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首页> 外文期刊>Journal of mathematical imaging and vision >Generalized Fourier descriptors with applications to objects recognition in SVM context
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Generalized Fourier descriptors with applications to objects recognition in SVM context

机译:广义傅里叶描述符及其在SVM上下文中对对象识别的应用

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This paper is about generalized Fourier descriptors, and their application to the research of invariants under group actions. A general methodology is developed, crucially related to Pontryagin's, Tannaka's, Chu's and Tatsuuma's dualities, from abstract harmonic analysis. Application to motion groups provides a general methodology for pattern recognition. This methodology generalizes the classical basic method of Fourier-invariants of contours of objects. In the paper, we use the results of this theory, inside a Support-Vector-Machine context, for 3D objects-recognition. As usual in practice, we classify 3D objects starting from 2D information. However our method is rather general and could be applied directly to 3D data, in other contexts. Our applications and comparisons with other methods are about human-face recognition, but also we provide tests and comparisons based upon standard data-bases such as the COIL data-base. Our methodology looks extremely efficient, and effective computations are rather simple and low cost. The paper is divided in two parts: first, the part relative to applications and computations, in a SVM environment. The second part is devoted to the development of the general theory of generalized Fourier-descriptors, with several new results, about their completeness in particular. These results lead to simple formulas for motion-invariants of images, that are "complete" in a certain sense, and that are used in the first part of the paper. The computation of these invariants requires only standard FFT estimations, and one dimensional integration.
机译:本文是关于广义傅里叶描述子及其在群体作用下不变量研究中的应用。通过抽象谐波分析,开发了一种与庞特里亚金,塔纳卡,楚和辰马的对偶至关重要的通用方法。应用于运动组提供了模式识别的通用方法。这种方法概括了对象轮廓的傅立叶不变式的经典基本方法。在本文中,我们在Support-Vector-Machine上下文中使用该理论的结果进行3D对象识别。与实践中一样,我们从2D信息开始对3D对象进行分类。但是,我们的方法相当通用,在其他情况下可以直接应用于3D数据。我们的应用程序和与其他方法的比较是关于人脸识别的,但是我们也基于标准数据库(例如COIL数据库)提供测试和比较。我们的方法看起来非常有效,有效的计算相当简单且成本低廉。本文分为两部分:第一,在SVM环境中与应用程序和计算有关的部分。第二部分致力于广义傅里叶描述符的一般理论的发展,并取得了一些新的成果,特别是关于它们的完整性。这些结果导致了图像运动不变性的简单公式,它们在某种意义上是“完整的”,并在本文的第一部分中使用。这些不变量的计算仅需要标准FFT估计和一维积分。

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