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An Affine Invariant Function using PCA Bases with an Application to Within-Class Object Recognition

机译:使用PCA基的仿射不变函数及其在类内对象识别中的应用

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The problem of shape-based recognition of objects under affine transformations is considered. We focus on the construction of a robust and highly discriminative affine invariant function that can be used for within-class object recognition applications. Using the boundaries of the objects of interest, a training scheme, based on principal component analysis (PCA), is proposed to derive a set of basis functions with desired properties. The derived bases are then used for the construction of a novel affine invariant function. The proposed invariant function is evaluated for the problem of aircraft silhouette identification and appears to achieve comparable performance to a popular wavelet-based affine invariant function. At the same time, the proposed framework is much simpler than that based on wavelet analysis
机译:考虑了仿射变换下基于形状的物体识别问题。我们关注于可用于类内对象识别应用程序的健壮且高度区分的仿射不变函数的构造。利用感兴趣对象的边界,提出了一种基于主成分分析(PCA)的训练方案,以得出具有所需属性的一组基础函数。然后将得出的碱基用于构建新的仿射不变函数。针对飞机轮廓识别问题评估了所提出的不变函数,并且该函数似乎可以实现与流行的基于小波的仿射不变函数相当的性能。同时,所提出的框架比基于小波分析的框架要简单得多。

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