DocumentCode
725033
Title
Nuclei segmentation via sparsity constrained convolutional regression
Author
Yin Zhou ; Hang Chang ; Barner, Kenneth E. ; Parvin, Bahram
Author_Institution
Life Sci. Div., Lawrence Berkeley Nat. Lab., Berkeley, CA, USA
fYear
2015
fDate
16-19 April 2015
Firstpage
1284
Lastpage
1287
Abstract
Automated profiling of nuclear architecture, in histology sections, can potentially help predict the clinical outcomes. However, the task is challenging as a result of nuclear pleomorphism and cellular states (e.g, cell fate, cell cycle), which are compounded by the batch effect (e.g, variations in fixation and staining). Present methods, for nuclear segmentation, are based on human-designed features that may not effectively capture intrinsic nuclear architecture. In this paper, we propose a novel approach, called sparsity constrained convolutional regression (SCCR), for nuclei segmentation. Specifically, given raw image patches and the corresponding annotated binary masks, our algorithm jointly learns a bank of convolutional filters and a sparse linear regressor, where the former is used for feature extraction, and the latter aims to produce a likelihood for each pixel being nuclear region or background. During classification, the pixel label is simply determined by a thresholding operation applied on the likelihood map. The method has been evaluated using the benchmark dataset collected from The Cancer Genome Atlas (TCGA). Experimental results demonstrate that our method outperforms traditional nuclei segmentation algorithms and is able to achieve competitive performance compared to the state-of-the-art algorithm built upon human-designed features with biological prior knowledge.
Keywords
cancer; cellular biophysics; convolution; feature extraction; image classification; image segmentation; medical image processing; regression analysis; TCGA; binary mask; cell cycle; cell fate; cellular state; convolutional filter; feature extraction; histology section; image patch; likelihood map; nuclear architecture profiling; nuclear pleomorphism; nuclei classification; nuclei segmentation algorithm; sparse linear regressor; sparsity constrained convolutional regression; the cancer genome atlas; thresholding operation; Bioinformatics; Biology; Computer architecture; Computer vision; Feature extraction; Image segmentation; Training; H&E tissue section; Nuclear/Background classification; con-volutional neural network; sparse coding;
fLanguage
English
Publisher
ieee
Conference_Titel
Biomedical Imaging (ISBI), 2015 IEEE 12th International Symposium on
Conference_Location
New York, NY
Type
conf
DOI
10.1109/ISBI.2015.7164109
Filename
7164109
Link To Document