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Multiple widths yield reliable finite differences

机译:多个宽度产生可靠的有限差异

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Many edge finders extract the signs of finite differences of image intensity values. Camera noise renders many of these signs unreliable. Previous algorithms for reducing noise are difficult to analyze, fail to detect faint or closely packed features, or handle restricted classes of features. The author proposes taking finite differences with a range of separations between data points, and choosing the narrowest response with statistically reliable sign. Fine detail is then detected by narrow operators. Faint features are filled in by wide operators, which can more reliably distinguish low-amplitude boundaries from noise. It is shown, both theoretically and empirically, that this method out-performs traditional Gaussian smoothing. Measurements of noise in a real camera system are also presented.
机译:许多边缘发现者提取图像强度值的有限差异的迹象。相机噪音使这些标志中的许多符号不可靠。用于降低噪声的先前算法难以分析,无法检测到微弱或紧密包装的功能,或处理限制的功能。作者提出在数据点之间的一系列间隔中进行有限差异,并在统计上可靠的标志选择最窄的响应。然后通过窄操作员检测细节。通过宽操作员填充微弱的功能,可以更可靠地区分低幅度边界。理论上和经验地显示了这种方法,这种方法出现了传统的高斯平滑。还介绍了真实照相机系统中噪声的测量。

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