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Article:Spermatozoa Segmentation and Morphological Parameter Analysis Based Detection of Teratozoospermia

by V.S.Abbiramy, Dr. V. Shanthi
International Journal of Computer Applications
Foundation of Computer Science (FCS), NY, USA
Volume 3 - Number 7
Year of Publication: 2010
Authors: V.S.Abbiramy, Dr. V. Shanthi
10.5120/743-1050

V.S.Abbiramy, Dr. V. Shanthi . Article:Spermatozoa Segmentation and Morphological Parameter Analysis Based Detection of Teratozoospermia. International Journal of Computer Applications. 3, 7 ( June 2010), 19-23. DOI=10.5120/743-1050

@article{ 10.5120/743-1050,
author = { V.S.Abbiramy, Dr. V. Shanthi },
title = { Article:Spermatozoa Segmentation and Morphological Parameter Analysis Based Detection of Teratozoospermia },
journal = { International Journal of Computer Applications },
issue_date = { June 2010 },
volume = { 3 },
number = { 7 },
month = { June },
year = { 2010 },
issn = { 0975-8887 },
pages = { 19-23 },
numpages = {9},
url = { https://ijcaonline.org/archives/volume3/number7/743-1050/ },
doi = { 10.5120/743-1050 },
publisher = {Foundation of Computer Science (FCS), NY, USA},
address = {New York, USA}
}
%0 Journal Article
%1 2024-02-06T19:51:17.698407+05:30
%A V.S.Abbiramy
%A Dr. V. Shanthi
%T Article:Spermatozoa Segmentation and Morphological Parameter Analysis Based Detection of Teratozoospermia
%J International Journal of Computer Applications
%@ 0975-8887
%V 3
%N 7
%P 19-23
%D 2010
%I Foundation of Computer Science (FCS), NY, USA
Abstract

An important parameter assessed during the semen analysis is the overall morphology, or shape of the sperm. Currently, the morphological analysis of sperm is done manually and is based on visual observation of at least 200 spermatozoa in a microscope followed by a classification stage based on strict criteria. But this method has led to incorrect results due to various factors such as different staining procedures, experience of technicians and human errors. So this paper focuses on morphological classification of spermatozoon either as normal or abnormal using Matlab. The first stage is the image preprocessing stage which involves the conversion of RGB image to a gray scale image and then image noises are removed using median filter. The second stage is the detection and extraction of individual spermatozoon which involves the extraction of sperm objects from images using sobel edge detection algorithm. The third stage segments the spermatozoon into various region of interest such as sperm head, midpiece and tail. The fourth stage involves the statistical measurement of spermatozoon which classifies Spermatozoa as normal or abnormal.

References
Index Terms

Computer Science
Information Sciences

Keywords

Morphology Spermatozoon Spermatogenesis Segmentation IVF IUI WHO Semen analysis DNA Oocyte Acrosome Teratozoospermia