A method for estimating spatial resolution of real image in the Fourier domain
arXiv:1609.02268 · doi:10.1111/jmi.12315
Abstract
Spatial resolution is a fundamental parameter in structural sciences. In crystallography, the resolution is determined from the detection limit of high-angle diffraction in reciprocal space. In electron microscopy, correlation in the Fourier domain is used for estimating the resolution. In this paper, we report a method for estimating the spatial resolution of real images from a logarithmic intensity plot in the Fourier domain. The logarithmic intensity plots of test images indicated that the full width at half maximum of a Gaussian point-spread function can be estimated from the images. The spatial resolution of imaging X-ray microtomography using Fresnel zone-plate optics was also estimated with this method. A cross section of a test object visualized with the imaging microtomography indicated that square-wave patterns up to 120-nm pitch were resolved. The logarithmic intensity plot was calculated from a tomographic cross section of brain tissue. The full width at half maximum of the point spread function estimated from the plot coincided with the resolution determined from the test object. These results indicated that the logarithmic intensity plot in the Fourier domain provides an alternative measure of the spatial resolution without explicitly defining a noise criterion.
27 pages, 8 figures, 1 table
References in corpus (3)
Cited by in corpus (5)
- Three-dimensional X-ray visualization of axonal tracts in mouse brain hemisphere
- Method for estimating modulation transfer function from sample images
- Optimizing contrast and spatial resolution in hard X-ray tomography of medically relevant tissues
- Structural aging of human neurons is the opposite of the changes in schizophrenia
- Murine AI excels at cats and cheese: Structural differences between human and mouse neurons and their implementation in generative AIs