Physically motivated global alignment method for electron tomography
Autor: | Micah P. Prange, Peter Binev, Toby Sanders, M. Cem Akatay |
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Rok vydání: | 2015 |
Předmět: |
Sequence
Materials science business.industry Coordinate system Resolution (electron density) Sample (graphics) Image (mathematics) Electron tomography Chemical Engineering (miscellaneous) Radiology Nuclear Medicine and imaging Computer vision Segmentation Artificial intelligence business Projection (set theory) Spectroscopy |
Zdroj: | Advanced Structural and Chemical Imaging. 1 |
ISSN: | 2198-0926 |
DOI: | 10.1186/s40679-015-0005-7 |
Popis: | Electron tomography is widely used for nanoscale determination of 3-D structures in many areas of science. Determining the 3-D structure of a sample from electron tomography involves three major steps: acquisition of sequence of 2-D projection images of the sample with the electron microscope, alignment of the images to a common coordinate system, and 3-D reconstruction and segmentation of the sample from the aligned image data. The resolution of the 3-D reconstruction is directly influenced by the accuracy of the alignment, and therefore, it is crucial to have a robust and dependable alignment method. In this paper, we develop a new alignment method which avoids the use of markers and instead traces the computed paths of many identifiable ‘local’ center-of-mass points as the sample is rotated. Compared with traditional correlation schemes, the alignment method presented here is resistant to cumulative error observed from correlation techniques, has very rigorous mathematical justification, and is very robust since many points and paths are used, all of which inevitably improves the quality of the reconstruction and confidence in the scientific results. |
Databáze: | OpenAIRE |
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