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Features extraction based on the Discrete Hartley Transform for closed contour

机译:基于离散Hartley变换的闭合轮廓特征提取

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摘要

In this paper the authors propose a new closed contour descriptor that could be seen as a Feature Extractor of closed contours based on the Discrete Hartley Transform (DHT), its main characteristic is that uses only half of the coefficients required by Elliptical Fourier Descriptors (EFD) to obtain a contour approximation with similar error measure. The proposed closed contour descriptor provides an excellent capability of information compression useful for a great number of AI applications. Moreover it can provide scale, position and rotation invariance, and last but not least it has the advantage that both the parameterization and the reconstructed shape from the compressed set can be computed very efficiently by the fast Discrete Hartley Transform (DHT) algorithm. This Feature Extractor could be useful when the application claims for reversible features and when the user needs and easy measure of the quality for a given level of compression, scalable from low to very high quality.
机译:在本文中,作者提出了一种新的闭合轮廓描述符,可以将其视为基于离散Hartley变换(DHT)的闭合轮廓特征提取器,其主要特征是仅使用椭圆傅立叶描述符(EFD)所需系数的一半。 )以获得具有相似误差度量的轮廓近似值。提出的封闭轮廓描述符提供了出色的信息压缩能力,可用于大量AI应用程序。此外,它可以提供比例,位置和旋转不变性,最后但并非最不重要的一点是,它的优点是可以通过快速离散Hartley变换(DHT)算法非常有效地计算参数化和从压缩集重构的形状。当应用程序要求具有可逆功能时,并且当用户需要并轻松测量给定压缩级别(从低到高的质量)时,此特征提取器可能会很有用。

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