Literature DB >> 20659835

Automatic classification of lymphoma images with transform-based global features.

Nikita V Orlov1, Wayne W Chen, David Mark Eckley, Tomasz J Macura, Lior Shamir, Elaine S Jaffe, Ilya G Goldberg.   

Abstract

We propose a report on automatic classification of three common types of malignant lymphoma: chronic lymphocytic leukemia, follicular lymphoma, and mantle cell lymphoma. The goal was to find patterns indicative of lymphoma malignancies and allowing classifying these malignancies by type. We used a computer vision approach for quantitative characterization of image content. A unique two-stage approach was employed in this study. At the outer level, raw pixels were transformed with a set of transforms into spectral planes. Simple (Fourier, Chebyshev, and wavelets) and compound transforms (Chebyshev of Fourier and wavelets of Fourier) were computed. Raw pixels and spectral planes were then routed to the second stage (the inner level). At the inner level, the set of multipurpose global features was computed on each spectral plane by the same feature bank. All computed features were fused into a single feature vector. The specimens were stained with hematoxylin (H) and eosin (E) stains. Several color spaces were used: RGB, gray, CIE-L*a*b*, and also the specific stain-attributed H&E space, and experiments on image classification were carried out for these sets. The best signal (98%-99% on earlier unseen images) was found for the HE, H, and E channels of the H&E data set.

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Year:  2010        PMID: 20659835      PMCID: PMC2911652          DOI: 10.1109/TITB.2010.2050695

Source DB:  PubMed          Journal:  IEEE Trans Inf Technol Biomed        ISSN: 1089-7771


  31 in total

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5.  WND-CHARM: Multi-purpose image classification using compound image transforms.

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8.  IICBU 2008: a proposed benchmark suite for biological image analysis.

Authors:  Lior Shamir; Nikita Orlov; David Mark Eckley; Tomasz J Macura; Ilya G Goldberg
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9.  Automated interpretation of protein subcellular location patterns: implications for early cancer detection and assessment.

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  8 in total

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3.  Automatic detection of melanoma progression by histological analysis of secondary sites.

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4.  Improving class separability using extended pixel planes: a comparative study.

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Journal:  Mach Vis Appl       Date:  2012-09-01       Impact factor: 2.012

5.  A high-content image analysis approach for quantitative measurements of chemosensitivity in patient-derived tumor microtissues.

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6.  Novel chromaticity similarity based color texture descriptor for digital pathology image analysis.

Authors:  Xingyu Li; Konstantinos N Plataniotis
Journal:  PLoS One       Date:  2018-11-12       Impact factor: 3.240

7.  Is the Time Right to Start Using Digital Pathology and Artificial Intelligence for the Diagnosis of Lymphoma?

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8.  A Novel Lightweight Deep Learning-Based Histopathological Image Classification Model for IoMT.

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  8 in total

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