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首页> 外文期刊>IEEE Transactions on Signal Processing >Correntropy: Properties and Applications in Non-Gaussian Signal Processing
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Correntropy: Properties and Applications in Non-Gaussian Signal Processing

机译:熵:性质和在非高斯信号处理中的应用

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摘要

The optimality of second-order statistics depends heavily on the assumption of Gaussianity. In this paper, we elucidate further the probabilistic and geometric meaning of the recently defined correntropy function as a localized similarity measure. A close relationship between correntropy and M-estimation is established. Connections and differences between correntropy and kernel methods are presented. As such correntropy has vastly different properties compared with second-order statistics that can be very useful in non-Gaussian signal processing, especially in the impulsive noise environment. Examples are presented to illustrate the technique.
机译:二阶统计量的最优性在很大程度上取决于高斯假设。在本文中,我们进一步阐明了最近定义的肾上腺皮质功能作为局部相似性度量的概率和几何意义。建立了熵和M估计之间的密切关系。提出了熵和核方法之间的联系和区别。与第二阶统计量相比,这种熵具有极大不同的性质,在非高斯信号处理中,尤其是在脉冲噪声环境中,二阶统计量可能非常有用。举例说明了该技术。

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