Title of article :
Applying New Method for Computing Initial Centers of k-Means Clustering with Color Image Segmentation
Author/Authors :
Alasadi, Abbas H. Hassin University of Basra - College of Sci - Dept of Comp Sci, Iraq , Khudhair, Moslem Mohsinn University of Basra - College of Sci - Dept of Comp Sci, Iraq
From page :
116
To page :
124
Abstract :
As a classic clustering method, the traditional k-Means algorithm has been widely used in image processing and computer vision, pattern recognition and machine learning. It is known that the performance of the k-means clustering algorithm depends highly on initial cluster centers. Generally initial cluster centers are selected randomly, so the algorithm could not lead to the unique result. In this paper, we present a method to compute initial centers for k-means clustering. Our method based on an efficient technique for estimating the modes of a distribution. We apply the new method in segmentation phase of color images. The experimental results appeared quite satisfactory
Keywords :
clustering , k , Means algorithm , Image segmentation , Color spaces
Journal title :
Journal of Thi-Qar Science
Journal title :
Journal of Thi-Qar Science
Record number :
2724415
Link To Document :
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