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Titlebook: Genetic Learning for Adaptive Image Segmentation; Bir Bhanu,Sungkee Lee Book 1994 Springer Science+Business Media New York 1994 Navigation

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https://doi.org/10.1007/978-3-322-82774-627, 35, 39, 55]. In this chapter, we first briefly discuss techniques based on edge detection, and region splitting and region growing, and then present the details of the . image segmentation algorithm [41, 61] that has been used in this research.
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Wirtschaft als Untersuchungsgegenstand,a controlled set of images in which we constrain the elements of the scene as well as the environmental conditions. The variation between images is limited to changes in the lighting intensity for these experiments, the position of the light source remains constant. In the next chapter, we will present experiments on outdoor color imagery.
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Wirtschaftende Personen und Institutionen,re more extensive due to the changing position and intensity of the sun. This movement creates varying object highlights, moving shadows, and many subtle contrast changes. Imagery of this type allows us to monitor the segmentation system’s ability to compensate for changing real-world conditions.
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Book 1994on, photointerpretation, etc. Allsubsequent tasks, such as feature extraction, object detection, andobject recognition, rely heavily on the quality of segmentation. Oneof the fundamental weaknesses of current image segmentation algorithmsis their inability to adapt the segmentation process as real-w
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https://doi.org/10.1007/978-3-663-16174-5e system described in Chapter 4. The hybrid search technique combines genetic algorithms with a hill climbing technique. Experimental results are provided that compare the performance achieved in these two systems, the baseline adaptive image segmentation system and the adaptive image segmentation system with a hybrid search scheme.
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