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Image segmentation by histogram thresholding using fuzzy sets
1Dept. of Electr. Eng., Fed. Univ. of Santa Catarina, Brazil. orlando@linse.ufsc.br
This study introduces a novel fuzzy approach for histogram thresholding, improving image segmentation for multimodal histograms. The method overcomes limitations of traditional techniques by assessing gray-level similarity, enhancing accuracy in complex image analysis.
Area of Science:
- Image processing and computer vision.
- Digital image analysis and segmentation.
- Pattern recognition and machine learning.
Background:
- Conventional histogram thresholding methods often fail with multimodal histograms.
- Minimization of criterion functions can lead to suboptimal threshold selection.
- Local minima in thresholding algorithms limit their effectiveness for complex image data.
Purpose of the Study:
- To develop an improved histogram thresholding method for images with multimodal histograms.
- To overcome the limitations of conventional thresholding techniques, particularly local minima.
- To enhance image segmentation accuracy using a novel fuzzy similarity measure.
Main Methods:
- Proposing a histogram thresholding approach based on gray-level similarity.
- Utilizing a fuzzy measure to quantify the similarity between gray levels.
- Developing a method to circumvent local minima issues inherent in traditional algorithms.
Main Results:
- The proposed fuzzy-based histogram thresholding method effectively segments images with multimodal histograms.
- Experimental results confirm the approach's superiority over conventional methods for bimodal and multimodal cases.
- The technique successfully overcomes the problem of local minima in threshold selection.
Conclusions:
- The fuzzy measure-based histogram thresholding offers a robust solution for images with complex intensity distributions.
- This approach significantly improves image segmentation performance compared to existing methods.
- The method provides a reliable tool for accurate image analysis in various applications.
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