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Issue title: Artificial Intelligence for Medical Image Processing
Guest editors: Xiaolong Li
Article type: Research Article
Authors: Li, Xufanga; b | Wu, Zhongb; * | Zhang, Fangb | Qu, Deqiangb
Affiliations: [a] School of Management Studies, Shanghai University of Engineering Science, Shanghai, China | [b] Business School, University of Shanghai for Science and Technology, Shanghai, China
Correspondence: [*] Corresponding author: Zhong Wu, Business School, University of Shanghai for Science and Technology, Shanghai, China. E-mail: lucylxf@163.com.
Abstract: BACKGROUND: Many medical image processing problems can be translated into solving the optimization models. In reality, there are lots of nonconvex optimization problems in medical image processing. OBJECTIVE: In this paper, we focus on a special class of robust nonconvex optimization, namely, robust optimization where given the parameters, the objective function can be expressed as the difference of convex functions. METHODS: We present the necessary condition for optimality under general assumptions. To solve this problem, a sequential robust convex optimization algorithm is proposed. RESULTS: We show that the new algorithm is globally convergent to a stationary point of the original problem under the general assumption about the uncertain set. The application of medical image enhancement is conducted and the numerical result shows its efficiency.
Keywords: Medical image processing, robust nonconvex optimization, sequential robust convex optimization algorithm, medical image enhancement
DOI: 10.3233/THC-202656
Journal: Technology and Health Care, vol. 29, no. 2, pp. 393-405, 2021
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