Review on automated follicle identification for polycystic ovarian syndrome

Author:

Nazarudin A A,Zulkarnain Noraishikin,Hussain A.,Mokri S. S.,Nordin I. N. A. M.

Abstract

Polycystic Ovarian Syndrome (PCOS), is a condition of the ovary consisting numerous follicles. Accurate size and number of follicles detected are crucial for treatment. Hence the diagnosis of this condition is by measuring and calculating the size and number of follicles existed in the ovary. For diagnosis, ultrasound imaging has become an effective tool as it is non-invasive, inexpensive and portable. However, the presence of speckle noise in ultrasound imaging has caused an obstruction for manual diagnosis which are high time consumption and often produce errors. Thus, image segmentation for ultrasound imaging is critical to identify follicles for PCOS diagnosis and proper health treatment. This paper presents different methods proposed and applied in automated follicle identification for PCOS diagnosis by previous researchers. In this paper, the methods and performance evaluation are identified and compared. Finally, this paper also provided suggestions in developing methods for future research.

Publisher

Institute of Advanced Engineering and Science

Subject

Electrical and Electronic Engineering,Control and Optimization,Computer Networks and Communications,Hardware and Architecture,Instrumentation,Information Systems,Control and Systems Engineering,Computer Science (miscellaneous)

Cited by 11 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. An innovative approach for PCO morphology segmentation using a novel MOT-SF technique;Discover Computing;2024-08-19

2. PCOS Diagnosis with Confluence CNN: A Revolution in Women's Health;2023 26th International Conference on Computer and Information Technology (ICCIT);2023-12-13

3. Count Based Analysis of PCOM Using Blob-Based Detection Method in 2D Ultrasound Images of Ovary;2023 Global Conference on Information Technologies and Communications (GCITC);2023-12-01

4. Contour-Based Identification of Multicystic Ovary Morphology Using us Images of Ovaries;2023 International Conference on Circuit Power and Computing Technologies (ICCPCT);2023-08-10

5. Otomatik Folikül Saptama Yöntemleri Kullanılarak ESA Tabanlı Polikistik Over Sendromu Tespiti;Journal of Polytechnic;2023-07-28

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