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An Approximation Method Of The Quadratic Discriminant Function And Its Application To Estimation Of High-dimensional Distribution

机译:二次判别函数的逼近方法及其在高维分布估计中的应用

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摘要

In statistical pattern recognition, it is important to estimate the distribution of patterns precisely to achieve high recognition accuracy. In general, precise estimation of the parameters of the distribution requires a great number of sample patterns, especially when the feature vector obtained from the pattern is high-dimensional. For some pattern recognition problems, such as face recognition or character recognition, very high-dimensional feature vectors are necessary and there are always not enough sample patterns for estimating the parameters. In this paper, we focus on estimating the distribution of high-dimensional feature vectors with small number of sample patterns. First, we define a function, called simplified quadratic discriminant function (SQDF). SQDF can be estimated with small number of sample patterns and approximates the quadratic discriminant function (QDF). SQDF has fewer parameters and requires less computational time than QDF. The effectiveness of SQDF is confirmed by three types of experiments. Next, as an application of SQDF, we propose an algorithm for estimating the parameters of the normal mixture. The proposed algorithm is applied to face recognition and character recognition problems which require high-dimensional feature vectors.
机译:在统计模式识别中,重要的是精确估计模式的分布以实现高识别精度。通常,精确估计分布参数需要大量样本模式,尤其是从模式中获取的特征向量是高维时。对于某些模式识别问题(例如人脸识别或字符识别),非常高维的特征向量是必需的,并且始终没有足够的样本模式来估计参数。在本文中,我们集中于估计少量样本模式的高维特征向量的分布。首先,我们定义一个函数,称为简化二次判别函数(SQDF)。可以使用少量样本模式来估计SQDF,并且可以近似二次判别函数(QDF)。与QDF相比,SQDF具有更少的参数并且需要更少的计算时间。 SQDF的有效性已通过三种类型的实验得到证实。接下来,作为SQDF的应用,我们提出了一种估计正常混合物参数的算法。将该算法应用于需要高维特征向量的人脸识别和字符识别问题。

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