SECURE MEDICAL IMAGE RETRIEVAL USING FAST IMAGE PROCESSING ALGORITHMS

被引:0
作者
Lafta, Sameer Abdulsttar [1 ]
Rafash, Amaal Ghazi Hamad [1 ]
Al-falahi, Noaman Ahmed Yaseen [2 ]
Hussein, Hussein Abdulqader [3 ]
Abdulkareem, Mohanad Mahdi [3 ]
机构
[1] Middle Tech Univ, Tech Instructors Training Inst, Baghdad, Iraq
[2] Iraqi Minist Commun, Digital Transformat Dept, Baghdad, Iraq
[3] Iraqi Minist Educ, Data Ctr, Management Dept, Baghdad, Iraq
来源
SCALABLE COMPUTING-PRACTICE AND EXPERIENCE | 2024年 / 25卷 / 05期
关键词
Medical image; Image retrieval; Image processing; ENCRYPTION SCHEME; EFFICIENT;
D O I
10.12694/scpe.v25i5.3126
中图分类号
TP31 [计算机软件];
学科分类号
081202 ; 0835 ;
摘要
Content Based Image Retrieval (CBIR) is a relatively new idea in the field of real-time image retrieval applications; it is a framework for retrieving pictures from diverse medical imaging sources using a variety of image-related attributes, such as color, texture, and form. Using both single and multiple input queries, CBIR processes semantic data or the same object for various class labels in the context of medical image retrieval. Due to the ambiguity of image search, optimizing the retrieval of a query picture by comparing it across numerous image sources may be problematic. The goal is to find a way to optimize the process by which requested images are retrieved from various storage locations. To effectively extract medical images, we propose a hybrid framework (consisting of deep convolution neural networks (DCNN) and the Pareto Optimization technique). In order to obtain medical pictures, a DCNN is trained on them, and then its properties and classification results are employed. Explore enhanced effective medical picture retrieval by using a Pareto optimization strategy to eliminate superfluous and dominant characteristics. When it comes to retrieving images by query from various picture archives, our method outperforms more conventional methods. Use the jargon of machine learning to propose a Novel Unsupervised Label Indexing (NULI) strategy for retrieving picture labels. To enhance the effectiveness of picture retrieval, we characterize machine learning as a matrix convex optimization using a cluster rebased matrix representation. We describe an empirical investigation on many medical picture datasets, finding that the searchbased image annotation (SBIA) schema benefits from our suggested method. As a result, CT images of the lung region are explored in this study by constructing a content-based image retrieval system using various machine learning and Artificial Intelligence techniques. Real-world applications of medical imaging are becoming more significant. Medical research facilities acquire and archive a wide variety of medical pictures digitally.
引用
收藏
页码:4323 / 4334
页数:12
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