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논문검색

A Multi-scale Segmentation Method of Oil Spills in SAR Images Based on JSEG and Spectral Clustering

초록

영어

Image segmentation is a key step of oil spills detection in SAR images. For the problem that the traditional multi-spectral clustering algorithm with the features extraction by GLCM (Gray-Level Co-occurrence Matrix) has such limitations as direction sensitivities and difficulties in selecting the best feature combination etc., this paper proposes a multi-scale segmentation method of oil spills in SAR images based on JSEG and spectral clustering. Multi-scale J-images are used to extract the multi-features and the Laplace matrix is clustered by the K-means method. Finally, a decision-level fusion strategy is used to fuse the segmentation results from different scales. Two sets of experiments show that, compared to the traditional spectral clustering methods based on the gray feature and multi-textual features, the proposed method has higher accuracy and stronger robustness.

목차

Abstract
 1. Introduction
 2. Method
  2.1. Color Quantization and Feature Extraction
  2.2. Multi-scale Spectral Clustering Segmentation
  2.3. Decision Fusion based on the Voting Mechanism
  2.4. Implementation of Proposed Method
 3. Analysis of Experimental Results
 4. Conclusion
 Acknowledgements
 References

저자정보

  • Chao Wang College of Computer and Information Engineering, Hohai University, Nanjing 211100, P.R. China
  • Li-Zhong Xu College of Computer and Information Engineering, Hohai University, Nanjing 211100, P.R. China, Engineering Research Center of Sensing and Computing, Hohai University, Nanjing, 211100, P.R. China
  • Xin Wang College of Computer and Information Engineering, Hohai University, Nanjing 211100, P.R. China, Engineering Research Center of Sensing and Computing, Hohai University, Nanjing, 211100, P.R. China
  • Feng-Chen Huang College of Computer and Information Engineering, Hohai University, Nanjing 211100, P.R. China

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