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Dual stack filters and the modified difference of estimates approach to edge detection

机译:双栈滤波器和修正的估计差异法进行边缘检测

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The theory of optimal stack filtering has been used in the difference of estimates (DoE) approach to the detection of intensity edges in noisy images. The DoE approach is modified by imposing a symmetry condition on the data used to train the two stack filters. Under this condition, the stack filters obtained are duals of each other. Only one filter must therefore be trained; the other is simply its dual. This new technique is called the symmetric difference of estimates (SDoE) approach. The dual stack filters obtained under the SDoE approach are shown to be comparable. This allows the difference of these two filters to be represented by a single equivalent edge operator. This latter result suggests that an edge operator can be found by directly training a (possibly nonpositive) Boolean function to be used on each level of the threshold decomposition architecture. This approach, which is called the threshold Boolean filter (TBF) approach, requires less training time but produces operators that are less robust than those produced by the SDoE approach. This is demonstrated and interpreted via comparisons of results for natural images.
机译:最佳堆栈滤波理论已在估计差异(DoE)方法中用于检测噪声图像中的强度边缘。通过在用于训练两个堆栈过滤器的数据上施加对称条件,可以修改DoE方法。在这种条件下,获得的堆栈过滤器是彼此的对偶。因此,仅必须训练一个过滤器;另一个就是它的双重性。这种新技术称为估计对称差异(SE)方法。在se方法下获得的双叠层滤波器显示出可比性。这使得这两个滤波器的差异可以由一个等效的边缘运算符表示。后一个结果表明可以通过直接训练要在阈值分解体系结构的每个级别上使用的(可能是非正)布尔函数来找到边缘算子。这种方法称为阈值布尔滤波器(TBF)方法,需要较少的训练时间,但生成的运算符不如sE方法生成的运算符。通过比较自然图像的结果来证明和解释这一点。

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