基于小波变换的图像边缘检测方案

K. Kumar, Nadir Mustafa, Jian-ping Li, R. Shaikh, Saeed Ahmed Khan, Asif Khan
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引用次数: 22

摘要

时至今日,小波变换仍然是一种快速应用于信号分析的技术。对于图像边缘检测,小波变换为选择要检测的图像细节的大小提供了便利。小波变换能很容易地分离低频和高频,这对边缘检测非常重要。小波尺度设置检测边缘的大小。对于离散小波变换,许多信号都要经过小波滤波器来选择尺度。对于二维图像,分别按照水平函数和垂直函数进行小波分析,并分别检测边缘。本文采用了Daubachies小波变换,对二维图像进行三层分解,并在每一层分离出低频和高频。随着Daubachies小波给出适当的边缘在三个层次的黑白图像以及一些鬼边。一些阈值已经被用来迎合这些幽灵边缘。对于图像中的边缘检测,开发了MATLAB代码,用于测试二维场景。研究了二维图像对象。目的是利用真实物体的小波变换对二维图像进行测试。
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Image edge detection scheme using wavelet transform
The Wavelet Transform remained quite rapidly used technique today for analysing the signals. For image edge detection, wavelet transform provides facility to select the size of the image details that will be detected. Wavelets transform separates the lower frequencies and higher frequencies easily, which is prime important for edge detection. The wavelet scale sets the size of detected edges. For discrete wavelet transform, many signals are passed through wavelet filter for choice of the scale. For 2-D image, wavelet analysis is carried out in terms of horizontal and vertical function and edges are detected separately. In this paper the Daubachies wavelet transform has been used, where 2-D image is decomposed at three levels and at each level lower and higher frequencies have been separated. As Daubachies wavelet gives appropriate edge at three levels for black and white image along with some ghost edges. Some threshold has been used to cater these ghost edges. For edges detection in an image, a MATLAB code have been developed, which tests the two-dimensional scene. Two dimensional image objects have been investigated. The intention was to test 2D images by using wavelet transform of real objects.
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