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The utility of principal component analysis for the image display of brain lesions. A preliminary, comparative study

✍ Scribed by Udo Schmiedl; Douglas A. Ortendahl; Alexander S. Mark; Isabelle Berry; Leon Kaufman


Publisher
John Wiley and Sons
Year
1987
Tongue
English
Weight
877 KB
Volume
4
Category
Article
ISSN
0740-3194

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✦ Synopsis


Principal component analysis (PCA), a common tool from multivariate statistical analysis, has been implemented into the computer display system of a MR imaging device. PCA allows the calculation of images in which the information in a defined region of interest inherent in the basic acquired images is condensed. PCA image calculation has been applied to acquired MR studies of 13 patients with brain lesions. The appearance of the brain lesions on the resultant PCA images was scored in comparison to the acquired images before and after administration of Gd-DTPA as well as to other calculated images including T1, T2, hydrogen density, and contrast-optimized images. The conspicuity of a lesion and the number of distinguishable components within a lesion were slightly superior on PCA than on the acquired images. PCA is an analytical tool for MR imaging that should be helpful in revealing information that is inherent in, but not readily visible on, standard acquired MR images.


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Application of principal component analy
✍ Giuseppe Musumarra; Svante Wold; Salo Gronowitz 📂 Article 📅 1981 🏛 John Wiley and Sons 🌐 English ⚖ 461 KB

## Abstract ^13^C NMR shifts of 54 chalcones and their thiophene and furan analogues are analyzed by principal component analysis. Thus, a mathematical model is derived for the variation of the carbon shifts in each of seven classes. Two component models are found to be adequate by cross‐validation