Detection of Lung Cancer Using CT Images Based on Novel PSO Clustering
Publish place: 14th International Industrial Engineering Conference
Publish Year: 1396
Type: Conference paper
Language: English
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IIEC14_061
Index date: 17 August 2018
Detection of Lung Cancer Using CT Images Based on Novel PSO Clustering abstract
Lung cancer is one of the most dangerous diseases that cause a large number of deaths. Early detection and analysis can be very helpful for successful treatment. Image segmentation plays a key role in the early detection and diagnosis of lung cancer. K-means algorithm and classic PSO clustering are the most common methods for segmentation that have poor outputs. In this article, we propose a new modified PSO method. The performance of the proposed algorithm is compared to that of K-means and classic PSO clustering. The obtained results show that the new PSO clustering has better results as compared to the other methods. Comparison between the proposed method and classic PSO, in terms of fitness function and convergence of fitness function indicate that the proposed method is more effective in detecting lung cancer
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Detection of Lung Cancer Using CT Images Based on Novel PSO Clustering authors
Fatemeh Sadeghi
Department of Industrial Engineering and Management Systems, Amirkabir University of Technology,Thehran,Iran
Abbas Ahmadi
Department of Industrial Engineering and Management Systems, Amirkabir University of Technology,Thehran,Iran