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[A technology research for diagnosis of mammographic masses based on content-based image retrieval].

作者信息

Wang Qingyan, Song Lixin, Wang Li

机构信息

Electric & Electronic Engineering College, Harbin Univ. Sci. Tech., Harbin 150040, China.

出版信息

Sheng Wu Yi Xue Gong Cheng Xue Za Zhi. 2010 Oct;27(5):999-1003.

Abstract

In order to assist doctors in making the diagnosis of mammographic masses, a method is proposed in this paper. Twenty-two features are extracted from each queried region of interest (ROI). A k-nearest neighbor (KNN) algorithm is used to retrieve similar images from database, and further calculate the mutual information (MI) between the queried image and the images which are in the retrieval results, so as to improve the retrieval performance. Finally, the scheme takes the first nine images with the highest MI scores as the final retrieval results. With the purpose of providing available decision-making information of diagnostic aids, we compare and analyze three calculating methods of decision index. The experiment results show that this method is better than the method using KNN only, and this method improves the accuracy of diagnosis effectively.

摘要

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