Jump Surface Estimation, Edge Detection, And Image Restoration
نویسنده
چکیده
Surface estimation is important in many applications. When conventional smoothing procedures, such as the running averages, local polynomial kernel smoothing procedures, and smoothing spline procedures, etc., are used for estimating jump surfaces from noisy data, jumps would be blurred at the same time when noise is removed. In recent years, new smoothing methodologies have been proposed in the statistical literature for detecting jumps in surfaces and for estimating jump surfaces with jumps preserved. We provide a review of these methodologies in this paper. Because a monochrome image can be regarded as a jump surface of the image intensity function, with jumps at the outlines of objects, edge detection and image restoration problems in image processing are closely related to the jump surface estimation problem in statistics. In this paper, we also review major methodologies on edge detection and image restoration, and discuss about connections and differences between these methods and the related methods in the statistical literature.
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