Literature DB >> 24236228

Automatic Segmentation of Right Ventricle on Ultrasound Images Using Sparse Matrix Transform and Level Set.

Xulei Qin1, Zhibin Cong, Luma V Halig, Baowei Fei.   

Abstract

An automatic framework is proposed to segment right ventricle on ultrasound images. This method can automatically segment both epicardial and endocardial boundaries from a continuous echocardiography series by combining sparse matrix transform (SMT), a training model, and a localized region based level set. First, the sparse matrix transform extracts main motion regions of myocardium as eigenimages by analyzing statistical information of these images. Second, a training model of right ventricle is registered to the extracted eigenimages in order to automatically detect the main location of the right ventricle and the corresponding transform relationship between the training model and the SMT-extracted results in the series. Third, the training model is then adjusted as an adapted initialization for the segmentation of each image in the series. Finally, based on the adapted initializations, a localized region based level set algorithm is applied to segment both epicardial and endocardial boundaries of the right ventricle from the whole series. Experimental results from real subject data validated the performance of the proposed framework in segmenting right ventricle from echocardiography. The mean Dice scores for both epicardial and endocardial boundaries are 89.1%±2.3% and 83.6±7.3%, respectively. The automatic segmentation method based on sparse matrix transform and level set can provide a useful tool for quantitative cardiac imaging.

Entities:  

Keywords:  Image segmentation; cardiac imaging; functional imaging; genetic algorithm; heart; level set; myocardium; right ventricle; sparse matrix transform; ultrasound imaging

Year:  2013        PMID: 24236228      PMCID: PMC3824270          DOI: 10.1117/12.2006490

Source DB:  PubMed          Journal:  Proc SPIE Int Soc Opt Eng        ISSN: 0277-786X


  18 in total

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Review 6.  Ultrasound image segmentation: a survey.

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Journal:  IEEE Trans Med Imaging       Date:  2006-08       Impact factor: 10.048

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Journal:  Med Phys       Date:  2011-06       Impact factor: 4.071

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9.  Automatic segmentation of echocardiographic sequences by active appearance motion models.

Authors:  Johan G Bosch; Steven C Mitchell; Boudewijn P F Lelieveldt; Francisca Nijland; Otto Kamp; Milan Sonka; Johan H C Reiber
Journal:  IEEE Trans Med Imaging       Date:  2002-11       Impact factor: 10.048

10.  A modified fuzzy C-means classification method using a multiscale diffusion filtering scheme.

Authors:  Hesheng Wang; Baowei Fei
Journal:  Med Image Anal       Date:  2008-07-05       Impact factor: 8.545

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  9 in total

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Authors:  Jun Chen; Heye Zhang; Weiwei Zhang; Xiuquan Du; Yanping Zhang; Shuo Li
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4.  Spectral-Spatial Classification Using Tensor Modeling for Cancer Detection with Hyperspectral Imaging.

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5.  Mapping Cardiac Fiber Orientations from High-Resolution DTI to High-Frequency 3D Ultrasound.

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6.  Hyperspectral Imaging for Cancer Surgical Margin Delineation: Registration of Hyperspectral and Histological Images.

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7.  Automatic segmentation of right ventricular ultrasound images using sparse matrix transform and a level set.

Authors:  Xulei Qin; Zhibin Cong; Baowei Fei
Journal:  Phys Med Biol       Date:  2013-10-10       Impact factor: 3.609

8.  3D in vivo imaging of rat hearts by high frequency ultrasound and its application in myofiber orientation wrapping.

Authors:  Xulei Qin; Silun Wang; Ming Shen; Xiaodong Zhang; Stamatios Lerakis; Mary B Wagner; Baowei Fei
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9.  Quantitative Wavelength Analysis and Image Classification for Intraoperative Cancer Diagnosis with Hyperspectral Imaging.

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  9 in total

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