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PMID: 12524193 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Particle finding in electron micrographs using a fast local correlation algorithm.

Ultramicroscopy ·Vol. 94 ·No. 3-4 ·2003-04-00 ·Pages 225-36

Roseman AM

Abstract

A versatile tool for selecting particles from electron micrographs, intended for single particle analysis and three-dimensional reconstruction, is presented. It is based on a local real-space correlation method. Real-space correlations calculated over a local area are suitable for finding small objects or patterns in a larger field. They provide a very sensitive measure-of-fit, partly due to local optimisation of the numerical scaling. It is equivalent to least squares with optimised scaling between the two objects being correlated. The only disadvantage of real-space methods is that they are slow to compute. A fast local correlation algorithm based on Fourier transforms has been developed, which is approximately two orders of magnitude faster than the explicit real-space formulation. The algorithm is demonstrated by application to the problem of locating images of macromolecules in transmission electron micrographs of unstained frozen hydrated specimens. This is a challenging computational problem because these images have low contrast and a low signal-to-noise ratio. Picking particles by hand is very time consuming and can be less accurate. The automated procedure gives a significant increase in speed, which is important if large numbers of particles have to be picked.

MeSH Terms
Algorithms Carbon/analysis Fourier Analysis Microscopy, Electron/methods Particle Size Ribosomes/ultrastructure Statistics as Topic/methods
Chemicals
Carbon
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Roseman Alan M
MRC-Laboratory of Molecular Biology, Hills Road, Cambridge, CB2 2QH, UK. roseman@mrc-lmb.cam.ca.uk
Article Info
Journal
Ultramicroscopy
Abbr.
Ultramicroscopy
ISSN
0304-3991
Published
2003-04-00
Pages
225-36
Language
English
Region
Netherlands
NLM ID
7513702
Subset
IM
Analysis Services
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