Comparative Performance Study of Linear and Gaussian Kernel SVM Implementations for Phase Scintillation Detection

Caner Savas, F. Dovis
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引用次数: 7

Abstract

The aim of this paper is to analyze the design of support vector machine (SVM)algorithm that belongs to the class of supervised machine learning algorithms for phase scintillation detection and to discuss the performance comparison of linear and Gaussian kernel implementations by considering the design parameter's effects. The algorithm processes the phase scintillation indices computed for GPS L1 signals through the designed linear and Gaussian kernel SVM models. The study is based on the real GNSS signals which are affected by phase scintillations, collected at South African Antarctic research base (SANAE IV).
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线性和高斯核支持向量机在相位闪烁检测中的性能比较研究
本文的目的是分析用于相位闪烁检测的支持向量机(SVM)算法的设计,并在考虑设计参数影响的情况下,讨论线性核实现和高斯核实现的性能比较。该算法通过设计的线性和高斯核支持向量机模型对GPS L1信号的相位闪烁指标进行处理。该研究基于南非南极研究基地(SANAE IV)收集的受相位闪烁影响的真实GNSS信号。
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