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Online kernel density estimation using fuzzy logic

机译:基于模糊逻辑的在线核密度估计

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摘要

In this paper, a fuzzy method is proposed to estimate kernel density function online. To achieve this goal, Gaussian mixture model is generated by the fuzzy algorithm. Defuzzifier operator is modified to make it suitable for this application. Means and variances of the model are adapted using observed data in each new sample. Then, rule weights are tuned by minimising the expected risk function of the estimated and true PDFs. In contrast to the existing approaches, our approach does not require fine-tuning parameters for a specific application, specific forms of the target distributions are not assumed, and temporal constraints are not considered on the observed data. The algorithm is simple and easy to use. Simulation results show the capability of the proposed algorithm in online and accurate estimation of kernel density function.
机译:本文提出了一种模糊估计在线核密度函数的方法。为了实现这一目标,通过模糊算法生成了高斯混合模型。修改了去模糊器运算符以使其适合于此应用程序。使用每个新样本中的观察数据来调整模型的均值和方差。然后,通过最小化估计和真实PDF的预期风险函数来调整规则权重。与现有方法相比,我们的方法不需要为特定应用微调参数,不假设目标分布的特定形式,并且对观察到的数据不考虑时间限制。该算法简单易用。仿真结果表明,该算法具有在线,准确估计核密度函数的能力。

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