室内定位的核Fisher判别分析

Nhan Vo Than Ngo, Kyung Yong Park, J. G. Kim
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引用次数: 0

摘要

本文引入核费雪判别分析(Kernel Fisher Discriminant Analysis, KFDA),将我们的接收信号强度(RSS)测量数据库转换到一个更小的维度空间,以尽可能最大化参考点(RP)之间的差异。通过KFDA,我们可以比其他方法更有效地利用RSS数据,从而获得更好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Kernel Fisher Discriminant Analysis for Indoor Localization
In this paper we introduce Kernel Fisher Discriminant Analysis (KFDA) to transform our database of received signal strength (RSS) measurements into a smaller dimension space to maximize the difference between reference points (RP) as possible. By KFDA, we can efficiently utilize RSS data than other method so that we can achieve a better performance.
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