http://rdf.ncbi.nlm.nih.gov/pubchem/patent/US-5825185-A

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http://rdf.ncbi.nlm.nih.gov/pubchem/patentipc/A61B5-055
http://rdf.ncbi.nlm.nih.gov/pubchem/patentipc/G01R33-565
http://rdf.ncbi.nlm.nih.gov/pubchem/patentipc/G01R33-48
filingDate 1996-11-27^^<http://www.w3.org/2001/XMLSchema#date>
grantDate 1998-10-20^^<http://www.w3.org/2001/XMLSchema#date>
inventor http://rdf.ncbi.nlm.nih.gov/pubchem/patentinventor/MD5_0da62c146b9df9f8e3a834091afd5035
http://rdf.ncbi.nlm.nih.gov/pubchem/patentinventor/MD5_7dcc4afd55cfe5e409b6f4668ab0b39c
http://rdf.ncbi.nlm.nih.gov/pubchem/patentinventor/MD5_ea6f6bb4e722655780b2c48eed33eb83
publicationDate 1998-10-20^^<http://www.w3.org/2001/XMLSchema#date>
publicationNumber US-5825185-A
titleOfInvention Method for magnetic resonance spin echo scan calibration and reconstruction
abstract A transmitter (24) and gradient amplifiers (20) transmit radio frequency excitation and other pulses to induce magnetic resonance in selected magnetic dipoles and cause the magnetic resonance to be focused into a series of echoes (66) at each of a plurality of preselected echo positions following each excitation. A receiver (38) converts each echo into a data line. Calibration data lines having a close to zero phase-encoding are collected and used to generate correction parameters (102) for each of the echo positions. These parameters include relative echo center positions (96) and unitary complex correction vectors (106). The calibration data lines for each of the preselected positions are one-dimensionally Fourier transformed (82) and multiplied (90) by the same complex conjugate reference echo (80). These data lines are then inverse Fourier transformed (92) to generate an auxiliary data array (94). A relative echo center position is computed (96) which represents a fractional shift of the true center relative to the reference echo. A complex sum is computed (104) from the relative echo center position and normalized (106) to generate a unitary correction vector. The phase-correction parameters are used to phase-correct (116) imaging data lines. The phase-corrected imaging data lines are sorted (122) to build an image plane which is one-dimensionally Fourier transformed (128) in the phase-encoding direction to produce a final corrected image (130) for display on a monitor (134).
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priorityDate 1996-11-27^^<http://www.w3.org/2001/XMLSchema#date>
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