Literature DB >> 25064085

Analysis of breast thermograms using Gabor wavelet anisotropy index.

S S Suganthi1, S Ramakrishnan.   

Abstract

In this study, an attempt is made to distinguish the normal and abnormal tissues in breast thermal images using Gabor wavelet transform. Thermograms having normal, benign and malignant tissues are considered in this study and are obtained from public online database. Segmentation of breast tissues is performed by multiplying raw image and ground truth mask. Left and right breast regions are separated after removing the non-breast regions from the segmented image. Based on the pathological conditions, the separated breast regions are grouped as normal and abnormal tissues. Gabor features such as energy and amplitude in different scales and orientations are extracted. Anisotropy and orientation measures are calculated from the extracted features and analyzed. A distinctive variation is observed among different orientations of the extracted features. It is found that the anisotropy measure is capable of differentiating the structural changes due to varied metabolic conditions. Further, the Gabor features also showed relative variations among different pathological conditions. It appears that these features can be used efficiently to identify normal and abnormal tissues and hence, improve the relevance of breast thermography in early detection of breast cancer and content based image retrieval.

Entities:  

Mesh:

Year:  2014        PMID: 25064085     DOI: 10.1007/s10916-014-0101-6

Source DB:  PubMed          Journal:  J Med Syst        ISSN: 0148-5598            Impact factor:   4.460


  10 in total

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4.  Analysis of breast thermography with an artificial neural network.

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7.  Application of K- and fuzzy c-means for color segmentation of thermal infrared breast images.

Authors:  M EtehadTavakol; S Sadri; E Y K Ng
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8.  Thermography based breast cancer detection using texture features and Support Vector Machine.

Authors:  U Rajendra Acharya; E Y K Ng; Jen-Hong Tan; S Vinitha Sree
Journal:  J Med Syst       Date:  2010-10-19       Impact factor: 4.460

9.  Detection of breast abnormality from thermograms using curvelet transform based feature extraction.

Authors:  Sheeja V Francis; M Sasikala; S Saranya
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  10 in total
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  4 in total

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