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Automatic evaluation of pressure sore status by combining information obtained from high-frequency ultrasound and digital photography

Author:
سحر مقیمی
,
Mohhamad Hossein Miran Baygi
,
Giti Torkaman
,
Sahar Moghimi
Year
: 2011
Abstract: In this study, the different phases of pressure sore generation and healing are investigated through a combined analysis of high-frequency ultrasound (20 MHz) images and digital color photographs. Pressure sores were artificially induced in guinea pigs, and the injured regions were monitored for 21 days (data were obtained on days 3, 7, 14, and 21). Several statistical features of the images were extracted, relating to both the altering pattern of tissue and its superficial appearance. The features were grouped into five independent categories, and each category was used to train a neural network whose outputs were the four days. The outputs of the five classifiers were then fused using a fuzzy integral to provide the final decision. We demonstrate that the suggested method provides a better decision regarding tissue status than using either imaging technique separately. This new approach may be a viable tool for detecting the phases of pressure sore generation and healing in clinical settings.
URI: https://libsearch.um.ac.ir:443/fum/handle/fum/3404130
Keyword(s): Digital color images,Sonographic assessment,Color histogram,Feature extraction,Image processing,Fuzzy integral,Neural networks,Pressure sore,Guinea pigs
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    Automatic evaluation of pressure sore status by combining information obtained from high-frequency ultrasound and digital photography

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contributor authorسحر مقیمیen
contributor authorMohhamad Hossein Miran Baygien
contributor authorGiti Torkamanen
contributor authorSahar Moghimifa
date accessioned2020-06-06T14:36:57Z
date available2020-06-06T14:36:57Z
date issued2011
identifier urihttps://libsearch.um.ac.ir:443/fum/handle/fum/3404130
description abstractIn this study, the different phases of pressure sore generation and healing are investigated through a combined analysis of high-frequency ultrasound (20 MHz) images and digital color photographs. Pressure sores were artificially induced in guinea pigs, and the injured regions were monitored for 21 days (data were obtained on days 3, 7, 14, and 21). Several statistical features of the images were extracted, relating to both the altering pattern of tissue and its superficial appearance. The features were grouped into five independent categories, and each category was used to train a neural network whose outputs were the four days. The outputs of the five classifiers were then fused using a fuzzy integral to provide the final decision. We demonstrate that the suggested method provides a better decision regarding tissue status than using either imaging technique separately. This new approach may be a viable tool for detecting the phases of pressure sore generation and healing in clinical settings.en
languageEnglish
titleAutomatic evaluation of pressure sore status by combining information obtained from high-frequency ultrasound and digital photographyen
typeJournal Paper
contenttypeExternal Fulltext
subject keywordsDigital color imagesen
subject keywordsSonographic assessmenten
subject keywordsColor histogramen
subject keywordsFeature extractionen
subject keywordsImage processingen
subject keywordsFuzzy integralen
subject keywordsNeural networksen
subject keywordsPressure soreen
subject keywordsGuinea pigsen
journal titleComputers in Biology and Medicinefa
pages427-434
journal volume41
journal issue7
identifier linkhttps://profdoc.um.ac.ir/paper-abstract-1024170.html
identifier articleid1024170
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