The comparison of measured impedance of the bladder tissue with the computational modeling results
Introduction: The electrical impedance spectroscopy technique can be used to measure the electrical impedance of the human bladder tissue, for differentiating pathological changes in the urothelium. Methods: In this study, the electrical impedance spectroscopy technique and then, a numerical techniq...
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Tabriz University of Medical Sciences
2015-11-01
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Online Access: | http://journals.tbzmed.ac.ir/JARCM/Manuscript/JARCM-3-225.pdf |
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doaj-4096bda23f0a480398c5af8f7d3909ba2020-11-24T22:28:49ZengTabriz University of Medical SciencesJournal of Analytical Research in Clinical Medicine2345-49702015-11-013422523010.15171/jarcm.2015.035JARCM_3319_20150726143124The comparison of measured impedance of the bladder tissue with the computational modeling resultsahmad keshtkar0Seyed Kazem Madaen1Professor, Department of Medical Physics, School of Medicine, Tabriz University of Medical Sciences, Tabriz, IranProfessor, Department of Urology, School of Medicine, Imam Reza Teaching Hospital, Tabriz University of Medical Sciences, Tabriz, IranIntroduction: The electrical impedance spectroscopy technique can be used to measure the electrical impedance of the human bladder tissue, for differentiating pathological changes in the urothelium. Methods: In this study, the electrical impedance spectroscopy technique and then, a numerical technique, finite element analysis (FEA) were used to model the electrical properties of this tissue to predict the impedance spectrum of the normal and malignant areas of this organ. Results: After determining and comparing the modeled data with the experimental results, it is believed that there are some factors that may affect the measurement results. Thus, the effect of inflammation, edema, changes in the applied pressure over the probe and the distensible property of the bladder tissue were considered. Furthermore, the current distribution inside the human bladder tissue was modeled in normal and malignant cases using the FEA. This model results showed that very little of the current actually flows through the urothelium and much of the injected current flows through the connective tissue beneath the urothelium. Conclusion: The results of the models do not explain the measurements results. In conclusion, there are many factors, which may account for discrepancies between the measured and modeled data.http://journals.tbzmed.ac.ir/JARCM/Manuscript/JARCM-3-225.pdfBladderComputational modelingElectrical impedance measurementNormalMalignant |
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DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
ahmad keshtkar Seyed Kazem Madaen |
spellingShingle |
ahmad keshtkar Seyed Kazem Madaen The comparison of measured impedance of the bladder tissue with the computational modeling results Journal of Analytical Research in Clinical Medicine Bladder Computational modeling Electrical impedance measurement Normal Malignant |
author_facet |
ahmad keshtkar Seyed Kazem Madaen |
author_sort |
ahmad keshtkar |
title |
The comparison of measured impedance of the bladder tissue with the computational modeling results |
title_short |
The comparison of measured impedance of the bladder tissue with the computational modeling results |
title_full |
The comparison of measured impedance of the bladder tissue with the computational modeling results |
title_fullStr |
The comparison of measured impedance of the bladder tissue with the computational modeling results |
title_full_unstemmed |
The comparison of measured impedance of the bladder tissue with the computational modeling results |
title_sort |
comparison of measured impedance of the bladder tissue with the computational modeling results |
publisher |
Tabriz University of Medical Sciences |
series |
Journal of Analytical Research in Clinical Medicine |
issn |
2345-4970 |
publishDate |
2015-11-01 |
description |
Introduction: The electrical impedance spectroscopy technique can be used to measure the electrical impedance of the human bladder tissue, for differentiating pathological changes in the urothelium. Methods: In this study, the electrical impedance spectroscopy technique and then, a numerical technique, finite element analysis (FEA) were used to model the electrical properties of this tissue to predict the impedance spectrum of the normal and malignant areas of this organ. Results: After determining and comparing the modeled data with the experimental results, it is believed that there are some factors that may affect the measurement results. Thus, the effect of inflammation, edema, changes in the applied pressure over the probe and the distensible property of the bladder tissue were considered. Furthermore, the current distribution inside the human bladder tissue was modeled in normal and malignant cases using the FEA. This model results showed that very little of the current actually flows through the urothelium and much of the injected current flows through the connective tissue beneath the urothelium. Conclusion: The results of the models do not explain the measurements results. In conclusion, there are many factors, which may account for discrepancies between the measured and modeled data. |
topic |
Bladder Computational modeling Electrical impedance measurement Normal Malignant |
url |
http://journals.tbzmed.ac.ir/JARCM/Manuscript/JARCM-3-225.pdf |
work_keys_str_mv |
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