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HEp-2 Staining Pattern Classification

2013·62 Zitationen·Lund University Publications (Lund University)Open Access
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62

Zitationen

3

Autoren

2013

Jahr

Abstract

Classifying images of HEp-2 cells from indirect immunofluorescence has important clinical applications. We have developed an automatic method based on random forests that classifies an HEp-2 cell image into one of six classes. The method is applied to the data set of the ICPR 2012 contest. The previously obtained best accuracy is 79.3 % for this data set, whereas we obtain an accuracy of 97.4%. The key to our result is due to carefully designed feature descriptors for multiple level sets of the image intensity. These features characterize both the appearance and the shape of the cell image in a robust manner. 1. Indirect immunofluorescence Indirect immunofluorescence (IIF) is an imaging

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Institutionen

Themen

Image Processing Techniques and ApplicationsDigital Imaging for Blood DiseasesMedical Image Segmentation Techniques
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