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首页> 外文期刊>Journal of signal processing systems for signal, image, and video technology >Fractional Fourier-Radial Transform for Digital Image Recognition
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Fractional Fourier-Radial Transform for Digital Image Recognition

机译:数字图像识别的分数傅里叶径向变换

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摘要

This paper presents a new system for pattern recognition in digital images, called Fractional Fourier-Radial Transform, invariant to translation, scale and rotation (TSR invariant) taking advantage of the well-known properties of some integral transform as Fourier Transform, Mellin Transform and the Radial Hilbert Transform. The main contribution of this work is the use of the Fractional Fourier Transform to avoid, or reduce the overlap between results due to the optimal order selection for each reference image, assuming alpha=beta for computing optimization, which helps to get a higher difference between the reference images spectrum. This system was tested using different species of phytoplankton obtaining a level of confidence of at least 92.68% invariant to position, size, and rotation, supporting scale variations of +/- 20%. The mean of the highest confidence values for the scale variation correlations is 98.47%, for rotation variation correlations is 100%, and for the rotation and scale variation correlations is 98.15%. The testing dataset images are selected due to their morphology complexity; they have a real pattern to be recognized instead of using a test-book data set.
机译:本文提出了一种新系统,用于数字图像中的模式识别,称为分数傅里叶径向变换,不变于转换,刻度和旋转(TSR不变)利用一些整体变换的众所周知的属性作为傅立叶变换,MELLIN变换和径向希尔伯特变换。这项工作的主要贡献是使用分数傅里叶变换来避免,或者由于每个参考图像的最佳顺序选择而降低结果之间的重叠,假设alpha = beta用于计算优化,这有助于获得更高的差异参考图像频谱。使用不同种类的浮游植物测试该系统,获得至少92.68%不变的置信度,以定位,尺寸和旋转,支撑+/- 20%的尺度变化。刻度变化相关性最大置信度值的平均值为98.47%,对于旋转变化相关性为100%,并且对于旋转和比例变化相关性为98.15%。由于它们的形态复杂性,选择了测试数据集图像;它们具有要识别的真实模式,而不是使用测试书数据集。

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