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基于最大熵原理和Fup基函数估计概率密度函数的数值算法

Numerical Algorithms for Estimating Probability Density Function Based on the Maximum Entropy Principle and Fup Basis Functions.

作者信息

Brajčić Kurbaša Nives, Gotovac Blaž, Kozulić Vedrana, Gotovac Hrvoje

机构信息

Faculty of Civil Engineering, University of Split, Architecture and Geodesy, 21000 Split, Croatia.

出版信息

Entropy (Basel). 2021 Nov 23;23(12):1559. doi: 10.3390/e23121559.

Abstract

Estimation of the probability density function from the statistical power moments presents a challenging nonlinear numerical problem posed by unbalanced nonlinearities, numerical instability and a lack of convergence, especially for larger numbers of moments. Despite many numerical improvements over the past two decades, the classical moment problem of maximum entropy (MaxEnt) is still a very demanding numerical and statistical task. Among others, it was presented how Fup basis functions with compact support can significantly improve the convergence properties of the mentioned nonlinear algorithm, but still, there is a lot of obstacles to an efficient pdf solution in different applied examples. Therefore, besides the mentioned classical nonlinear Algorithm 1, in this paper, we present a linear approximation of the MaxEnt moment problem as Algorithm 2 using exponential Fup basis functions. Algorithm 2 solves the linear problem, satisfying only the proposed moments, using an optimal exponential tension parameter that maximizes Shannon entropy. Algorithm 2 is very efficient for larger numbers of moments and especially for skewed pdfs. Since both Algorithms have pros and cons, a hybrid strategy is proposed to combine their best approximation properties.

摘要

从统计幂次矩估计概率密度函数是一个具有挑战性的非线性数值问题,它由不平衡的非线性、数值不稳定性和缺乏收敛性所导致,特别是对于较多数量的矩而言。尽管在过去二十年中有许多数值改进,但经典的最大熵(MaxEnt)矩问题仍然是一项极具挑战性的数值和统计任务。其中,有人提出具有紧支集的Fup基函数如何能够显著改善上述非线性算法的收敛特性,但在不同的应用示例中,高效求解概率密度函数(pdf)仍然存在诸多障碍。因此,除了上述经典的非线性算法1之外,在本文中,我们提出了一种使用指数Fup基函数的最大熵矩问题的线性近似方法,即算法2。算法2通过使用使香农熵最大化的最优指数张力参数来解决仅满足所提出矩的线性问题。算法2对于较多数量的矩非常有效,尤其是对于偏态概率密度函数。由于这两种算法都各有利弊,因此提出了一种混合策略来结合它们的最佳近似特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9cea/8699978/254579c61992/entropy-23-01559-g001.jpg

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