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Shape component analysis: structure-preserving dimension reduction on biological shape spaces. | LitMetric

Shape component analysis: structure-preserving dimension reduction on biological shape spaces.

Bioinformatics

Department of Biomedical Engineering, Department of Computational Biology, Carnegie Mellon University, Pittsburgh, PA 15213, USA.

Published: March 2016

Motivation: Quantitative shape analysis is required by a wide range of biological studies across diverse scales, ranging from molecules to cells and organisms. In particular, high-throughput and systems-level studies of biological structures and functions have started to produce large volumes of complex high-dimensional shape data. Analysis and understanding of high-dimensional biological shape data require dimension-reduction techniques.

Results: We have developed a technique for non-linear dimension reduction of 2D and 3D biological shape representations on their Riemannian spaces. A key feature of this technique is that it preserves distances between different shapes in an embedded low-dimensional shape space. We demonstrate an application of this technique by combining it with non-linear mean-shift clustering on the Riemannian spaces for unsupervised clustering of shapes of cellular organelles and proteins.

Availability And Implementation: Source code and data for reproducing results of this article are freely available at https://github.com/ccdlcmu/shape_component_analysis_Matlab The implementation was made in MATLAB and supported on MS Windows, Linux and Mac OS.

Contact: geyang@andrew.cmu.edu.

Download full-text PDF

Source
http://dx.doi.org/10.1093/bioinformatics/btv648DOI Listing

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