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Routine classification through sequence alignment

机译:通过序列对齐进行例行分类

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In this paper we draw a methodological connection between human routine classification and the sequence alignment problem in bioinformatics. We first observe that human days exhibit important time shifts and therefore align them for comparison prior to classification. Our technique is evaluated on bimodal data including GSM and Bluetooth information collected on mobile phones. The introduction of new alignment features is found to significantly improve the accuracy of routine classification.
机译:本文中,我们在生物信息学中汲取了人类常规分类与序列对准问题的方法。我们首先观察到人类的日子表现出重要的时间转移,因此在分类之前将它们与它们相结合。我们的技术在包括在移动电话上收集的GSM和蓝牙信息的双峰数据进行评估。发现引入新的对齐功能,从而显着提高了常规分类的准确性。

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