模式建模和特征参数估计

I. Grabec, E. Govekar
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引用次数: 0

摘要

二维模式代表了生成它的过程的指纹。因此,可以期望从模式中提取有关生产过程的信息。本文提出了一种用于混沌二维图形建模和特征参数估计的非参数统计方法。它基于从代表数据库的已知二维模式中提取的样本的联合概率密度函数。通过将新图案的部分与从数据库中提取的样本进行比较,可以再现具有未知生产过程的新图案。由于数据库中的样品还包含有关生产过程的信息,因此可以在复制图案的同时估计相关参数和生产过程类型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modelling of patterns and estimation of characteristic parameters
A two-dimensional pattern represents a fingerprint of the process that generated it. It is therefore expected that the information about the production process can be extracted from the pattern. In this paper, a non-parametric statistical method for modelling chaotic two-dimensional patterns and the estimation of the characteristic parameters is proposed. It is based on the joint probability density function of samples taken from known two-dimensional patterns representing a database. A new pattern with an unknown production process is reproduced by comparing parts of the new pattern with samples taken from the database. Because the samples in the database also include information about the production process, relevant parameters and the type of production process can be estimated simultaneously with the reproduction of patterns.
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