡量标准

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Since the vehicle program in automotive industry gets more and more extensive, the costs related to inspection increase. Therefore, there are needs for more effective inspection preparation. In many situations, a large number of inspection points are measured, despite the fact that only a small subset of points is needed. A method, based on cluster analysis, for identifying redundant inspection points has earlier been successfully tested on industrial cases. Cluster analysis is used for grouping the variables into clusters, where the points in each cluster are highly correlated. From every cluster only one representing point is selected for inspection. In this paper the method is further developed and multiple linear regression is used for evaluating how much of the information that is lost when discarding an inspection point. The information loss can be quantified using an efficiency measure based on linear multiple regression, where the part of the variation in the discarded variables that can be explained by the remaining variables is calculated. This measure can be illustrated graphically and that helps to decide how many clusters that should be formed, i.e. how many inspection points that can be discarded.
机译:由于汽车行业的车辆程序越来越广泛,因此与检验的成本增加。因此,需要更有效的检查准备。在许多情况下,衡量了大量检查点,尽管只需需要一个小的点子集即可。在工业案例上成功测试了基于集群分析的方法,用于识别冗余检查点。集群分析用于将变量分组成簇,其中每个簇中的点高度相关。从每个群集中只选择一个代表点进行检查。在本文中,进一步开发了该方法,并且使用多元线性回归来评估丢弃检查点时丢失的信息的数量。可以使用基于线性多元回归的效率度量来量化信息丢失,其中计算可以通过剩余变量解释的丢弃变量的变化部分。该措施可以图形方式示出,有助于决定应该形成的簇,即可以丢弃多少检查点。

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