Claims
- 1. A method for combining nuclear magnetic resonance (NMR) signals from M separate NMR receiver coils to produce a composite image represented by a plurality of picture elements (pixels), where M represents a number greater than one which is the number of separate receiver coils, the method comprising the steps of:
- (a) acquiring a plurality of noise data samples n.sub.i from each coil (i) of the M receiver coils during a time period when no NMR signal is present, in which each noise data sample is represented by;
- n.sub.i =N.sub.i e.sup.j.phi.i
- (b) producing a set of noise products by computing cross products of the noise data samples for each combination (i,j) of the M receiver coils, and averaging all of the cross products for each said combination, the set of noise products being represented by;
- <N.sub.i N.sub.j cos(.phi..sub.i -.phi..sub.j)>
- where the brackets <>denote an average over the plurality of noise data samples for each combination (i,j);
- (c) acquiring separate raw imaging data simultaneously from each of the M receiver coils when an NMR signal is present;
- (d) transforming the raw image data from each of the M receiver coils into separate spatial domain images for each of the M receiver coils, where each spatial domain image includes a plurality of spatial domain image pixels, each spatial domain image pixel being represented by a magnitude S.sub.i and a phase .theta..sub.i for each receiver coil (i); and
- (e) computing each pixel in the composite image on a pixel by pixel basis by performing the steps of:
- (f) forming a noise matrix .rho.ij according to the formula;
- .eta.ij=<N.sub.i N.sub.j cos(.phi..sub.i -.phi..sub.j)>cos(.theta..sub.i -.theta..sub.j),
- for each combination (i,j) of the M receiver coils;
- (g) inverting the noise matrix to produce .rho..sup.-1 ; and
- (h) computing each pixel in the composite image according to the formula; ##EQU11## where S represents a one dimensional vector formed from the S.sub.i magnitudes from each receiver coil (i) of the M receiver coils.
- 2. The method according to claim 1 in which:
- the noise in each receiver coil is assumed to be uncorrelated to the noise in all of the other receiver coils;
- the set of noise products in step (b) are computed according to the formula;
- <N.sub.i J.sub.j >, for i=j, and 0 for i.noteq.j;
- the spatial domain image pixels transformed in step (d) are represented by a magnitude S.sub.i only; and in which
- the noise matrix .rho.ij formed in step (f) thereby reduces to:
- .rho.ij=<N.sub.i N.sub.j >, for i=j, and
- .rho.ij=0, for i.noteq.j.
CROSS REFERENCE
This application is a division of U.S. patent application no. 07/234,360, filed on Aug. 19, 1988, now U.S. Pat. No. 4,885,541.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
4165479 |
Mansfield |
Aug 1979 |
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Divisions (1)
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Number |
Date |
Country |
Parent |
234360 |
Aug 1988 |
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