Literature DB >> 19378736

Autoregressive moving average modeling for spectral parameter estimation from a multigradient echo chemical shift acquisition.

Brian A Taylor1, Ken-Pin Hwang, John D Hazle, R Jason Stafford.   

Abstract

The authors investigated the performance of the iterative Steiglitz-McBride (SM) algorithm on an autoregressive moving average (ARMA) model of signals from a fast, sparsely sampled, multiecho, chemical shift imaging (CSI) acquisition using simulation, phantom, ex vivo, and in vivo experiments with a focus on its potential usage in magnetic resonance (MR)-guided interventions. The ARMA signal model facilitated a rapid calculation of the chemical shift, apparent spin-spin relaxation time (T2*), and complex amplitudes of a multipeak system from a limited number of echoes (< or equal 16). Numerical simulations of one- and two-peak systems were used to assess the accuracy and uncertainty in the calculated spectral parameters as a function of acquisition and tissue parameters. The measured uncertainties from simulation were compared to the theoretical Cramer-Rao lower bound (CRLB) for the acquisition. Measurements made in phantoms were used to validate the T2* estimates and to validate uncertainty estimates made from the CRLB. We demonstrated application to real-time MR-guided interventions ex vivo by using the technique to monitor a percutaneous ethanol injection into a bovine liver and in vivo to monitor a laser-induced thermal therapy treatment in a canine brain. Simulation results showed that the chemical shift and amplitude uncertainties reached their respective CRLB at a signal-to-noise ratio (SNR) > or =5 for echo train lengths (ETLs) > or =4 using a fixed echo spacing of 3.3 ms. T2* estimates from the signal model possessed higher uncertainties but reached the CRLB at larger SNRs and/or ETLs. Highly accurate estimates for the chemical shift (<0.01 ppm) and amplitude (<1.0%) were obtained with > or =4 echoes and for T2*(<1.0%) with > or =7 echoes. We conclude that, over a reasonable range of SNR, the SM algorithm is a robust estimator of spectral parameters from fast CSI acquisitions that acquire < or =16 echoes for one- and two-peak systems. Preliminary ex vivo and in vivo experiments corroborated the results from simulation experiments and further indicate the potential of this technique for MR-guided interventional procedures with high spatiotemporal resolution approximately 1.6 x 1.6 x 4 mm3 in < or =5 s.

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Year:  2009        PMID: 19378736      PMCID: PMC2736745          DOI: 10.1118/1.3075819

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  32 in total

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  9 in total

1.  Multiparametric fat-water separation method for fast chemical-shift imaging guidance of thermal therapies.

Authors:  Jonathan S Lin; Ken-Pin Hwang; Edward F Jackson; John D Hazle; R Jason Stafford; Brian A Taylor
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2.  Correlation between the temperature dependence of intrinsic MR parameters and thermal dose measured by a rapid chemical shift imaging technique.

Authors:  B A Taylor; A M Elliott; K P Hwang; J D Hazle; R J Stafford
Journal:  NMR Biomed       Date:  2011-07-01       Impact factor: 4.044

3.  Radial Ultrashort TE Imaging Removes the Need for Breath-Holding in Hepatic Iron Overload Quantification by R2* MRI.

Authors:  Aaryani Tipirneni-Sajja; Axel J Krafft; M Beth McCarville; Ralf B Loeffler; Ruitian Song; Jane S Hankins; Claudia M Hillenbrand
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4.  Autoregressive moving average modeling for hepatic iron quantification in the presence of fat.

Authors:  Aaryani Tipirneni-Sajja; Axel J Krafft; Ralf B Loeffler; Ruitian Song; Armita Bahrami; Jane S Hankins; Claudia M Hillenbrand
Journal:  J Magn Reson Imaging       Date:  2019-02-13       Impact factor: 4.813

5.  Thermal Therapy Approaches for Treatment of Brain Tumors in Animals and Humans.

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Authors:  Brian A Taylor; Ralf B Loeffler; Ruitian Song; M Beth McCarville; Jane S Hankins; Claudia M Hillenbrand
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7.  Automated T(2) * measurements using supplementary field mapping to assess cardiac iron content.

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8.  Theranostics with multifunctional magnetic gold nanoshells: photothermal therapy and t2* magnetic resonance imaging.

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9.  Measurement of temperature dependent changes in bone marrow using a rapid chemical shift imaging technique.

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  9 in total

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