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Ore image segmentation is the most important and difficult step for automatic estimation of the ore size distribution. In this chapter, we propose a method for the segmentation of ore images in an ore size distributions system based on the machine vision. Firstly, the method uses mean shift algorithm to detect the dark areas among ore particles. And then a series of filtering, threshold, morphologic operations, and watershed transform processes are designed to determine ore particle sizes from digital images. The experimental results show that our method can separate ore particles accurately and automatically estimate the size distributions. © 2014 Springer Science+Business Media New York.
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