3D Dendritic Spine Segmentation Using Nonparametric Shape Priors

被引:0
作者
Bocugoz, Erdem [1 ]
Erdil, Ertunc [1 ]
Argunsah, A. Ozgur [2 ]
Unay, Devrim [3 ]
Cetin, Mujdat [1 ]
机构
[1] Sabanci Univ, Muhendisl & Doga Bilimleri Fak, Istanbul, Turkey
[2] Zurih Univ, Beyin Arastirmalari Enstitusu, Zurih, Switzerland
[3] Izmir Econ Univ, Biyomed Muhendisligi, Izmir, Turkey
来源
2017 25TH SIGNAL PROCESSING AND COMMUNICATIONS APPLICATIONS CONFERENCE (SIU) | 2017年
关键词
3D dendritic spine segmentation; nonparametric shape priors; Parzen density estimator; level sets; IMAGE SEGMENTATION; PROTEIN-SYNTHESIS; MICROSCOPY;
D O I
暂无
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Analyzing morphological and structural changes of dendritic spines in 2-photon microscopy images in time is important for neuroscience researchers. Correct segmentation of dendritic spines is an important step of developing robust and reliable automatic tools for such analysis. In this paper, we propose an approach for segmentation of 3D dendritic spines using nonparametric shape priors. The proposed method learns the prior distribution of shapes through Parzen density estimation on the training set of shapes. Then, the posterior distribution of shapes is obtained by combining the learned prior distribution with a data term in a Bayesian framework. Finally, the segmentation result that maximizes the posterior is found using active contours. Experimental results demonstrate that using nonparametric shape priors leads to better 3D dendritic spine segmentation results.
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页数:4
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