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Correlation-Based Feature Mapping of Crowdsourced LTE Data

机译:基于相关的众包LTE数据的特征映射

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There have been efforts taken by different research projects to understand the complexity and the performance of a mobile broadband network. Various mobile network measurement platforms are proposed to collect performance metrics for analysis. Data integration would provide more thorough data analyses as well as prediction and decision models from one dataset to another. The crucial part of the data integration is to find out, whether two datasets have corresponding features (performance metrics). However, finding common features across datasets is a challenging task. For example, features might: 1) have similar names but be different metrics, 2) have different names but be similar metrics, or 3) be same metrics but have differences in the underlying methodology. We designed a feature mapping methodology between two crowdsourced LTE measurement-based datasets. Our method is based on correlations between the features and the mapping algorithm is solving a maximum constraint satisfaction problem (CSP). We define our constraints as inequality patterns between the correlation coefficients of the measured features. Our results show that the method maps measurement features based on their correlation coefficients with high confidence scores (between 0.78 to 1.0 depending on the amount of features). We observe that mapping score increases as a function of the amount of features. Altogether, our results show that this methodology can be used as an automated tool in the measurement data integration.
机译:不同的研究项目已经努力了解移动宽带网络的复杂性和性能。建议各种移动网络测量平台收集分析的性能度量。数据集成将提供更全面的数据分析以及从一个数据集到另一个数据集的预测和决策模型。数据集成的关键部分是找出两个数据集是否具有相应的功能(性能度量)。但是,在数据集中发现共同点是一个具有挑战性的任务。例如,功能可能:1)具有类似的名称,但是不同的指标,2)具有不同的名称,但具有相似的度量,或3)是相同的度量,但具有底层方法的差异。我们在两个众包LTE测量的数据集之间设计了一种特征映射方法。我们的方法基于特征与映射算法之间的相关性,解决了最大约束满足问题(CSP)。我们将我们的约束定义为测量功能的相关系数之间的不等式模式。我们的结果表明,该方法根据具有高置信区分的相关系数(根据特征量为0.78至1.0之间的相关系数映射测量特征。我们观察到,映射得分随着特征量的函数而增加。完全是我们的结果表明,该方法可以用作测量数据集成中的自动工具。

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