Analysis of Nanopore Structure Images Using MATLAB Software

The importance of nanopores increases with time due to their application. For instance, nanopores may be used to sense molecules like DNA and RNA, single proteins, etc. Sequencing by nanopore has also a possibility to be a direct, fast, and inexpensive DNA sequencing tool. Diameters of nanopores are...

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Main Authors: Haidar Jalal Ismail, Azeez Abdullah Barzinjy, Samir Mustafa Hamad
Format: Article
Language:English
Published: Ishik University 2019-01-01
Series:Eurasian Journal of Science and Engineering
Subjects:
Online Access:http://eajse.org/wp-content/uploads/2015/12/Analysis-of-Nanopore-Structure-Images.pdf
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spelling doaj-f465b76642164b57b76010b32f9048892020-11-25T00:39:19ZengIshik UniversityEurasian Journal of Science and Engineering2414-56292414-56022019-01-0143849310.23918/eajse.v4i3sip84Analysis of Nanopore Structure Images Using MATLAB SoftwareHaidar Jalal IsmailAzeez Abdullah BarzinjySamir Mustafa HamadThe importance of nanopores increases with time due to their application. For instance, nanopores may be used to sense molecules like DNA and RNA, single proteins, etc. Sequencing by nanopore has also a possibility to be a direct, fast, and inexpensive DNA sequencing tool. Diameters of nanopores are the main keys for mentioned sensing processes. Three segmenting methods used in this study namely Thresholding, Gaussian Mixture Model-Expectation Maximization (GMM-EM) and Hidden Markov Random Field-Expectation Maximization (HMRF-EM). These methods applied on three SEM nanopore images after enhancing them through obtaining optimum parameters of CLAHE contrast-enhanced method to give high PSNR. The results of the Rand index and time of running code show that the HMRF-EM is better than GMM-EM. Hence, their segmented images are used to find out nanopore parameters including total counting pores, diameter, and porosity. The results of porosity were in good agreement with former investigations. Consequently, the HMRF-EM segmenting technique with procedures utilized in this study using image processing for finding porosity gives promising results among other examined methods.http://eajse.org/wp-content/uploads/2015/12/Analysis-of-Nanopore-Structure-Images.pdfNanoporeImage SegmentationSegmentation EvaluationGMM-EMHMRF-EM
collection DOAJ
language English
format Article
sources DOAJ
author Haidar Jalal Ismail
Azeez Abdullah Barzinjy
Samir Mustafa Hamad
spellingShingle Haidar Jalal Ismail
Azeez Abdullah Barzinjy
Samir Mustafa Hamad
Analysis of Nanopore Structure Images Using MATLAB Software
Eurasian Journal of Science and Engineering
Nanopore
Image Segmentation
Segmentation Evaluation
GMM-EM
HMRF-EM
author_facet Haidar Jalal Ismail
Azeez Abdullah Barzinjy
Samir Mustafa Hamad
author_sort Haidar Jalal Ismail
title Analysis of Nanopore Structure Images Using MATLAB Software
title_short Analysis of Nanopore Structure Images Using MATLAB Software
title_full Analysis of Nanopore Structure Images Using MATLAB Software
title_fullStr Analysis of Nanopore Structure Images Using MATLAB Software
title_full_unstemmed Analysis of Nanopore Structure Images Using MATLAB Software
title_sort analysis of nanopore structure images using matlab software
publisher Ishik University
series Eurasian Journal of Science and Engineering
issn 2414-5629
2414-5602
publishDate 2019-01-01
description The importance of nanopores increases with time due to their application. For instance, nanopores may be used to sense molecules like DNA and RNA, single proteins, etc. Sequencing by nanopore has also a possibility to be a direct, fast, and inexpensive DNA sequencing tool. Diameters of nanopores are the main keys for mentioned sensing processes. Three segmenting methods used in this study namely Thresholding, Gaussian Mixture Model-Expectation Maximization (GMM-EM) and Hidden Markov Random Field-Expectation Maximization (HMRF-EM). These methods applied on three SEM nanopore images after enhancing them through obtaining optimum parameters of CLAHE contrast-enhanced method to give high PSNR. The results of the Rand index and time of running code show that the HMRF-EM is better than GMM-EM. Hence, their segmented images are used to find out nanopore parameters including total counting pores, diameter, and porosity. The results of porosity were in good agreement with former investigations. Consequently, the HMRF-EM segmenting technique with procedures utilized in this study using image processing for finding porosity gives promising results among other examined methods.
topic Nanopore
Image Segmentation
Segmentation Evaluation
GMM-EM
HMRF-EM
url http://eajse.org/wp-content/uploads/2015/12/Analysis-of-Nanopore-Structure-Images.pdf
work_keys_str_mv AT haidarjalalismail analysisofnanoporestructureimagesusingmatlabsoftware
AT azeezabdullahbarzinjy analysisofnanoporestructureimagesusingmatlabsoftware
AT samirmustafahamad analysisofnanoporestructureimagesusingmatlabsoftware
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