## Abstract One of the difficulties encountered in ^19^F NMR imaging of fluorinated blood substitutes is that these compounds often exhibit complex multipeak spectra. These peaks result in chemical‐shift artifacts along the readout direction and blurred images. In addition, each peak excites a diff
Reblurred deconvolution method for chemical shift removal in F-19 (PFOB) MR imaging
✍ Scribed by H. K. Lee; Orhan Nalcioglu
- Publisher
- John Wiley and Sons
- Year
- 1992
- Tongue
- English
- Weight
- 764 KB
- Volume
- 2
- Category
- Article
- ISSN
- 1053-1807
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✦ Synopsis
Abstract
Perfluorocarbons such as perfluoroctylbromide (PFOB) can be used as contrast agents in the vascular system for fluorine‐19 magnetic resonance imaging or as synthetic oxygen carriers. F‐19 imaging has been proposed for studying the vascular system, capillary flow, tissue perfusion, and tumor oxygenation. A major difficulty is that F‐19 compounds often have complex multipeak spectra. These peaks result in chemical shift artifacts, lower signal‐to‐noise ratios, and blurred images. Each peak also excites a different section when a section‐select gradient is applied. Direct inverse filtering is the simplest deconvo‐lution method for correcting such artifacts; however, two major difficulties present themselves: functional singularity and noise amplification at high frequencies. The use of a new reblurred de‐convolution (RED) method appears to overcome these problems. Although this method is based on iterative deconvolution in the spatial domain, the computational overhead is negligible. Since the point spread function and object data are already available in the time domain as FID data, RED appears to be useful for eliminating chemical shift artifacts and suppressing noise amplification while restoring the original image without loss of resolution.
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## Abstract This paper describes a method for correcting the chemical‐shift artifacts in ^19^F NMR imaging of perfluoroctylbromide emulsion (PFOB) by utilizing the two spectral peaks of PFOB which have a long __T__~2~ value in conjunction with the Dixon method. Corrected images are obtained from th