2015
DOI: 10.1186/s13000-015-0389-7
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Digital imaging of colon tissue: method for evaluation of inflammation severity by spatial frequency features of the histological images

Abstract: Background The efficacy of histological analysis of colon sections used for evaluation of inflammation severity can be improved by means of digital imaging giving quantitative estimates of main diagnostic features. The aim of this study was to reveal most valuable diagnostic features reflecting inflammation severity in colon and elaborate the evaluation method for computer-aided diagnostics. Methods Tissue specimens from 24 BALB/c mice and 15 patients were included in t… Show more

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Cited by 2 publications
(2 citation statements)
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References 29 publications
(25 reference statements)
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“…Despite significant progress in digital pathology that has been made for decades, histopathological diagnosis continues to be a major clinical challenge and requires an interdisciplinary approach to be optimal 13 . The assessment of spatial frequency data of histological images allows the quantification of inflammatory parameters and improves evaluation of inflammation in the colon, which in relation to digital pathology can contribute to a more accurate diagnosis and can more accurately differentiate the immune cells 47 .…”
Section: Discussionmentioning
confidence: 99%
“…Despite significant progress in digital pathology that has been made for decades, histopathological diagnosis continues to be a major clinical challenge and requires an interdisciplinary approach to be optimal 13 . The assessment of spatial frequency data of histological images allows the quantification of inflammatory parameters and improves evaluation of inflammation in the colon, which in relation to digital pathology can contribute to a more accurate diagnosis and can more accurately differentiate the immune cells 47 .…”
Section: Discussionmentioning
confidence: 99%
“…range of the follicle number or standard deviation of fat content) can describe the variance of one feature, but is not suitable to measure the compound spatial heterogeneity of variables with different measurement scales, we here propose a probability based model for the quantification of heterogeneity based on entropy measurement (in bit) per case [ 10 ]. This strategy has been successfully used in other scientific disciplines such as ecology [ 10 ] and digital image processing [ 11 14 ]. In these fields, entropy was defined in terms of information theory [ 15 , 16 ] and has been used to quantify spatial heterogeneity.…”
Section: Methodsmentioning
confidence: 99%