A Kernel function optimization and selection algorithm based on cost function maximization

Bin Zhu, Zhengdong Cheng, H. Wang
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引用次数: 2

Abstract

Kernel function optimization and selection is an open and challenging problem in statistic learning theory and kernel methods research area at present. The existing kernel optimization algorithms usually work in specific application, and it is efficient when used with one kind of kernel function. A kernel optimization and selection algorithm based on cost function maximization is proposed. Compared with present methods, it was applied to different kinds of kernel functions and it integrates kernel optimization and selection. The proposed method is applied to the application of infrared (IR) dim and small target detection based on Kernel RLS (KRLS) algorithm. The validity of the optimization and selection method is demonstrated by experiments.
一种基于代价函数最大化的核函数优化选择算法
核函数优化与选择是目前统计学习理论和核方法研究领域的一个开放性和挑战性问题。现有的核优化算法通常只适用于特定的应用场合,且只适用于某一类核函数时是有效的。提出了一种基于代价函数最大化的核优化选择算法。与现有方法相比,该方法适用于不同类型的核函数,集核优化和核选择于一体。将该方法应用于基于核RLS算法的红外弱小目标检测中。通过实验验证了优化选择方法的有效性。
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