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Efficient Mean/Sigma Estimation at Arbitrary Spatial Positions with Arbitrary Scales within A 2D Image

机译:在2D图像中具有任意空间位置的高效平均值/ Sigma估计

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This paper contributes a novel two-step method for estimating local statistical image features: the mean and the standard deviation (σ) of pixel intensities, within random-access ROIs. In the first step, three summation maps will be created with O(n) computational complexity for the entire image; based on such maps the area, the mean intensity as well as the σ of an arbitrarily defined rectangular ROI could be calculated by fixed and limited arithmetic operations on scalar values. Without any repeated calculation on individual pixels, this method provides a promising efficiency and flexibility for further image analysis based on local statistical features. For instance, by performing the "zero-mean-σ-normalization" as fast post-processing on arbitrary image overlaps rather than performing it as slower pre-processing on individual pixels, this paper further contributes a non-classical normalized cross-correlation method for general image registration beyond the scope of (single) template matching.
机译:本文有助于估计本地统计图像特征的新型两步方法:在随机访问ROI中的像素强度的平均值和标准偏差(σ)。在第一步中,将以O(n)整个图像的计算复杂度创建三个求解映射;基于这样的地图,可以通过对标量值的固定和有限的算术运算来计算任意定义的矩形ROI的平均强度以及任意定义的矩形ROI的σ。没有对各个像素的任何重复计算,该方法提供了基于本地统计特征的进一步图像分析的有希望的效率和灵活性。例如,通过在任意图像上执行“零均值Σ - 归一化”,而不是在各个像素上执行作为更慢的预处理,而不是在各个像素上执行较慢的预处理,还提出了非经典的归一化跨相关方法对于超出(单个)模板匹配范围的一般图像配准。

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